mirror of
https://github.com/NCBM/plyngent.git
synced 2026-07-23 05:55:16 +08:00
core/lmproto: add stream decoder and raw SSE tool-call merger
StreamChatCompletionChunk tolerant of partial tool calls; merge_stream_tool_calls accumulates by index from raw bytes.
This commit is contained in:
@@ -5,7 +5,14 @@ import niquests
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from niquests.auth import BearerTokenAuth
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from .config import OpenAIConfig # noqa: TC001
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from .model import ChatCompletionChunk, ChatCompletionResponse, ChatCompletionsParam
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from .model import (
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AssistantFunctionTool,
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AssistantFunctionToolCall,
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ChatCompletionChunk,
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ChatCompletionResponse,
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ChatCompletionsParam,
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StreamChatCompletionChunk,
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)
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if TYPE_CHECKING:
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from collections.abc import AsyncIterator
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@@ -19,6 +26,7 @@ class BaseOpenAIClient:
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encoder: msgspec.json.Encoder
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decoder: msgspec.json.Decoder[ChatCompletionResponse]
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chunk_decoder: msgspec.json.Decoder[ChatCompletionChunk]
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stream_decoder: msgspec.json.Decoder[StreamChatCompletionChunk]
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def __init__(self, config: OpenAIConfig) -> None:
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self.session = niquests.AsyncSession(
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@@ -28,6 +36,7 @@ class BaseOpenAIClient:
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self.encoder = msgspec.json.Encoder()
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self.decoder = msgspec.json.Decoder(ChatCompletionResponse)
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self.chunk_decoder = msgspec.json.Decoder(ChatCompletionChunk)
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self.stream_decoder = msgspec.json.Decoