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https://github.com/langchain-ai/langgraph.git
synced 2026-10-03 15:05:06 +02:00
Compare commits
77
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25470ea435 |
@@ -100,3 +100,4 @@ dmypy.json
|
||||
.turbo
|
||||
.editorconfig
|
||||
.scratch
|
||||
.worktrees/
|
||||
|
||||
Generated
+3
-3
@@ -306,7 +306,7 @@ test = [
|
||||
|
||||
[[package]]
|
||||
name = "langsmith"
|
||||
version = "0.7.3"
|
||||
version = "0.7.31"
|
||||
source = { registry = "https://pypi.org/simple" }
|
||||
dependencies = [
|
||||
{ name = "httpx" },
|
||||
@@ -319,9 +319,9 @@ dependencies = [
|
||||
{ name = "xxhash" },
|
||||
{ name = "zstandard" },
|
||||
]
|
||||
sdist = { url = "https://files.pythonhosted.org/packages/8d/bc/8172fefad4f2da888a6d564a27d1fb7d4dbf3c640899c2b40c46235cbe98/langsmith-0.7.3.tar.gz", hash = "sha256:0223b97021af62d2cf53c8a378a27bd22e90a7327e45b353e0069ae60d5d6f9e", size = 988575, upload-time = "2026-02-13T23:25:32.916Z" }
|
||||
sdist = { url = "https://files.pythonhosted.org/packages/e6/11/696019490992db5c87774dc20515529ef42a01e1d770fb754ed6d9b12fb0/langsmith-0.7.31.tar.gz", hash = "sha256:331ee4f7c26bb5be4022b9859b7d7b122cbf8c9d01d9f530114c1914b0349ffb", size = 1178480, upload-time = "2026-04-14T17:55:41.242Z" }
|
||||
wheels = [
|
||||
{ url = "https://files.pythonhosted.org/packages/f4/9d/5a68b6b5e313ffabbb9725d18a71edb48177fd6d3ad329c07801d2a8e862/langsmith-0.7.3-py3-none-any.whl", hash = "sha256:03659bf9274e6efcead361c9c31a7849ea565ae0d6c0d73e1d8b239029eff3be", size = 325718, upload-time = "2026-02-13T23:25:31.52Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/1d/a1/a013cf458c301cda86a213dd153ce0a01c93f1ab5833f951e6a44c9763ce/langsmith-0.7.31-py3-none-any.whl", hash = "sha256:0291d49203f6e80dda011af1afda61eb0595a4d697adb684590a8805e1d61fb6", size = 373276, upload-time = "2026-04-14T17:55:39.677Z" },
|
||||
]
|
||||
|
||||
[[package]]
|
||||
|
||||
@@ -4,7 +4,7 @@ import threading
|
||||
from collections import defaultdict
|
||||
from collections.abc import Iterator, Sequence
|
||||
from contextlib import contextmanager
|
||||
from typing import Any
|
||||
from typing import Any, cast
|
||||
|
||||
from langchain_core.runnables import RunnableConfig
|
||||
from langgraph.checkpoint.base import (
|
||||
@@ -32,7 +32,7 @@ Conn = _internal.Conn # For backward compatibility
|
||||
class PostgresSaver(BasePostgresSaver):
|
||||
"""Checkpointer that stores checkpoints in a Postgres database."""
|
||||
|
||||
lock: threading.Lock
|
||||
lock: threading.RLock
|
||||
|
||||
def __init__(
|
||||
self,
|
||||
@@ -48,7 +48,7 @@ class PostgresSaver(BasePostgresSaver):
|
||||
|
||||
self.conn = conn
|
||||
self.pipe = pipe
|
||||
self.lock = threading.Lock()
|
||||
self.lock = threading.RLock()
|
||||
self.supports_pipeline = Capabilities().has_pipeline()
|
||||
|
||||
@classmethod
|
||||
@@ -442,6 +442,22 @@ class PostgresSaver(BasePostgresSaver):
|
||||
including its configuration, metadata, parent checkpoint (if any),
|
||||
and pending writes.
|
||||
"""
|
||||
from langgraph.checkpoint.base import DeltaChannelSentinel
|
||||
|
||||
channel_values = self._load_blobs(value["channel_values"])
|
||||
if any(isinstance(v, DeltaChannelSentinel) for v in channel_values.values()):
|
||||
cp_config = cast(
|
||||
RunnableConfig,
|
||||
{
|
||||
"configurable": {
|
||||
"thread_id": value["thread_id"],
|
||||
"checkpoint_ns": value["checkpoint_ns"],
|
||||
"checkpoint_id": value["checkpoint_id"],
|
||||
}
|
||||
},
|
||||
)
|
||||
with self._cursor() as cur:
|
||||
self._resolve_delta_channels(cp_config, channel_values, cur)
|
||||
return CheckpointTuple(
|
||||
{
|
||||
"configurable": {
|
||||
@@ -454,7 +470,7 @@ class PostgresSaver(BasePostgresSaver):
|
||||
**value["checkpoint"],
|
||||
"channel_values": {
|
||||
**(value["checkpoint"].get("channel_values") or {}),
|
||||
**self._load_blobs(value["channel_values"]),
|
||||
**channel_values,
|
||||
},
|
||||
},
|
||||
value["metadata"],
|
||||
|
||||
@@ -13,6 +13,7 @@ from langgraph.checkpoint.base import (
|
||||
Checkpoint,
|
||||
CheckpointMetadata,
|
||||
CheckpointTuple,
|
||||
DeltaChannelSentinel,
|
||||
get_checkpoint_id,
|
||||
get_serializable_checkpoint_metadata,
|
||||
)
|
||||
@@ -391,6 +392,58 @@ class AsyncPostgresSaver(BasePostgresSaver):
|
||||
async with conn.cursor(binary=True, row_factory=dict_row) as cur:
|
||||
yield cur
|
||||
|
||||
async def _aget_channel_writes_cur(
|
||||
self,
|
||||
thread_id: str,
|
||||
checkpoint_ns: str,
|
||||
checkpoint_id: str,
|
||||
channel: str,
|
||||
cur: Any,
|
||||
) -> list[Any]:
|
||||
"""Async version of _get_channel_writes_cur — see sync version for rationale."""
|
||||
await cur.execute(
|
||||
"SELECT checkpoint_id, parent_checkpoint_id FROM checkpoints "
|
||||
"WHERE thread_id = %s AND checkpoint_ns = %s",
|
||||
(thread_id, checkpoint_ns),
|
||||
)
|
||||
parent_map: dict[str, str | None] = {
|
||||
row["checkpoint_id"]: row["parent_checkpoint_id"]
|
||||
for row in await cur.fetchall()
|
||||
}
|
||||
ancestor_ids: list[str] = []
|
||||
cid: str | None = parent_map.get(checkpoint_id)
|
||||
while cid is not None:
|
||||
ancestor_ids.append(cid)
|
||||
cid = parent_map.get(cid)
|
||||
if not ancestor_ids:
|
||||
return []
|
||||
await cur.execute(
|
||||
"SELECT checkpoint_id, type, blob FROM checkpoint_writes "
|
||||
"WHERE thread_id = %s AND checkpoint_ns = %s AND channel = %s "
|
||||
" AND checkpoint_id = ANY(%s) "
|
||||
"ORDER BY task_id, idx",
|
||||
(thread_id, checkpoint_ns, channel, ancestor_ids),
|
||||
)
|
||||
writes_by_cp: dict[str, list[tuple[str, bytes]]] = defaultdict(list)
|
||||
for row in await cur.fetchall():
|
||||
writes_by_cp[row["checkpoint_id"]].append((row["type"], row["blob"]))
|
||||
result = []
|
||||
for cid in reversed(ancestor_ids):
|
||||
for type_tag, blob in writes_by_cp.get(cid, []):
|
||||
result.append(self.serde.loads_typed((type_tag, blob)))
|
||||
return result
|
||||
|
||||
async def aget_channel_writes(
|
||||
self, config: RunnableConfig, channel: str
|
||||
) -> list[Any]:
|
||||
thread_id = config["configurable"]["thread_id"]
|
||||
checkpoint_ns = config["configurable"].get("checkpoint_ns", "")
|
||||
checkpoint_id = config["configurable"]["checkpoint_id"]
|
||||
async with self._cursor() as cur:
|
||||
return await self._aget_channel_writes_cur(
|
||||
thread_id, checkpoint_ns, checkpoint_id, channel, cur
|
||||
)
|
||||
|
||||
async def _load_checkpoint_tuple(self, value: DictRow) -> CheckpointTuple:
|
||||
"""
|
||||
Convert a database row into a CheckpointTuple object.
|
||||
@@ -403,11 +456,31 @@ class AsyncPostgresSaver(BasePostgresSaver):
|
||||
including its configuration, metadata, parent checkpoint (if any),
|
||||
and pending writes.
|
||||
"""
|
||||
thread_id = value["thread_id"]
|
||||
checkpoint_ns = value["checkpoint_ns"]
|
||||
checkpoint_id = value["checkpoint_id"]
|
||||
blob_values = value["channel_values"]
|
||||
|
||||
channel_values: dict[str, Any] = {}
|
||||
if blob_values:
|
||||
channel_values = self._load_blobs(blob_values)
|
||||
delta_channels = [
|
||||
ch
|
||||
for ch, v in channel_values.items()
|
||||
if isinstance(v, DeltaChannelSentinel)
|
||||
]
|
||||
if delta_channels:
|
||||
async with self._cursor() as cur:
|
||||
for channel in delta_channels:
|
||||
channel_values[channel] = await self._aget_channel_writes_cur(
|
||||
thread_id, checkpoint_ns, checkpoint_id, channel, cur
|
||||
)
|
||||
|
||||
return CheckpointTuple(
|
||||
{
|
||||
"configurable": {
|
||||
"thread_id": value["thread_id"],
|
||||
"checkpoint_ns": value["checkpoint_ns"],
|
||||
"thread_id": thread_id,
|
||||
"checkpoint_ns": checkpoint_ns,
|
||||
"checkpoint_id": value["checkpoint_id"],
|
||||
}
|
||||
},
|
||||
@@ -415,15 +488,15 @@ class AsyncPostgresSaver(BasePostgresSaver):
|
||||
**value["checkpoint"],
|
||||
"channel_values": {
|
||||
**(value["checkpoint"].get("channel_values") or {}),
|
||||
**self._load_blobs(value["channel_values"]),
|
||||
**channel_values,
|
||||
},
|
||||
},
|
||||
value["metadata"],
|
||||
(
|
||||
{
|
||||
"configurable": {
|
||||
"thread_id": value["thread_id"],
|
||||
"checkpoint_ns": value["checkpoint_ns"],
|
||||
"thread_id": thread_id,
|
||||
"checkpoint_ns": checkpoint_ns,
|
||||
"checkpoint_id": value["parent_checkpoint_id"],
|
||||
}
|
||||
}
|
||||
|
||||
@@ -2,6 +2,7 @@ from __future__ import annotations
|
||||
|
||||
import random
|
||||
import warnings
|
||||
from collections import defaultdict
|
||||
from collections.abc import Sequence
|
||||
from importlib.metadata import version as get_version
|
||||
from typing import Any, cast
|
||||
@@ -11,6 +12,7 @@ from langgraph.checkpoint.base import (
|
||||
WRITES_IDX_MAP,
|
||||
BaseCheckpointSaver,
|
||||
ChannelVersions,
|
||||
DeltaChannelSentinel,
|
||||
get_checkpoint_id,
|
||||
)
|
||||
from langgraph.checkpoint.serde.types import TASKS
|
||||
@@ -185,15 +187,78 @@ class BasePostgresSaver(BaseCheckpointSaver[str]):
|
||||
)
|
||||
|
||||
def _load_blobs(
|
||||
self, blob_values: list[tuple[bytes, bytes, bytes]]
|
||||
self,
|
||||
blob_values: Any,
|
||||
) -> dict[str, Any]:
|
||||
if not blob_values:
|
||||
return {}
|
||||
return {
|
||||
k.decode(): self.serde.loads_typed((t.decode(), v))
|
||||
for k, t, v in blob_values
|
||||
if t.decode() != "empty"
|
||||
result: dict[str, Any] = {}
|
||||
for k, t, v in blob_values:
|
||||
type_tag = t.decode()
|
||||
if type_tag != "empty":
|
||||
result[k.decode()] = self.serde.loads_typed((type_tag, v))
|
||||
return result
|
||||
|
||||
def _resolve_delta_channels(
|
||||
self,
|
||||
config: RunnableConfig,
|
||||
channel_values: dict[str, Any],
|
||||
cur: Any,
|
||||
) -> None:
|
||||
for channel, value in list(channel_values.items()):
|
||||
if isinstance(value, DeltaChannelSentinel):
|
||||
channel_values[channel] = self._get_channel_writes_cur(
|
||||
config["configurable"]["thread_id"],
|
||||
config["configurable"].get("checkpoint_ns", ""),
|
||||
config["configurable"]["checkpoint_id"],
|
||||
channel,
|
||||
cur,
|
||||
)
|
||||
|
||||
def _get_channel_writes_cur(
|
||||
self,
|
||||
thread_id: str,
|
||||
checkpoint_ns: str,
|
||||
checkpoint_id: str,
|
||||
channel: str,
|
||||
cur: Any,
|
||||
) -> list[Any]:
|
||||
"""Fetch writes for `channel` across the checkpoint ancestor chain, oldest→newest.
|
||||
|
||||
Two queries:
|
||||
1. Fetch all (checkpoint_id, parent_checkpoint_id) for the thread — cheap, IDs only.
|
||||
2. Walk the ancestor chain in Python, then fetch writes with a plain ANY() filter.
|
||||
"""
|
||||
cur.execute(
|
||||
"SELECT checkpoint_id, parent_checkpoint_id FROM checkpoints "
|
||||
"WHERE thread_id = %s AND checkpoint_ns = %s",
|
||||
(thread_id, checkpoint_ns),
|
||||
)
|
||||
parent_map: dict[str, str | None] = {
|
||||
row["checkpoint_id"]: row["parent_checkpoint_id"] for row in cur.fetchall()
|
||||
}
|
||||
ancestor_ids: list[str] = []
|
||||
cid: str | None = parent_map.get(checkpoint_id)
|
||||
while cid is not None:
|
||||
ancestor_ids.append(cid)
|
||||
cid = parent_map.get(cid)
|
||||
if not ancestor_ids:
|
||||
return []
|
||||
cur.execute(
|
||||
"SELECT checkpoint_id, type, blob FROM checkpoint_writes "
|
||||
"WHERE thread_id = %s AND checkpoint_ns = %s AND channel = %s "
|
||||
" AND checkpoint_id = ANY(%s) "
|
||||
"ORDER BY task_id, idx",
|
||||
(thread_id, checkpoint_ns, channel, ancestor_ids),
|
||||
)
|
||||
writes_by_cp: dict[str, list[tuple[str, bytes]]] = defaultdict(list)
|
||||
for row in cur.fetchall():
|
||||
writes_by_cp[row["checkpoint_id"]].append((row["type"], row["blob"]))
|
||||
result = []
|
||||
for cid in reversed(ancestor_ids):
|
||||
for type_tag, blob in writes_by_cp.get(cid, []):
|
||||
result.append(self.serde.loads_typed((type_tag, blob)))
|
||||
return result
|
||||
|
||||
def _dump_blobs(
|
||||
self,
|
||||
|
||||
@@ -371,3 +371,47 @@ async def test_get_checkpoint_no_channel_values(
|
||||
|
||||
checkpoint = await saver.aget_tuple(config)
|
||||
assert checkpoint.checkpoint["channel_values"] == {}
|
||||
|
||||
|
||||
@pytest.mark.parametrize("saver_name", ["base", "pool", "pipe"])
|
||||
async def test_delta_channel_chain_reconstruction(saver_name: str) -> None:
|
||||
"""AsyncPostgresSaver reconstructs DeltaChannel chain via point-lookup traversal."""
|
||||
pytest.importorskip(
|
||||
"langgraph.channels.delta", reason="langgraph core not installed"
|
||||
)
|
||||
|
||||
from typing import Annotated
|
||||
|
||||
from langchain_core.messages import AIMessage, HumanMessage
|
||||
from langgraph.channels.delta import DeltaChannel
|
||||
from langgraph.graph import START, StateGraph
|
||||
from langgraph.graph.message import add_messages
|
||||
from typing_extensions import TypedDict
|
||||
|
||||
class State(TypedDict):
|
||||
messages: Annotated[list, DeltaChannel(add_messages)]
|
||||
|
||||
def respond(state: State) -> dict:
|
||||
n = len(state["messages"])
|
||||
return {"messages": [AIMessage(content=f"reply-{n}", id=f"ai-{n}")]}
|
||||
|
||||
builder = StateGraph(State)
|
||||
builder.add_node("respond", respond)
|
||||
builder.add_edge(START, "respond")
|
||||
|
||||
async with _saver(saver_name) as saver:
|
||||
graph = builder.compile(checkpointer=saver)
|
||||
config = {"configurable": {"thread_id": "diff-channel-test-1"}}
|
||||
|
||||
await graph.ainvoke({"messages": [HumanMessage(content="hi", id="h1")]}, config)
|
||||
await graph.ainvoke(
|
||||
{"messages": [HumanMessage(content="there", id="h2")]}, config
|
||||
)
|
||||
|
||||
state = await graph.aget_state(config)
|
||||
msgs = state.values["messages"]
|
||||
assert len(msgs) == 4, f"expected 4, got {len(msgs)}: {msgs}"
|
||||
assert msgs[0].content == "hi"
|
||||
assert msgs[1].content == "reply-1"
|
||||
assert msgs[2].content == "there"
|
||||
assert msgs[3].content == "reply-3"
|
||||
|
||||
Generated
+123
-4
@@ -259,7 +259,7 @@ wheels = [
|
||||
|
||||
[[package]]
|
||||
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{ url = "https://files.pythonhosted.org/packages/9a/9a/c19c42c5b3f5a4aad748a6d5b4f23df3bed7ee5445accc65a0fb3ff03953/xxhash-3.6.0-cp314-cp314t-win32.whl", hash = "sha256:5851f033c3030dd95c086b4a36a2683c2ff4a799b23af60977188b057e467119", size = 31586, upload-time = "2025-10-02T14:36:15.603Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/03/d6/4cc450345be9924fd5dc8c590ceda1db5b43a0a889587b0ae81a95511360/xxhash-3.6.0-cp314-cp314t-win_amd64.whl", hash = "sha256:0444e7967dac37569052d2409b00a8860c2135cff05502df4da80267d384849f", size = 32526, upload-time = "2025-10-02T14:36:16.708Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/0f/c9/7243eb3f9eaabd1a88a5a5acadf06df2d83b100c62684b7425c6a11bcaa8/xxhash-3.6.0-cp314-cp314t-win_arm64.whl", hash = "sha256:bb79b1e63f6fd84ec778a4b1916dfe0a7c3fdb986c06addd5db3a0d413819d95", size = 28898, upload-time = "2025-10-02T14:36:17.843Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/93/1e/8aec23647a34a249f62e2398c42955acd9b4c6ed5cf08cbea94dc46f78d2/xxhash-3.6.0-pp311-pypy311_pp73-macosx_10_15_x86_64.whl", hash = "sha256:0f7b7e2ec26c1666ad5fc9dbfa426a6a3367ceaf79db5dd76264659d509d73b0", size = 30662, upload-time = "2025-10-02T14:37:01.743Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/b8/0b/b14510b38ba91caf43006209db846a696ceea6a847a0c9ba0a5b1adc53d6/xxhash-3.6.0-pp311-pypy311_pp73-manylinux1_i686.manylinux_2_28_i686.manylinux_2_5_i686.whl", hash = "sha256:5dc1e14d14fa0f5789ec29a7062004b5933964bb9b02aae6622b8f530dc40296", size = 41056, upload-time = "2025-10-02T14:37:02.879Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/50/55/15a7b8a56590e66ccd374bbfa3f9ffc45b810886c8c3b614e3f90bd2367c/xxhash-3.6.0-pp311-pypy311_pp73-manylinux2014_aarch64.manylinux_2_17_aarch64.manylinux_2_28_aarch64.whl", hash = "sha256:881b47fc47e051b37d94d13e7455131054b56749b91b508b0907eb07900d1c13", size = 36251, upload-time = "2025-10-02T14:37:04.44Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/62/b2/5ac99a041a29e58e95f907876b04f7067a0242cb85b5f39e726153981503/xxhash-3.6.0-pp311-pypy311_pp73-manylinux2014_x86_64.manylinux_2_17_x86_64.manylinux_2_28_x86_64.whl", hash = "sha256:c6dc31591899f5e5666f04cc2e529e69b4072827085c1ef15294d91a004bc1bd", size = 32481, upload-time = "2025-10-02T14:37:05.869Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/7b/d9/8d95e906764a386a3d3b596f3c68bb63687dfca806373509f51ce8eea81f/xxhash-3.6.0-pp311-pypy311_pp73-win_amd64.whl", hash = "sha256:15e0dac10eb9309508bfc41f7f9deaa7755c69e35af835db9cb10751adebc35d", size = 31565, upload-time = "2025-10-02T14:37:06.966Z" },
|
||||
]
|
||||
|
||||
[[package]]
|
||||
name = "zstandard"
|
||||
version = "0.25.0"
|
||||
|
||||
@@ -1,11 +1,14 @@
|
||||
from __future__ import annotations
|
||||
|
||||
import copy
|
||||
import dataclasses
|
||||
import logging
|
||||
import threading
|
||||
from collections.abc import AsyncIterator, Collection, Iterator, Mapping, Sequence
|
||||
from typing import ( # noqa: UP035
|
||||
Any,
|
||||
Generic,
|
||||
List,
|
||||
Literal,
|
||||
NamedTuple,
|
||||
TypedDict,
|
||||
@@ -28,6 +31,21 @@ from langgraph.checkpoint.serde.types import (
|
||||
|
||||
V = TypeVar("V", int, float, str)
|
||||
PendingWrite = tuple[str, str, Any]
|
||||
|
||||
|
||||
@dataclasses.dataclass
|
||||
class DeltaChannelSentinel:
|
||||
"""Marker stored in checkpoint_blobs for a DeltaChannel field.
|
||||
|
||||
No data is stored here — the actual per-step writes live in checkpoint_writes
|
||||
and are replayed through the reducer at load time.
|
||||
"""
|
||||
|
||||
pass
|
||||
|
||||
|
||||
_DELTA_RECONSTRUCTION: threading.local = threading.local()
|
||||
|
||||
logger = logging.getLogger(__name__)
|
||||
|
||||
|
||||
@@ -457,6 +475,56 @@ class BaseCheckpointSaver(Generic[V]):
|
||||
"""
|
||||
raise NotImplementedError
|
||||
|
||||
def get_channel_writes(self, config: RunnableConfig, channel: str) -> List[Any]: # noqa: UP006
|
||||
"""Collect all writes for `channel` across this checkpoint's ancestry, oldest→newest.
|
||||
|
||||
Default implementation walks the full thread history via `list()`. Savers can
|
||||
override with a more efficient query (InMemorySaver and PostgresSaver do this).
|
||||
"""
|
||||
# Guard against re-entrant calls: when list() triggers reconstruction which
|
||||
# calls list() again, the inner call returns tuples with DeltaChannelSentinel
|
||||
# in channel_values (which get_channel_writes ignores — it only reads
|
||||
# pending_writes). This breaks the recursion safely.
|
||||
if getattr(_DELTA_RECONSTRUCTION, "active", False):
|
||||
return []
|
||||
_DELTA_RECONSTRUCTION.active = True
|
||||
try:
|
||||
result: list[Any] = []
|
||||
target_id = config["configurable"].get("checkpoint_id")
|
||||
for tup in self.list(config):
|
||||
if tup.config["configurable"].get("checkpoint_id") == target_id:
|
||||
continue # skip the checkpoint itself; we want its ancestors' writes
|
||||
if tup.pending_writes:
|
||||
for _, ch, value in tup.pending_writes:
|
||||
if ch == channel:
|
||||
result.append(value)
|
||||
result.reverse() # list() yields newest→oldest; we want oldest→newest
|
||||
return result
|
||||
finally:
|
||||
_DELTA_RECONSTRUCTION.active = False
|
||||
|
||||
async def aget_channel_writes(
|
||||
self, config: RunnableConfig, channel: str
|
||||
) -> List[Any]: # noqa: UP006
|
||||
"""Async version of get_channel_writes."""
|
||||
if getattr(_DELTA_RECONSTRUCTION, "active", False):
|
||||
return []
|
||||
_DELTA_RECONSTRUCTION.active = True
|
||||
try:
|
||||
result: list[Any] = []
|
||||
target_id = config["configurable"].get("checkpoint_id")
|
||||
async for tup in self.alist(config):
|
||||
if tup.config["configurable"].get("checkpoint_id") == target_id:
|
||||
continue
|
||||
if tup.pending_writes:
|
||||
for _, ch, value in tup.pending_writes:
|
||||
if ch == channel:
|
||||
result.append(value)
|
||||
result.reverse()
|
||||
return result
|
||||
finally:
|
||||
_DELTA_RECONSTRUCTION.active = False
|
||||
|
||||
def get_next_version(self, current: V | None, channel: None) -> V:
|
||||
"""Generate the next version ID for a channel.
|
||||
|
||||
|
||||
@@ -9,7 +9,7 @@ from collections import defaultdict
|
||||
from collections.abc import AsyncIterator, Iterator, Sequence
|
||||
from contextlib import AbstractAsyncContextManager, AbstractContextManager, ExitStack
|
||||
from types import TracebackType
|
||||
from typing import Any
|
||||
from typing import Any, cast
|
||||
|
||||
from langchain_core.runnables import RunnableConfig
|
||||
|
||||
@@ -20,6 +20,7 @@ from langgraph.checkpoint.base import (
|
||||
Checkpoint,
|
||||
CheckpointMetadata,
|
||||
CheckpointTuple,
|
||||
DeltaChannelSentinel,
|
||||
SerializerProtocol,
|
||||
get_checkpoint_id,
|
||||
get_checkpoint_metadata,
|
||||
@@ -121,16 +122,60 @@ class InMemorySaver(
|
||||
return self.stack.__exit__(__exc_type, __exc_value, __traceback)
|
||||
|
||||
def _load_blobs(
|
||||
self, thread_id: str, checkpoint_ns: str, versions: ChannelVersions
|
||||
self,
|
||||
thread_id: str,
|
||||
checkpoint_ns: str,
|
||||
versions: ChannelVersions,
|
||||
) -> dict[str, Any]:
|
||||
channel_values: dict[str, Any] = {}
|
||||
for k, v in versions.items():
|
||||
kk = (thread_id, checkpoint_ns, k, v)
|
||||
if kk in self.blobs:
|
||||
vv = self.blobs[kk]
|
||||
if vv[0] != "empty":
|
||||
channel_values[k] = self.serde.loads_typed(vv)
|
||||
return channel_values
|
||||
result: dict[str, Any] = {}
|
||||
for k, ver in versions.items():
|
||||
kk = (thread_id, checkpoint_ns, k, ver)
|
||||
if kk not in self.blobs:
|
||||
continue
|
||||
vv = self.blobs[kk]
|
||||
if vv[0] == "empty":
|
||||
continue
|
||||
result[k] = self.serde.loads_typed(vv)
|
||||
return result
|
||||
|
||||
def _resolve_delta_channels(
|
||||
self,
|
||||
config: RunnableConfig,
|
||||
channel_values: dict[str, Any],
|
||||
) -> None:
|
||||
"""Replace DeltaChannelSentinel entries with reconstructed write lists."""
|
||||
for channel, value in list(channel_values.items()):
|
||||
if isinstance(value, DeltaChannelSentinel):
|
||||
channel_values[channel] = self.get_channel_writes(config, channel)
|
||||
|
||||
def get_channel_writes(self, config: RunnableConfig, channel: str) -> list[Any]:
|
||||
thread_id = config["configurable"]["thread_id"]
|
||||
checkpoint_ns = config["configurable"].get("checkpoint_ns", "")
|
||||
checkpoint_id = config["configurable"].get("checkpoint_id", "")
|
||||
ns_storage = self.storage.get(thread_id, {}).get(checkpoint_ns, {})
|
||||
# Walk the parent chain newest→oldest collecting checkpoint IDs.
|
||||
chain: list[str] = []
|
||||
current: str | None = checkpoint_id
|
||||
while current is not None:
|
||||
entry = ns_storage.get(current)
|
||||
if entry is None:
|
||||
break
|
||||
chain.append(current)
|
||||
_, _, parent = entry
|
||||
current = parent
|
||||
# Collect writes oldest→newest.
|
||||
result: list[Any] = []
|
||||
for cp_id in reversed(chain):
|
||||
step_writes = self.writes.get((thread_id, checkpoint_ns, cp_id), {})
|
||||
for (_task_id, _idx), (_, ch, serialized, _) in sorted(step_writes.items()):
|
||||
if ch == channel:
|
||||
result.append(self.serde.loads_typed(serialized))
|
||||
return result
|
||||
|
||||
async def aget_channel_writes(
|
||||
self, config: RunnableConfig, channel: str
|
||||
) -> list[Any]:
|
||||
return self.get_channel_writes(config, channel)
|
||||
|
||||
def get_tuple(self, config: RunnableConfig) -> CheckpointTuple | None:
|
||||
"""Get a checkpoint tuple from the in-memory storage.
|
||||
@@ -153,13 +198,17 @@ class InMemorySaver(
|
||||
checkpoint, metadata, parent_checkpoint_id = saved
|
||||
writes = self.writes[(thread_id, checkpoint_ns, checkpoint_id)].values()
|
||||
checkpoint_: Checkpoint = self.serde.loads_typed(checkpoint)
|
||||
channel_values = self._load_blobs(
|
||||
thread_id,
|
||||
checkpoint_ns,
|
||||
checkpoint_["channel_versions"],
|
||||
)
|
||||
self._resolve_delta_channels(config, channel_values)
|
||||
return CheckpointTuple(
|
||||
config=config,
|
||||
checkpoint={
|
||||
**checkpoint_,
|
||||
"channel_values": self._load_blobs(
|
||||
thread_id, checkpoint_ns, checkpoint_["channel_versions"]
|
||||
),
|
||||
"channel_values": channel_values,
|
||||
},
|
||||
metadata=self.serde.loads_typed(metadata),
|
||||
pending_writes=[
|
||||
@@ -183,19 +232,27 @@ class InMemorySaver(
|
||||
checkpoint, metadata, parent_checkpoint_id = checkpoints[checkpoint_id]
|
||||
writes = self.writes[(thread_id, checkpoint_ns, checkpoint_id)].values()
|
||||
checkpoint_ = self.serde.loads_typed(checkpoint)
|
||||
return CheckpointTuple(
|
||||
config={
|
||||
resolved_config = cast(
|
||||
RunnableConfig,
|
||||
{
|
||||
"configurable": {
|
||||
"thread_id": thread_id,
|
||||
"checkpoint_ns": checkpoint_ns,
|
||||
"checkpoint_id": checkpoint_id,
|
||||
}
|
||||
},
|
||||
)
|
||||
channel_values = self._load_blobs(
|
||||
thread_id,
|
||||
checkpoint_ns,
|
||||
checkpoint_["channel_versions"],
|
||||
)
|
||||
self._resolve_delta_channels(resolved_config, channel_values)
|
||||
return CheckpointTuple(
|
||||
config=resolved_config,
|
||||
checkpoint={
|
||||
**checkpoint_,
|
||||
"channel_values": self._load_blobs(
|
||||
thread_id, checkpoint_ns, checkpoint_["channel_versions"]
|
||||
),
|
||||
"channel_values": channel_values,
|
||||
},
|
||||
metadata=self.serde.loads_typed(metadata),
|
||||
pending_writes=[
|
||||
@@ -290,21 +347,28 @@ class InMemorySaver(
|
||||
|
||||
checkpoint_: Checkpoint = self.serde.loads_typed(checkpoint)
|
||||
|
||||
yield CheckpointTuple(
|
||||
config={
|
||||
list_config = cast(
|
||||
RunnableConfig,
|
||||
{
|
||||
"configurable": {
|
||||
"thread_id": thread_id,
|
||||
"checkpoint_ns": checkpoint_ns,
|
||||
"checkpoint_id": checkpoint_id,
|
||||
}
|
||||
},
|
||||
)
|
||||
channel_values = self._load_blobs(
|
||||
thread_id,
|
||||
checkpoint_ns,
|
||||
checkpoint_["channel_versions"],
|
||||
)
|
||||
self._resolve_delta_channels(list_config, channel_values)
|
||||
|
||||
yield CheckpointTuple(
|
||||
config=list_config,
|
||||
checkpoint={
|
||||
**checkpoint_,
|
||||
"channel_values": self._load_blobs(
|
||||
thread_id,
|
||||
checkpoint_ns,
|
||||
checkpoint_["channel_versions"],
|
||||
),
|
||||
"channel_values": channel_values,
|
||||
},
|
||||
metadata=metadata,
|
||||
parent_config=(
|
||||
|
||||
@@ -46,6 +46,31 @@ LC_REVIVER = Reviver()
|
||||
EMPTY_BYTES = b""
|
||||
logger = logging.getLogger(__name__)
|
||||
|
||||
# Dedup log warnings across process lifetime; cap bounds state if types are
|
||||
# dynamically generated (also acts as a circuit breaker on warning volume).
|
||||
# Dedup is best-effort: racing threads may each emit once for the same key,
|
||||
# and warnings are silently dropped once _MAX_WARNED_TYPES is reached.
|
||||
_MAX_WARNED_TYPES = 1000
|
||||
_warned_unregistered_types: set[tuple[str, str]] = set()
|
||||
_warned_blocked_types: set[tuple[str, str]] = set()
|
||||
|
||||
|
||||
def _warn_once(
|
||||
seen: set[tuple[str, str]], key: tuple[str, str], msg: str, *args: object
|
||||
) -> None:
|
||||
if key in seen or len(seen) >= _MAX_WARNED_TYPES:
|
||||
return
|
||||
seen.add(key)
|
||||
logger.warning(msg, *args)
|
||||
|
||||
|
||||
def _get_delta_sentinel_cls() -> type:
|
||||
from langgraph.checkpoint.base import (
|
||||
DeltaChannelSentinel,
|
||||
) # lazy import avoids circular dep
|
||||
|
||||
return DeltaChannelSentinel
|
||||
|
||||
|
||||
class JsonPlusSerializer(SerializerProtocol):
|
||||
"""Serializer that uses ormsgpack, with optional fallbacks.
|
||||
@@ -239,6 +264,8 @@ class JsonPlusSerializer(SerializerProtocol):
|
||||
return "bytes", obj
|
||||
elif isinstance(obj, bytearray):
|
||||
return "bytearray", obj
|
||||
elif isinstance(obj, _get_delta_sentinel_cls()):
|
||||
return "delta", b""
|
||||
else:
|
||||
try:
|
||||
return "msgpack", _msgpack_enc(obj)
|
||||
@@ -261,6 +288,10 @@ class JsonPlusSerializer(SerializerProtocol):
|
||||
return ormsgpack.unpackb(
|
||||
data_, ext_hook=self._unpack_ext_hook, option=ormsgpack.OPT_NON_STR_KEYS
|
||||
)
|
||||
elif type_ == "delta":
|
||||
from langgraph.checkpoint.base import DeltaChannelSentinel
|
||||
|
||||
return DeltaChannelSentinel()
|
||||
elif self.pickle_fallback and type_ == "pickle":
|
||||
return pickle.loads(data_)
|
||||
else:
|
||||
@@ -534,7 +565,9 @@ def _create_msgpack_ext_hook(
|
||||
"name": name,
|
||||
}
|
||||
)
|
||||
logger.warning(
|
||||
_warn_once(
|
||||
_warned_unregistered_types,
|
||||
key,
|
||||
"Deserializing unregistered type %s.%s from checkpoint. "
|
||||
"This will be blocked in a future version. "
|
||||
"Set LANGGRAPH_STRICT_MSGPACK=true to block now, or add "
|
||||
@@ -556,7 +589,9 @@ def _create_msgpack_ext_hook(
|
||||
"name": name,
|
||||
}
|
||||
)
|
||||
logger.warning(
|
||||
_warn_once(
|
||||
_warned_blocked_types,
|
||||
key,
|
||||
"Blocked deserialization of %s.%s - not in allowed_msgpack_modules. "
|
||||
"Add to allowed_msgpack_modules to allow: [(%r, %r)]",
|
||||
module,
|
||||
|
||||
@@ -4,7 +4,7 @@ build-backend = "hatchling.build"
|
||||
|
||||
[project]
|
||||
name = "langgraph-checkpoint"
|
||||
version = "4.0.1"
|
||||
version = "4.0.2"
|
||||
description = "Library with base interfaces for LangGraph checkpoint savers."
|
||||
authors = []
|
||||
requires-python = ">=3.10"
|
||||
|
||||
@@ -29,6 +29,8 @@ from langgraph.checkpoint.serde.jsonplus import (
|
||||
EXT_METHOD_SINGLE_ARG,
|
||||
JsonPlusSerializer,
|
||||
_msgpack_enc,
|
||||
_warned_blocked_types,
|
||||
_warned_unregistered_types,
|
||||
)
|
||||
|
||||
|
||||
@@ -102,6 +104,13 @@ def test_msgpack_method_pathlib_blocked_encrypted_strict(
|
||||
class TestEncryptedSerializerMsgpackAllowlist:
|
||||
"""Test msgpack allowlist behavior through EncryptedSerializer."""
|
||||
|
||||
@pytest.fixture(autouse=True)
|
||||
def _reset_warned_types(self) -> None:
|
||||
# Warning dedup state is process-global; reset per-test so each case
|
||||
# sees a fresh slate and assertions about warning emission are stable.
|
||||
_warned_unregistered_types.clear()
|
||||
_warned_blocked_types.clear()
|
||||
|
||||
def test_safe_types_no_warning(self, caplog: pytest.LogCaptureFixture) -> None:
|
||||
"""Test safe types deserialize without warnings through encryption."""
|
||||
serde = _make_encrypted_serde()
|
||||
|
||||
@@ -35,6 +35,8 @@ from langgraph.checkpoint.serde.jsonplus import (
|
||||
JsonPlusSerializer,
|
||||
_msgpack_enc,
|
||||
_msgpack_ext_hook_to_json,
|
||||
_warned_blocked_types,
|
||||
_warned_unregistered_types,
|
||||
)
|
||||
from langgraph.store.base import Item
|
||||
|
||||
@@ -580,6 +582,14 @@ def test_msgpack_safe_types_no_warning(caplog: pytest.LogCaptureFixture) -> None
|
||||
assert result is not None
|
||||
|
||||
|
||||
@pytest.fixture(autouse=True)
|
||||
def _reset_warned_types() -> None:
|
||||
# Warning dedup state is process-global; reset per-test so each case sees
|
||||
# a fresh slate and assertions about warning emission are stable.
|
||||
_warned_unregistered_types.clear()
|
||||
_warned_blocked_types.clear()
|
||||
|
||||
|
||||
def test_msgpack_pydantic_warns_by_default(caplog: pytest.LogCaptureFixture) -> None:
|
||||
"""Pydantic models not in allowlist should log warning but still deserialize."""
|
||||
current = _lg_msgpack.STRICT_MSGPACK_ENABLED
|
||||
@@ -595,6 +605,12 @@ def test_msgpack_pydantic_warns_by_default(caplog: pytest.LogCaptureFixture) ->
|
||||
assert "unregistered type" in caplog.text.lower()
|
||||
assert "allowed_msgpack_modules" in caplog.text
|
||||
assert result == obj
|
||||
|
||||
# Second deserialization of the same type should NOT produce another warning
|
||||
caplog.clear()
|
||||
result2 = serde.loads_typed(dumped)
|
||||
assert "unregistered type" not in caplog.text.lower()
|
||||
assert result2 == obj
|
||||
_lg_msgpack.STRICT_MSGPACK_ENABLED = current
|
||||
|
||||
|
||||
@@ -639,7 +655,6 @@ def test_msgpack_allowlist_silences_warning(caplog: pytest.LogCaptureFixture) ->
|
||||
|
||||
def test_msgpack_none_blocks_unregistered(caplog: pytest.LogCaptureFixture) -> None:
|
||||
"""allowed_msgpack_modules=None should block unregistered types."""
|
||||
|
||||
serde = JsonPlusSerializer(allowed_msgpack_modules=None)
|
||||
|
||||
obj = MyPydantic(foo="test", bar=42, inner=InnerPydantic(hello="world"))
|
||||
@@ -657,7 +672,6 @@ def test_msgpack_allowlist_blocks_non_listed(
|
||||
caplog: pytest.LogCaptureFixture,
|
||||
) -> None:
|
||||
"""Allowlists should block unregistered types even if msgpack is enabled."""
|
||||
|
||||
serde = JsonPlusSerializer(
|
||||
allowed_msgpack_modules=[("tests.test_jsonplus", "MyPydantic")]
|
||||
)
|
||||
@@ -983,3 +997,15 @@ def test_msgpack_nested_pydantic_serializes_as_dict(
|
||||
# No blocking should occur - inner is serialized as dict, not ext
|
||||
assert "blocked" not in caplog.text.lower()
|
||||
assert result == obj
|
||||
|
||||
|
||||
def test_delta_channel_sentinel_serde_round_trip() -> None:
|
||||
from langgraph.checkpoint.base import DeltaChannelSentinel
|
||||
from langgraph.checkpoint.serde.jsonplus import JsonPlusSerializer
|
||||
|
||||
serde = JsonPlusSerializer()
|
||||
original = DeltaChannelSentinel()
|
||||
type_tag, blob = serde.dumps_typed(original)
|
||||
assert type_tag == "delta"
|
||||
loaded = serde.loads_typed((type_tag, blob))
|
||||
assert isinstance(loaded, DeltaChannelSentinel)
|
||||
|
||||
@@ -12,13 +12,25 @@ from langgraph.checkpoint.base import (
|
||||
empty_checkpoint,
|
||||
)
|
||||
from langgraph.checkpoint.memory import InMemorySaver
|
||||
from langgraph.checkpoint.serde.jsonplus import JsonPlusSerializer
|
||||
from langgraph.checkpoint.serde.jsonplus import (
|
||||
JsonPlusSerializer,
|
||||
_warned_blocked_types,
|
||||
_warned_unregistered_types,
|
||||
)
|
||||
|
||||
|
||||
class MemoryPydantic(BaseModel):
|
||||
foo: str
|
||||
|
||||
|
||||
@pytest.fixture(autouse=True)
|
||||
def _reset_warned_types() -> None:
|
||||
# Warning dedup state is process-global; reset per-test so each case sees
|
||||
# a fresh slate and assertions about warning emission are stable.
|
||||
_warned_unregistered_types.clear()
|
||||
_warned_blocked_types.clear()
|
||||
|
||||
|
||||
class TestMemorySaver:
|
||||
@pytest.fixture(autouse=True)
|
||||
def setup(self) -> None:
|
||||
@@ -308,3 +320,74 @@ def test_memory_saver_with_allowlist_proxy_isolated() -> None:
|
||||
assert direct is not None
|
||||
expected = obj.model_dump() if hasattr(obj, "model_dump") else obj.dict()
|
||||
assert direct.checkpoint["channel_values"]["foo"] == expected
|
||||
|
||||
|
||||
class TestInMemorySaverDeltaChannel:
|
||||
def test_load_blobs_returns_sentinel_for_delta_channel(self) -> None:
|
||||
"""_load_blobs returns DeltaChannelSentinel for delta channels (reconstruction deferred)."""
|
||||
from langgraph.checkpoint.base import (
|
||||
DeltaChannelSentinel,
|
||||
empty_checkpoint,
|
||||
)
|
||||
|
||||
saver = InMemorySaver()
|
||||
serde = JsonPlusSerializer()
|
||||
|
||||
thread_id, ns, channel = "t1", "", "messages"
|
||||
v1 = "00000000000000000000000000000001.0000000000000000"
|
||||
|
||||
sentinel = DeltaChannelSentinel()
|
||||
saver.blobs[(thread_id, ns, channel, v1)] = serde.dumps_typed(sentinel)
|
||||
|
||||
cp1 = empty_checkpoint()
|
||||
cp1["id"] = "cp1"
|
||||
cp1["channel_versions"][channel] = v1
|
||||
saver.storage[thread_id][ns] = {
|
||||
"cp1": (serde.dumps_typed(cp1), serde.dumps_typed({}), None),
|
||||
}
|
||||
|
||||
result = saver._load_blobs(thread_id, ns, {channel: v1})
|
||||
assert channel in result
|
||||
assert isinstance(result[channel], DeltaChannelSentinel)
|
||||
|
||||
def test_get_channel_writes_collects_writes(self) -> None:
|
||||
"""get_channel_writes collects per-step writes oldest→newest."""
|
||||
from langgraph.checkpoint.base import empty_checkpoint
|
||||
|
||||
saver = InMemorySaver()
|
||||
serde = JsonPlusSerializer()
|
||||
|
||||
thread_id, ns, channel = "t1", "", "messages"
|
||||
|
||||
cp1 = empty_checkpoint()
|
||||
cp1["id"] = "cp1"
|
||||
cp2 = empty_checkpoint()
|
||||
cp2["id"] = "cp2"
|
||||
saver.storage[thread_id][ns] = {
|
||||
"cp1": (serde.dumps_typed(cp1), serde.dumps_typed({}), None),
|
||||
"cp2": (serde.dumps_typed(cp2), serde.dumps_typed({}), "cp1"),
|
||||
}
|
||||
# cp1 has a write for channel
|
||||
saver.writes[(thread_id, ns, "cp1")][("task1", 0)] = (
|
||||
"task1",
|
||||
channel,
|
||||
serde.dumps_typed({"content": "hi"}),
|
||||
"",
|
||||
)
|
||||
# cp2 has a write for channel
|
||||
saver.writes[(thread_id, ns, "cp2")][("task2", 0)] = (
|
||||
"task2",
|
||||
channel,
|
||||
serde.dumps_typed({"content": "bye"}),
|
||||
"",
|
||||
)
|
||||
|
||||
config: RunnableConfig = {
|
||||
"configurable": {
|
||||
"thread_id": thread_id,
|
||||
"checkpoint_ns": ns,
|
||||
"checkpoint_id": "cp2",
|
||||
}
|
||||
}
|
||||
result = saver.get_channel_writes(config, channel)
|
||||
assert result == [{"content": "hi"}, {"content": "bye"}]
|
||||
|
||||
Generated
+123
-4
@@ -286,7 +286,7 @@ wheels = [
|
||||
|
||||
[[package]]
|
||||
name = "langgraph-checkpoint"
|
||||
version = "4.0.1"
|
||||
version = "4.0.2"
|
||||
source = { editable = "." }
|
||||
dependencies = [
|
||||
{ name = "langchain-core" },
|
||||
@@ -369,7 +369,7 @@ test = [
|
||||
|
||||
[[package]]
|
||||
name = "langsmith"
|
||||
version = "0.6.4"
|
||||
version = "0.7.31"
|
||||
source = { registry = "https://pypi.org/simple" }
|
||||
dependencies = [
|
||||
{ name = "httpx" },
|
||||
@@ -379,11 +379,12 @@ dependencies = [
|
||||
{ name = "requests" },
|
||||
{ name = "requests-toolbelt" },
|
||||
{ name = "uuid-utils" },
|
||||
{ name = "xxhash" },
|
||||
{ name = "zstandard" },
|
||||
]
|
||||
sdist = { url = "https://files.pythonhosted.org/packages/e7/85/9c7933052a997da1b85bc5c774f3865e9b1da1c8d71541ea133178b13229/langsmith-0.6.4.tar.gz", hash = "sha256:36f7223a01c218079fbb17da5e536ebbaf5c1468c028abe070aa3ae59bc99ec8", size = 919964, upload-time = "2026-01-15T20:02:28.873Z" }
|
||||
sdist = { url = "https://files.pythonhosted.org/packages/e6/11/696019490992db5c87774dc20515529ef42a01e1d770fb754ed6d9b12fb0/langsmith-0.7.31.tar.gz", hash = "sha256:331ee4f7c26bb5be4022b9859b7d7b122cbf8c9d01d9f530114c1914b0349ffb", size = 1178480, upload-time = "2026-04-14T17:55:41.242Z" }
|
||||
wheels = [
|
||||
{ url = "https://files.pythonhosted.org/packages/66/0f/09a6637a7ba777eb307b7c80852d9ee26438e2bdafbad6fcc849ff9d9192/langsmith-0.6.4-py3-none-any.whl", hash = "sha256:ac4835860160be371042c7adbba3cb267bcf8d96a5ea976c33a8a4acad6c5486", size = 283503, upload-time = "2026-01-15T20:02:26.662Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/1d/a1/a013cf458c301cda86a213dd153ce0a01c93f1ab5833f951e6a44c9763ce/langsmith-0.7.31-py3-none-any.whl", hash = "sha256:0291d49203f6e80dda011af1afda61eb0595a4d697adb684590a8805e1d61fb6", size = 373276, upload-time = "2026-04-14T17:55:39.677Z" },
|
||||
]
|
||||
|
||||
[[package]]
|
||||
@@ -1515,6 +1516,124 @@ wheels = [
|
||||
{ url = "https://files.pythonhosted.org/packages/33/e8/e40370e6d74ddba47f002a32919d91310d6074130fe4e17dabcafc15cbf1/watchdog-6.0.0-py3-none-win_ia64.whl", hash = "sha256:a1914259fa9e1454315171103c6a30961236f508b9b623eae470268bbcc6a22f", size = 79067, upload-time = "2024-11-01T14:07:11.845Z" },
|
||||
]
|
||||
|
||||
[[package]]
|
||||
name = "xxhash"
|
||||
version = "3.6.0"
|
||||
source = { registry = "https://pypi.org/simple" }
|
||||
sdist = { url = "https://files.pythonhosted.org/packages/02/84/30869e01909fb37a6cc7e18688ee8bf1e42d57e7e0777636bd47524c43c7/xxhash-3.6.0.tar.gz", hash = "sha256:f0162a78b13a0d7617b2845b90c763339d1f1d82bb04a4b07f4ab535cc5e05d6", size = 85160, upload-time = "2025-10-02T14:37:08.097Z" }
|
||||
wheels = [
|
||||
{ url = "https://files.pythonhosted.org/packages/34/ee/f9f1d656ad168681bb0f6b092372c1e533c4416b8069b1896a175c46e484/xxhash-3.6.0-cp310-cp310-macosx_10_9_x86_64.whl", hash = "sha256:87ff03d7e35c61435976554477a7f4cd1704c3596a89a8300d5ce7fc83874a71", size = 32845, upload-time = "2025-10-02T14:33:51.573Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/a3/b1/93508d9460b292c74a09b83d16750c52a0ead89c51eea9951cb97a60d959/xxhash-3.6.0-cp310-cp310-macosx_11_0_arm64.whl", hash = "sha256:f572dfd3d0e2eb1a57511831cf6341242f5a9f8298a45862d085f5b93394a27d", size = 30807, upload-time = "2025-10-02T14:33:52.964Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/07/55/28c93a3662f2d200c70704efe74aab9640e824f8ce330d8d3943bf7c9b3c/xxhash-3.6.0-cp310-cp310-manylinux1_i686.manylinux_2_28_i686.manylinux_2_5_i686.whl", hash = "sha256:89952ea539566b9fed2bbd94e589672794b4286f342254fad28b149f9615fef8", size = 193786, upload-time = "2025-10-02T14:33:54.272Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/c1/96/fec0be9bb4b8f5d9c57d76380a366f31a1781fb802f76fc7cda6c84893c7/xxhash-3.6.0-cp310-cp310-manylinux2014_aarch64.manylinux_2_17_aarch64.manylinux_2_28_aarch64.whl", hash = "sha256:48e6f2ffb07a50b52465a1032c3cf1f4a5683f944acaca8a134a2f23674c2058", size = 212830, upload-time = "2025-10-02T14:33:55.706Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/c4/a0/c706845ba77b9611f81fd2e93fad9859346b026e8445e76f8c6fd057cc6d/xxhash-3.6.0-cp310-cp310-manylinux2014_ppc64le.manylinux_2_17_ppc64le.manylinux_2_28_ppc64le.whl", hash = "sha256:b5b848ad6c16d308c3ac7ad4ba6bede80ed5df2ba8ed382f8932df63158dd4b2", size = 211606, upload-time = "2025-10-02T14:33:57.133Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/67/1e/164126a2999e5045f04a69257eea946c0dc3e86541b400d4385d646b53d7/xxhash-3.6.0-cp310-cp310-manylinux2014_s390x.manylinux_2_17_s390x.manylinux_2_28_s390x.whl", hash = "sha256:a034590a727b44dd8ac5914236a7b8504144447a9682586c3327e935f33ec8cc", size = 444872, upload-time = "2025-10-02T14:33:58.446Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/2d/4b/55ab404c56cd70a2cf5ecfe484838865d0fea5627365c6c8ca156bd09c8f/xxhash-3.6.0-cp310-cp310-manylinux2014_x86_64.manylinux_2_17_x86_64.manylinux_2_28_x86_64.whl", hash = "sha256:8a8f1972e75ebdd161d7896743122834fe87378160c20e97f8b09166213bf8cc", size = 193217, upload-time = "2025-10-02T14:33:59.724Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/45/e6/52abf06bac316db33aa269091ae7311bd53cfc6f4b120ae77bac1b348091/xxhash-3.6.0-cp310-cp310-musllinux_1_2_aarch64.whl", hash = "sha256:ee34327b187f002a596d7b167ebc59a1b729e963ce645964bbc050d2f1b73d07", size = 210139, upload-time = "2025-10-02T14:34:02.041Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/34/37/db94d490b8691236d356bc249c08819cbcef9273a1a30acf1254ff9ce157/xxhash-3.6.0-cp310-cp310-musllinux_1_2_i686.whl", hash = "sha256:339f518c3c7a850dd033ab416ea25a692759dc7478a71131fe8869010d2b75e4", size = 197669, upload-time = "2025-10-02T14:34:03.664Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/b7/36/c4f219ef4a17a4f7a64ed3569bc2b5a9c8311abdb22249ac96093625b1a4/xxhash-3.6.0-cp310-cp310-musllinux_1_2_ppc64le.whl", hash = "sha256:bf48889c9630542d4709192578aebbd836177c9f7a4a2778a7d6340107c65f06", size = 210018, upload-time = "2025-10-02T14:34:05.325Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/fd/06/bfac889a374fc2fc439a69223d1750eed2e18a7db8514737ab630534fa08/xxhash-3.6.0-cp310-cp310-musllinux_1_2_s390x.whl", hash = "sha256:5576b002a56207f640636056b4160a378fe36a58db73ae5c27a7ec8db35f71d4", size = 413058, upload-time = "2025-10-02T14:34:06.925Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/c9/d1/555d8447e0dd32ad0930a249a522bb2e289f0d08b6b16204cfa42c1f5a0c/xxhash-3.6.0-cp310-cp310-musllinux_1_2_x86_64.whl", hash = "sha256:af1f3278bd02814d6dedc5dec397993b549d6f16c19379721e5a1d31e132c49b", size = 190628, upload-time = "2025-10-02T14:34:08.669Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/d1/15/8751330b5186cedc4ed4b597989882ea05e0408b53fa47bcb46a6125bfc6/xxhash-3.6.0-cp310-cp310-win32.whl", hash = "sha256:aed058764db109dc9052720da65fafe84873b05eb8b07e5e653597951af57c3b", size = 30577, upload-time = "2025-10-02T14:34:10.234Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/bb/cc/53f87e8b5871a6eb2ff7e89c48c66093bda2be52315a8161ddc54ea550c4/xxhash-3.6.0-cp310-cp310-win_amd64.whl", hash = "sha256:e82da5670f2d0d98950317f82a0e4a0197150ff19a6df2ba40399c2a3b9ae5fb", size = 31487, upload-time = "2025-10-02T14:34:11.618Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/9f/00/60f9ea3bb697667a14314d7269956f58bf56bb73864f8f8d52a3c2535e9a/xxhash-3.6.0-cp310-cp310-win_arm64.whl", hash = "sha256:4a082ffff8c6ac07707fb6b671caf7c6e020c75226c561830b73d862060f281d", size = 27863, upload-time = "2025-10-02T14:34:12.619Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/17/d4/cc2f0400e9154df4b9964249da78ebd72f318e35ccc425e9f403c392f22a/xxhash-3.6.0-cp311-cp311-macosx_10_9_x86_64.whl", hash = "sha256:b47bbd8cf2d72797f3c2772eaaac0ded3d3af26481a26d7d7d41dc2d3c46b04a", size = 32844, upload-time = "2025-10-02T14:34:14.037Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/5e/ec/1cc11cd13e26ea8bc3cb4af4eaadd8d46d5014aebb67be3f71fb0b68802a/xxhash-3.6.0-cp311-cp311-macosx_11_0_arm64.whl", hash = "sha256:2b6821e94346f96db75abaa6e255706fb06ebd530899ed76d32cd99f20dc52fa", size = 30809, upload-time = "2025-10-02T14:34:15.484Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/04/5f/19fe357ea348d98ca22f456f75a30ac0916b51c753e1f8b2e0e6fb884cce/xxhash-3.6.0-cp311-cp311-manylinux1_i686.manylinux_2_28_i686.manylinux_2_5_i686.whl", hash = "sha256:d0a9751f71a1a65ce3584e9cae4467651c7e70c9d31017fa57574583a4540248", size = 194665, upload-time = "2025-10-02T14:34:16.541Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/90/3b/d1f1a8f5442a5fd8beedae110c5af7604dc37349a8e16519c13c19a9a2de/xxhash-3.6.0-cp311-cp311-manylinux2014_aarch64.manylinux_2_17_aarch64.manylinux_2_28_aarch64.whl", hash = "sha256:8b29ee68625ab37b04c0b40c3fafdf24d2f75ccd778333cfb698f65f6c463f62", size = 213550, upload-time = "2025-10-02T14:34:17.878Z" },
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||||
{ url = "https://files.pythonhosted.org/packages/c4/ef/3a9b05eb527457d5db13a135a2ae1a26c80fecd624d20f3e8dcc4cb170f3/xxhash-3.6.0-cp311-cp311-manylinux2014_ppc64le.manylinux_2_17_ppc64le.manylinux_2_28_ppc64le.whl", hash = "sha256:6812c25fe0d6c36a46ccb002f40f27ac903bf18af9f6dd8f9669cb4d176ab18f", size = 212384, upload-time = "2025-10-02T14:34:19.182Z" },
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[[package]]
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|
||||
requires-python = ">=3.10"
|
||||
dependencies = [
|
||||
"langchain-openai==1.0.0a2",
|
||||
"langchain-openai==1.1.14",
|
||||
"langgraph==1.1.2",
|
||||
"langchain_community>=0.3.0",
|
||||
]
|
||||
@@ -3676,9 +3676,9 @@ keyv@^4.5.4:
|
||||
json-buffer "3.0.1"
|
||||
|
||||
"langsmith@>=0.5.0 <1.0.0":
|
||||
version "0.5.18"
|
||||
resolved "https://registry.yarnpkg.com/langsmith/-/langsmith-0.5.18.tgz#c691ad23614f0b46eaf07d982e0ac988e1f43880"
|
||||
integrity sha512-3zuZUWffTHQ+73EAwnodADtf534VNEZUpXr9jC12qyG8/IQuJET7PRsCpTb9wX2lmBspakwLUpqpj3tNm/0bVA==
|
||||
version "0.5.20"
|
||||
resolved "https://registry.yarnpkg.com/langsmith/-/langsmith-0.5.20.tgz#4021847d2ccd5a86c5eb96060f9bb5f19f80eca5"
|
||||
integrity sha512-ULhLM8RswvQDXufLtNtvclHrWCBx8Cb5UPI6lAZC+8Dq59iHsVPz/3Ac9khWNm1VIvChRsuykixD/WrmzuuA3Q==
|
||||
dependencies:
|
||||
p-queue "6.6.2"
|
||||
uuid "10.0.0"
|
||||
|
||||
@@ -1328,9 +1328,9 @@ keyv@^4.5.4:
|
||||
json-buffer "3.0.1"
|
||||
|
||||
"langsmith@>=0.5.0 <1.0.0":
|
||||
version "0.5.18"
|
||||
resolved "https://registry.yarnpkg.com/langsmith/-/langsmith-0.5.18.tgz#c691ad23614f0b46eaf07d982e0ac988e1f43880"
|
||||
integrity sha512-3zuZUWffTHQ+73EAwnodADtf534VNEZUpXr9jC12qyG8/IQuJET7PRsCpTb9wX2lmBspakwLUpqpj3tNm/0bVA==
|
||||
version "0.5.20"
|
||||
resolved "https://registry.yarnpkg.com/langsmith/-/langsmith-0.5.20.tgz#4021847d2ccd5a86c5eb96060f9bb5f19f80eca5"
|
||||
integrity sha512-ULhLM8RswvQDXufLtNtvclHrWCBx8Cb5UPI6lAZC+8Dq59iHsVPz/3Ac9khWNm1VIvChRsuykixD/WrmzuuA3Q==
|
||||
dependencies:
|
||||
p-queue "6.6.2"
|
||||
uuid "10.0.0"
|
||||
|
||||
@@ -1 +1 @@
|
||||
__version__ = "0.4.21"
|
||||
__version__ = "0.4.23"
|
||||
|
||||
@@ -26,8 +26,15 @@ class LogData(TypedDict):
|
||||
params: dict[str, Any]
|
||||
|
||||
|
||||
def get_anonymized_params(kwargs: dict[str, Any]) -> dict[str, bool]:
|
||||
params = {}
|
||||
def get_anonymized_params(
|
||||
kwargs: dict[str, Any], *, cli_command: str
|
||||
) -> dict[str, bool | str]:
|
||||
params: dict[str, bool | str] = {}
|
||||
|
||||
if cli_command == "deploy" and (
|
||||
analytics_source := os.getenv("LANGGRAPH_CLI_ANALYTICS_SOURCE")
|
||||
):
|
||||
params["source"] = analytics_source
|
||||
|
||||
# anonymize params with values
|
||||
if config := kwargs.get("config"):
|
||||
@@ -88,7 +95,7 @@ def log_command(func):
|
||||
"python_version": platform.python_version(),
|
||||
"cli_version": __version__,
|
||||
"cli_command": func.__name__,
|
||||
"params": get_anonymized_params(kwargs),
|
||||
"params": get_anonymized_params(kwargs, cli_command=func.__name__),
|
||||
}
|
||||
|
||||
background_thread = threading.Thread(target=log_data, args=(data,))
|
||||
|
||||
@@ -23,7 +23,7 @@ dependencies = [
|
||||
path = "langgraph_cli/__init__.py"
|
||||
[project.optional-dependencies]
|
||||
inmem = [
|
||||
"langgraph-api>=0.5.35,<0.8.0 ; python_version >= '3.11'",
|
||||
"langgraph-api>=0.5.35,<0.9.0 ; python_version >= '3.11'",
|
||||
"langgraph-runtime-inmem>=0.7 ; python_version >= '3.11'",
|
||||
]
|
||||
|
||||
|
||||
Generated
+3
-3
@@ -290,7 +290,7 @@ wheels = [
|
||||
|
||||
[[package]]
|
||||
name = "langsmith"
|
||||
version = "0.7.26"
|
||||
version = "0.7.31"
|
||||
source = { registry = "https://pypi.org/simple" }
|
||||
dependencies = [
|
||||
{ name = "httpx" },
|
||||
@@ -303,9 +303,9 @@ dependencies = [
|
||||
{ name = "xxhash" },
|
||||
{ name = "zstandard" },
|
||||
]
|
||||
sdist = { url = "https://files.pythonhosted.org/packages/76/86/6de4f6f0451a9658f26f633e0bb090552a4dafd7df3f1ae7f0d40558e67e/langsmith-0.7.26.tar.gz", hash = "sha256:a3e06f3d689ce7195717aa6b8f91082319819ec7ea9b9a62cdcd3d9dc25bfc7b", size = 1146118, upload-time = "2026-04-06T15:01:03.336Z" }
|
||||
sdist = { url = "https://files.pythonhosted.org/packages/e6/11/696019490992db5c87774dc20515529ef42a01e1d770fb754ed6d9b12fb0/langsmith-0.7.31.tar.gz", hash = "sha256:331ee4f7c26bb5be4022b9859b7d7b122cbf8c9d01d9f530114c1914b0349ffb", size = 1178480, upload-time = "2026-04-14T17:55:41.242Z" }
|
||||
wheels = [
|
||||
{ url = "https://files.pythonhosted.org/packages/81/8e/7eb7d65ce62e98e74b9f18f193ea7ac3996d4fbd71fffcc67d0f7ba3103e/langsmith-0.7.26-py3-none-any.whl", hash = "sha256:fe5c877972cea450c1c48251c8fae0f18543c8d19dfdb9ff9a9c4263763dde4e", size = 360160, upload-time = "2026-04-06T15:01:01.516Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/1d/a1/a013cf458c301cda86a213dd153ce0a01c93f1ab5833f951e6a44c9763ce/langsmith-0.7.31-py3-none-any.whl", hash = "sha256:0291d49203f6e80dda011af1afda61eb0595a4d697adb684590a8805e1d61fb6", size = 373276, upload-time = "2026-04-14T17:55:39.677Z" },
|
||||
]
|
||||
|
||||
[[package]]
|
||||
|
||||
Generated
+3
-3
@@ -266,7 +266,7 @@ wheels = [
|
||||
|
||||
[[package]]
|
||||
name = "langsmith"
|
||||
version = "0.7.26"
|
||||
version = "0.7.31"
|
||||
source = { registry = "https://pypi.org/simple" }
|
||||
dependencies = [
|
||||
{ name = "httpx" },
|
||||
@@ -279,9 +279,9 @@ dependencies = [
|
||||
{ name = "xxhash" },
|
||||
{ name = "zstandard" },
|
||||
]
|
||||
sdist = { url = "https://files.pythonhosted.org/packages/76/86/6de4f6f0451a9658f26f633e0bb090552a4dafd7df3f1ae7f0d40558e67e/langsmith-0.7.26.tar.gz", hash = "sha256:a3e06f3d689ce7195717aa6b8f91082319819ec7ea9b9a62cdcd3d9dc25bfc7b", size = 1146118, upload-time = "2026-04-06T15:01:03.336Z" }
|
||||
sdist = { url = "https://files.pythonhosted.org/packages/e6/11/696019490992db5c87774dc20515529ef42a01e1d770fb754ed6d9b12fb0/langsmith-0.7.31.tar.gz", hash = "sha256:331ee4f7c26bb5be4022b9859b7d7b122cbf8c9d01d9f530114c1914b0349ffb", size = 1178480, upload-time = "2026-04-14T17:55:41.242Z" }
|
||||
wheels = [
|
||||
{ url = "https://files.pythonhosted.org/packages/81/8e/7eb7d65ce62e98e74b9f18f193ea7ac3996d4fbd71fffcc67d0f7ba3103e/langsmith-0.7.26-py3-none-any.whl", hash = "sha256:fe5c877972cea450c1c48251c8fae0f18543c8d19dfdb9ff9a9c4263763dde4e", size = 360160, upload-time = "2026-04-06T15:01:01.516Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/1d/a1/a013cf458c301cda86a213dd153ce0a01c93f1ab5833f951e6a44c9763ce/langsmith-0.7.31-py3-none-any.whl", hash = "sha256:0291d49203f6e80dda011af1afda61eb0595a4d697adb684590a8805e1d61fb6", size = 373276, upload-time = "2026-04-14T17:55:39.677Z" },
|
||||
]
|
||||
|
||||
[[package]]
|
||||
|
||||
Generated
+465
-383
File diff suppressed because it is too large
Load Diff
@@ -245,15 +245,6 @@ class _GraphCallbackManager(BaseCallbackManager):
|
||||
run_id=run_id,
|
||||
)
|
||||
|
||||
def add_handler(
|
||||
self,
|
||||
handler: BaseCallbackHandler,
|
||||
inherit: bool = True, # noqa: FBT001,FBT002
|
||||
) -> None:
|
||||
if not isinstance(handler, GraphCallbackHandler):
|
||||
raise TypeError("handlers must inherit GraphCallbackHandler")
|
||||
super().add_handler(handler, inherit=inherit)
|
||||
|
||||
def copy(
|
||||
self,
|
||||
*,
|
||||
@@ -321,15 +312,6 @@ class _AsyncGraphCallbackManager(BaseCallbackManager):
|
||||
run_id=run_id,
|
||||
)
|
||||
|
||||
def add_handler(
|
||||
self,
|
||||
handler: BaseCallbackHandler,
|
||||
inherit: bool = True, # noqa: FBT001,FBT002
|
||||
) -> None:
|
||||
if not isinstance(handler, GraphCallbackHandler):
|
||||
raise TypeError("handlers must inherit GraphCallbackHandler")
|
||||
super().add_handler(handler, inherit=inherit)
|
||||
|
||||
def copy(
|
||||
self,
|
||||
*,
|
||||
|
||||
@@ -1,6 +1,7 @@
|
||||
from langgraph.channels.any_value import AnyValue
|
||||
from langgraph.channels.base import BaseChannel
|
||||
from langgraph.channels.binop import BinaryOperatorAggregate
|
||||
from langgraph.channels.delta import DeltaChannel
|
||||
from langgraph.channels.ephemeral_value import EphemeralValue
|
||||
from langgraph.channels.last_value import LastValue, LastValueAfterFinish
|
||||
from langgraph.channels.named_barrier_value import (
|
||||
@@ -20,6 +21,7 @@ __all__ = (
|
||||
"UntrackedValue",
|
||||
"EphemeralValue",
|
||||
"BinaryOperatorAggregate",
|
||||
"DeltaChannel",
|
||||
"NamedBarrierValue",
|
||||
"NamedBarrierValueAfterFinish",
|
||||
# topics
|
||||
|
||||
@@ -119,3 +119,12 @@ class BaseChannel(Generic[Value, Update, Checkpoint], ABC):
|
||||
Returns `True` if the channel was updated, `False` otherwise.
|
||||
"""
|
||||
return False
|
||||
|
||||
def after_checkpoint(self, version: Any, checkpoint_id: str | None = None) -> None:
|
||||
"""Called after checkpoint() with the assigned version, and after
|
||||
from_checkpoint() with the current channel version.
|
||||
|
||||
No-op by default. Override in channels that track their own version
|
||||
for incremental checkpointing (e.g. DeltaChannel).
|
||||
"""
|
||||
pass
|
||||
|
||||
@@ -0,0 +1,137 @@
|
||||
from __future__ import annotations
|
||||
|
||||
from collections.abc import Callable, Sequence
|
||||
from typing import Any, Generic
|
||||
|
||||
from langgraph.checkpoint.base import DeltaChannelSentinel
|
||||
from typing_extensions import Self
|
||||
|
||||
from langgraph._internal._typing import MISSING
|
||||
from langgraph.channels.base import BaseChannel, Value
|
||||
from langgraph.channels.binop import _get_overwrite
|
||||
from langgraph.errors import EmptyChannelError
|
||||
|
||||
__all__ = ("DeltaChannel",)
|
||||
|
||||
|
||||
class DeltaChannel(
|
||||
Generic[Value], BaseChannel[list[Value], Value, DeltaChannelSentinel]
|
||||
):
|
||||
"""A channel that stores only a sentinel in checkpoints; per-step writes are
|
||||
stored in checkpoint_writes and replayed through the operator at load time.
|
||||
|
||||
Use with append-style reducers (e.g. `add_messages`) on long-running threads
|
||||
to eliminate O(N²) blob growth — storage is O(N) using the writes table that
|
||||
every checkpointer already maintains.
|
||||
|
||||
Works with all checkpointers. Savers with dedicated implementations
|
||||
(InMemorySaver, PostgresSaver) reconstruct in one pass; others fall back to
|
||||
walking the checkpoint list.
|
||||
|
||||
Usage::
|
||||
|
||||
class State(TypedDict):
|
||||
messages: Annotated[list[AnyMessage], DeltaChannel(add_messages)]
|
||||
# Dict-type reducer (type inferred from the Annotated outer type):
|
||||
files: Annotated[dict, DeltaChannel(merge_files)]
|
||||
"""
|
||||
|
||||
__slots__ = ("value", "operator")
|
||||
|
||||
def __init__(
|
||||
self,
|
||||
operator: Callable[[list[Value], Any], list[Value]],
|
||||
) -> None:
|
||||
super().__init__(list)
|
||||
self.operator = operator
|
||||
self.value: list[Value] = []
|
||||
|
||||
def __eq__(self, other: object) -> bool:
|
||||
if not isinstance(other, DeltaChannel):
|
||||
return False
|
||||
if (
|
||||
self.operator.__name__ != "<lambda>"
|
||||
and other.operator.__name__ != "<lambda>"
|
||||
):
|
||||
return self.operator is other.operator
|
||||
return True
|
||||
|
||||
@property
|
||||
def ValueType(self) -> Any:
|
||||
return list[self.typ] # type: ignore[name-defined]
|
||||
|
||||
@property
|
||||
def UpdateType(self) -> Any:
|
||||
return self.typ | list[self.typ] # type: ignore[name-defined]
|
||||
|
||||
def copy(self) -> Self:
|
||||
new = DeltaChannel(self.operator)
|
||||
new.typ = self.typ
|
||||
new.key = self.key
|
||||
new.value = self.value if self.value is MISSING else self.value.copy()
|
||||
return new
|
||||
|
||||
def from_checkpoint(self, checkpoint: Any) -> Self:
|
||||
new = DeltaChannel(self.operator)
|
||||
new.typ = self.typ
|
||||
new.key = self.key
|
||||
if checkpoint is MISSING:
|
||||
try:
|
||||
new.value = new.typ()
|
||||
except Exception:
|
||||
new.value = []
|
||||
elif isinstance(checkpoint, list):
|
||||
# Flat list of write values (oldest→newest) from get_channel_writes.
|
||||
try:
|
||||
value: Any = new.typ()
|
||||
except Exception:
|
||||
value = []
|
||||
for write in checkpoint:
|
||||
value = new.operator(value, write)
|
||||
new.value = value
|
||||
else:
|
||||
# Backward compat: plain accumulated value (e.g. from a migrated thread).
|
||||
try:
|
||||
new.value = list(checkpoint)
|
||||
except Exception:
|
||||
new.value = []
|
||||
return new
|
||||
|
||||
def update(self, values: Sequence[Any]) -> bool:
|
||||
if not values:
|
||||
return False
|
||||
seen_overwrite = False
|
||||
for value in values:
|
||||
is_overwrite, overwrite_value = _get_overwrite(value)
|
||||
if is_overwrite:
|
||||
if seen_overwrite:
|
||||
from langgraph.errors import (
|
||||
ErrorCode,
|
||||
InvalidUpdateError,
|
||||
create_error_message,
|
||||
)
|
||||
|
||||
msg = create_error_message(
|
||||
message="Can receive only one Overwrite value per super-step.",
|
||||
error_code=ErrorCode.INVALID_CONCURRENT_GRAPH_UPDATE,
|
||||
)
|
||||
raise InvalidUpdateError(msg)
|
||||
self.value = (
|
||||
list(overwrite_value) if overwrite_value is not None else self.typ()
|
||||
)
|
||||
seen_overwrite = True
|
||||
elif not seen_overwrite:
|
||||
base = self.typ() if self.value is MISSING else self.value
|
||||
self.value = self.operator(base, value)
|
||||
return True
|
||||
|
||||
def get(self) -> list[Value]:
|
||||
if self.value is MISSING:
|
||||
raise EmptyChannelError()
|
||||
return self.value
|
||||
|
||||
def is_available(self) -> bool:
|
||||
return self.value is not MISSING
|
||||
|
||||
def checkpoint(self) -> DeltaChannelSentinel:
|
||||
return DeltaChannelSentinel()
|
||||
@@ -1,5 +1,6 @@
|
||||
from __future__ import annotations
|
||||
|
||||
import collections.abc
|
||||
import inspect
|
||||
import logging
|
||||
import typing
|
||||
@@ -47,7 +48,8 @@ from langgraph._internal._pydantic import create_model
|
||||
from langgraph._internal._runnable import coerce_to_runnable
|
||||
from langgraph._internal._typing import EMPTY_SEQ, MISSING, DeprecatedKwargs
|
||||
from langgraph.channels.base import BaseChannel
|
||||
from langgraph.channels.binop import BinaryOperatorAggregate
|
||||
from langgraph.channels.binop import BinaryOperatorAggregate, _strip_extras
|
||||
from langgraph.channels.delta import DeltaChannel
|
||||
from langgraph.channels.ephemeral_value import EphemeralValue
|
||||
from langgraph.channels.last_value import LastValue, LastValueAfterFinish
|
||||
from langgraph.channels.named_barrier_value import (
|
||||
@@ -1082,6 +1084,7 @@ class StateGraph(Generic[StateT, ContextT, InputT, OutputT]):
|
||||
CompiledStateGraph: The compiled `StateGraph`.
|
||||
"""
|
||||
checkpointer = ensure_valid_checkpointer(checkpointer)
|
||||
|
||||
serde_allowlist: set[tuple[str, ...]] | None = None
|
||||
if _serde.STRICT_MSGPACK_ENABLED:
|
||||
schema_types: list[type[Any]] = [
|
||||
@@ -1667,6 +1670,18 @@ def _is_field_channel(typ: type[Any]) -> BaseChannel | None:
|
||||
# Search through all annotated medata to find channel annotations
|
||||
for item in meta:
|
||||
if isinstance(item, BaseChannel):
|
||||
if isinstance(item, DeltaChannel) and hasattr(typ, "__origin__"):
|
||||
outer = _strip_extras(typ.__origin__)
|
||||
if outer in (
|
||||
collections.abc.Sequence,
|
||||
collections.abc.MutableSequence,
|
||||
):
|
||||
outer = list
|
||||
item.typ = outer
|
||||
try:
|
||||
item.value = outer()
|
||||
except Exception:
|
||||
item.value = []
|
||||
return item
|
||||
elif isclass(item) and issubclass(item, BaseChannel):
|
||||
# ex, Annotated[int, EphemeralValue, SomeOtherAnnotation]
|
||||
|
||||
@@ -1,5 +1,6 @@
|
||||
from __future__ import annotations
|
||||
|
||||
import logging
|
||||
from collections.abc import Mapping
|
||||
from datetime import datetime, timezone
|
||||
|
||||
@@ -12,6 +13,8 @@ from langgraph.managed.base import ManagedValueMapping, ManagedValueSpec
|
||||
|
||||
LATEST_VERSION = 4
|
||||
|
||||
logger = logging.getLogger(__name__)
|
||||
|
||||
|
||||
def empty_checkpoint() -> Checkpoint:
|
||||
return Checkpoint(
|
||||
@@ -67,13 +70,12 @@ def channels_from_checkpoint(
|
||||
channel_specs[k] = v
|
||||
else:
|
||||
managed_specs[k] = v
|
||||
return (
|
||||
{
|
||||
k: v.from_checkpoint(checkpoint["channel_values"].get(k, MISSING))
|
||||
for k, v in channel_specs.items()
|
||||
},
|
||||
managed_specs,
|
||||
)
|
||||
channels: dict[str, BaseChannel] = {}
|
||||
for k, v in channel_specs.items():
|
||||
ch = v.from_checkpoint(checkpoint["channel_values"].get(k, MISSING))
|
||||
ch.after_checkpoint(checkpoint["channel_versions"].get(k), checkpoint.get("id"))
|
||||
channels[k] = ch
|
||||
return channels, managed_specs
|
||||
|
||||
|
||||
def copy_checkpoint(checkpoint: Checkpoint) -> Checkpoint:
|
||||
|
||||
@@ -692,7 +692,7 @@ class PregelLoop:
|
||||
# writes so that interrupt() calls re-fire instead of returning
|
||||
# stale values. But if we're actively resuming, keep them —
|
||||
# multi-interrupt scenarios need previously resolved values preserved.
|
||||
if self.is_replaying and (
|
||||
is_time_traveling = self.is_replaying and (
|
||||
# Time-travel to a subgraph checkpoint: the parent sets
|
||||
# RESUMING=True (it can't distinguish time-travel from resume),
|
||||
# so we check if this subgraph's own ns is in checkpoint_map.
|
||||
@@ -710,7 +710,8 @@ class PregelLoop:
|
||||
# (subgraph input is a Send arg, not a Command)
|
||||
or configurable.get(CONFIG_KEY_RESUMING, False)
|
||||
)
|
||||
):
|
||||
)
|
||||
if is_time_traveling:
|
||||
self.checkpoint_pending_writes = [
|
||||
w for w in self.checkpoint_pending_writes if w[1] != RESUME
|
||||
]
|
||||
@@ -765,6 +766,26 @@ class PregelLoop:
|
||||
if k in self.checkpoint["channel_versions"]:
|
||||
version = self.checkpoint["channel_versions"][k]
|
||||
self.checkpoint["versions_seen"][INTERRUPT][k] = version
|
||||
# When time-traveling (replaying from a specific checkpoint),
|
||||
# save a fork checkpoint so the replayed execution creates a
|
||||
# new branch. Without this, if the execution hits an interrupt
|
||||
# before after_tick() runs, no new checkpoint is created —
|
||||
# the parent's latest checkpoint remains the old one and
|
||||
# subsequent resumes load the wrong state.
|
||||
# Skip for update_state forks (source=update/fork) since they
|
||||
# already have their own fork checkpoint.
|
||||
if is_time_traveling and self.checkpoint_metadata.get("source") not in (
|
||||
"update",
|
||||
"fork",
|
||||
):
|
||||
# Clear old INTERRUPT writes from the loaded checkpoint.
|
||||
# The fork will have a new checkpoint_id which changes
|
||||
# task IDs — stale interrupt writes would accumulate and
|
||||
# confuse the multiple-interrupt check in future resumes.
|
||||
self.checkpoint_pending_writes = [
|
||||
w for w in self.checkpoint_pending_writes if w[1] != INTERRUPT
|
||||
]
|
||||
self._put_checkpoint({"source": "fork"})
|
||||
# produce values output
|
||||
self._emit(
|
||||
"values", map_output_values, self.output_keys, True, self.channels
|
||||
@@ -807,14 +828,28 @@ class PregelLoop:
|
||||
if not self.is_nested:
|
||||
# Pass the resolved before-bound checkpoint ID so subgraphs can
|
||||
# find their corresponding checkpoint without re-fetching the
|
||||
# parent. For forks (source=update), use the fork's parent
|
||||
# parent. For forks (source=update/fork), use the fork's parent
|
||||
# checkpoint ID since the fork was created after the subgraph's
|
||||
# checkpoints from the original execution.
|
||||
#
|
||||
# Only gate on is_time_traveling (not is_replaying). When the
|
||||
# client resumes with an explicit checkpoint_id that happens to
|
||||
# point at the current head (e.g. LangGraph Studio sending
|
||||
# `checkpoint: {checkpoint_id}` alongside Command(resume=...)),
|
||||
# is_replaying is True but is_time_traveling is False. In that
|
||||
# case subgraphs should load their latest checkpoint normally,
|
||||
# not go through ReplayState's before-bound lookup which would
|
||||
# miss subgraph checkpoints created during processing of the
|
||||
# current parent step.
|
||||
replay_state: ReplayState | None = None
|
||||
if self.is_replaying:
|
||||
if is_time_traveling:
|
||||
replay_checkpoint_id = self.checkpoint["id"]
|
||||
if (
|
||||
self.checkpoint_metadata.get("source") == "update"
|
||||
self.checkpoint_metadata.get("source")
|
||||
in (
|
||||
"update",
|
||||
"fork",
|
||||
)
|
||||
and self.prev_checkpoint_config
|
||||
):
|
||||
replay_checkpoint_id = self.prev_checkpoint_config[CONF].get(
|
||||
@@ -856,6 +891,12 @@ class PregelLoop:
|
||||
id=self.checkpoint["id"] if exiting else None,
|
||||
updated_channels=self.updated_channels,
|
||||
)
|
||||
if do_checkpoint and self.channels:
|
||||
for k, ch in self.channels.items():
|
||||
ch.after_checkpoint(
|
||||
self.checkpoint["channel_versions"].get(k),
|
||||
self.checkpoint.get("id"),
|
||||
)
|
||||
# sanitize TASK channel in the checkpoint before saving (durability=="exit")
|
||||
if TASKS in self.checkpoint["channel_values"] and any(
|
||||
isinstance(channel, UntrackedValue) for channel in self.channels.values()
|
||||
|
||||
@@ -14,7 +14,7 @@ from langchain_core.messages import BaseMessage
|
||||
from langchain_core.outputs import ChatGeneration, ChatGenerationChunk, LLMResult
|
||||
from pydantic import BaseModel
|
||||
|
||||
from langgraph._internal._constants import NS_END, NS_SEP
|
||||
from langgraph._internal._constants import NS_SEP
|
||||
from langgraph.constants import TAG_HIDDEN, TAG_NOSTREAM
|
||||
from langgraph.pregel.protocol import StreamChunk
|
||||
from langgraph.types import Command
|
||||
@@ -132,23 +132,15 @@ class StreamMessagesHandler(BaseCallbackHandler, _StreamingCallbackHandler):
|
||||
**kwargs: Any,
|
||||
) -> Any:
|
||||
if metadata and (not tags or (TAG_NOSTREAM not in tags)):
|
||||
task_checkpoint_ns = cast(str, metadata["langgraph_checkpoint_ns"])
|
||||
checkpoint_ns = (
|
||||
f"{task_checkpoint_ns.rsplit(NS_END, 1)[0]}{NS_END}"
|
||||
if NS_END in task_checkpoint_ns
|
||||
else task_checkpoint_ns
|
||||
)
|
||||
ns = tuple(task_checkpoint_ns.split(NS_SEP))[:-1]
|
||||
ns = tuple(cast(str, metadata["langgraph_checkpoint_ns"]).split(NS_SEP))[
|
||||
:-1
|
||||
]
|
||||
if not self.subgraphs and len(ns) > 0 and ns != self.parent_ns:
|
||||
return
|
||||
stream_metadata = dict(metadata)
|
||||
stream_metadata["langgraph_checkpoint_ns"] = checkpoint_ns
|
||||
# Preserve backwards-compatible streamed checkpoint metadata shape.
|
||||
stream_metadata["checkpoint_ns"] = checkpoint_ns
|
||||
if tags:
|
||||
if filtered_tags := [t for t in tags if not t.startswith("seq:step")]:
|
||||
stream_metadata["tags"] = filtered_tags
|
||||
self.metadata[run_id] = (ns, stream_metadata)
|
||||
metadata["tags"] = filtered_tags
|
||||
self.metadata[run_id] = (ns, metadata)
|
||||
|
||||
def on_llm_new_token(
|
||||
self,
|
||||
|
||||
@@ -1,9 +1,11 @@
|
||||
from __future__ import annotations
|
||||
|
||||
import ast
|
||||
import functools
|
||||
import inspect
|
||||
import re
|
||||
import textwrap
|
||||
import types
|
||||
from collections.abc import Callable
|
||||
from typing import Any
|
||||
|
||||
@@ -64,46 +66,74 @@ def find_subgraph_pregel(candidate: Runnable) -> PregelProtocol | None:
|
||||
return None
|
||||
|
||||
|
||||
@functools.lru_cache(maxsize=256)
|
||||
def _get_nonlocal_names(code: types.CodeType) -> frozenset[str]:
|
||||
"""Return the set of nonlocal variable names referenced by a function.
|
||||
|
||||
Cached by code object so the expensive source fetch + AST parse only
|
||||
happens once per unique function definition across repeated graph compiles.
|
||||
|
||||
Args:
|
||||
code: The code object of the function to analyse.
|
||||
|
||||
Returns:
|
||||
Frozenset of variable names that the function reads from its enclosing
|
||||
scope (free variables and globals referenced in function bodies).
|
||||
"""
|
||||
try:
|
||||
source = inspect.getsource(code)
|
||||
tree = ast.parse(textwrap.dedent(source))
|
||||
visitor = FunctionNonLocals()
|
||||
visitor.visit(tree)
|
||||
return frozenset(visitor.nonlocals)
|
||||
except (SyntaxError, TypeError, OSError, SystemError):
|
||||
return frozenset()
|
||||
|
||||
|
||||
def get_function_nonlocals(func: Callable) -> list[Any]:
|
||||
"""Get the nonlocal variables accessed by a function.
|
||||
|
||||
The expensive source-parsing step is cached by code object; only the
|
||||
cheap closure-variable lookup runs on every call.
|
||||
|
||||
Args:
|
||||
func: The function to check.
|
||||
|
||||
Returns:
|
||||
List[Any]: The nonlocal variables accessed by the function.
|
||||
"""
|
||||
try:
|
||||
code = inspect.getsource(func)
|
||||
tree = ast.parse(textwrap.dedent(code))
|
||||
visitor = FunctionNonLocals()
|
||||
visitor.visit(tree)
|
||||
values: list[Any] = []
|
||||
closure = (
|
||||
inspect.getclosurevars(func.__wrapped__)
|
||||
if hasattr(func, "__wrapped__") and callable(func.__wrapped__)
|
||||
else inspect.getclosurevars(func)
|
||||
)
|
||||
candidates = {**closure.globals, **closure.nonlocals}
|
||||
for k, v in candidates.items():
|
||||
if k in visitor.nonlocals:
|
||||
values.append(v)
|
||||
for kk in visitor.nonlocals:
|
||||
if "." in kk and kk.startswith(k):
|
||||
vv = v
|
||||
for part in kk.split(".")[1:]:
|
||||
if vv is None:
|
||||
break
|
||||
else:
|
||||
try:
|
||||
vv = getattr(vv, part)
|
||||
except AttributeError:
|
||||
break
|
||||
else:
|
||||
values.append(vv)
|
||||
except (SyntaxError, TypeError, OSError, SystemError):
|
||||
actual_func = (
|
||||
func.__wrapped__
|
||||
if hasattr(func, "__wrapped__") and callable(func.__wrapped__)
|
||||
else func
|
||||
)
|
||||
# Fast path: no free variables means nothing to scan.
|
||||
if not actual_func.__code__.co_freevars:
|
||||
return []
|
||||
|
||||
nonlocal_names = _get_nonlocal_names(actual_func.__code__)
|
||||
if not nonlocal_names:
|
||||
return []
|
||||
|
||||
closure = inspect.getclosurevars(actual_func)
|
||||
candidates = {**closure.globals, **closure.nonlocals}
|
||||
values: list[Any] = []
|
||||
for k, v in candidates.items():
|
||||
if k in nonlocal_names:
|
||||
values.append(v)
|
||||
for kk in nonlocal_names:
|
||||
if "." in kk and kk.startswith(k):
|
||||
vv = v
|
||||
for part in kk.split(".")[1:]:
|
||||
if vv is None:
|
||||
break
|
||||
else:
|
||||
try:
|
||||
vv = getattr(vv, part)
|
||||
except AttributeError:
|
||||
break
|
||||
else:
|
||||
values.append(vv)
|
||||
return values
|
||||
|
||||
|
||||
|
||||
@@ -1049,13 +1049,14 @@ class Pregel(
|
||||
|
||||
step = saved.metadata.get("step", -1) + 1
|
||||
stop = step + 2
|
||||
checkpoint = saved.checkpoint
|
||||
channels, managed = channels_from_checkpoint(
|
||||
self.channels,
|
||||
saved.checkpoint,
|
||||
checkpoint,
|
||||
)
|
||||
# tasks for this checkpoint
|
||||
next_tasks = prepare_next_tasks(
|
||||
saved.checkpoint,
|
||||
checkpoint,
|
||||
saved.pending_writes or [],
|
||||
self.nodes,
|
||||
channels,
|
||||
@@ -1168,13 +1169,14 @@ class Pregel(
|
||||
|
||||
step = saved.metadata.get("step", -1) + 1
|
||||
stop = step + 2
|
||||
checkpoint = saved.checkpoint
|
||||
channels, managed = channels_from_checkpoint(
|
||||
self.channels,
|
||||
saved.checkpoint,
|
||||
checkpoint,
|
||||
)
|
||||
# tasks for this checkpoint
|
||||
next_tasks = prepare_next_tasks(
|
||||
saved.checkpoint,
|
||||
checkpoint,
|
||||
saved.pending_writes or [],
|
||||
self.nodes,
|
||||
channels,
|
||||
@@ -1520,9 +1522,8 @@ class Pregel(
|
||||
saved = checkpointer.get_tuple(config)
|
||||
if saved is not None:
|
||||
self._migrate_checkpoint(saved.checkpoint)
|
||||
checkpoint = (
|
||||
copy_checkpoint(saved.checkpoint) if saved else empty_checkpoint()
|
||||
)
|
||||
base_checkpoint = saved.checkpoint if saved else empty_checkpoint()
|
||||
checkpoint = copy_checkpoint(base_checkpoint) if saved else base_checkpoint
|
||||
checkpoint_previous_versions = (
|
||||
saved.checkpoint["channel_versions"].copy() if saved else {}
|
||||
)
|
||||
@@ -1966,9 +1967,8 @@ class Pregel(
|
||||
saved = await checkpointer.aget_tuple(config)
|
||||
if saved is not None:
|
||||
self._migrate_checkpoint(saved.checkpoint)
|
||||
checkpoint = (
|
||||
copy_checkpoint(saved.checkpoint) if saved else empty_checkpoint()
|
||||
)
|
||||
base_checkpoint = saved.checkpoint if saved else empty_checkpoint()
|
||||
checkpoint = copy_checkpoint(base_checkpoint) if saved else base_checkpoint
|
||||
checkpoint_previous_versions = (
|
||||
saved.checkpoint["channel_versions"].copy() if saved else {}
|
||||
)
|
||||
|
||||
@@ -4,7 +4,7 @@ build-backend = "hatchling.build"
|
||||
|
||||
[project]
|
||||
name = "langgraph"
|
||||
version = "1.1.7a2"
|
||||
version = "1.1.9"
|
||||
description = "Building stateful, multi-actor applications with LLMs"
|
||||
authors = []
|
||||
requires-python = ">=3.10"
|
||||
@@ -24,7 +24,7 @@ classifiers = [
|
||||
'Programming Language :: Python :: 3.13',
|
||||
]
|
||||
dependencies = [
|
||||
"langchain-core==1.3.0a2",
|
||||
"langchain-core>=1.3.0,<2",
|
||||
"langgraph-checkpoint>=2.1.0,<5.0.0",
|
||||
"langgraph-sdk>=0.3.0,<0.4.0",
|
||||
"langgraph-prebuilt>=1.0.9,<1.1.0",
|
||||
|
||||
@@ -117,3 +117,291 @@ def test_untracked_value() -> None:
|
||||
new_channel = UntrackedValue(dict).from_checkpoint(checkpoint)
|
||||
with pytest.raises(EmptyChannelError):
|
||||
new_channel.get()
|
||||
|
||||
|
||||
def test_delta_channel_basic_two_steps() -> None:
|
||||
from langchain_core.messages import AIMessage, HumanMessage
|
||||
from langgraph.checkpoint.base import DeltaChannelSentinel
|
||||
|
||||
from langgraph.channels.delta import DeltaChannel
|
||||
from langgraph.graph.message import add_messages
|
||||
|
||||
ch = DeltaChannel(add_messages).from_checkpoint(MISSING)
|
||||
|
||||
# Step 1: one message added
|
||||
ch.update([HumanMessage(content="hi", id="h1")])
|
||||
d1 = ch.checkpoint()
|
||||
assert isinstance(d1, DeltaChannelSentinel)
|
||||
|
||||
# Step 2: another message
|
||||
ch.update([AIMessage(content="hello", id="a1")])
|
||||
d2 = ch.checkpoint()
|
||||
assert isinstance(d2, DeltaChannelSentinel)
|
||||
|
||||
# Full accumulated value is preserved in memory
|
||||
assert len(ch.get()) == 2
|
||||
assert ch.get()[0].content == "hi"
|
||||
assert ch.get()[1].content == "hello"
|
||||
|
||||
|
||||
def test_delta_channel_from_checkpoint_writes_list() -> None:
|
||||
"""from_checkpoint with a flat list of individual writes replays them through the operator."""
|
||||
from langchain_core.messages import AIMessage, HumanMessage
|
||||
|
||||
from langgraph.channels.delta import DeltaChannel
|
||||
from langgraph.graph.message import add_messages
|
||||
|
||||
spec = DeltaChannel(add_messages)
|
||||
# Each element is one write value (as stored in checkpoint_writes)
|
||||
writes = [
|
||||
HumanMessage(content="hi", id="h1"),
|
||||
AIMessage(content="hello", id="a1"),
|
||||
HumanMessage(content="bye", id="h2"),
|
||||
]
|
||||
ch = spec.from_checkpoint(writes)
|
||||
msgs = ch.get()
|
||||
assert len(msgs) == 3
|
||||
assert msgs[0].content == "hi"
|
||||
assert msgs[1].content == "hello"
|
||||
assert msgs[2].content == "bye"
|
||||
|
||||
|
||||
def test_delta_channel_from_checkpoint_backwards_compat() -> None:
|
||||
from langchain_core.messages import HumanMessage
|
||||
|
||||
from langgraph.channels.delta import DeltaChannel
|
||||
from langgraph.graph.message import add_messages
|
||||
|
||||
# Old BinaryOperatorAggregate checkpoint: plain list treated as backward compat
|
||||
spec = DeltaChannel(add_messages)
|
||||
old_value = [HumanMessage(content="old", id="h1")]
|
||||
ch = spec.from_checkpoint(old_value)
|
||||
assert ch.get() == old_value
|
||||
|
||||
|
||||
def test_delta_channel_overwrite() -> None:
|
||||
from langchain_core.messages import HumanMessage
|
||||
from langgraph.checkpoint.base import DeltaChannelSentinel
|
||||
|
||||
from langgraph.channels.delta import DeltaChannel
|
||||
from langgraph.graph.message import add_messages
|
||||
from langgraph.types import Overwrite
|
||||
|
||||
ch = DeltaChannel(add_messages).from_checkpoint(MISSING)
|
||||
ch.update([HumanMessage(content="old", id="h1")])
|
||||
|
||||
ch.update([Overwrite([HumanMessage(content="new", id="h2")])])
|
||||
d = ch.checkpoint()
|
||||
assert isinstance(d, DeltaChannelSentinel)
|
||||
# After overwrite, value is reset to only the new message
|
||||
assert len(ch.get()) == 1
|
||||
assert ch.get()[0].content == "new"
|
||||
|
||||
|
||||
def test_delta_channel_remove_message_and_replay() -> None:
|
||||
"""RemoveMessage must round-trip correctly when writes are replayed."""
|
||||
from langchain_core.messages import AIMessage, HumanMessage, RemoveMessage
|
||||
|
||||
from langgraph.channels.delta import DeltaChannel
|
||||
from langgraph.graph.message import add_messages
|
||||
|
||||
spec = DeltaChannel(add_messages)
|
||||
ch = spec.from_checkpoint(MISSING)
|
||||
|
||||
# Step 1: add two messages
|
||||
ch.update([HumanMessage(content="hi", id="h1")])
|
||||
ch.update([AIMessage(content="hello", id="a1")])
|
||||
assert ch.get() == [
|
||||
HumanMessage(content="hi", id="h1"),
|
||||
AIMessage(content="hello", id="a1"),
|
||||
]
|
||||
|
||||
# Step 2: remove the AI message
|
||||
ch.update([RemoveMessage(id="a1")])
|
||||
assert ch.get() == [HumanMessage(content="hi", id="h1")]
|
||||
|
||||
# Replay the writes list from scratch — must reproduce the post-remove state
|
||||
writes = [
|
||||
HumanMessage(content="hi", id="h1"),
|
||||
AIMessage(content="hello", id="a1"),
|
||||
RemoveMessage(id="a1"),
|
||||
]
|
||||
ch2 = spec.from_checkpoint(writes)
|
||||
assert ch2.get() == [HumanMessage(content="hi", id="h1")]
|
||||
|
||||
|
||||
def test_delta_channel_update_by_id_and_replay() -> None:
|
||||
"""Updating a message by ID must round-trip correctly through writes replay."""
|
||||
from langchain_core.messages import HumanMessage
|
||||
|
||||
from langgraph.channels.delta import DeltaChannel
|
||||
from langgraph.graph.message import add_messages
|
||||
|
||||
spec = DeltaChannel(add_messages)
|
||||
ch = spec.from_checkpoint(MISSING)
|
||||
|
||||
# Step 1: add a message
|
||||
ch.update([HumanMessage(content="original", id="h1")])
|
||||
|
||||
# Step 2: update the same message by ID
|
||||
ch.update([HumanMessage(content="updated", id="h1")])
|
||||
assert ch.get() == [HumanMessage(content="updated", id="h1")]
|
||||
|
||||
# Replay writes — must produce the updated message, not the original
|
||||
writes = [
|
||||
HumanMessage(content="original", id="h1"),
|
||||
HumanMessage(content="updated", id="h1"),
|
||||
]
|
||||
ch2 = spec.from_checkpoint(writes)
|
||||
assert len(ch2.get()) == 1
|
||||
assert ch2.get()[0].content == "updated"
|
||||
|
||||
|
||||
def test_delta_channel_checkpoint_returns_sentinel() -> None:
|
||||
"""checkpoint() always returns DeltaChannelSentinel regardless of state."""
|
||||
from langgraph.checkpoint.base import DeltaChannelSentinel
|
||||
|
||||
from langgraph.channels.delta import DeltaChannel
|
||||
from langgraph.graph.message import add_messages
|
||||
|
||||
ch = DeltaChannel(add_messages).from_checkpoint(MISSING)
|
||||
assert isinstance(ch.checkpoint(), DeltaChannelSentinel)
|
||||
|
||||
from langchain_core.messages import HumanMessage
|
||||
|
||||
ch.update([HumanMessage(content="hi", id="h1")])
|
||||
assert isinstance(ch.checkpoint(), DeltaChannelSentinel)
|
||||
|
||||
|
||||
def test_delta_channel_inmemory_saver_assembles_writes() -> None:
|
||||
"""InMemorySaver assembles writes from checkpoint_writes inside get_tuple."""
|
||||
from typing import Annotated
|
||||
|
||||
from langchain_core.messages import AIMessage, HumanMessage
|
||||
from langgraph.checkpoint.memory import InMemorySaver
|
||||
from typing_extensions import TypedDict
|
||||
|
||||
from langgraph.channels.delta import DeltaChannel
|
||||
from langgraph.graph import START, StateGraph
|
||||
from langgraph.graph.message import add_messages
|
||||
|
||||
class State(TypedDict):
|
||||
messages: Annotated[list, DeltaChannel(add_messages)]
|
||||
|
||||
n = {"v": 0}
|
||||
|
||||
def respond(state: State) -> dict:
|
||||
n["v"] += 1
|
||||
return {"messages": [AIMessage(content=f"ok{n['v']}", id=f"ai{n['v']}")]}
|
||||
|
||||
builder = StateGraph(State)
|
||||
builder.add_node("respond", respond)
|
||||
builder.add_edge(START, "respond")
|
||||
saver = InMemorySaver()
|
||||
graph = builder.compile(checkpointer=saver)
|
||||
config = {"configurable": {"thread_id": "t1"}}
|
||||
|
||||
graph.invoke({"messages": [HumanMessage(content="hi", id="h1")]}, config)
|
||||
graph.invoke({"messages": [HumanMessage(content="bye", id="h2")]}, config)
|
||||
|
||||
# get_tuple must return a resolved list (not DeltaChannelSentinel)
|
||||
from langgraph.checkpoint.base import DeltaChannelSentinel
|
||||
|
||||
saved = saver.get_tuple(config)
|
||||
assert saved is not None
|
||||
assert "messages" in saved.checkpoint["channel_values"]
|
||||
assert not isinstance(
|
||||
saved.checkpoint["channel_values"]["messages"], DeltaChannelSentinel
|
||||
)
|
||||
assert isinstance(saved.checkpoint["channel_values"]["messages"], list)
|
||||
|
||||
state = graph.get_state(config)
|
||||
assert len(state.values["messages"]) == 4 # 2 human + 2 AI
|
||||
|
||||
|
||||
def _delta_channel_with_type(operator, typ):
|
||||
"""Build a DeltaChannel with an explicit type via the Annotated injection path."""
|
||||
from typing import Annotated
|
||||
|
||||
from langgraph.channels.delta import DeltaChannel
|
||||
from langgraph.graph.state import _get_channel
|
||||
|
||||
return _get_channel("_test", Annotated[typ, DeltaChannel(operator)])
|
||||
|
||||
|
||||
def test_delta_channel_dict_reducer_fresh_channel() -> None:
|
||||
"""DeltaChannel with a dict reducer starts as empty dict on MISSING checkpoint."""
|
||||
|
||||
def merge_dicts(left: dict, right: dict) -> dict:
|
||||
return {**left, **right}
|
||||
|
||||
ch = _delta_channel_with_type(merge_dicts, dict).from_checkpoint(MISSING)
|
||||
# Should be available (not raise EmptyChannelError) and start empty
|
||||
assert ch.is_available()
|
||||
assert ch.get() == {}
|
||||
|
||||
|
||||
def test_delta_channel_dict_reducer_basic_updates() -> None:
|
||||
"""DeltaChannel with a dict reducer accumulates key/value pairs across steps."""
|
||||
from langgraph.checkpoint.base import DeltaChannelSentinel
|
||||
|
||||
def merge_dicts(left: dict, right: dict) -> dict:
|
||||
return {**left, **right}
|
||||
|
||||
ch = _delta_channel_with_type(merge_dicts, dict).from_checkpoint(MISSING)
|
||||
|
||||
ch.update([{"a": 1}])
|
||||
d1 = ch.checkpoint()
|
||||
assert isinstance(d1, DeltaChannelSentinel)
|
||||
|
||||
ch.update([{"b": 2}])
|
||||
d2 = ch.checkpoint()
|
||||
assert isinstance(d2, DeltaChannelSentinel)
|
||||
|
||||
assert ch.get() == {"a": 1, "b": 2}
|
||||
|
||||
|
||||
def test_delta_channel_dict_reducer_writes_reconstruction() -> None:
|
||||
"""from_checkpoint with a writes list replays correctly through a dict merge reducer."""
|
||||
|
||||
def merge_dicts(left: dict, right: dict) -> dict:
|
||||
return {**left, **right}
|
||||
|
||||
spec = _delta_channel_with_type(merge_dicts, dict)
|
||||
# Each element is one write value (oldest→newest)
|
||||
writes = [{"a": 1}, {"b": 2}, {"c": 3}]
|
||||
ch = spec.from_checkpoint(writes)
|
||||
assert ch.get() == {"a": 1, "b": 2, "c": 3}
|
||||
|
||||
|
||||
def test_delta_channel_dict_reducer_with_deletions() -> None:
|
||||
"""Dict reducer that treats None values as deletions works end-to-end (deepagents pattern)."""
|
||||
|
||||
def merge_files(left: dict | None, right: dict) -> dict:
|
||||
if left is None:
|
||||
return {k: v for k, v in right.items() if v is not None}
|
||||
result = {**left}
|
||||
for k, v in right.items():
|
||||
if v is None:
|
||||
result.pop(k, None)
|
||||
else:
|
||||
result[k] = v
|
||||
return result
|
||||
|
||||
ch = _delta_channel_with_type(merge_files, dict).from_checkpoint(MISSING)
|
||||
|
||||
ch.update([{"file1.py": "content1", "file2.py": "content2"}])
|
||||
|
||||
# Delete file1, add file3
|
||||
ch.update([{"file1.py": None, "file3.py": "content3"}])
|
||||
|
||||
assert ch.get() == {"file2.py": "content2", "file3.py": "content3"}
|
||||
|
||||
# Confirm writes reconstruction produces the same result
|
||||
writes = [
|
||||
{"file1.py": "content1", "file2.py": "content2"},
|
||||
{"file1.py": None, "file3.py": "content3"},
|
||||
]
|
||||
spec = _delta_channel_with_type(merge_files, dict)
|
||||
ch2 = spec.from_checkpoint(writes)
|
||||
assert ch2.get() == {"file2.py": "content2", "file3.py": "content3"}
|
||||
|
||||
@@ -0,0 +1,372 @@
|
||||
"""Benchmark: DeltaChannel vs BinaryOperatorAggregate storage and time.
|
||||
|
||||
Run directly: python tests/test_delta_channel_benchmark.py
|
||||
Run via pytest: pytest tests/test_delta_channel_benchmark.py -s
|
||||
|
||||
Simulates realistic multi-turn conversations with paragraph-length messages
|
||||
(~100 tokens each) scaling up to 1M-token-equivalent histories.
|
||||
|
||||
Token estimates: 1 token ≈ 4 chars; each turn ≈ 200 tokens (human + AI).
|
||||
A 1M-token conversation ≈ 5,000 turns of realistic messages.
|
||||
|
||||
DeltaChannel stores only a zero-byte sentinel in checkpoint_blobs; the actual
|
||||
write data lives in checkpoint_writes (already stored there). Reconstruction
|
||||
walks the parent chain and replays writes through the operator — O(N) total
|
||||
storage vs O(N²) for plain add_messages.
|
||||
"""
|
||||
|
||||
from __future__ import annotations
|
||||
|
||||
import sys
|
||||
import time
|
||||
from typing import Annotated, Any
|
||||
|
||||
import pytest
|
||||
from langchain_core.messages import AIMessage, HumanMessage
|
||||
from langgraph.checkpoint.memory import MemorySaver
|
||||
from typing_extensions import TypedDict
|
||||
|
||||
from langgraph.channels.delta import DeltaChannel
|
||||
from langgraph.graph import END, StateGraph
|
||||
from langgraph.graph.message import add_messages
|
||||
|
||||
try:
|
||||
from langgraph.checkpoint.sqlite import SqliteSaver
|
||||
|
||||
_SQLITE_AVAILABLE = True
|
||||
except ImportError:
|
||||
_SQLITE_AVAILABLE = False
|
||||
|
||||
try:
|
||||
from langgraph.checkpoint.postgres import PostgresSaver
|
||||
|
||||
_POSTGRES_AVAILABLE = True
|
||||
_POSTGRES_URI = (
|
||||
"postgres://postgres:postgres@localhost:5441/postgres?sslmode=disable"
|
||||
)
|
||||
except ImportError:
|
||||
_POSTGRES_AVAILABLE = False
|
||||
|
||||
# ---------------------------------------------------------------------------
|
||||
# Realistic message payload (~100 tokens / ~400 chars each)
|
||||
# ---------------------------------------------------------------------------
|
||||
|
||||
_HUMAN_TEMPLATE = (
|
||||
"I need help understanding the implications of {topic} on our system architecture. "
|
||||
"Specifically, I'm concerned about how this interacts with our existing {concern} "
|
||||
"and whether we need to refactor the {component} layer before proceeding."
|
||||
)
|
||||
|
||||
_AI_TEMPLATE = (
|
||||
"Great question about {topic}. The key insight here is that {concern} introduces "
|
||||
"a subtle ordering dependency that most teams overlook until they hit it in production. "
|
||||
"For your {component} layer specifically, I'd recommend starting with a careful audit "
|
||||
"of the interface boundaries before making any structural changes. This will give you "
|
||||
"a clear picture of the blast radius and let you sequence the migration safely."
|
||||
)
|
||||
|
||||
_TOPICS = [
|
||||
"distributed tracing",
|
||||
"eventual consistency",
|
||||
"schema migration",
|
||||
"backpressure handling",
|
||||
"idempotency guarantees",
|
||||
"cache invalidation",
|
||||
"connection pooling",
|
||||
"rate limiting",
|
||||
"circuit breaking",
|
||||
"observability pipelines",
|
||||
]
|
||||
|
||||
_CONCERNS = [
|
||||
"concurrency model",
|
||||
"retry semantics",
|
||||
"state management",
|
||||
"error propagation",
|
||||
"latency budget",
|
||||
]
|
||||
|
||||
_COMPONENTS = [
|
||||
"persistence",
|
||||
"routing",
|
||||
"ingestion",
|
||||
"aggregation",
|
||||
"serialization",
|
||||
]
|
||||
|
||||
|
||||
def _human_content(i: int) -> str:
|
||||
return _HUMAN_TEMPLATE.format(
|
||||
topic=_TOPICS[i % len(_TOPICS)],
|
||||
concern=_CONCERNS[i % len(_CONCERNS)],
|
||||
component=_COMPONENTS[i % len(_COMPONENTS)],
|
||||
)
|
||||
|
||||
|
||||
def _ai_content(i: int) -> str:
|
||||
return _AI_TEMPLATE.format(
|
||||
topic=_TOPICS[i % len(_TOPICS)],
|
||||
concern=_CONCERNS[i % len(_CONCERNS)],
|
||||
component=_COMPONENTS[i % len(_COMPONENTS)],
|
||||
)
|
||||
|
||||
|
||||
# ---------------------------------------------------------------------------
|
||||
# State definitions
|
||||
# ---------------------------------------------------------------------------
|
||||
|
||||
|
||||
class BinaryState(TypedDict):
|
||||
messages: Annotated[list, add_messages]
|
||||
|
||||
|
||||
class DeltaState(TypedDict):
|
||||
messages: Annotated[list, DeltaChannel(add_messages)]
|
||||
|
||||
|
||||
# ---------------------------------------------------------------------------
|
||||
# Graph factory
|
||||
# ---------------------------------------------------------------------------
|
||||
|
||||
|
||||
def _make_graph(state_cls: type, checkpointer: Any = None) -> Any:
|
||||
def human_node(state: Any) -> dict:
|
||||
return {}
|
||||
|
||||
def ai_node(state: Any) -> dict:
|
||||
i = len(state["messages"]) // 2
|
||||
return {"messages": [AIMessage(content=_ai_content(i), id=f"a{i}")]}
|
||||
|
||||
g = StateGraph(state_cls)
|
||||
g.add_node("human", human_node)
|
||||
g.add_node("ai", ai_node)
|
||||
g.add_edge("human", "ai")
|
||||
g.add_edge("ai", END)
|
||||
g.set_entry_point("human")
|
||||
return g.compile(checkpointer=checkpointer or MemorySaver())
|
||||
|
||||
|
||||
# ---------------------------------------------------------------------------
|
||||
# Measurement helpers
|
||||
# ---------------------------------------------------------------------------
|
||||
|
||||
|
||||
def _total_blob_bytes(saver: MemorySaver) -> int:
|
||||
total = 0
|
||||
for (_, _, _, _), (type_tag, blob) in saver.blobs.items():
|
||||
if blob is not None:
|
||||
total += len(blob)
|
||||
return total
|
||||
|
||||
|
||||
def _run_turns(
|
||||
n_turns: int,
|
||||
state_cls: type,
|
||||
checkpointer: Any = None,
|
||||
) -> tuple[float, float, int]:
|
||||
"""Run n_turns conversation turns.
|
||||
|
||||
Returns (write_elapsed_s, read_elapsed_s, total_blob_bytes).
|
||||
blob_bytes is -1 for savers without in-memory blob stores (e.g. SQLite).
|
||||
Read latency is measured as the time to invoke the graph with no new
|
||||
messages after the full history is built — this forces state rehydration.
|
||||
"""
|
||||
graph = _make_graph(state_cls, checkpointer)
|
||||
config = {"configurable": {"thread_id": "bench"}}
|
||||
|
||||
t0 = time.perf_counter()
|
||||
for i in range(n_turns):
|
||||
graph.invoke(
|
||||
{"messages": [HumanMessage(content=_human_content(i), id=f"h{i}")]},
|
||||
config,
|
||||
)
|
||||
write_elapsed = time.perf_counter() - t0
|
||||
|
||||
# Measure read/rehydration: get_state forces the channel to rebuild
|
||||
t1 = time.perf_counter()
|
||||
for _ in range(5):
|
||||
graph.get_state(config)
|
||||
read_elapsed = (time.perf_counter() - t1) / 5
|
||||
|
||||
if isinstance(graph.checkpointer, MemorySaver):
|
||||
blob_bytes = _total_blob_bytes(graph.checkpointer)
|
||||
else:
|
||||
blob_bytes = -1
|
||||
return write_elapsed, read_elapsed, blob_bytes
|
||||
|
||||
|
||||
def _fmt_bytes(n: int) -> str:
|
||||
if n >= 1_000_000:
|
||||
return f"{n / 1_000_000:.1f} MB"
|
||||
if n >= 1_000:
|
||||
return f"{n / 1_000:.1f} KB"
|
||||
return f"{n} B"
|
||||
|
||||
|
||||
def _approx_tokens(n_turns: int) -> str:
|
||||
# ~100 tokens human + ~100 tokens AI per turn
|
||||
tokens = n_turns * 200
|
||||
if tokens >= 1_000_000:
|
||||
return f"~{tokens / 1_000_000:.1f}M tok"
|
||||
if tokens >= 1_000:
|
||||
return f"~{tokens / 1_000:.0f}K tok"
|
||||
return f"~{tokens} tok"
|
||||
|
||||
|
||||
# ---------------------------------------------------------------------------
|
||||
# Benchmark matrix
|
||||
# ---------------------------------------------------------------------------
|
||||
|
||||
# Turn counts chosen to demonstrate O(N²) vs O(N) storage growth without running too long.
|
||||
# Extrapolation: 5,000 turns × ~200 tokens/turn ≈ 1M tokens (Claude's full context window).
|
||||
TURN_COUNTS = [10, 25, 50, 100, 500]
|
||||
|
||||
|
||||
def _checkpointer_factories() -> list[tuple[str, Any]]:
|
||||
"""Return (label, context_manager_or_none) pairs for available checkpointers."""
|
||||
return [("InMemory", None)]
|
||||
|
||||
|
||||
def run_benchmark() -> None:
|
||||
print()
|
||||
print(
|
||||
"DeltaChannel vs add_messages (BinaryOperatorAggregate) — checkpoint storage & latency"
|
||||
)
|
||||
print("Simulating realistic multi-turn conversations up to ~1M-token histories")
|
||||
print("(5,000 turns × ~200 tokens/turn ≈ 1M tokens — Claude's full context window)")
|
||||
print()
|
||||
|
||||
checkpointers: list[tuple[str, Any]] = [("InMemory", None)]
|
||||
if _POSTGRES_AVAILABLE:
|
||||
try:
|
||||
import psycopg
|
||||
|
||||
psycopg.connect(_POSTGRES_URI).close()
|
||||
checkpointers.append(("Postgres (recursive CTE)", "postgres"))
|
||||
except Exception:
|
||||
pass
|
||||
|
||||
for cp_label, cp_hint in checkpointers:
|
||||
print(f"--- Checkpointer: {cp_label} ---")
|
||||
_run_benchmark_for_checkpointer(cp_hint)
|
||||
|
||||
|
||||
def _run_benchmark_for_checkpointer(cp_hint: Any) -> None:
|
||||
import contextlib
|
||||
import tempfile
|
||||
|
||||
@contextlib.contextmanager
|
||||
def _make_saver():
|
||||
if cp_hint is None:
|
||||
yield None
|
||||
elif cp_hint == "postgres":
|
||||
with PostgresSaver.from_conn_string(_POSTGRES_URI) as saver:
|
||||
saver.setup()
|
||||
with saver._cursor() as cur:
|
||||
cur.execute("DELETE FROM checkpoints WHERE thread_id = 'bench'")
|
||||
cur.execute(
|
||||
"DELETE FROM checkpoint_blobs WHERE thread_id = 'bench'"
|
||||
)
|
||||
cur.execute(
|
||||
"DELETE FROM checkpoint_writes WHERE thread_id = 'bench'"
|
||||
)
|
||||
yield saver
|
||||
else:
|
||||
with tempfile.NamedTemporaryFile(suffix=".db") as f:
|
||||
with SqliteSaver.from_conn_string(f.name) as saver:
|
||||
yield saver
|
||||
|
||||
rows = []
|
||||
for turns in TURN_COUNTS:
|
||||
with _make_saver() as saver:
|
||||
b_wt, b_rt, b_bytes = _run_turns(turns, BinaryState, saver)
|
||||
with _make_saver() as saver:
|
||||
d_wt, d_rt, d_bytes = _run_turns(turns, DeltaState, saver)
|
||||
rows.append((turns, b_bytes, d_bytes, b_rt, d_rt))
|
||||
|
||||
# ── Table 1: Storage ─────────────────────────────────────────────────────
|
||||
W = 70
|
||||
print("Storage (checkpoint blob bytes)")
|
||||
print("=" * W)
|
||||
print(
|
||||
f"{'turns':>6} {'ctx size':>10} {'add_msgs':>12} {'delta':>12} {'savings':>8}"
|
||||
)
|
||||
print("-" * W)
|
||||
storage_results = []
|
||||
for turns, b_bytes, d_bytes, b_rt, d_rt in rows:
|
||||
if b_bytes < 0:
|
||||
print(
|
||||
f"{turns:>6} {_approx_tokens(turns):>10} {'n/a':>12} {'n/a':>12} {'n/a':>8}"
|
||||
)
|
||||
else:
|
||||
ratio = b_bytes / d_bytes if d_bytes else float("inf")
|
||||
storage_results.append((turns, b_bytes, d_bytes, ratio))
|
||||
print(
|
||||
f"{turns:>6} {_approx_tokens(turns):>10} "
|
||||
f"{_fmt_bytes(b_bytes):>12} {_fmt_bytes(d_bytes):>12} "
|
||||
f"{ratio:>7.0f}x"
|
||||
)
|
||||
print("=" * W)
|
||||
print()
|
||||
|
||||
# ── Table 2: Read latency ─────────────────────────────────────────────────
|
||||
print("Read latency (avg of 5 get_state calls)")
|
||||
print("=" * W)
|
||||
print(f"{'turns':>6} {'ctx size':>10} {'add_msgs':>12} {'delta':>12}")
|
||||
print("-" * W)
|
||||
for turns, b_bytes, d_bytes, b_rt, d_rt in rows:
|
||||
print(
|
||||
f"{turns:>6} {_approx_tokens(turns):>10} "
|
||||
f"{b_rt * 1000:>10.1f}ms {d_rt * 1000:>10.1f}ms"
|
||||
)
|
||||
print("=" * W)
|
||||
print()
|
||||
|
||||
if storage_results:
|
||||
turns, b_bytes, d_bytes, ratio = storage_results[-1]
|
||||
b_rt = rows[-1][-2]
|
||||
d_rt = rows[-1][-1]
|
||||
print(
|
||||
f"At {turns} turns: {_fmt_bytes(b_bytes)} → {_fmt_bytes(d_bytes)} ({ratio:.0f}x less storage); "
|
||||
f"read {b_rt * 1000:.1f}ms → {d_rt * 1000:.1f}ms"
|
||||
)
|
||||
print()
|
||||
|
||||
print("Legend:")
|
||||
print(" add_msgs = Annotated[list, add_messages] — O(N²) storage")
|
||||
print(
|
||||
" delta = DeltaChannel(add_messages) — O(N) storage, full chain replay"
|
||||
)
|
||||
print()
|
||||
|
||||
|
||||
# ---------------------------------------------------------------------------
|
||||
# Pytest entry point
|
||||
# ---------------------------------------------------------------------------
|
||||
|
||||
|
||||
@pytest.mark.skip(
|
||||
reason="slow benchmark — run manually with: python tests/test_delta_channel_benchmark.py"
|
||||
)
|
||||
def test_delta_channel_benchmark(capsys: Any) -> None:
|
||||
"""Storage grows O(N²) for add_messages, O(N) for DeltaChannel."""
|
||||
with capsys.disabled():
|
||||
run_benchmark()
|
||||
|
||||
# Correctness assertion: DeltaChannel must use less storage at scale.
|
||||
for turns in [25, 50]:
|
||||
_, _, b_bytes = _run_turns(turns, BinaryState)
|
||||
_, _, d_bytes = _run_turns(turns, DeltaState)
|
||||
assert d_bytes < b_bytes, (
|
||||
f"DeltaChannel should use less storage at {turns} turns, "
|
||||
f"got delta={d_bytes} binary={b_bytes}"
|
||||
)
|
||||
|
||||
|
||||
# ---------------------------------------------------------------------------
|
||||
# Script entry point
|
||||
# ---------------------------------------------------------------------------
|
||||
|
||||
if __name__ == "__main__":
|
||||
run_benchmark()
|
||||
sys.exit(0)
|
||||
@@ -275,3 +275,70 @@ def test_graph_callbacks_accept_base_callback_manager() -> None:
|
||||
|
||||
assert "__interrupt__" in first
|
||||
assert len(graph_handler.interrupt_events) == 1
|
||||
|
||||
|
||||
def test_non_graph_handler_via_add_handler_does_not_crash() -> None:
|
||||
"""Non-GraphCallbackHandler added via add_handler should not raise.
|
||||
|
||||
Libraries like opentelemetry-instrumentation-langchain monkey-patch
|
||||
BaseCallbackManager.__init__ and inject handlers via add_handler().
|
||||
These handlers inherit from BaseCallbackHandler, not
|
||||
GraphCallbackHandler. They must be silently accepted — graph lifecycle
|
||||
events will simply not be dispatched to them.
|
||||
"""
|
||||
from langgraph.callbacks import _GraphCallbackManager
|
||||
|
||||
manager = _GraphCallbackManager()
|
||||
plain_handler = _LangChainCustomEventHandler()
|
||||
|
||||
manager.add_handler(plain_handler, inherit=True)
|
||||
assert plain_handler in manager.handlers
|
||||
|
||||
|
||||
def test_non_graph_handler_does_not_receive_lifecycle_events() -> None:
|
||||
"""Non-GraphCallbackHandler added alongside a GraphCallbackHandler
|
||||
should not interfere with lifecycle event dispatch."""
|
||||
graph = _build_interrupt_graph()
|
||||
graph_handler = _GraphEventHandler()
|
||||
plain_handler = _LangChainCustomEventHandler()
|
||||
|
||||
config = {
|
||||
"configurable": {"thread_id": "graph-callback-mixed-handlers"},
|
||||
"callbacks": [plain_handler, graph_handler],
|
||||
}
|
||||
|
||||
first = graph.invoke({"answer": None}, config)
|
||||
assert "__interrupt__" in first
|
||||
|
||||
assert len(graph_handler.interrupt_events) == 1
|
||||
assert plain_handler.events == []
|
||||
|
||||
resumed = graph.invoke(Command(resume="done"), config)
|
||||
assert resumed == {"answer": "done"}
|
||||
assert len(graph_handler.resume_events) == 1
|
||||
assert plain_handler.events == []
|
||||
|
||||
|
||||
@pytest.mark.anyio
|
||||
@NEEDS_CONTEXTVARS
|
||||
async def test_non_graph_handler_does_not_receive_lifecycle_events_async() -> None:
|
||||
"""Async variant: non-GraphCallbackHandler should not interfere."""
|
||||
graph = _build_interrupt_graph()
|
||||
graph_handler = _GraphEventHandler()
|
||||
plain_handler = _LangChainCustomEventHandler()
|
||||
|
||||
config = {
|
||||
"configurable": {"thread_id": "graph-callback-mixed-handlers-async"},
|
||||
"callbacks": [plain_handler, graph_handler],
|
||||
}
|
||||
|
||||
first = await graph.ainvoke({"answer": None}, config)
|
||||
assert "__interrupt__" in first
|
||||
|
||||
assert len(graph_handler.interrupt_events) == 1
|
||||
assert plain_handler.events == []
|
||||
|
||||
resumed = await graph.ainvoke(Command(resume="done"), config)
|
||||
assert resumed == {"answer": "done"}
|
||||
assert len(graph_handler.resume_events) == 1
|
||||
assert plain_handler.events == []
|
||||
|
||||
@@ -615,8 +615,11 @@ def test_run_from_checkpoint_id_retains_previous_writes(
|
||||
)
|
||||
]
|
||||
|
||||
assert len(new_history) == len(history) + 1
|
||||
for original, new in zip(history, new_history[1:]):
|
||||
# +2: one fork checkpoint from time travel, one from the new execution
|
||||
assert len(new_history) == len(history) + 2
|
||||
# new_history[0] is the new execution result, new_history[1] is the fork
|
||||
assert new_history[1].metadata["source"] == "fork"
|
||||
for original, new in zip(history, new_history[2:]):
|
||||
assert original.values == new.values
|
||||
assert original.next == new.next
|
||||
assert original.metadata["step"] == new.metadata["step"]
|
||||
@@ -624,7 +627,7 @@ def test_run_from_checkpoint_id_retains_previous_writes(
|
||||
def _get_tasks(hist: list, start: int):
|
||||
return [h.tasks for h in hist[start:]]
|
||||
|
||||
assert _get_tasks(new_history, 1) == _get_tasks(history, 0)
|
||||
assert _get_tasks(new_history, 2) == _get_tasks(history, 0)
|
||||
|
||||
|
||||
def test_batch_two_processes_in_out() -> None:
|
||||
@@ -9397,3 +9400,190 @@ def test_fork_does_not_apply_pending_writes(
|
||||
|
||||
# Should be: 1 (input) + 20 (forked node_a) + 100 (node_b) = 121
|
||||
assert result == {"value": 121}
|
||||
|
||||
|
||||
async def test_delta_channel_end_to_end_inmemory() -> None:
|
||||
"""Full graph run: DeltaChannel accumulates correctly across multiple turns."""
|
||||
from langchain_core.messages import AIMessage, HumanMessage
|
||||
from langgraph.checkpoint.memory import InMemorySaver
|
||||
|
||||
from langgraph.channels.delta import DeltaChannel
|
||||
from langgraph.graph import START, StateGraph
|
||||
from langgraph.graph.message import add_messages
|
||||
|
||||
class State(TypedDict):
|
||||
messages: Annotated[list, DeltaChannel(add_messages)]
|
||||
|
||||
def respond(state: State) -> dict:
|
||||
n = len(state["messages"])
|
||||
return {"messages": [AIMessage(content=f"reply-{n}", id=f"ai-{n}")]}
|
||||
|
||||
builder = StateGraph(State)
|
||||
builder.add_node("respond", respond)
|
||||
builder.add_edge(START, "respond")
|
||||
graph = builder.compile(checkpointer=InMemorySaver())
|
||||
|
||||
config = {"configurable": {"thread_id": "diff-test-1"}}
|
||||
|
||||
# Turn 1
|
||||
graph.invoke({"messages": [HumanMessage(content="hello", id="h1")]}, config)
|
||||
# Turn 2
|
||||
graph.invoke({"messages": [HumanMessage(content="world", id="h2")]}, config)
|
||||
# Turn 3
|
||||
graph.invoke({"messages": [HumanMessage(content="bye", id="h3")]}, config)
|
||||
|
||||
state = graph.get_state(config)
|
||||
msgs = state.values["messages"]
|
||||
# 3 human + 3 AI = 6 total
|
||||
assert len(msgs) == 6, f"expected 6 messages, got {len(msgs)}: {msgs}"
|
||||
assert msgs[0].content == "hello"
|
||||
assert msgs[2].content == "world"
|
||||
assert msgs[4].content == "bye"
|
||||
assert msgs[1].content == "reply-1"
|
||||
assert msgs[3].content == "reply-3"
|
||||
assert msgs[5].content == "reply-5"
|
||||
|
||||
|
||||
async def test_delta_channel_time_travel() -> None:
|
||||
"""Time-travel back to turn-1 checkpoint and resume; continuation must not include turn-2 deltas."""
|
||||
from langchain_core.messages import AIMessage, HumanMessage
|
||||
from langgraph.checkpoint.memory import InMemorySaver
|
||||
|
||||
from langgraph.channels.delta import DeltaChannel
|
||||
from langgraph.graph import START, StateGraph
|
||||
from langgraph.graph.message import add_messages
|
||||
|
||||
class State(TypedDict):
|
||||
messages: Annotated[list, DeltaChannel(add_messages)]
|
||||
|
||||
counter = {"n": 0}
|
||||
|
||||
def respond(state: State) -> dict:
|
||||
counter["n"] += 1
|
||||
return {
|
||||
"messages": [
|
||||
AIMessage(content=f"ai-{counter['n']}", id=f"ai-{counter['n']}")
|
||||
]
|
||||
}
|
||||
|
||||
builder = StateGraph(State)
|
||||
builder.add_node("respond", respond)
|
||||
builder.add_edge(START, "respond")
|
||||
saver = InMemorySaver()
|
||||
graph = builder.compile(checkpointer=saver)
|
||||
|
||||
config = {"configurable": {"thread_id": "diff-time-travel"}}
|
||||
|
||||
# Run 2 turns: h1→ai-1, h2→ai-2
|
||||
graph.invoke({"messages": [HumanMessage(content="h1", id="h1")]}, config)
|
||||
graph.invoke({"messages": [HumanMessage(content="h2", id="h2")]}, config)
|
||||
|
||||
# Find the checkpoint after turn 1 (2 messages: h1 + ai-1)
|
||||
history = list(graph.get_state_history(config))
|
||||
after_turn1 = next(h for h in history if len(h.values.get("messages", [])) == 2)
|
||||
|
||||
assert len(after_turn1.values["messages"]) == 2
|
||||
assert after_turn1.values["messages"][0].content == "h1"
|
||||
assert after_turn1.values["messages"][1].content == "ai-1"
|
||||
|
||||
# Resume from turn-1 checkpoint: inject h3, expect 3 messages total (h1, ai-1, ai-N)
|
||||
# NOT 5 messages (turn-2 deltas must not bleed into the resumed run)
|
||||
result = graph.invoke(
|
||||
{"messages": [HumanMessage(content="h3", id="h3")]},
|
||||
after_turn1.config,
|
||||
)
|
||||
msgs = result["messages"]
|
||||
# Should be: h1, ai-1, h3, ai-N — 4 messages total
|
||||
assert len(msgs) == 4, (
|
||||
f"expected 4 messages after time-travel resume, got {len(msgs)}: {msgs}"
|
||||
)
|
||||
assert msgs[0].content == "h1"
|
||||
assert msgs[1].content == "ai-1"
|
||||
assert msgs[2].content == "h3"
|
||||
|
||||
|
||||
async def test_delta_channel_remove_message_end_to_end() -> None:
|
||||
"""RemoveMessage inside a DeltaChannel graph must persist and reload correctly."""
|
||||
from langchain_core.messages import AIMessage, HumanMessage, RemoveMessage
|
||||
from langgraph.checkpoint.memory import InMemorySaver
|
||||
|
||||
from langgraph.channels.delta import DeltaChannel
|
||||
from langgraph.graph import START, StateGraph
|
||||
from langgraph.graph.message import add_messages
|
||||
|
||||
class State(TypedDict):
|
||||
messages: Annotated[list, DeltaChannel(add_messages)]
|
||||
|
||||
def respond(state: State) -> dict:
|
||||
return {"messages": [AIMessage(content="reply", id="ai-1")]}
|
||||
|
||||
def delete_first(state: State) -> dict:
|
||||
# removes the first message
|
||||
return {"messages": [RemoveMessage(id=state["messages"][0].id)]}
|
||||
|
||||
builder = StateGraph(State)
|
||||
builder.add_node("respond", respond)
|
||||
builder.add_node("delete_first", delete_first)
|
||||
builder.add_edge(START, "respond")
|
||||
builder.add_edge("respond", "delete_first")
|
||||
graph = builder.compile(checkpointer=InMemorySaver())
|
||||
|
||||
config = {"configurable": {"thread_id": "diff-remove-test"}}
|
||||
graph.invoke({"messages": [HumanMessage(content="hello", id="h1")]}, config)
|
||||
|
||||
state = graph.get_state(config)
|
||||
msgs = state.values["messages"]
|
||||
# h1 was removed, only ai-1 should remain
|
||||
assert len(msgs) == 1, f"expected 1 message, got {len(msgs)}: {msgs}"
|
||||
assert msgs[0].id == "ai-1"
|
||||
|
||||
# A subsequent turn must reconstruct from the checkpoint correctly
|
||||
graph.invoke({"messages": [HumanMessage(content="again", id="h2")]}, config)
|
||||
state = graph.get_state(config)
|
||||
msgs = state.values["messages"]
|
||||
# ai-1 + h2 + ai-1(second reply, same id overwrites) + h2 removed
|
||||
# more simply: after second run we expect ai-1 updated + h2 remaining minus deleted h2
|
||||
# just assert h1 is still gone
|
||||
assert all(m.id != "h1" for m in msgs), (
|
||||
"h1 should still be absent after second turn"
|
||||
)
|
||||
|
||||
|
||||
async def test_delta_channel_update_by_id_end_to_end() -> None:
|
||||
"""Updating a message by ID via DeltaChannel must persist and reload correctly."""
|
||||
from langchain_core.messages import HumanMessage
|
||||
from langgraph.checkpoint.memory import InMemorySaver
|
||||
|
||||
from langgraph.channels.delta import DeltaChannel
|
||||
from langgraph.graph import START, StateGraph
|
||||
from langgraph.graph.message import add_messages
|
||||
|
||||
class State(TypedDict):
|
||||
messages: Annotated[list, DeltaChannel(add_messages)]
|
||||
|
||||
def update_msg(state: State) -> dict:
|
||||
# re-send h1 with updated content
|
||||
return {"messages": [HumanMessage(content="updated", id="h1")]}
|
||||
|
||||
builder = StateGraph(State)
|
||||
builder.add_node("update_msg", update_msg)
|
||||
builder.add_edge(START, "update_msg")
|
||||
graph = builder.compile(checkpointer=InMemorySaver())
|
||||
|
||||
config = {"configurable": {"thread_id": "diff-update-id-test"}}
|
||||
graph.invoke({"messages": [HumanMessage(content="original", id="h1")]}, config)
|
||||
|
||||
state = graph.get_state(config)
|
||||
msgs = state.values["messages"]
|
||||
assert len(msgs) == 1, f"expected 1 message, got {len(msgs)}: {msgs}"
|
||||
assert msgs[0].content == "updated"
|
||||
assert msgs[0].id == "h1"
|
||||
|
||||
# Second turn: verify the updated state is the base for further accumulation
|
||||
graph.invoke({"messages": [HumanMessage(content="new", id="h2")]}, config)
|
||||
state = graph.get_state(config)
|
||||
msgs = state.values["messages"]
|
||||
ids = [m.id for m in msgs]
|
||||
assert "h1" in ids # h1 persists (updated, not duplicated)
|
||||
assert "h2" in ids
|
||||
assert ids.count("h1") == 1, "h1 must not be duplicated"
|
||||
|
||||
@@ -2086,8 +2086,11 @@ async def test_run_from_checkpoint_id_retains_previous_writes(
|
||||
)
|
||||
]
|
||||
|
||||
assert len(new_history) == len(history) + 1
|
||||
for original, new in zip(history, new_history[1:]):
|
||||
# +2: one fork checkpoint from time travel, one from the new execution
|
||||
assert len(new_history) == len(history) + 2
|
||||
# new_history[0] is the new execution result, new_history[1] is the fork
|
||||
assert new_history[1].metadata["source"] == "fork"
|
||||
for original, new in zip(history, new_history[2:]):
|
||||
assert original.values == new.values
|
||||
assert original.next == new.next
|
||||
assert original.metadata["step"] == new.metadata["step"]
|
||||
@@ -2095,7 +2098,7 @@ async def test_run_from_checkpoint_id_retains_previous_writes(
|
||||
def _get_tasks(hist: list, start: int):
|
||||
return [h.tasks for h in hist[start:]]
|
||||
|
||||
assert _get_tasks(new_history, 1) == _get_tasks(history, 0)
|
||||
assert _get_tasks(new_history, 2) == _get_tasks(history, 0)
|
||||
|
||||
|
||||
async def test_cond_edge_after_send() -> None:
|
||||
|
||||
@@ -37,6 +37,7 @@ def _checkpoint_summary(history: list) -> list[dict]:
|
||||
Returns a list of dicts (newest-first, matching get_state_history order) with:
|
||||
- id: short checkpoint id suffix (last 6 chars)
|
||||
- parent_id: short parent checkpoint id suffix or None
|
||||
- source: checkpoint metadata source (input, loop, fork, update)
|
||||
- next: tuple of next node names
|
||||
- values: channel values snapshot
|
||||
"""
|
||||
@@ -52,6 +53,7 @@ def _checkpoint_summary(history: list) -> list[dict]:
|
||||
{
|
||||
"id": cid[-6:],
|
||||
"parent_id": pid[-6:] if pid else None,
|
||||
"source": s.metadata.get("source"),
|
||||
"next": s.next,
|
||||
"values": s.values,
|
||||
}
|
||||
@@ -280,6 +282,116 @@ def test_replay_from_before_interrupt_refires(
|
||||
assert call_count["node_b"] == 1 # NOT re-executed (after interrupt)
|
||||
|
||||
|
||||
def test_replay_from_before_interrupt_then_resume(
|
||||
sync_checkpointer: BaseCheckpointSaver,
|
||||
) -> None:
|
||||
"""Replay from checkpoint before interrupt node, then resume with a new
|
||||
answer and verify the graph completes with the new value.
|
||||
|
||||
Graph: START --> node_a --> ask_human (interrupt) --> node_b --> END
|
||||
|
||||
Original run:
|
||||
source=input next=(__start__,) values=[]
|
||||
source=loop next=(node_a,) values=[]
|
||||
source=loop next=(ask_human,) values=[a] <-- replay from here
|
||||
source=loop next=(node_b,) values=[a, human:old_answer]
|
||||
source=loop next=() values=[a, human:old_answer, b]
|
||||
|
||||
After replay (fork created) + resume with "new_answer":
|
||||
source=input next=(__start__,) values=[]
|
||||
source=loop next=(node_a,) values=[]
|
||||
source=loop next=(ask_human,) values=[a] <-- branch point
|
||||
source=loop next=(node_b,) values=[a, human:old_answer]
|
||||
source=loop next=() values=[a, human:old_answer, b] (old branch)
|
||||
source=fork next=(ask_human,) values=[a] <-- fork from branch point
|
||||
source=loop next=(node_b,) values=[a, human:new_answer]
|
||||
source=loop next=() values=[a, human:new_answer, b] (new branch)
|
||||
"""
|
||||
|
||||
called: list[str] = []
|
||||
|
||||
def node_a(state: State) -> State:
|
||||
called.append("node_a")
|
||||
return {"value": ["a"]}
|
||||
|
||||
def ask_human(state: State) -> State:
|
||||
called.append("ask_human")
|
||||
answer = interrupt("What is your input?")
|
||||
return {"value": [f"human:{answer}"]}
|
||||
|
||||
def node_b(state: State) -> State:
|
||||
called.append("node_b")
|
||||
return {"value": ["b"]}
|
||||
|
||||
graph = (
|
||||
StateGraph(State)
|
||||
.add_node("node_a", node_a)
|
||||
.add_node("ask_human", ask_human)
|
||||
.add_node("node_b", node_b)
|
||||
.add_edge(START, "node_a")
|
||||
.add_edge("node_a", "ask_human")
|
||||
.add_edge("ask_human", "node_b")
|
||||
.compile(checkpointer=sync_checkpointer)
|
||||
)
|
||||
|
||||
config = {"configurable": {"thread_id": "1"}}
|
||||
|
||||
# --- Original run: invoke until interrupt, then resume to complete ---
|
||||
graph.invoke({"value": []}, config)
|
||||
graph.invoke(Command(resume="old_answer"), config)
|
||||
|
||||
original_history = list(graph.get_state_history(config))
|
||||
original = _checkpoint_summary(original_history)
|
||||
assert [(s["source"], s["next"], s["values"]) for s in original] == [
|
||||
("loop", (), {"value": ["a", "human:old_answer", "b"]}),
|
||||
("loop", ("node_b",), {"value": ["a", "human:old_answer"]}),
|
||||
("loop", ("ask_human",), {"value": ["a"]}),
|
||||
("loop", ("node_a",), {"value": []}),
|
||||
("input", ("__start__",), {"value": []}),
|
||||
]
|
||||
|
||||
# --- Replay from checkpoint before ask_human ---
|
||||
before_ask = next(s for s in original_history if s.next == ("ask_human",))
|
||||
|
||||
called.clear()
|
||||
replay_result = graph.invoke(None, before_ask.config)
|
||||
assert replay_result["__interrupt__"][0].value == "What is your input?"
|
||||
assert "ask_human" in called
|
||||
assert "node_a" not in called # before the replay point, not re-executed
|
||||
|
||||
# A fork checkpoint is now the latest — it branches from the replay point
|
||||
post_replay = _checkpoint_summary(list(graph.get_state_history(config)))
|
||||
assert [(s["source"], s["next"]) for s in post_replay] == [
|
||||
("fork", ("ask_human",)), # <-- new fork (latest)
|
||||
("loop", ()), # original done
|
||||
("loop", ("node_b",)),
|
||||
("loop", ("ask_human",)), # branch point
|
||||
("loop", ("node_a",)),
|
||||
("input", ("__start__",)),
|
||||
]
|
||||
|
||||
# --- Resume with a new answer ---
|
||||
called.clear()
|
||||
final_result = graph.invoke(Command(resume="new_answer"), config)
|
||||
assert final_result["value"] == ["a", "human:new_answer", "b"]
|
||||
assert "ask_human" in called
|
||||
assert "node_b" in called
|
||||
|
||||
final = _checkpoint_summary(list(graph.get_state_history(config)))
|
||||
assert [(s["source"], s["next"], s["values"]) for s in final] == [
|
||||
# New branch (from fork)
|
||||
("loop", (), {"value": ["a", "human:new_answer", "b"]}),
|
||||
("loop", ("node_b",), {"value": ["a", "human:new_answer"]}),
|
||||
("fork", ("ask_human",), {"value": ["a"]}),
|
||||
# Original branch (preserved)
|
||||
("loop", (), {"value": ["a", "human:old_answer", "b"]}),
|
||||
("loop", ("node_b",), {"value": ["a", "human:old_answer"]}),
|
||||
("loop", ("ask_human",), {"value": ["a"]}),
|
||||
("loop", ("node_a",), {"value": []}),
|
||||
("input", ("__start__",), {"value": []}),
|
||||
]
|
||||
|
||||
|
||||
def test_replay_interrupt_stable_across_replays(
|
||||
sync_checkpointer: BaseCheckpointSaver,
|
||||
) -> None:
|
||||
@@ -320,8 +432,14 @@ def test_replay_interrupt_stable_across_replays(
|
||||
r = graph.invoke(None, before_ask.config)
|
||||
results.append(r)
|
||||
|
||||
assert all(r == results[0] for r in results)
|
||||
assert "__interrupt__" in results[0]
|
||||
# Each replay creates a fork with a unique interrupt ID, so we compare
|
||||
# interrupt values and state values rather than full equality.
|
||||
assert all("__interrupt__" in r for r in results)
|
||||
assert all(
|
||||
r["__interrupt__"][0].value == results[0]["__interrupt__"][0].value
|
||||
for r in results
|
||||
)
|
||||
assert all(r["value"] == results[0]["value"] for r in results)
|
||||
|
||||
|
||||
def test_fork_from_before_interrupt_refires(
|
||||
@@ -854,6 +972,356 @@ def test_subgraph_interrupt_replay_from_interrupt_checkpoint(
|
||||
assert "step_b" not in called
|
||||
|
||||
|
||||
def test_subgraph_interrupt_replay_from_parent_then_resume(
|
||||
sync_checkpointer: BaseCheckpointSaver,
|
||||
) -> None:
|
||||
"""Replay from the parent checkpoint where a subgraph interrupt fired,
|
||||
then resume with a new answer. Verifies that a fork is created and the
|
||||
full graph completes. Checks full checkpoint history at each stage."""
|
||||
|
||||
called: list[str] = []
|
||||
|
||||
def router(state: State) -> State:
|
||||
called.append("router")
|
||||
return {"value": ["routed"]}
|
||||
|
||||
def step_a(state: State) -> State:
|
||||
called.append("step_a")
|
||||
return {"value": ["sub_a"]}
|
||||
|
||||
def ask_human(state: State) -> State:
|
||||
called.append("ask_human")
|
||||
answer = interrupt("Provide input:")
|
||||
return {"value": [f"human:{answer}"]}
|
||||
|
||||
def step_b(state: State) -> State:
|
||||
called.append("step_b")
|
||||
return {"value": ["sub_b"]}
|
||||
|
||||
subgraph = (
|
||||
StateGraph(State)
|
||||
.add_node("step_a", step_a)
|
||||
.add_node("ask_human", ask_human)
|
||||
.add_node("step_b", step_b)
|
||||
.add_edge(START, "step_a")
|
||||
.add_edge("step_a", "ask_human")
|
||||
.add_edge("ask_human", "step_b")
|
||||
.compile(checkpointer=True)
|
||||
)
|
||||
|
||||
def post_process(state: State) -> State:
|
||||
called.append("post_process")
|
||||
return {"value": ["post"]}
|
||||
|
||||
graph = (
|
||||
StateGraph(State)
|
||||
.add_node("router", router)
|
||||
.add_node("subgraph_node", subgraph)
|
||||
.add_node("post_process", post_process)
|
||||
.add_edge(START, "router")
|
||||
.add_edge("router", "subgraph_node")
|
||||
.add_edge("subgraph_node", "post_process")
|
||||
.compile(checkpointer=sync_checkpointer)
|
||||
)
|
||||
|
||||
config = {"configurable": {"thread_id": "1"}}
|
||||
|
||||
# Run until interrupt, then resume to complete
|
||||
graph.invoke({"value": []}, config)
|
||||
graph.invoke(Command(resume="old_answer"), config)
|
||||
|
||||
# Original parent history (newest first)
|
||||
original_history = list(graph.get_state_history(config))
|
||||
assert [s.next for s in original_history] == [
|
||||
(), # done
|
||||
("post_process",),
|
||||
("subgraph_node",), # subgraph ran, interrupt fired here
|
||||
("router",),
|
||||
("__start__",),
|
||||
]
|
||||
|
||||
# Find the parent checkpoint where the interrupt fired
|
||||
interrupt_checkpoint = next(
|
||||
s for s in original_history if s.next == ("subgraph_node",)
|
||||
)
|
||||
|
||||
# Replay from parent checkpoint — subgraph re-executes, interrupt re-fires
|
||||
called.clear()
|
||||
replay_result = graph.invoke(None, interrupt_checkpoint.config)
|
||||
assert "__interrupt__" in replay_result
|
||||
assert replay_result["__interrupt__"][0].value == "Provide input:"
|
||||
assert "step_a" in called
|
||||
assert "ask_human" in called
|
||||
assert "step_b" not in called
|
||||
|
||||
# Verify fork checkpoint was created
|
||||
post_replay_history = list(graph.get_state_history(config))
|
||||
assert [s.next for s in post_replay_history] == [
|
||||
("subgraph_node",), # fork (interrupt pending)
|
||||
(), # original done
|
||||
("post_process",),
|
||||
("subgraph_node",),
|
||||
("router",),
|
||||
("__start__",),
|
||||
]
|
||||
assert [s.metadata["source"] for s in post_replay_history] == [
|
||||
"fork",
|
||||
"loop",
|
||||
"loop",
|
||||
"loop",
|
||||
"loop",
|
||||
"input",
|
||||
]
|
||||
fork = post_replay_history[0]
|
||||
assert (
|
||||
fork.parent_config["configurable"]["checkpoint_id"]
|
||||
== interrupt_checkpoint.config["configurable"]["checkpoint_id"]
|
||||
)
|
||||
|
||||
# Resume with a new answer — full graph should complete
|
||||
called.clear()
|
||||
final_result = graph.invoke(Command(resume="new_answer"), config)
|
||||
assert "__interrupt__" not in final_result
|
||||
assert "human:new_answer" in final_result["value"]
|
||||
assert "sub_b" in final_result["value"]
|
||||
assert "post" in final_result["value"]
|
||||
assert "ask_human" in called
|
||||
assert "step_b" in called
|
||||
assert "post_process" in called
|
||||
|
||||
# Final checkpoint history
|
||||
final_history = list(graph.get_state_history(config))
|
||||
assert [s.next for s in final_history] == [
|
||||
(), # new branch done
|
||||
("post_process",), # new branch post_process
|
||||
("subgraph_node",), # fork
|
||||
(), # original done
|
||||
("post_process",),
|
||||
("subgraph_node",),
|
||||
("router",),
|
||||
("__start__",),
|
||||
]
|
||||
assert [s.metadata["source"] for s in final_history] == [
|
||||
"loop",
|
||||
"loop",
|
||||
"fork",
|
||||
"loop",
|
||||
"loop",
|
||||
"loop",
|
||||
"loop",
|
||||
"input",
|
||||
]
|
||||
|
||||
|
||||
def test_subgraph_interrupt_resume_with_explicit_head_checkpoint_id(
|
||||
sync_checkpointer: BaseCheckpointSaver,
|
||||
) -> None:
|
||||
"""Resume with Command(resume=...) plus the current head checkpoint_id
|
||||
in config. The subgraph must continue from the interrupted node, not
|
||||
restart from scratch. Explicit checkpoint_id triggers is_replaying but
|
||||
this is a resume, not a time-travel, so ReplayState should not apply."""
|
||||
|
||||
called: list[str] = []
|
||||
|
||||
def step_a(state: State) -> State:
|
||||
called.append("step_a")
|
||||
return {"value": ["sub_a"]}
|
||||
|
||||
def ask_human(state: State) -> State:
|
||||
called.append("ask_human")
|
||||
answer = interrupt("Provide input:")
|
||||
return {"value": [f"human:{answer}"]}
|
||||
|
||||
def step_b(state: State) -> State:
|
||||
called.append("step_b")
|
||||
return {"value": ["sub_b"]}
|
||||
|
||||
subgraph = (
|
||||
StateGraph(State)
|
||||
.add_node("step_a", step_a)
|
||||
.add_node("ask_human", ask_human)
|
||||
.add_node("step_b", step_b)
|
||||
.add_edge(START, "step_a")
|
||||
.add_edge("step_a", "ask_human")
|
||||
.add_edge("ask_human", "step_b")
|
||||
.compile(checkpointer=True)
|
||||
)
|
||||
|
||||
graph = (
|
||||
StateGraph(State)
|
||||
.add_node("subgraph_node", subgraph)
|
||||
.add_edge(START, "subgraph_node")
|
||||
.compile(checkpointer=sync_checkpointer)
|
||||
)
|
||||
|
||||
config = {"configurable": {"thread_id": "1"}}
|
||||
|
||||
# Run until interrupt fires in subgraph
|
||||
graph.invoke({"value": []}, config)
|
||||
assert called == ["step_a", "ask_human"]
|
||||
|
||||
# Resume with explicit head checkpoint_id in config
|
||||
head_checkpoint_id = graph.get_state(config).config["configurable"][
|
||||
"checkpoint_id"
|
||||
]
|
||||
called.clear()
|
||||
resume_config = {
|
||||
"configurable": {
|
||||
"thread_id": "1",
|
||||
"checkpoint_id": head_checkpoint_id,
|
||||
"checkpoint_ns": "",
|
||||
}
|
||||
}
|
||||
result = graph.invoke(Command(resume="answer"), resume_config)
|
||||
|
||||
assert called == ["ask_human", "step_b"]
|
||||
assert "__interrupt__" not in result
|
||||
assert result["value"] == ["sub_a", "human:answer", "sub_b"]
|
||||
|
||||
|
||||
def test_subgraph_replay_loads_accumulated_state_then_resume(
|
||||
sync_checkpointer: BaseCheckpointSaver,
|
||||
) -> None:
|
||||
"""Two parent invocations, then replay from before the subgraph in the
|
||||
2nd invocation. The subgraph (checkpointer=True) should load its
|
||||
accumulated state from the 1st invocation via ReplayState, re-fire
|
||||
the interrupt, and then resume + complete.
|
||||
|
||||
This tests the ReplayState path: the parent is replaying and the
|
||||
subgraph uses list(before=parent_checkpoint_id) to find its
|
||||
corresponding checkpoint from the original execution.
|
||||
"""
|
||||
|
||||
class SubState(TypedDict):
|
||||
value: Annotated[list[str], operator.add]
|
||||
|
||||
class ParentState(TypedDict):
|
||||
results: Annotated[list[str], operator.add]
|
||||
|
||||
started_state: list[dict] = []
|
||||
|
||||
def step_a(state: SubState) -> SubState:
|
||||
started_state.append(dict(state))
|
||||
answer = interrupt("question_a")
|
||||
return {"value": [f"a:{answer}"]}
|
||||
|
||||
subgraph = (
|
||||
StateGraph(SubState)
|
||||
.add_node("step_a", step_a)
|
||||
.add_edge(START, "step_a")
|
||||
.compile(checkpointer=True)
|
||||
)
|
||||
|
||||
def parent_node(state: ParentState) -> ParentState:
|
||||
return {"results": ["p"]}
|
||||
|
||||
graph = (
|
||||
StateGraph(ParentState)
|
||||
.add_node("parent_node", parent_node)
|
||||
.add_node("sub_node", subgraph)
|
||||
.add_edge(START, "parent_node")
|
||||
.add_edge("parent_node", "sub_node")
|
||||
.compile(checkpointer=sync_checkpointer)
|
||||
)
|
||||
|
||||
config = {"configurable": {"thread_id": "1"}}
|
||||
|
||||
# === 1st invocation: complete with answer "a1" ===
|
||||
graph.invoke({"results": []}, config)
|
||||
graph.invoke(Command(resume="a1"), config)
|
||||
|
||||
# step_a saw empty state (fresh subgraph)
|
||||
assert started_state[0] == {"value": []}
|
||||
|
||||
# === 2nd invocation: complete with answer "a2" ===
|
||||
started_state.clear()
|
||||
graph.invoke({"results": []}, config)
|
||||
graph.invoke(Command(resume="a2"), config)
|
||||
|
||||
# Stateful subgraph retained state from 1st invocation
|
||||
assert started_state[0] == {"value": ["a:a1"]}
|
||||
|
||||
# Original history (newest first)
|
||||
original_history = list(graph.get_state_history(config))
|
||||
assert [s.next for s in original_history] == [
|
||||
(), # 2nd done
|
||||
("sub_node",), # 2nd sub_node
|
||||
("parent_node",), # 2nd parent_node
|
||||
("__start__",), # 2nd input
|
||||
(), # 1st done
|
||||
("sub_node",), # 1st sub_node
|
||||
("parent_node",), # 1st parent_node
|
||||
("__start__",), # 1st input
|
||||
]
|
||||
|
||||
# Replay from before sub_node in 2nd invocation (newest match)
|
||||
before_sub_2nd = [s for s in original_history if s.next == ("sub_node",)][0]
|
||||
started_state.clear()
|
||||
replay = graph.invoke(None, before_sub_2nd.config)
|
||||
assert "__interrupt__" in replay
|
||||
|
||||
# Subgraph should see accumulated state from END of 1st invocation
|
||||
assert started_state[0] == {"value": ["a:a1"]}
|
||||
|
||||
# Verify fork was created
|
||||
post_replay_history = list(graph.get_state_history(config))
|
||||
assert [s.next for s in post_replay_history] == [
|
||||
("sub_node",), # fork (interrupt pending)
|
||||
(), # 2nd done
|
||||
("sub_node",), # 2nd sub_node
|
||||
("parent_node",), # 2nd parent_node
|
||||
("__start__",), # 2nd input
|
||||
(), # 1st done
|
||||
("sub_node",), # 1st sub_node
|
||||
("parent_node",), # 1st parent_node
|
||||
("__start__",), # 1st input
|
||||
]
|
||||
assert [s.metadata["source"] for s in post_replay_history] == [
|
||||
"fork",
|
||||
"loop",
|
||||
"loop",
|
||||
"loop",
|
||||
"input",
|
||||
"loop",
|
||||
"loop",
|
||||
"loop",
|
||||
"input",
|
||||
]
|
||||
|
||||
# Resume with a new answer
|
||||
started_state.clear()
|
||||
final = graph.invoke(Command(resume="a3"), config)
|
||||
assert "__interrupt__" not in final
|
||||
assert final["results"] == ["p", "p"]
|
||||
|
||||
# Final history
|
||||
final_history = list(graph.get_state_history(config))
|
||||
assert [s.next for s in final_history] == [
|
||||
(), # new branch done
|
||||
("sub_node",), # fork
|
||||
(), # 2nd done
|
||||
("sub_node",), # 2nd sub_node
|
||||
("parent_node",), # 2nd parent_node
|
||||
("__start__",), # 2nd input
|
||||
(), # 1st done
|
||||
("sub_node",), # 1st sub_node
|
||||
("parent_node",), # 1st parent_node
|
||||
("__start__",), # 1st input
|
||||
]
|
||||
assert [s.metadata["source"] for s in final_history] == [
|
||||
"loop",
|
||||
"fork",
|
||||
"loop",
|
||||
"loop",
|
||||
"loop",
|
||||
"input",
|
||||
"loop",
|
||||
"loop",
|
||||
"loop",
|
||||
"input",
|
||||
]
|
||||
|
||||
|
||||
def test_subgraph_interrupt_full_flow(
|
||||
sync_checkpointer: BaseCheckpointSaver,
|
||||
) -> None:
|
||||
@@ -1290,6 +1758,321 @@ def test_subgraph_time_travel_to_second_interrupt(
|
||||
assert "ask_1" not in called
|
||||
|
||||
|
||||
def test_subgraph_time_travel_resume_from_first_interrupt(
|
||||
sync_checkpointer: BaseCheckpointSaver,
|
||||
) -> None:
|
||||
"""Time travel to a subgraph checkpoint at the first interrupt, then
|
||||
resume through both interrupts with new answers.
|
||||
|
||||
This verifies the key bug fix: after time-traveling to a subgraph
|
||||
checkpoint with an interrupt, a fork checkpoint is created so that
|
||||
subsequent resumes find the correct state (not the old branch tip).
|
||||
|
||||
Parent: START --> executor (subgraph, checkpointer=True) --> END
|
||||
Executor: START --> step_a --> ask_1 (interrupt) --> ask_2 (interrupt) --> END
|
||||
|
||||
Parent history after original run completes:
|
||||
source=input next=(__start__,) values=[]
|
||||
source=loop next=(executor,) values=[]
|
||||
source=loop next=() values=[step_a_done, ask_1:answer_1, ask_2:answer_2]
|
||||
|
||||
After time-traveling to 1st interrupt + resuming with new answers:
|
||||
source=input next=(__start__,) values=[]
|
||||
source=loop next=(executor,) values=[] <-- branch point
|
||||
source=loop next=() values=[..., ask_2:answer_2] (old branch)
|
||||
source=fork next=(executor,) values=[] <-- fork from time travel
|
||||
source=loop next=() values=[..., ask_2:new_answer_2] (new branch)
|
||||
"""
|
||||
|
||||
called: list[str] = []
|
||||
|
||||
def step_a(state: State) -> State:
|
||||
called.append("step_a")
|
||||
return {"value": ["step_a_done"]}
|
||||
|
||||
def ask_1(state: State) -> State:
|
||||
called.append("ask_1")
|
||||
answer = interrupt("Question 1?")
|
||||
return {"value": [f"ask_1:{answer}"]}
|
||||
|
||||
def ask_2(state: State) -> State:
|
||||
called.append("ask_2")
|
||||
answer = interrupt("Question 2?")
|
||||
return {"value": [f"ask_2:{answer}"]}
|
||||
|
||||
executor = (
|
||||
StateGraph(State)
|
||||
.add_node("step_a", step_a)
|
||||
.add_node("ask_1", ask_1)
|
||||
.add_node("ask_2", ask_2)
|
||||
.add_edge(START, "step_a")
|
||||
.add_edge("step_a", "ask_1")
|
||||
.add_edge("ask_1", "ask_2")
|
||||
.add_edge("ask_2", "__end__")
|
||||
.compile(checkpointer=True)
|
||||
)
|
||||
|
||||
graph = (
|
||||
StateGraph(State)
|
||||
.add_node("executor", executor)
|
||||
.add_edge(START, "executor")
|
||||
.compile(checkpointer=sync_checkpointer)
|
||||
)
|
||||
|
||||
config = {"configurable": {"thread_id": "1"}}
|
||||
|
||||
# --- Original run: hit both interrupts and resume ---
|
||||
graph.invoke({"value": []}, config)
|
||||
sub_config_at_first = graph.get_state(config, subgraphs=True).tasks[0].state.config
|
||||
graph.invoke(Command(resume="answer_1"), config)
|
||||
graph.invoke(Command(resume="answer_2"), config)
|
||||
|
||||
original = _checkpoint_summary(list(graph.get_state_history(config)))
|
||||
assert [(s["source"], s["next"], s["values"]) for s in original] == [
|
||||
("loop", (), {"value": ["step_a_done", "ask_1:answer_1", "ask_2:answer_2"]}),
|
||||
("loop", ("executor",), {"value": []}),
|
||||
("input", ("__start__",), {"value": []}),
|
||||
]
|
||||
|
||||
# --- Time travel to first interrupt's subgraph checkpoint ---
|
||||
called.clear()
|
||||
replay_result = graph.invoke(None, sub_config_at_first)
|
||||
assert replay_result["__interrupt__"][0].value == "Question 1?"
|
||||
assert "step_a" not in called # before interrupt, not re-executed
|
||||
|
||||
# Fork is now the latest parent checkpoint
|
||||
post_tt = _checkpoint_summary(list(graph.get_state_history(config)))
|
||||
assert [(s["source"], s["next"]) for s in post_tt] == [
|
||||
("fork", ("executor",)), # <-- new fork (latest)
|
||||
("loop", ()), # original done
|
||||
("loop", ("executor",)),
|
||||
("input", ("__start__",)),
|
||||
]
|
||||
|
||||
# --- Resume both interrupts with new answers ---
|
||||
called.clear()
|
||||
resume_1 = graph.invoke(Command(resume="new_answer_1"), config)
|
||||
assert resume_1["__interrupt__"][0].value == "Question 2?"
|
||||
assert "ask_1" in called
|
||||
|
||||
called.clear()
|
||||
resume_2 = graph.invoke(Command(resume="new_answer_2"), config)
|
||||
assert resume_2["value"] == [
|
||||
"step_a_done",
|
||||
"ask_1:new_answer_1",
|
||||
"ask_2:new_answer_2",
|
||||
]
|
||||
|
||||
# Verify final history: original branch preserved, new branch appended
|
||||
final = _checkpoint_summary(list(graph.get_state_history(config)))
|
||||
assert [(s["source"], s["next"], s["values"]) for s in final] == [
|
||||
# New branch (from time travel fork)
|
||||
(
|
||||
"loop",
|
||||
(),
|
||||
{"value": ["step_a_done", "ask_1:new_answer_1", "ask_2:new_answer_2"]},
|
||||
),
|
||||
("fork", ("executor",), {"value": []}),
|
||||
# Original branch (preserved)
|
||||
("loop", (), {"value": ["step_a_done", "ask_1:answer_1", "ask_2:answer_2"]}),
|
||||
("loop", ("executor",), {"value": []}),
|
||||
("input", ("__start__",), {"value": []}),
|
||||
]
|
||||
|
||||
|
||||
def test_subgraph_time_travel_resume_from_second_interrupt(
|
||||
sync_checkpointer: BaseCheckpointSaver,
|
||||
) -> None:
|
||||
"""Time travel to a subgraph checkpoint at the second interrupt, then
|
||||
resume with a new answer. The first interrupt's answer should be preserved.
|
||||
|
||||
Parent: START --> executor (subgraph, checkpointer=True) --> END
|
||||
Executor: START --> step_a --> ask_1 (interrupt) --> ask_2 (interrupt) --> END
|
||||
|
||||
Key assertion: after resuming from a time-travel to the 2nd interrupt,
|
||||
the final state keeps ask_1's original answer but uses the new ask_2 answer.
|
||||
"""
|
||||
|
||||
called: list[str] = []
|
||||
|
||||
def step_a(state: State) -> State:
|
||||
called.append("step_a")
|
||||
return {"value": ["step_a_done"]}
|
||||
|
||||
def ask_1(state: State) -> State:
|
||||
called.append("ask_1")
|
||||
answer = interrupt("Question 1?")
|
||||
return {"value": [f"ask_1:{answer}"]}
|
||||
|
||||
def ask_2(state: State) -> State:
|
||||
called.append("ask_2")
|
||||
answer = interrupt("Question 2?")
|
||||
return {"value": [f"ask_2:{answer}"]}
|
||||
|
||||
executor = (
|
||||
StateGraph(State)
|
||||
.add_node("step_a", step_a)
|
||||
.add_node("ask_1", ask_1)
|
||||
.add_node("ask_2", ask_2)
|
||||
.add_edge(START, "step_a")
|
||||
.add_edge("step_a", "ask_1")
|
||||
.add_edge("ask_1", "ask_2")
|
||||
.add_edge("ask_2", "__end__")
|
||||
.compile(checkpointer=True)
|
||||
)
|
||||
|
||||
graph = (
|
||||
StateGraph(State)
|
||||
.add_node("executor", executor)
|
||||
.add_edge(START, "executor")
|
||||
.compile(checkpointer=sync_checkpointer)
|
||||
)
|
||||
|
||||
config = {"configurable": {"thread_id": "1"}}
|
||||
|
||||
# --- Original run: hit both interrupts and resume ---
|
||||
graph.invoke({"value": []}, config)
|
||||
graph.invoke(Command(resume="answer_1"), config)
|
||||
sub_config_at_second = graph.get_state(config, subgraphs=True).tasks[0].state.config
|
||||
graph.invoke(Command(resume="answer_2"), config)
|
||||
|
||||
original = _checkpoint_summary(list(graph.get_state_history(config)))
|
||||
assert [(s["source"], s["next"], s["values"]) for s in original] == [
|
||||
("loop", (), {"value": ["step_a_done", "ask_1:answer_1", "ask_2:answer_2"]}),
|
||||
("loop", ("executor",), {"value": []}),
|
||||
("input", ("__start__",), {"value": []}),
|
||||
]
|
||||
|
||||
# --- Time travel to second interrupt ---
|
||||
called.clear()
|
||||
replay_result = graph.invoke(None, sub_config_at_second)
|
||||
assert replay_result["__interrupt__"][0].value == "Question 2?"
|
||||
assert "step_a" not in called
|
||||
assert "ask_1" not in called # already resolved, not re-executed
|
||||
|
||||
# Fork is now the latest parent checkpoint
|
||||
post_tt = _checkpoint_summary(list(graph.get_state_history(config)))
|
||||
assert [(s["source"], s["next"]) for s in post_tt] == [
|
||||
("fork", ("executor",)), # <-- new fork (latest)
|
||||
("loop", ()), # original done
|
||||
("loop", ("executor",)),
|
||||
("input", ("__start__",)),
|
||||
]
|
||||
|
||||
# --- Resume with a new answer for ask_2 only ---
|
||||
called.clear()
|
||||
resume_result = graph.invoke(Command(resume="new_answer_2"), config)
|
||||
# ask_1's original answer preserved, ask_2 uses the new answer
|
||||
assert resume_result["value"] == [
|
||||
"step_a_done",
|
||||
"ask_1:answer_1",
|
||||
"ask_2:new_answer_2",
|
||||
]
|
||||
|
||||
# Verify final history: original branch preserved, new branch appended
|
||||
final = _checkpoint_summary(list(graph.get_state_history(config)))
|
||||
assert [(s["source"], s["next"], s["values"]) for s in final] == [
|
||||
# New branch (from time travel fork)
|
||||
(
|
||||
"loop",
|
||||
(),
|
||||
{"value": ["step_a_done", "ask_1:answer_1", "ask_2:new_answer_2"]},
|
||||
),
|
||||
("fork", ("executor",), {"value": []}),
|
||||
# Original branch (preserved)
|
||||
("loop", (), {"value": ["step_a_done", "ask_1:answer_1", "ask_2:answer_2"]}),
|
||||
("loop", ("executor",), {"value": []}),
|
||||
("input", ("__start__",), {"value": []}),
|
||||
]
|
||||
|
||||
|
||||
def test_subgraph_time_travel_checkpoint_pattern(
|
||||
sync_checkpointer: BaseCheckpointSaver,
|
||||
) -> None:
|
||||
"""Verify the checkpoint pattern created by time travel to a subgraph
|
||||
interrupt. A fork checkpoint should branch from the replay point and
|
||||
become the latest parent checkpoint.
|
||||
|
||||
Parent: START --> executor (subgraph, checkpointer=True) --> END
|
||||
Executor: START --> ask (interrupt) --> END
|
||||
|
||||
Original run (after completing):
|
||||
source=input next=(__start__,) values=[]
|
||||
source=loop next=(executor,) values=[] <-- replay point
|
||||
source=loop next=() values=[a:first]
|
||||
|
||||
After time travel to interrupt + resume with "second":
|
||||
source=input next=(__start__,) values=[]
|
||||
source=loop next=(executor,) values=[] <-- branch point
|
||||
source=loop next=() values=[a:first] (old branch)
|
||||
source=fork next=(executor,) values=[] <-- fork
|
||||
source=loop next=() values=[a:second] (new branch)
|
||||
"""
|
||||
|
||||
def ask(state: State) -> State:
|
||||
answer = interrupt("Q?")
|
||||
return {"value": [f"a:{answer}"]}
|
||||
|
||||
executor = (
|
||||
StateGraph(State)
|
||||
.add_node("ask", ask)
|
||||
.add_edge(START, "ask")
|
||||
.compile(checkpointer=True)
|
||||
)
|
||||
|
||||
graph = (
|
||||
StateGraph(State)
|
||||
.add_node("executor", executor)
|
||||
.add_edge(START, "executor")
|
||||
.compile(checkpointer=sync_checkpointer)
|
||||
)
|
||||
|
||||
config = {"configurable": {"thread_id": "1"}}
|
||||
|
||||
# Run until interrupt, then complete
|
||||
graph.invoke({"value": []}, config)
|
||||
sub_config = graph.get_state(config, subgraphs=True).tasks[0].state.config
|
||||
graph.invoke(Command(resume="first"), config)
|
||||
|
||||
original = _checkpoint_summary(list(graph.get_state_history(config)))
|
||||
assert [(s["source"], s["next"], s["values"]) for s in original] == [
|
||||
("loop", (), {"value": ["a:first"]}),
|
||||
("loop", ("executor",), {"value": []}),
|
||||
("input", ("__start__",), {"value": []}),
|
||||
]
|
||||
|
||||
# Time travel to the interrupt
|
||||
graph.invoke(None, sub_config)
|
||||
|
||||
# Fork is now the latest, branching from the original replay point
|
||||
post_tt = list(graph.get_state_history(config))
|
||||
post_tt_summary = _checkpoint_summary(post_tt)
|
||||
assert [(s["source"], s["next"]) for s in post_tt_summary] == [
|
||||
("fork", ("executor",)), # <-- new fork (latest)
|
||||
("loop", ()),
|
||||
("loop", ("executor",)), # <-- replay point / fork parent
|
||||
("input", ("__start__",)),
|
||||
]
|
||||
# Verify the fork's parent is the original replay point
|
||||
replay_point_id = sub_config["configurable"]["checkpoint_map"][""]
|
||||
assert post_tt[0].parent_config["configurable"]["checkpoint_id"] == replay_point_id
|
||||
|
||||
# Resume from the fork — graph completes with new answer
|
||||
result = graph.invoke(Command(resume="second"), config)
|
||||
assert result["value"] == ["a:second"]
|
||||
|
||||
final = _checkpoint_summary(list(graph.get_state_history(config)))
|
||||
assert [(s["source"], s["next"], s["values"]) for s in final] == [
|
||||
# New branch
|
||||
("loop", (), {"value": ["a:second"]}),
|
||||
("fork", ("executor",), {"value": []}),
|
||||
# Original branch
|
||||
("loop", (), {"value": ["a:first"]}),
|
||||
("loop", ("executor",), {"value": []}),
|
||||
("input", ("__start__",), {"value": []}),
|
||||
]
|
||||
|
||||
|
||||
def test_subgraph_time_travel_after_completion(
|
||||
sync_checkpointer: BaseCheckpointSaver,
|
||||
) -> None:
|
||||
@@ -2283,14 +3066,16 @@ def test_replay_creates_branch_preserving_old_checkpoints(
|
||||
# -- Post-replay checkpoint history (newest first) --
|
||||
post_replay_history = list(graph.get_state_history(config))
|
||||
post_summary = _checkpoint_summary(post_replay_history)
|
||||
assert len(post_summary) == 7 # 5 original + 2 new branch checkpoints
|
||||
# 5 original + 1 fork + 2 new branch checkpoints = 8
|
||||
assert len(post_summary) == 8
|
||||
|
||||
# Verify the full shape after replay
|
||||
assert [s["next"] for s in post_summary] == [
|
||||
(), # new branch tip (C6)
|
||||
("node_c",), # new branch (C5)
|
||||
(), # old branch tip (C4)
|
||||
("node_c",), # old (C3)
|
||||
(), # new branch tip
|
||||
("node_c",), # new branch
|
||||
("node_b",), # fork from replay point
|
||||
(), # old branch tip
|
||||
("node_c",), # old
|
||||
("node_b",), # branch point (C2)
|
||||
("node_a",), # old (C1)
|
||||
("__start__",), # old (C0)
|
||||
@@ -2298,6 +3083,7 @@ def test_replay_creates_branch_preserving_old_checkpoints(
|
||||
assert [s["values"] for s in post_summary] == [
|
||||
{"value": ["a", "b2", "c"]}, # new branch tip
|
||||
{"value": ["a", "b2"]}, # new: node_b re-ran with call_count=2
|
||||
{"value": ["a"]}, # fork from replay point
|
||||
{"value": ["a", "b1", "c"]}, # old branch tip preserved
|
||||
{"value": ["a", "b1"]}, # old
|
||||
{"value": ["a"]}, # branch point
|
||||
|
||||
@@ -46,6 +46,7 @@ def _checkpoint_summary(history: list) -> list[dict]:
|
||||
Returns a list of dicts (newest-first, matching get_state_history order) with:
|
||||
- id: short checkpoint id suffix (last 6 chars)
|
||||
- parent_id: short parent checkpoint id suffix or None
|
||||
- source: checkpoint metadata source (input, loop, fork, update)
|
||||
- next: tuple of next node names
|
||||
- values: channel values snapshot
|
||||
"""
|
||||
@@ -61,6 +62,7 @@ def _checkpoint_summary(history: list) -> list[dict]:
|
||||
{
|
||||
"id": cid[-6:],
|
||||
"parent_id": pid[-6:] if pid else None,
|
||||
"source": s.metadata.get("source"),
|
||||
"next": s.next,
|
||||
"values": s.values,
|
||||
}
|
||||
@@ -335,8 +337,14 @@ async def test_replay_interrupt_stable_across_replays(
|
||||
r = await graph.ainvoke(None, before_ask.config)
|
||||
results.append(r)
|
||||
|
||||
assert all(r == results[0] for r in results)
|
||||
assert "__interrupt__" in results[0]
|
||||
# Each replay creates a fork with a unique interrupt ID, so we compare
|
||||
# interrupt values and state values rather than full equality.
|
||||
assert all("__interrupt__" in r for r in results)
|
||||
assert all(
|
||||
r["__interrupt__"][0].value == results[0]["__interrupt__"][0].value
|
||||
for r in results
|
||||
)
|
||||
assert all(r["value"] == results[0]["value"] for r in results)
|
||||
|
||||
|
||||
@NEEDS_CONTEXTVARS
|
||||
@@ -1261,6 +1269,391 @@ async def test_subgraph_time_travel_after_completion_async(
|
||||
assert "ask_2:answer_2" in replay_result["value"]
|
||||
|
||||
|
||||
@NEEDS_CONTEXTVARS
|
||||
async def test_replay_from_before_interrupt_then_resume_async(
|
||||
async_checkpointer: BaseCheckpointSaver,
|
||||
) -> None:
|
||||
"""Replay from checkpoint before interrupt node, then resume with a new
|
||||
answer and verify the graph completes with the new value.
|
||||
|
||||
Graph: START --> node_a --> ask_human (interrupt) --> node_b --> END
|
||||
"""
|
||||
|
||||
called: list[str] = []
|
||||
|
||||
async def node_a(state: State) -> State:
|
||||
called.append("node_a")
|
||||
return {"value": ["a"]}
|
||||
|
||||
async def ask_human(state: State) -> State:
|
||||
called.append("ask_human")
|
||||
answer = interrupt("What is your input?")
|
||||
return {"value": [f"human:{answer}"]}
|
||||
|
||||
async def node_b(state: State) -> State:
|
||||
called.append("node_b")
|
||||
return {"value": ["b"]}
|
||||
|
||||
graph = (
|
||||
StateGraph(State)
|
||||
.add_node("node_a", node_a)
|
||||
.add_node("ask_human", ask_human)
|
||||
.add_node("node_b", node_b)
|
||||
.add_edge(START, "node_a")
|
||||
.add_edge("node_a", "ask_human")
|
||||
.add_edge("ask_human", "node_b")
|
||||
.compile(checkpointer=async_checkpointer)
|
||||
)
|
||||
|
||||
config = {"configurable": {"thread_id": "1"}}
|
||||
|
||||
# --- Original run: invoke until interrupt, then resume to complete ---
|
||||
await graph.ainvoke({"value": []}, config)
|
||||
await graph.ainvoke(Command(resume="old_answer"), config)
|
||||
|
||||
original_history = [s async for s in graph.aget_state_history(config)]
|
||||
original = _checkpoint_summary(original_history)
|
||||
assert [(s["source"], s["next"], s["values"]) for s in original] == [
|
||||
("loop", (), {"value": ["a", "human:old_answer", "b"]}),
|
||||
("loop", ("node_b",), {"value": ["a", "human:old_answer"]}),
|
||||
("loop", ("ask_human",), {"value": ["a"]}),
|
||||
("loop", ("node_a",), {"value": []}),
|
||||
("input", ("__start__",), {"value": []}),
|
||||
]
|
||||
|
||||
# --- Replay from checkpoint before ask_human ---
|
||||
before_ask = next(s for s in original_history if s.next == ("ask_human",))
|
||||
|
||||
called.clear()
|
||||
replay_result = await graph.ainvoke(None, before_ask.config)
|
||||
assert replay_result["__interrupt__"][0].value == "What is your input?"
|
||||
assert "ask_human" in called
|
||||
assert "node_a" not in called
|
||||
|
||||
# A fork checkpoint is now the latest
|
||||
post_replay = _checkpoint_summary(
|
||||
[s async for s in graph.aget_state_history(config)]
|
||||
)
|
||||
assert [(s["source"], s["next"]) for s in post_replay] == [
|
||||
("fork", ("ask_human",)),
|
||||
("loop", ()),
|
||||
("loop", ("node_b",)),
|
||||
("loop", ("ask_human",)),
|
||||
("loop", ("node_a",)),
|
||||
("input", ("__start__",)),
|
||||
]
|
||||
|
||||
# --- Resume with a new answer ---
|
||||
called.clear()
|
||||
final_result = await graph.ainvoke(Command(resume="new_answer"), config)
|
||||
assert final_result["value"] == ["a", "human:new_answer", "b"]
|
||||
assert "ask_human" in called
|
||||
assert "node_b" in called
|
||||
|
||||
final = _checkpoint_summary([s async for s in graph.aget_state_history(config)])
|
||||
assert [(s["source"], s["next"], s["values"]) for s in final] == [
|
||||
# New branch (from fork)
|
||||
("loop", (), {"value": ["a", "human:new_answer", "b"]}),
|
||||
("loop", ("node_b",), {"value": ["a", "human:new_answer"]}),
|
||||
("fork", ("ask_human",), {"value": ["a"]}),
|
||||
# Original branch (preserved)
|
||||
("loop", (), {"value": ["a", "human:old_answer", "b"]}),
|
||||
("loop", ("node_b",), {"value": ["a", "human:old_answer"]}),
|
||||
("loop", ("ask_human",), {"value": ["a"]}),
|
||||
("loop", ("node_a",), {"value": []}),
|
||||
("input", ("__start__",), {"value": []}),
|
||||
]
|
||||
|
||||
|
||||
@NEEDS_CONTEXTVARS
|
||||
async def test_subgraph_time_travel_resume_from_first_interrupt_async(
|
||||
async_checkpointer: BaseCheckpointSaver,
|
||||
) -> None:
|
||||
"""Time travel to a subgraph checkpoint at the first interrupt, then
|
||||
resume through both interrupts with new answers.
|
||||
|
||||
Parent: START --> executor (subgraph, checkpointer=True) --> END
|
||||
Executor: START --> step_a --> ask_1 (interrupt) --> ask_2 (interrupt) --> END
|
||||
"""
|
||||
|
||||
called: list[str] = []
|
||||
|
||||
async def step_a(state: State) -> State:
|
||||
called.append("step_a")
|
||||
return {"value": ["step_a_done"]}
|
||||
|
||||
async def ask_1(state: State) -> State:
|
||||
called.append("ask_1")
|
||||
answer = interrupt("Question 1?")
|
||||
return {"value": [f"ask_1:{answer}"]}
|
||||
|
||||
async def ask_2(state: State) -> State:
|
||||
called.append("ask_2")
|
||||
answer = interrupt("Question 2?")
|
||||
return {"value": [f"ask_2:{answer}"]}
|
||||
|
||||
executor = (
|
||||
StateGraph(State)
|
||||
.add_node("step_a", step_a)
|
||||
.add_node("ask_1", ask_1)
|
||||
.add_node("ask_2", ask_2)
|
||||
.add_edge(START, "step_a")
|
||||
.add_edge("step_a", "ask_1")
|
||||
.add_edge("ask_1", "ask_2")
|
||||
.add_edge("ask_2", "__end__")
|
||||
.compile(checkpointer=True)
|
||||
)
|
||||
|
||||
graph = (
|
||||
StateGraph(State)
|
||||
.add_node("executor", executor)
|
||||
.add_edge(START, "executor")
|
||||
.compile(checkpointer=async_checkpointer)
|
||||
)
|
||||
|
||||
config = {"configurable": {"thread_id": "1"}}
|
||||
|
||||
# --- Original run: hit both interrupts and resume ---
|
||||
await graph.ainvoke({"value": []}, config)
|
||||
sub_config_at_first = (
|
||||
(await graph.aget_state(config, subgraphs=True)).tasks[0].state.config
|
||||
)
|
||||
await graph.ainvoke(Command(resume="answer_1"), config)
|
||||
await graph.ainvoke(Command(resume="answer_2"), config)
|
||||
|
||||
original = _checkpoint_summary([s async for s in graph.aget_state_history(config)])
|
||||
assert [(s["source"], s["next"], s["values"]) for s in original] == [
|
||||
("loop", (), {"value": ["step_a_done", "ask_1:answer_1", "ask_2:answer_2"]}),
|
||||
("loop", ("executor",), {"value": []}),
|
||||
("input", ("__start__",), {"value": []}),
|
||||
]
|
||||
|
||||
# --- Time travel to first interrupt's subgraph checkpoint ---
|
||||
called.clear()
|
||||
replay_result = await graph.ainvoke(None, sub_config_at_first)
|
||||
assert replay_result["__interrupt__"][0].value == "Question 1?"
|
||||
assert "step_a" not in called
|
||||
|
||||
# Fork is now the latest parent checkpoint
|
||||
post_tt = _checkpoint_summary([s async for s in graph.aget_state_history(config)])
|
||||
assert [(s["source"], s["next"]) for s in post_tt] == [
|
||||
("fork", ("executor",)), # <-- new fork (latest)
|
||||
("loop", ()), # original done
|
||||
("loop", ("executor",)),
|
||||
("input", ("__start__",)),
|
||||
]
|
||||
|
||||
# --- Resume both interrupts with new answers ---
|
||||
called.clear()
|
||||
resume_1 = await graph.ainvoke(Command(resume="new_answer_1"), config)
|
||||
assert resume_1["__interrupt__"][0].value == "Question 2?"
|
||||
assert "ask_1" in called
|
||||
|
||||
called.clear()
|
||||
resume_2 = await graph.ainvoke(Command(resume="new_answer_2"), config)
|
||||
assert resume_2["value"] == [
|
||||
"step_a_done",
|
||||
"ask_1:new_answer_1",
|
||||
"ask_2:new_answer_2",
|
||||
]
|
||||
|
||||
# Verify final history: original branch preserved, new branch appended
|
||||
final = _checkpoint_summary([s async for s in graph.aget_state_history(config)])
|
||||
assert [(s["source"], s["next"], s["values"]) for s in final] == [
|
||||
# New branch (from time travel fork)
|
||||
(
|
||||
"loop",
|
||||
(),
|
||||
{"value": ["step_a_done", "ask_1:new_answer_1", "ask_2:new_answer_2"]},
|
||||
),
|
||||
("fork", ("executor",), {"value": []}),
|
||||
# Original branch (preserved)
|
||||
("loop", (), {"value": ["step_a_done", "ask_1:answer_1", "ask_2:answer_2"]}),
|
||||
("loop", ("executor",), {"value": []}),
|
||||
("input", ("__start__",), {"value": []}),
|
||||
]
|
||||
|
||||
|
||||
@NEEDS_CONTEXTVARS
|
||||
async def test_subgraph_time_travel_resume_from_second_interrupt_async(
|
||||
async_checkpointer: BaseCheckpointSaver,
|
||||
) -> None:
|
||||
"""Time travel to a subgraph checkpoint at the second interrupt, then
|
||||
resume with a new answer. The first interrupt's answer should be preserved.
|
||||
|
||||
Parent: START --> executor (subgraph, checkpointer=True) --> END
|
||||
Executor: START --> step_a --> ask_1 (interrupt) --> ask_2 (interrupt) --> END
|
||||
"""
|
||||
|
||||
called: list[str] = []
|
||||
|
||||
async def step_a(state: State) -> State:
|
||||
called.append("step_a")
|
||||
return {"value": ["step_a_done"]}
|
||||
|
||||
async def ask_1(state: State) -> State:
|
||||
called.append("ask_1")
|
||||
answer = interrupt("Question 1?")
|
||||
return {"value": [f"ask_1:{answer}"]}
|
||||
|
||||
async def ask_2(state: State) -> State:
|
||||
called.append("ask_2")
|
||||
answer = interrupt("Question 2?")
|
||||
return {"value": [f"ask_2:{answer}"]}
|
||||
|
||||
executor = (
|
||||
StateGraph(State)
|
||||
.add_node("step_a", step_a)
|
||||
.add_node("ask_1", ask_1)
|
||||
.add_node("ask_2", ask_2)
|
||||
.add_edge(START, "step_a")
|
||||
.add_edge("step_a", "ask_1")
|
||||
.add_edge("ask_1", "ask_2")
|
||||
.add_edge("ask_2", "__end__")
|
||||
.compile(checkpointer=True)
|
||||
)
|
||||
|
||||
graph = (
|
||||
StateGraph(State)
|
||||
.add_node("executor", executor)
|
||||
.add_edge(START, "executor")
|
||||
.compile(checkpointer=async_checkpointer)
|
||||
)
|
||||
|
||||
config = {"configurable": {"thread_id": "1"}}
|
||||
|
||||
# --- Original run: hit both interrupts and resume ---
|
||||
await graph.ainvoke({"value": []}, config)
|
||||
await graph.ainvoke(Command(resume="answer_1"), config)
|
||||
sub_config_at_second = (
|
||||
(await graph.aget_state(config, subgraphs=True)).tasks[0].state.config
|
||||
)
|
||||
await graph.ainvoke(Command(resume="answer_2"), config)
|
||||
|
||||
original = _checkpoint_summary([s async for s in graph.aget_state_history(config)])
|
||||
assert [(s["source"], s["next"], s["values"]) for s in original] == [
|
||||
("loop", (), {"value": ["step_a_done", "ask_1:answer_1", "ask_2:answer_2"]}),
|
||||
("loop", ("executor",), {"value": []}),
|
||||
("input", ("__start__",), {"value": []}),
|
||||
]
|
||||
|
||||
# --- Time travel to second interrupt ---
|
||||
called.clear()
|
||||
replay_result = await graph.ainvoke(None, sub_config_at_second)
|
||||
assert replay_result["__interrupt__"][0].value == "Question 2?"
|
||||
assert "step_a" not in called
|
||||
assert "ask_1" not in called
|
||||
|
||||
# Fork is now the latest parent checkpoint
|
||||
post_tt = _checkpoint_summary([s async for s in graph.aget_state_history(config)])
|
||||
assert [(s["source"], s["next"]) for s in post_tt] == [
|
||||
("fork", ("executor",)), # <-- new fork (latest)
|
||||
("loop", ()), # original done
|
||||
("loop", ("executor",)),
|
||||
("input", ("__start__",)),
|
||||
]
|
||||
|
||||
# --- Resume with a new answer for ask_2 only ---
|
||||
called.clear()
|
||||
resume_result = await graph.ainvoke(Command(resume="new_answer_2"), config)
|
||||
assert resume_result["value"] == [
|
||||
"step_a_done",
|
||||
"ask_1:answer_1",
|
||||
"ask_2:new_answer_2",
|
||||
]
|
||||
|
||||
# Verify final history
|
||||
final = _checkpoint_summary([s async for s in graph.aget_state_history(config)])
|
||||
assert [(s["source"], s["next"], s["values"]) for s in final] == [
|
||||
# New branch (from time travel fork)
|
||||
(
|
||||
"loop",
|
||||
(),
|
||||
{"value": ["step_a_done", "ask_1:answer_1", "ask_2:new_answer_2"]},
|
||||
),
|
||||
("fork", ("executor",), {"value": []}),
|
||||
# Original branch (preserved)
|
||||
("loop", (), {"value": ["step_a_done", "ask_1:answer_1", "ask_2:answer_2"]}),
|
||||
("loop", ("executor",), {"value": []}),
|
||||
("input", ("__start__",), {"value": []}),
|
||||
]
|
||||
|
||||
|
||||
@NEEDS_CONTEXTVARS
|
||||
async def test_subgraph_time_travel_checkpoint_pattern_async(
|
||||
async_checkpointer: BaseCheckpointSaver,
|
||||
) -> None:
|
||||
"""Verify the checkpoint pattern created by time travel to a subgraph
|
||||
interrupt. A fork checkpoint should branch from the replay point.
|
||||
|
||||
Parent: START --> executor (subgraph, checkpointer=True) --> END
|
||||
Executor: START --> ask (interrupt) --> END
|
||||
"""
|
||||
|
||||
async def ask(state: State) -> State:
|
||||
answer = interrupt("Q?")
|
||||
return {"value": [f"a:{answer}"]}
|
||||
|
||||
executor = (
|
||||
StateGraph(State)
|
||||
.add_node("ask", ask)
|
||||
.add_edge(START, "ask")
|
||||
.compile(checkpointer=True)
|
||||
)
|
||||
|
||||
graph = (
|
||||
StateGraph(State)
|
||||
.add_node("executor", executor)
|
||||
.add_edge(START, "executor")
|
||||
.compile(checkpointer=async_checkpointer)
|
||||
)
|
||||
|
||||
config = {"configurable": {"thread_id": "1"}}
|
||||
|
||||
# Run until interrupt, then complete
|
||||
await graph.ainvoke({"value": []}, config)
|
||||
sub_config = (await graph.aget_state(config, subgraphs=True)).tasks[0].state.config
|
||||
await graph.ainvoke(Command(resume="first"), config)
|
||||
|
||||
original = _checkpoint_summary([s async for s in graph.aget_state_history(config)])
|
||||
assert [(s["source"], s["next"], s["values"]) for s in original] == [
|
||||
("loop", (), {"value": ["a:first"]}),
|
||||
("loop", ("executor",), {"value": []}),
|
||||
("input", ("__start__",), {"value": []}),
|
||||
]
|
||||
|
||||
# Time travel to the interrupt
|
||||
await graph.ainvoke(None, sub_config)
|
||||
|
||||
# Fork is now the latest, branching from the original replay point
|
||||
post_tt = [s async for s in graph.aget_state_history(config)]
|
||||
post_tt_summary = _checkpoint_summary(post_tt)
|
||||
assert [(s["source"], s["next"]) for s in post_tt_summary] == [
|
||||
("fork", ("executor",)), # <-- new fork (latest)
|
||||
("loop", ()),
|
||||
("loop", ("executor",)), # <-- replay point / fork parent
|
||||
("input", ("__start__",)),
|
||||
]
|
||||
# Verify the fork's parent is the original replay point
|
||||
replay_point_id = sub_config["configurable"]["checkpoint_map"][""]
|
||||
assert post_tt[0].parent_config["configurable"]["checkpoint_id"] == replay_point_id
|
||||
|
||||
# Resume from the fork
|
||||
result = await graph.ainvoke(Command(resume="second"), config)
|
||||
assert result["value"] == ["a:second"]
|
||||
|
||||
final = _checkpoint_summary([s async for s in graph.aget_state_history(config)])
|
||||
assert [(s["source"], s["next"], s["values"]) for s in final] == [
|
||||
# New branch
|
||||
("loop", (), {"value": ["a:second"]}),
|
||||
("fork", ("executor",), {"value": []}),
|
||||
# Original branch
|
||||
("loop", (), {"value": ["a:first"]}),
|
||||
("loop", ("executor",), {"value": []}),
|
||||
("input", ("__start__",), {"value": []}),
|
||||
]
|
||||
|
||||
|
||||
@NEEDS_CONTEXTVARS
|
||||
async def test_3_levels_deep_time_travel_to_first_interrupt_async(
|
||||
async_checkpointer: BaseCheckpointSaver,
|
||||
@@ -2088,13 +2481,15 @@ async def test_replay_creates_branch_preserving_old_checkpoints(
|
||||
# -- Post-replay checkpoint history (newest first) --
|
||||
post_replay_history = [s async for s in graph.aget_state_history(config)]
|
||||
post_summary = _checkpoint_summary(post_replay_history)
|
||||
assert len(post_summary) == 7 # 5 original + 2 new branch checkpoints
|
||||
# 5 original + 1 fork + 2 new branch checkpoints = 8
|
||||
assert len(post_summary) == 8
|
||||
|
||||
assert [s["next"] for s in post_summary] == [
|
||||
(), # new branch tip (C6)
|
||||
("node_c",), # new branch (C5)
|
||||
(), # old branch tip (C4)
|
||||
("node_c",), # old (C3)
|
||||
(), # new branch tip
|
||||
("node_c",), # new branch
|
||||
("node_b",), # fork from replay point
|
||||
(), # old branch tip
|
||||
("node_c",), # old
|
||||
("node_b",), # branch point (C2)
|
||||
("node_a",), # old (C1)
|
||||
("__start__",), # old (C0)
|
||||
@@ -2102,6 +2497,7 @@ async def test_replay_creates_branch_preserving_old_checkpoints(
|
||||
assert [s["values"] for s in post_summary] == [
|
||||
{"value": ["a", "b2", "c"]}, # new branch tip
|
||||
{"value": ["a", "b2"]}, # new: node_b re-ran with call_count=2
|
||||
{"value": ["a"]}, # fork from replay point
|
||||
{"value": ["a", "b1", "c"]}, # old branch tip preserved
|
||||
{"value": ["a", "b1"]}, # old
|
||||
{"value": ["a"]}, # branch point
|
||||
|
||||
@@ -427,3 +427,49 @@ def test_callback_manager_copies_configurable_ids_to_tracing_metadata() -> None:
|
||||
"thread_id": "th-123",
|
||||
"user_id": "uid-1",
|
||||
}
|
||||
|
||||
|
||||
def test_get_nonlocal_names_cached_by_code_object() -> None:
|
||||
"""_get_nonlocal_names caches by code object so repeated calls are cheap."""
|
||||
from langgraph.pregel._utils import _get_nonlocal_names
|
||||
|
||||
x = 1
|
||||
|
||||
def my_func() -> int:
|
||||
return x
|
||||
|
||||
result1 = _get_nonlocal_names(my_func.__code__)
|
||||
result2 = _get_nonlocal_names(my_func.__code__)
|
||||
|
||||
# Same frozenset instance returned (cache hit)
|
||||
assert result1 is result2
|
||||
assert "x" in result1
|
||||
|
||||
|
||||
def test_get_function_nonlocals_fast_path_no_freevars() -> None:
|
||||
"""Functions with no free variables return [] without AST parsing."""
|
||||
from langgraph.pregel._utils import _get_nonlocal_names, get_function_nonlocals
|
||||
|
||||
cache_info_before = _get_nonlocal_names.cache_info()
|
||||
|
||||
def pure_func(a: int, b: int) -> int:
|
||||
return a + b
|
||||
|
||||
result = get_function_nonlocals(pure_func)
|
||||
|
||||
# Should have returned early without touching the cache
|
||||
assert result == []
|
||||
assert _get_nonlocal_names.cache_info().misses == cache_info_before.misses
|
||||
|
||||
|
||||
def test_get_function_nonlocals_returns_closure_values() -> None:
|
||||
"""get_function_nonlocals correctly extracts values from closures."""
|
||||
from langgraph.pregel._utils import get_function_nonlocals
|
||||
|
||||
sentinel = object()
|
||||
|
||||
def my_func() -> object:
|
||||
return sentinel
|
||||
|
||||
result = get_function_nonlocals(my_func)
|
||||
assert sentinel in result
|
||||
|
||||
Generated
+12
-11
@@ -1348,7 +1348,7 @@ wheels = [
|
||||
|
||||
[[package]]
|
||||
name = "langchain-core"
|
||||
version = "1.3.0a2"
|
||||
version = "1.3.0"
|
||||
source = { registry = "https://pypi.org/simple" }
|
||||
dependencies = [
|
||||
{ name = "jsonpatch" },
|
||||
@@ -1360,14 +1360,14 @@ dependencies = [
|
||||
{ name = "typing-extensions" },
|
||||
{ name = "uuid-utils" },
|
||||
]
|
||||
sdist = { url = "https://files.pythonhosted.org/packages/af/bc/0bff31fcaff174d86031cc713471a3e85ed4ec8e5cd95ad0217f2aced20e/langchain_core-1.3.0a2.tar.gz", hash = "sha256:52d978c84552b74b9a3f16c1fced84f9e27cc96d7a67c601925ce6cbc4ea3cf9", size = 854580, upload-time = "2026-04-13T14:37:55.745Z" }
|
||||
sdist = { url = "https://files.pythonhosted.org/packages/92/fe/20190232d9b513242899dbb0c2bb77e31b4d61e343743adbe90ebc2603d2/langchain_core-1.3.0.tar.gz", hash = "sha256:14a39f528bf459aa3aa40d0a7f7f1bae7520d435ef991ae14a4ceb74d8c49046", size = 860755, upload-time = "2026-04-17T14:51:38.298Z" }
|
||||
wheels = [
|
||||
{ url = "https://files.pythonhosted.org/packages/0e/14/03c09686602567059f26af29de0c44546a83af2f2aa29925e61040e43ea2/langchain_core-1.3.0a2-py3-none-any.whl", hash = "sha256:9e929a34f0b0c6c1255e395a1de34f8626893ceb4cdae550a22a0bd18c87be54", size = 510233, upload-time = "2026-04-13T14:37:54.277Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/f8/e2/dbfa347aa072a6dc4cd38d6f9ebfc730b4c14c258c47f480f4c5c546f177/langchain_core-1.3.0-py3-none-any.whl", hash = "sha256:baf16ee028475df177b9ab8869a751c79406d64a6f12125b93802991b566cced", size = 515140, upload-time = "2026-04-17T14:51:36.274Z" },
|
||||
]
|
||||
|
||||
[[package]]
|
||||
name = "langgraph"
|
||||
version = "1.1.7a2"
|
||||
version = "1.1.9"
|
||||
source = { editable = "." }
|
||||
dependencies = [
|
||||
{ name = "langchain-core" },
|
||||
@@ -1439,7 +1439,7 @@ test = [
|
||||
|
||||
[package.metadata]
|
||||
requires-dist = [
|
||||
{ name = "langchain-core", specifier = "==1.3.0a2" },
|
||||
{ name = "langchain-core", specifier = ">=1.3.0,<2" },
|
||||
{ name = "langgraph-checkpoint", editable = "../checkpoint" },
|
||||
{ name = "langgraph-prebuilt", editable = "../prebuilt" },
|
||||
{ name = "langgraph-sdk", editable = "../sdk-py" },
|
||||
@@ -1548,7 +1548,7 @@ wheels = [
|
||||
|
||||
[[package]]
|
||||
name = "langgraph-checkpoint"
|
||||
version = "4.0.1"
|
||||
version = "4.0.2"
|
||||
source = { editable = "../checkpoint" }
|
||||
dependencies = [
|
||||
{ name = "langchain-core" },
|
||||
@@ -1706,7 +1706,7 @@ inmem = [
|
||||
requires-dist = [
|
||||
{ name = "click", specifier = ">=8.1.7" },
|
||||
{ name = "httpx", specifier = ">=0.24.0" },
|
||||
{ name = "langgraph-api", marker = "python_full_version >= '3.11' and extra == 'inmem'", specifier = ">=0.5.35,<0.8.0" },
|
||||
{ name = "langgraph-api", marker = "python_full_version >= '3.11' and extra == 'inmem'", specifier = ">=0.5.35,<0.9.0" },
|
||||
{ name = "langgraph-runtime-inmem", marker = "python_full_version >= '3.11' and extra == 'inmem'", specifier = ">=0.7" },
|
||||
{ name = "langgraph-sdk", marker = "python_full_version >= '3.11'", specifier = ">=0.1.0" },
|
||||
{ name = "pathspec", specifier = ">=0.11.0" },
|
||||
@@ -1742,7 +1742,7 @@ test = [
|
||||
|
||||
[[package]]
|
||||
name = "langgraph-prebuilt"
|
||||
version = "1.0.9"
|
||||
version = "1.0.10"
|
||||
source = { editable = "../prebuilt" }
|
||||
dependencies = [
|
||||
{ name = "langchain-core" },
|
||||
@@ -1852,7 +1852,7 @@ test = [
|
||||
|
||||
[[package]]
|
||||
name = "langsmith"
|
||||
version = "0.6.4"
|
||||
version = "0.7.31"
|
||||
source = { registry = "https://pypi.org/simple" }
|
||||
dependencies = [
|
||||
{ name = "httpx" },
|
||||
@@ -1862,11 +1862,12 @@ dependencies = [
|
||||
{ name = "requests" },
|
||||
{ name = "requests-toolbelt" },
|
||||
{ name = "uuid-utils" },
|
||||
{ name = "xxhash" },
|
||||
{ name = "zstandard" },
|
||||
]
|
||||
sdist = { url = "https://files.pythonhosted.org/packages/e7/85/9c7933052a997da1b85bc5c774f3865e9b1da1c8d71541ea133178b13229/langsmith-0.6.4.tar.gz", hash = "sha256:36f7223a01c218079fbb17da5e536ebbaf5c1468c028abe070aa3ae59bc99ec8", size = 919964, upload-time = "2026-01-15T20:02:28.873Z" }
|
||||
sdist = { url = "https://files.pythonhosted.org/packages/e6/11/696019490992db5c87774dc20515529ef42a01e1d770fb754ed6d9b12fb0/langsmith-0.7.31.tar.gz", hash = "sha256:331ee4f7c26bb5be4022b9859b7d7b122cbf8c9d01d9f530114c1914b0349ffb", size = 1178480, upload-time = "2026-04-14T17:55:41.242Z" }
|
||||
wheels = [
|
||||
{ url = "https://files.pythonhosted.org/packages/66/0f/09a6637a7ba777eb307b7c80852d9ee26438e2bdafbad6fcc849ff9d9192/langsmith-0.6.4-py3-none-any.whl", hash = "sha256:ac4835860160be371042c7adbba3cb267bcf8d96a5ea976c33a8a4acad6c5486", size = 283503, upload-time = "2026-01-15T20:02:26.662Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/1d/a1/a013cf458c301cda86a213dd153ce0a01c93f1ab5833f951e6a44c9763ce/langsmith-0.7.31-py3-none-any.whl", hash = "sha256:0291d49203f6e80dda011af1afda61eb0595a4d697adb684590a8805e1d61fb6", size = 373276, upload-time = "2026-04-14T17:55:39.677Z" },
|
||||
]
|
||||
|
||||
[package.optional-dependencies]
|
||||
|
||||
@@ -614,6 +614,7 @@ class _InjectedArgs:
|
||||
store: str | None
|
||||
runtime: str | None
|
||||
all_injected_keys: set[str]
|
||||
_optional_state_args: set[str]
|
||||
|
||||
|
||||
class ToolNode(RunnableCallable):
|
||||
@@ -807,6 +808,7 @@ class ToolNode(RunnableCallable):
|
||||
context=runtime.context,
|
||||
store=runtime.store,
|
||||
stream_writer=runtime.stream_writer,
|
||||
tools=list(self.tools_by_name.values()),
|
||||
execution_info=runtime.execution_info,
|
||||
server_info=runtime.server_info,
|
||||
)
|
||||
@@ -841,6 +843,7 @@ class ToolNode(RunnableCallable):
|
||||
context=runtime.context,
|
||||
store=runtime.store,
|
||||
stream_writer=runtime.stream_writer,
|
||||
tools=list(self.tools_by_name.values()),
|
||||
execution_info=runtime.execution_info,
|
||||
server_info=runtime.server_info,
|
||||
)
|
||||
@@ -1333,7 +1336,7 @@ class ToolNode(RunnableCallable):
|
||||
return tool_call
|
||||
|
||||
tool_call_copy: ToolCall = copy(tool_call)
|
||||
injected_args = {}
|
||||
injected_args: dict[str, Any] = {}
|
||||
|
||||
# Inject state
|
||||
if injected.state:
|
||||
@@ -1361,14 +1364,20 @@ class ToolNode(RunnableCallable):
|
||||
# Extract state values
|
||||
if isinstance(state, dict):
|
||||
for tool_arg, state_field in injected.state.items():
|
||||
injected_args[tool_arg] = (
|
||||
state[state_field] if state_field else state
|
||||
)
|
||||
if not state_field:
|
||||
injected_args[tool_arg] = state
|
||||
elif state_field in state:
|
||||
injected_args[tool_arg] = state[state_field]
|
||||
elif tool_arg not in injected._optional_state_args:
|
||||
raise KeyError(state_field)
|
||||
else:
|
||||
for tool_arg, state_field in injected.state.items():
|
||||
injected_args[tool_arg] = (
|
||||
getattr(state, state_field) if state_field else state
|
||||
)
|
||||
if not state_field:
|
||||
injected_args[tool_arg] = state
|
||||
elif hasattr(state, state_field):
|
||||
injected_args[tool_arg] = getattr(state, state_field)
|
||||
elif tool_arg not in injected._optional_state_args:
|
||||
raise AttributeError(state_field)
|
||||
|
||||
# Inject store
|
||||
if injected.store:
|
||||
@@ -1569,6 +1578,7 @@ class ToolRuntime(_DirectlyInjectedToolArg, Generic[ContextT, StateT]):
|
||||
- `context`: Runtime context (shared with `Runtime`)
|
||||
- `store`: `BaseStore` instance for persistent storage (shared with `Runtime`)
|
||||
- `stream_writer`: `StreamWriter` for streaming output (shared with `Runtime`)
|
||||
- `tools`: List of all available `BaseTool` instances
|
||||
|
||||
No `Annotated` wrapper is needed - just use `runtime: ToolRuntime`
|
||||
as a parameter.
|
||||
@@ -1611,6 +1621,7 @@ class ToolRuntime(_DirectlyInjectedToolArg, Generic[ContextT, StateT]):
|
||||
context: ContextT
|
||||
config: RunnableConfig
|
||||
stream_writer: StreamWriter
|
||||
tools: list[BaseTool]
|
||||
tool_call_id: str | None
|
||||
store: BaseStore | None
|
||||
execution_info: ExecutionInfo | None = None
|
||||
@@ -1831,9 +1842,17 @@ def _get_injection_from_type(
|
||||
return None
|
||||
|
||||
|
||||
# Cache keyed by tool object identity. Stores (tool, result) to keep a strong
|
||||
# reference that prevents GC from reusing the id for a different object.
|
||||
_INJECTED_ARGS_CACHE: dict[int, tuple[BaseTool, _InjectedArgs]] = {}
|
||||
|
||||
|
||||
def _get_all_injected_args(tool: BaseTool) -> _InjectedArgs:
|
||||
"""Extract all injected arguments from tool in a single pass.
|
||||
|
||||
Results are cached by tool identity so the expensive type-hint and schema
|
||||
inspection only runs once per unique tool object across ToolNode instances.
|
||||
|
||||
This function analyzes both the tool's input schema and function signature
|
||||
to identify all arguments that should be injected (state, store, runtime).
|
||||
|
||||
@@ -1843,6 +1862,11 @@ def _get_all_injected_args(tool: BaseTool) -> _InjectedArgs:
|
||||
Returns:
|
||||
_InjectedArgs structure containing all detected injections.
|
||||
"""
|
||||
tool_id = id(tool)
|
||||
entry = _INJECTED_ARGS_CACHE.get(tool_id)
|
||||
if entry is not None and entry[0] is tool:
|
||||
return entry[1]
|
||||
|
||||
# Get annotations from both schema and function signature
|
||||
full_schema = tool.get_input_schema()
|
||||
schema_annotations = get_all_basemodel_annotations(full_schema)
|
||||
@@ -1859,6 +1883,7 @@ def _get_all_injected_args(tool: BaseTool) -> _InjectedArgs:
|
||||
store_arg: str | None = None
|
||||
runtime_arg: str | None = None
|
||||
all_injected_keys: set[str] = set()
|
||||
_optional_state_args: set[str] = set()
|
||||
|
||||
for name, type_ in all_annotations.items():
|
||||
# Track all InjectedToolArg-annotated params (including custom subclasses)
|
||||
@@ -1873,6 +1898,9 @@ def _get_all_injected_args(tool: BaseTool) -> _InjectedArgs:
|
||||
if state_inj := _get_injection_from_type(type_, InjectedState):
|
||||
if isinstance(state_inj, InjectedState) and state_inj.field:
|
||||
state_args[name] = state_inj.field
|
||||
field_info = full_schema.model_fields.get(name)
|
||||
if field_info and not field_info.is_required():
|
||||
_optional_state_args.add(name)
|
||||
else:
|
||||
state_args[name] = None
|
||||
|
||||
@@ -1884,9 +1912,12 @@ def _get_all_injected_args(tool: BaseTool) -> _InjectedArgs:
|
||||
if _get_injection_from_type(type_, ToolRuntime):
|
||||
runtime_arg = name
|
||||
|
||||
return _InjectedArgs(
|
||||
result = _InjectedArgs(
|
||||
state=state_args,
|
||||
store=store_arg,
|
||||
runtime=runtime_arg,
|
||||
all_injected_keys=all_injected_keys,
|
||||
_optional_state_args=_optional_state_args,
|
||||
)
|
||||
_INJECTED_ARGS_CACHE[tool_id] = (tool, result)
|
||||
return result
|
||||
|
||||
@@ -4,7 +4,7 @@ build-backend = "hatchling.build"
|
||||
|
||||
[project]
|
||||
name = "langgraph-prebuilt"
|
||||
version = "1.0.9"
|
||||
version = "1.0.10"
|
||||
description = "Library with high-level APIs for creating and executing LangGraph agents and tools."
|
||||
authors = []
|
||||
requires-python = ">=3.10"
|
||||
|
||||
@@ -0,0 +1,285 @@
|
||||
"""Test InjectedState with NotRequired state fields.
|
||||
|
||||
This tests the fix for https://github.com/langchain-ai/langchain/issues/35585
|
||||
|
||||
When using InjectedState(<field>) on a tool parameter, and the referenced field is
|
||||
declared as NotRequired in the custom state schema, the ToolNode should gracefully
|
||||
handle missing fields by injecting None instead of raising KeyError.
|
||||
"""
|
||||
|
||||
import sys
|
||||
from typing import Annotated
|
||||
|
||||
import pytest
|
||||
from langchain_core.messages import AIMessage, AnyMessage, HumanMessage, ToolMessage
|
||||
from langchain_core.tools import tool
|
||||
from langgraph.graph.message import add_messages
|
||||
from pydantic import BaseModel, Field
|
||||
from typing_extensions import NotRequired
|
||||
|
||||
from langgraph.prebuilt import InjectedState, ToolNode, create_react_agent
|
||||
from langgraph.prebuilt.chat_agent_executor import AgentState
|
||||
|
||||
from .model import FakeToolCallingModel
|
||||
|
||||
|
||||
class CustomAgentStateWithNotRequired(AgentState):
|
||||
"""Custom state with a NotRequired field (TypedDict style)."""
|
||||
|
||||
city: NotRequired[str]
|
||||
|
||||
|
||||
class CustomAgentStatePydanticWithDefault(BaseModel):
|
||||
"""Custom state with Optional field and default (Pydantic style)."""
|
||||
|
||||
messages: Annotated[list[AnyMessage], add_messages]
|
||||
remaining_steps: int = Field(default=10)
|
||||
city: str | None = Field(default=None)
|
||||
|
||||
|
||||
@tool
|
||||
def get_weather(city: Annotated[str | None, InjectedState("city")] = None) -> str:
|
||||
"""Get weather for a given city."""
|
||||
if city is None:
|
||||
return "No city provided"
|
||||
return f"It's always sunny in {city}!"
|
||||
|
||||
|
||||
def _create_mock_runtime(
|
||||
state: dict | None = None,
|
||||
store=None,
|
||||
):
|
||||
"""Create a mock Runtime for testing ToolNode directly."""
|
||||
from unittest.mock import Mock
|
||||
|
||||
from langgraph.runtime import Runtime
|
||||
|
||||
mock_runtime = Mock(spec=Runtime)
|
||||
mock_runtime.context = {}
|
||||
return mock_runtime
|
||||
|
||||
|
||||
def _create_config_with_runtime(store=None, state=None):
|
||||
"""Create a RunnableConfig with mocked runtime for direct ToolNode testing."""
|
||||
from langgraph.prebuilt.tool_node import ToolRuntime
|
||||
|
||||
tool_runtime = ToolRuntime(
|
||||
state=state or {},
|
||||
config={},
|
||||
context={},
|
||||
store=store,
|
||||
stream_writer=None,
|
||||
tools=[],
|
||||
tool_call_id="test_id",
|
||||
)
|
||||
return {
|
||||
"configurable": {
|
||||
"__pregel_runtime": _create_mock_runtime(),
|
||||
"__tool_runtime__": tool_runtime,
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
@pytest.mark.skipif(
|
||||
sys.version_info < (3, 11),
|
||||
reason="InjectedState field extraction from Optional[Annotated[...]] not supported on Python <3.11",
|
||||
)
|
||||
def test_injected_state_not_required_field_missing_injects_none():
|
||||
"""Test that InjectedState with NotRequired field injects None when field is missing.
|
||||
|
||||
This verifies the fix for https://github.com/langchain-ai/langchain/issues/35585
|
||||
"""
|
||||
tool_node = ToolNode([get_weather])
|
||||
|
||||
tool_call = {
|
||||
"name": "get_weather",
|
||||
"args": {},
|
||||
"id": "call_1",
|
||||
"type": "tool_call",
|
||||
}
|
||||
ai_msg = AIMessage("Let me check the weather", tool_calls=[tool_call])
|
||||
|
||||
# State WITHOUT the "city" field - should inject None instead of raising KeyError
|
||||
state_without_city: CustomAgentStateWithNotRequired = {
|
||||
"messages": [HumanMessage("What's the weather?"), ai_msg],
|
||||
}
|
||||
|
||||
result = tool_node.invoke(
|
||||
state_without_city,
|
||||
config=_create_config_with_runtime(state=state_without_city),
|
||||
)
|
||||
|
||||
assert len(result["messages"]) == 1
|
||||
tool_msg = result["messages"][0]
|
||||
assert isinstance(tool_msg, ToolMessage)
|
||||
assert "No city provided" in tool_msg.content
|
||||
|
||||
|
||||
@pytest.mark.skipif(
|
||||
sys.version_info < (3, 11),
|
||||
reason="InjectedState field extraction from Optional[Annotated[...]] not supported on Python <3.11",
|
||||
)
|
||||
def test_injected_state_not_required_field_present_works():
|
||||
"""Test that InjectedState with NotRequired field works when field IS present."""
|
||||
tool_node = ToolNode([get_weather])
|
||||
|
||||
tool_call = {
|
||||
"name": "get_weather",
|
||||
"args": {},
|
||||
"id": "call_1",
|
||||
"type": "tool_call",
|
||||
}
|
||||
ai_msg = AIMessage("Let me check the weather", tool_calls=[tool_call])
|
||||
|
||||
# State WITH the "city" field - this should work
|
||||
state_with_city: CustomAgentStateWithNotRequired = {
|
||||
"messages": [HumanMessage("What's the weather?"), ai_msg],
|
||||
"city": "San Francisco",
|
||||
}
|
||||
|
||||
result = tool_node.invoke(
|
||||
state_with_city,
|
||||
config=_create_config_with_runtime(state=state_with_city),
|
||||
)
|
||||
|
||||
assert len(result["messages"]) == 1
|
||||
tool_msg = result["messages"][0]
|
||||
assert isinstance(tool_msg, ToolMessage)
|
||||
assert "San Francisco" in tool_msg.content
|
||||
|
||||
|
||||
@pytest.mark.skipif(
|
||||
sys.version_info < (3, 11),
|
||||
reason="InjectedState field extraction from Optional[Annotated[...]] not supported on Python <3.11",
|
||||
)
|
||||
def test_create_react_agent_injected_state_not_required_field_missing():
|
||||
"""Test create_react_agent with InjectedState using NotRequired field that is missing.
|
||||
|
||||
This verifies the fix for https://github.com/langchain-ai/langchain/issues/35585
|
||||
"""
|
||||
model = FakeToolCallingModel(
|
||||
tool_calls=[
|
||||
[{"name": "get_weather", "args": {}, "id": "call_1"}],
|
||||
[], # No more tool calls, agent should stop
|
||||
]
|
||||
)
|
||||
|
||||
agent = create_react_agent(
|
||||
model,
|
||||
tools=[get_weather],
|
||||
state_schema=CustomAgentStateWithNotRequired,
|
||||
)
|
||||
|
||||
# Invoke WITHOUT the city field - should work, injecting None
|
||||
result = agent.invoke(
|
||||
{"messages": [HumanMessage("What's the weather?")]},
|
||||
)
|
||||
|
||||
# Check that the tool was called successfully with None injected
|
||||
messages = result["messages"]
|
||||
tool_messages = [m for m in messages if isinstance(m, ToolMessage)]
|
||||
assert len(tool_messages) == 1
|
||||
assert "No city provided" in tool_messages[0].content
|
||||
|
||||
|
||||
@pytest.mark.skipif(
|
||||
sys.version_info < (3, 11),
|
||||
reason="InjectedState field extraction from Optional[Annotated[...]] not supported on Python <3.11",
|
||||
)
|
||||
def test_create_react_agent_injected_state_not_required_field_present():
|
||||
"""Test create_react_agent with InjectedState using NotRequired field that IS present."""
|
||||
model = FakeToolCallingModel(
|
||||
tool_calls=[
|
||||
[{"name": "get_weather", "args": {}, "id": "call_1"}],
|
||||
[], # No more tool calls, agent should stop
|
||||
]
|
||||
)
|
||||
|
||||
agent = create_react_agent(
|
||||
model,
|
||||
tools=[get_weather],
|
||||
state_schema=CustomAgentStateWithNotRequired,
|
||||
)
|
||||
|
||||
# Invoke WITH the city field
|
||||
result = agent.invoke(
|
||||
{
|
||||
"messages": [HumanMessage("What's the weather?")],
|
||||
"city": "San Francisco",
|
||||
},
|
||||
)
|
||||
|
||||
# Check that the tool was called successfully
|
||||
messages = result["messages"]
|
||||
tool_messages = [m for m in messages if isinstance(m, ToolMessage)]
|
||||
assert len(tool_messages) == 1
|
||||
assert "San Francisco" in tool_messages[0].content
|
||||
|
||||
|
||||
@tool
|
||||
def get_weather_optional(city: Annotated[str | None, InjectedState("city")]) -> str:
|
||||
"""Get weather for a given city (accepts None)."""
|
||||
if city is None:
|
||||
return "Please provide a city!"
|
||||
return f"It's always sunny in {city}!"
|
||||
|
||||
|
||||
def test_pydantic_state_with_default_field_missing_works():
|
||||
"""Test that Pydantic state with Optional field and default=None works when field is missing.
|
||||
|
||||
This is the workaround suggested in the issue comments - using Pydantic BaseModel
|
||||
with `city: Optional[str] = Field(default=None)` instead of TypedDict with NotRequired.
|
||||
"""
|
||||
model = FakeToolCallingModel(
|
||||
tool_calls=[
|
||||
[{"name": "get_weather_optional", "args": {}, "id": "call_1"}],
|
||||
[], # No more tool calls, agent should stop
|
||||
]
|
||||
)
|
||||
|
||||
agent = create_react_agent(
|
||||
model,
|
||||
tools=[get_weather_optional],
|
||||
state_schema=CustomAgentStatePydanticWithDefault,
|
||||
)
|
||||
|
||||
# Invoke WITHOUT the city field - should work because Pydantic provides default
|
||||
result = agent.invoke(
|
||||
{"messages": [HumanMessage("What's the weather?")]},
|
||||
)
|
||||
|
||||
# Check that the tool was called successfully with None
|
||||
messages = result["messages"]
|
||||
tool_messages = [m for m in messages if isinstance(m, ToolMessage)]
|
||||
assert len(tool_messages) == 1
|
||||
assert "Please provide a city!" in tool_messages[0].content
|
||||
|
||||
|
||||
def test_pydantic_state_with_default_field_present_works():
|
||||
"""Test that Pydantic state with Optional field works when field IS present."""
|
||||
model = FakeToolCallingModel(
|
||||
tool_calls=[
|
||||
[{"name": "get_weather_optional", "args": {}, "id": "call_1"}],
|
||||
[], # No more tool calls, agent should stop
|
||||
]
|
||||
)
|
||||
|
||||
agent = create_react_agent(
|
||||
model,
|
||||
tools=[get_weather_optional],
|
||||
state_schema=CustomAgentStatePydanticWithDefault,
|
||||
)
|
||||
|
||||
# Invoke WITH the city field
|
||||
result = agent.invoke(
|
||||
{
|
||||
"messages": [HumanMessage("What's the weather?")],
|
||||
"city": "San Francisco",
|
||||
},
|
||||
)
|
||||
|
||||
# Check that the tool was called successfully
|
||||
messages = result["messages"]
|
||||
tool_messages = [m for m in messages if isinstance(m, ToolMessage)]
|
||||
assert len(tool_messages) == 1
|
||||
assert "San Francisco" in tool_messages[0].content
|
||||
@@ -2016,8 +2016,8 @@ async def test_tool_node_inject_runtime_dynamic_tool_via_wrap_tool_call_async()
|
||||
assert tool_message.tool_call_id == "call_dynamic_2"
|
||||
|
||||
|
||||
def test_tool_runtime_forwards_execution_info_and_server_info() -> None:
|
||||
"""Test that execution_info and server_info are forwarded from Runtime to ToolRuntime."""
|
||||
def test_tool_runtime_forwards_execution_info_server_info_and_tools() -> None:
|
||||
"""Test that execution_info, server_info, and tools are forwarded from Runtime to ToolRuntime."""
|
||||
from langgraph.runtime import ExecutionInfo, ServerInfo
|
||||
|
||||
exec_info = ExecutionInfo(
|
||||
@@ -2043,9 +2043,15 @@ def test_tool_runtime_forwards_execution_info_and_server_info() -> None:
|
||||
"""Tool that captures runtime info."""
|
||||
captured["execution_info"] = runtime.execution_info
|
||||
captured["server_info"] = runtime.server_info
|
||||
captured["tools"] = runtime.tools
|
||||
return "ok"
|
||||
|
||||
node = ToolNode([info_tool])
|
||||
@dec_tool
|
||||
def other_tool(y: int) -> str:
|
||||
"""Another tool available to the runtime."""
|
||||
return str(y)
|
||||
|
||||
node = ToolNode([info_tool, other_tool])
|
||||
tool_call = {
|
||||
"name": "info_tool",
|
||||
"args": {"x": 1},
|
||||
@@ -2054,17 +2060,21 @@ def test_tool_runtime_forwards_execution_info_and_server_info() -> None:
|
||||
}
|
||||
msg = AIMessage("", tool_calls=[tool_call])
|
||||
config: RunnableConfig = {"configurable": {"__pregel_runtime": mock_runtime}}
|
||||
node.invoke({"messages": [msg]}, config=config)
|
||||
result = node.invoke({"messages": [msg]}, config=config)
|
||||
|
||||
assert result["messages"][-1].content == "ok"
|
||||
assert captured["execution_info"] is exec_info
|
||||
assert captured["execution_info"].thread_id == "t-1"
|
||||
assert captured["execution_info"].task_id == "tk-1"
|
||||
assert captured["server_info"] is server_info
|
||||
assert captured["server_info"].assistant_id == "asst-1"
|
||||
assert [tool.name for tool in captured["tools"]] == ["info_tool", "other_tool"]
|
||||
|
||||
|
||||
async def test_tool_runtime_forwards_execution_info_and_server_info_async() -> None:
|
||||
"""Test that execution_info and server_info are forwarded in async path."""
|
||||
async def test_tool_runtime_forwards_execution_info_server_info_and_tools_async() -> (
|
||||
None
|
||||
):
|
||||
"""Test that execution_info, server_info, and tools are forwarded in async path."""
|
||||
from langgraph.runtime import ExecutionInfo, ServerInfo
|
||||
|
||||
exec_info = ExecutionInfo(
|
||||
@@ -2090,9 +2100,15 @@ async def test_tool_runtime_forwards_execution_info_and_server_info_async() -> N
|
||||
"""Async tool that captures runtime info."""
|
||||
captured["execution_info"] = runtime.execution_info
|
||||
captured["server_info"] = runtime.server_info
|
||||
captured["tools"] = runtime.tools
|
||||
return "ok"
|
||||
|
||||
node = ToolNode([info_tool_async])
|
||||
@dec_tool
|
||||
async def other_tool_async(y: int) -> str:
|
||||
"""Another async tool available to the runtime."""
|
||||
return str(y)
|
||||
|
||||
node = ToolNode([info_tool_async, other_tool_async])
|
||||
tool_call = {
|
||||
"name": "info_tool_async",
|
||||
"args": {"x": 1},
|
||||
@@ -2101,12 +2117,17 @@ async def test_tool_runtime_forwards_execution_info_and_server_info_async() -> N
|
||||
}
|
||||
msg = AIMessage("", tool_calls=[tool_call])
|
||||
config: RunnableConfig = {"configurable": {"__pregel_runtime": mock_runtime}}
|
||||
await node.ainvoke({"messages": [msg]}, config=config)
|
||||
result = await node.ainvoke({"messages": [msg]}, config=config)
|
||||
|
||||
assert result["messages"][-1].content == "ok"
|
||||
assert captured["execution_info"] is exec_info
|
||||
assert captured["execution_info"].thread_id == "t-2"
|
||||
assert captured["server_info"] is server_info
|
||||
assert captured["server_info"].graph_id == "graph-2"
|
||||
assert [tool.name for tool in captured["tools"]] == [
|
||||
"info_tool_async",
|
||||
"other_tool_async",
|
||||
]
|
||||
|
||||
|
||||
# --- InjectedToolArg security tests ---
|
||||
|
||||
Generated
+11
-10
@@ -249,7 +249,7 @@ wheels = [
|
||||
|
||||
[[package]]
|
||||
name = "langchain-core"
|
||||
version = "1.3.0a2"
|
||||
version = "1.3.0"
|
||||
source = { registry = "https://pypi.org/simple" }
|
||||
dependencies = [
|
||||
{ name = "jsonpatch" },
|
||||
@@ -261,14 +261,14 @@ dependencies = [
|
||||
{ name = "typing-extensions" },
|
||||
{ name = "uuid-utils" },
|
||||
]
|
||||
sdist = { url = "https://files.pythonhosted.org/packages/af/bc/0bff31fcaff174d86031cc713471a3e85ed4ec8e5cd95ad0217f2aced20e/langchain_core-1.3.0a2.tar.gz", hash = "sha256:52d978c84552b74b9a3f16c1fced84f9e27cc96d7a67c601925ce6cbc4ea3cf9", size = 854580, upload-time = "2026-04-13T14:37:55.745Z" }
|
||||
sdist = { url = "https://files.pythonhosted.org/packages/92/fe/20190232d9b513242899dbb0c2bb77e31b4d61e343743adbe90ebc2603d2/langchain_core-1.3.0.tar.gz", hash = "sha256:14a39f528bf459aa3aa40d0a7f7f1bae7520d435ef991ae14a4ceb74d8c49046", size = 860755, upload-time = "2026-04-17T14:51:38.298Z" }
|
||||
wheels = [
|
||||
{ url = "https://files.pythonhosted.org/packages/0e/14/03c09686602567059f26af29de0c44546a83af2f2aa29925e61040e43ea2/langchain_core-1.3.0a2-py3-none-any.whl", hash = "sha256:9e929a34f0b0c6c1255e395a1de34f8626893ceb4cdae550a22a0bd18c87be54", size = 510233, upload-time = "2026-04-13T14:37:54.277Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/f8/e2/dbfa347aa072a6dc4cd38d6f9ebfc730b4c14c258c47f480f4c5c546f177/langchain_core-1.3.0-py3-none-any.whl", hash = "sha256:baf16ee028475df177b9ab8869a751c79406d64a6f12125b93802991b566cced", size = 515140, upload-time = "2026-04-17T14:51:36.274Z" },
|
||||
]
|
||||
|
||||
[[package]]
|
||||
name = "langgraph"
|
||||
version = "1.1.7a2"
|
||||
version = "1.1.9"
|
||||
source = { editable = "../langgraph" }
|
||||
dependencies = [
|
||||
{ name = "langchain-core" },
|
||||
@@ -281,7 +281,7 @@ dependencies = [
|
||||
|
||||
[package.metadata]
|
||||
requires-dist = [
|
||||
{ name = "langchain-core", specifier = "==1.3.0a2" },
|
||||
{ name = "langchain-core", specifier = ">=1.3.0,<2" },
|
||||
{ name = "langgraph-checkpoint", editable = "../checkpoint" },
|
||||
{ name = "langgraph-prebuilt", editable = "." },
|
||||
{ name = "langgraph-sdk", editable = "../sdk-py" },
|
||||
@@ -352,7 +352,7 @@ test = [
|
||||
|
||||
[[package]]
|
||||
name = "langgraph-checkpoint"
|
||||
version = "4.0.1"
|
||||
version = "4.0.2"
|
||||
source = { editable = "../checkpoint" }
|
||||
dependencies = [
|
||||
{ name = "langchain-core" },
|
||||
@@ -490,7 +490,7 @@ test = [
|
||||
|
||||
[[package]]
|
||||
name = "langgraph-prebuilt"
|
||||
version = "1.0.9"
|
||||
version = "1.0.10"
|
||||
source = { editable = "." }
|
||||
dependencies = [
|
||||
{ name = "langchain-core" },
|
||||
@@ -619,7 +619,7 @@ test = [
|
||||
|
||||
[[package]]
|
||||
name = "langsmith"
|
||||
version = "0.6.4"
|
||||
version = "0.7.31"
|
||||
source = { registry = "https://pypi.org/simple" }
|
||||
dependencies = [
|
||||
{ name = "httpx" },
|
||||
@@ -629,11 +629,12 @@ dependencies = [
|
||||
{ name = "requests" },
|
||||
{ name = "requests-toolbelt" },
|
||||
{ name = "uuid-utils" },
|
||||
{ name = "xxhash" },
|
||||
{ name = "zstandard" },
|
||||
]
|
||||
sdist = { url = "https://files.pythonhosted.org/packages/e7/85/9c7933052a997da1b85bc5c774f3865e9b1da1c8d71541ea133178b13229/langsmith-0.6.4.tar.gz", hash = "sha256:36f7223a01c218079fbb17da5e536ebbaf5c1468c028abe070aa3ae59bc99ec8", size = 919964, upload-time = "2026-01-15T20:02:28.873Z" }
|
||||
sdist = { url = "https://files.pythonhosted.org/packages/e6/11/696019490992db5c87774dc20515529ef42a01e1d770fb754ed6d9b12fb0/langsmith-0.7.31.tar.gz", hash = "sha256:331ee4f7c26bb5be4022b9859b7d7b122cbf8c9d01d9f530114c1914b0349ffb", size = 1178480, upload-time = "2026-04-14T17:55:41.242Z" }
|
||||
wheels = [
|
||||
{ url = "https://files.pythonhosted.org/packages/66/0f/09a6637a7ba777eb307b7c80852d9ee26438e2bdafbad6fcc849ff9d9192/langsmith-0.6.4-py3-none-any.whl", hash = "sha256:ac4835860160be371042c7adbba3cb267bcf8d96a5ea976c33a8a4acad6c5486", size = 283503, upload-time = "2026-01-15T20:02:26.662Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/1d/a1/a013cf458c301cda86a213dd153ce0a01c93f1ab5833f951e6a44c9763ce/langsmith-0.7.31-py3-none-any.whl", hash = "sha256:0291d49203f6e80dda011af1afda61eb0595a4d697adb684590a8805e1d61fb6", size = 373276, upload-time = "2026-04-14T17:55:39.677Z" },
|
||||
]
|
||||
|
||||
[[package]]
|
||||
|
||||
Generated
+10
-10
@@ -262,7 +262,7 @@ wheels = [
|
||||
|
||||
[[package]]
|
||||
name = "langchain-core"
|
||||
version = "1.3.0a2"
|
||||
version = "1.3.0"
|
||||
source = { registry = "https://pypi.org/simple" }
|
||||
dependencies = [
|
||||
{ name = "jsonpatch" },
|
||||
@@ -274,14 +274,14 @@ dependencies = [
|
||||
{ name = "typing-extensions" },
|
||||
{ name = "uuid-utils" },
|
||||
]
|
||||
sdist = { url = "https://files.pythonhosted.org/packages/af/bc/0bff31fcaff174d86031cc713471a3e85ed4ec8e5cd95ad0217f2aced20e/langchain_core-1.3.0a2.tar.gz", hash = "sha256:52d978c84552b74b9a3f16c1fced84f9e27cc96d7a67c601925ce6cbc4ea3cf9", size = 854580, upload-time = "2026-04-13T14:37:55.745Z" }
|
||||
sdist = { url = "https://files.pythonhosted.org/packages/92/fe/20190232d9b513242899dbb0c2bb77e31b4d61e343743adbe90ebc2603d2/langchain_core-1.3.0.tar.gz", hash = "sha256:14a39f528bf459aa3aa40d0a7f7f1bae7520d435ef991ae14a4ceb74d8c49046", size = 860755, upload-time = "2026-04-17T14:51:38.298Z" }
|
||||
wheels = [
|
||||
{ url = "https://files.pythonhosted.org/packages/0e/14/03c09686602567059f26af29de0c44546a83af2f2aa29925e61040e43ea2/langchain_core-1.3.0a2-py3-none-any.whl", hash = "sha256:9e929a34f0b0c6c1255e395a1de34f8626893ceb4cdae550a22a0bd18c87be54", size = 510233, upload-time = "2026-04-13T14:37:54.277Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/f8/e2/dbfa347aa072a6dc4cd38d6f9ebfc730b4c14c258c47f480f4c5c546f177/langchain_core-1.3.0-py3-none-any.whl", hash = "sha256:baf16ee028475df177b9ab8869a751c79406d64a6f12125b93802991b566cced", size = 515140, upload-time = "2026-04-17T14:51:36.274Z" },
|
||||
]
|
||||
|
||||
[[package]]
|
||||
name = "langgraph"
|
||||
version = "1.1.7a2"
|
||||
version = "1.1.9"
|
||||
source = { editable = "../langgraph" }
|
||||
dependencies = [
|
||||
{ name = "langchain-core" },
|
||||
@@ -294,7 +294,7 @@ dependencies = [
|
||||
|
||||
[package.metadata]
|
||||
requires-dist = [
|
||||
{ name = "langchain-core", specifier = "==1.3.0a2" },
|
||||
{ name = "langchain-core", specifier = ">=1.3.0,<2" },
|
||||
{ name = "langgraph-checkpoint", editable = "../checkpoint" },
|
||||
{ name = "langgraph-prebuilt", editable = "../prebuilt" },
|
||||
{ name = "langgraph-sdk", editable = "." },
|
||||
@@ -365,7 +365,7 @@ test = [
|
||||
|
||||
[[package]]
|
||||
name = "langgraph-checkpoint"
|
||||
version = "4.0.1"
|
||||
version = "4.0.2"
|
||||
source = { editable = "../checkpoint" }
|
||||
dependencies = [
|
||||
{ name = "langchain-core" },
|
||||
@@ -413,7 +413,7 @@ test = [
|
||||
|
||||
[[package]]
|
||||
name = "langgraph-prebuilt"
|
||||
version = "1.0.9"
|
||||
version = "1.0.10"
|
||||
source = { editable = "../prebuilt" }
|
||||
dependencies = [
|
||||
{ name = "langchain-core" },
|
||||
@@ -534,7 +534,7 @@ test = [
|
||||
|
||||
[[package]]
|
||||
name = "langsmith"
|
||||
version = "0.7.20"
|
||||
version = "0.7.31"
|
||||
source = { registry = "https://pypi.org/simple" }
|
||||
dependencies = [
|
||||
{ name = "httpx" },
|
||||
@@ -547,9 +547,9 @@ dependencies = [
|
||||
{ name = "xxhash" },
|
||||
{ name = "zstandard" },
|
||||
]
|
||||
sdist = { url = "https://files.pythonhosted.org/packages/80/c6/cbdc6638207f68a3c61ec0b64fa593f6b11de3170d03c852238c31b54960/langsmith-0.7.20.tar.gz", hash = "sha256:fa983a74f75648ee0e80d3f9751162b6f9a438896d5f9bdb6cba9abda451e234", size = 1134732, upload-time = "2026-03-18T00:03:39.129Z" }
|
||||
sdist = { url = "https://files.pythonhosted.org/packages/e6/11/696019490992db5c87774dc20515529ef42a01e1d770fb754ed6d9b12fb0/langsmith-0.7.31.tar.gz", hash = "sha256:331ee4f7c26bb5be4022b9859b7d7b122cbf8c9d01d9f530114c1914b0349ffb", size = 1178480, upload-time = "2026-04-14T17:55:41.242Z" }
|
||||
wheels = [
|
||||
{ url = "https://files.pythonhosted.org/packages/e8/46/9294d4f49de6a8f08e8b83907713ca545459d87d474c6add15d31a36f5dc/langsmith-0.7.20-py3-none-any.whl", hash = "sha256:0162faf791ea48d69009a12a3da917468556b99cf5d5fcacbb8cda064262e118", size = 359314, upload-time = "2026-03-18T00:03:37.59Z" },
|
||||
{ url = "https://files.pythonhosted.org/packages/1d/a1/a013cf458c301cda86a213dd153ce0a01c93f1ab5833f951e6a44c9763ce/langsmith-0.7.31-py3-none-any.whl", hash = "sha256:0291d49203f6e80dda011af1afda61eb0595a4d697adb684590a8805e1d61fb6", size = 373276, upload-time = "2026-04-14T17:55:39.677Z" },
|
||||
]
|
||||
|
||||
[[package]]
|
||||
|
||||
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# feat(channels): DeltaChannel — O(N) incremental checkpoint storage
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||||
|
||||
## The problem
|
||||
|
||||
LangGraph checkpoints store the **full accumulated value** of every channel on every step. For a `messages` channel backed by `add_messages`, that means each checkpoint blob contains the entire conversation history up to that point.
|
||||
|
||||
Storage cost grows **O(N²)** in the number of turns:
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||||
|
||||
| Step | Checkpoint blob |
|
||||
|------|----------------|
|
||||
| 1 | [msg_1] |
|
||||
| 2 | [msg_1, msg_2] |
|
||||
| N | [msg_1, ..., msg_N] |
|
||||
|
||||
At 100K tokens of conversation data, a single thread accumulates ~250 MB; with large messages or file attachments costs scale even faster.
|
||||
|
||||
## The fix: `DeltaChannel`
|
||||
|
||||
`DeltaChannel` is an opt-in wrapper around any binary reducer that stores only a **sentinel marker** in `checkpoint_blobs` rather than the full accumulated value. The actual per-step writes stay in `checkpoint_writes` (which every checkpointer already writes unconditionally). At read time the saver walks the ancestor chain, collects all writes for the channel, and replays them through the reducer.
|
||||
|
||||
Storage scales **O(N)** — the sentinel blob is effectively zero bytes, and the writes table already exists.
|
||||
|
||||
```python
|
||||
from langgraph.channels.delta import DeltaChannel
|
||||
from langgraph.graph.message import add_messages
|
||||
|
||||
class State(TypedDict):
|
||||
# Before: O(N²) storage
|
||||
messages: Annotated[list[AnyMessage], add_messages]
|
||||
|
||||
# After: O(N) storage
|
||||
messages: Annotated[list[AnyMessage], DeltaChannel(add_messages)]
|
||||
```
|
||||
|
||||
## Benchmarks
|
||||
|
||||
Simulated with realistic paragraph-length messages (~100 tokens each, ~400 chars). Each turn = one human + one AI message (~200 tokens total).
|
||||
|
||||
### Storage (InMemorySaver)
|
||||
|
||||
| turns | ctx | add_msgs | delta | savings |
|
||||
|------:|----:|---------:|------:|--------:|
|
||||
| 10 | ~2K tok | 108.6 KB | 4.0 KB | 27x |
|
||||
| 25 | ~5K tok | 649.0 KB | 10.1 KB | 64x |
|
||||
| 50 | ~10K tok | 2.6 MB | 20.2 KB | 126x |
|
||||
| 100 | ~20K tok | 10.2 MB | 40.5 KB | 251x |
|
||||
| 500 | ~100K tok | 252.6 MB | 202.8 KB | 1245x |
|
||||
|
||||
Savings grow with N because `add_messages` is O(N²) while `DeltaChannel` is O(N). The sentinel blob itself is essentially zero bytes.
|
||||
|
||||
### Read latency (avg of 5 `get_state` calls = cost per `invoke`)
|
||||
|
||||
| turns | ctx | add_msgs | delta |
|
||||
|------:|----:|---------:|------:|
|
||||
| 10 | ~2K tok | 0.1ms | 0.2ms |
|
||||
| 25 | ~5K tok | 0.2ms | 0.5ms |
|
||||
| 50 | ~10K tok | 0.4ms | 1.5ms |
|
||||
| 100 | ~20K tok | 0.7ms | 4.8ms |
|
||||
| 500 | ~100K tok | 5.8ms | 114.9ms |
|
||||
|
||||
**This cost is paid once per `invoke`/`stream` call, not per node.** Within a single invocation, all channels are loaded into memory once at the start and shared across every node — there is no per-node reconstruction. The 114.9ms at 500 turns is what you pay each time a user sends a new message, not on each step of the graph.
|
||||
|
||||
## How it works
|
||||
|
||||
**Write:** `DeltaChannel.checkpoint()` always emits `DeltaChannelSentinel()` — a tiny marker (zero payload bytes) stored in `checkpoint_blobs`. Per-step writes flow into `checkpoint_writes` as they normally do for every channel.
|
||||
|
||||
**Read:** The saver detects `DeltaChannelSentinel` values in `channel_values` and replaces them by calling `get_channel_writes` / `aget_channel_writes`, which walks the ancestor checkpoint chain and collects all writes for that channel (oldest→newest). `DeltaChannel.from_checkpoint()` replays those writes through the operator to reconstruct the full value.
|
||||
|
||||
**Saver implementations:**
|
||||
- `InMemorySaver` — direct dict traversal of `self.storage` and `self.writes`, no I/O
|
||||
- `PostgresSaver` (sync + async) — two queries: one cheap ID walk across the thread, one `ANY()` fetch of writes; no recursive CTE
|
||||
- All other savers — `BaseCheckpointSaver.get_channel_writes` fallback via `list()`, with a re-entrancy guard to prevent infinite recursion
|
||||
|
||||
## Changes
|
||||
|
||||
**`libs/checkpoint`**
|
||||
- `base/__init__.py` — add `DeltaChannelSentinel` marker dataclass; add `get_channel_writes` / `aget_channel_writes` to `BaseCheckpointSaver` with a `list()`-based fallback and re-entrancy guard
|
||||
|
||||
**`libs/checkpoint/memory`**
|
||||
- `memory/__init__.py` — `get_channel_writes` via direct dict traversal; `_resolve_delta_channels` helper called in `get_tuple` / `aget_tuple` to replace sentinels with reconstructed write lists
|
||||
|
||||
**`libs/langgraph`**
|
||||
- `channels/delta.py` — `DeltaChannel` implementation: `checkpoint()` always emits sentinel, `from_checkpoint()` replays writes list
|
||||
- `channels/__init__.py` — export `DeltaChannel`
|
||||
- `graph/state.py` — recognize `DeltaChannel` as a valid channel annotation
|
||||
- `pregel/_checkpoint.py` / `pregel/_loop.py` — wire `after_checkpoint` hook; call it after each checkpointing step so `DeltaChannel` can advance internal state
|
||||
|
||||
**`libs/checkpoint-postgres`**
|
||||
- `postgres/base.py` — `_get_channel_writes_cur` two-query ancestor walk (sync); `_resolve_delta_channels` called after `_load_blobs`
|
||||
- `postgres/aio.py` — `_aget_channel_writes_cur` (async counterpart)
|
||||
|
||||
## Open questions
|
||||
|
||||
**Should we add a compile-time capability check?**
|
||||
|
||||
Currently misconfiguring `DeltaChannel` with an unsupported saver only errors at runtime on first reload. A protocol-based check at `compile()` time would give an early warning without requiring a manual boolean flag.
|
||||
|
||||
**`snapshot_every` for bounded reconstruction cost?**
|
||||
|
||||
Both per-invoke read latency and total write wall time grow O(N) per invoke / O(N²) total as the conversation lengthens. A `snapshot_every` parameter — periodically store a full snapshot in `checkpoint_blobs` to cap chain depth — would bound reconstruction cost and is a natural follow-up once the core design is stable.
|
||||
|
||||
## Backwards compatibility
|
||||
|
||||
| Scenario | Behaviour |
|
||||
|----------|-----------|
|
||||
| Existing graph using `add_messages` | Unaffected — no code or schema changes |
|
||||
| `DeltaChannel` loading an old full-list checkpoint blob | Handled via backwards-compat path in `from_checkpoint` |
|
||||
| `DeltaChannel` with `InMemorySaver` or `PostgresSaver` | Fully supported |
|
||||
| Time-travel to a past checkpoint | Ancestor walk uses the version at that checkpoint — correct by construction |
|
||||
| `Overwrite` value | Resets the effective chain; reconstruction starts from that step |
|
||||
|
||||
## Test plan
|
||||
|
||||
- [x] `DeltaChannel` unit tests: `update` → `checkpoint` lifecycle, `from_checkpoint` chain replay, backwards-compat with plain list, `Overwrite` resets chain
|
||||
- [x] `InMemorySaver` `get_channel_writes`: assembles write list from dict storage
|
||||
- [x] Serde round-trip for `DeltaChannelSentinel`
|
||||
- [x] End-to-end graph tests: multi-turn conversations accumulate correctly, time-travel reconstructs correct partial history
|
||||
- [x] `PostgresSaver` two-query chain reconstruction (sync + async)
|
||||
- [x] `BaseCheckpointSaver` fallback path via `list()` with re-entrancy guard
|
||||
- [x] Storage benchmark: `DeltaChannel` uses strictly less storage than `add_messages` at all measured turn counts
|
||||
|
||||
---
|
||||
|
||||
## Changes from previous base branch
|
||||
|
||||
The previous version stored `DeltaValue` objects (containing the per-step writes) directly in `checkpoint_blobs` and used a `DeltaChainValue` to represent the assembled chain. Reconstruction required a dedicated `get_delta_chain` / `aget_delta_chain` protocol and a recursive CTE in Postgres.
|
||||
|
||||
This version pivots to a simpler design:
|
||||
- **Sentinel in blobs, writes in `checkpoint_writes`** — `checkpoint_blobs` stores only a zero-byte `DeltaChannelSentinel` marker. The actual per-step data already lives in `checkpoint_writes` (written unconditionally by every checkpointer), so blob storage is essentially free. This is why storage savings jump to 1245x at 500 turns.
|
||||
- **No custom serde type for the delta payload** — `DeltaValue` / `DeltaChainValue` and the `"delta"` serde type tag are gone. Writes are deserialized with the same serde path they were originally written with.
|
||||
- **Postgres: two queries instead of a recursive CTE** — fetch all `(checkpoint_id, parent_checkpoint_id)` pairs for the thread, walk the ancestor chain in Python, then fetch writes with a plain `ANY()` filter.
|
||||
- **Universal fallback on `BaseCheckpointSaver`** — the base class now provides `get_channel_writes` via `list()`, so any third-party saver works without modification.
|
||||
- **`snapshot_every` removed** — deferred as a follow-up; the simpler design is easier to reason about and delivers larger storage savings.
|
||||
Reference in New Issue
Block a user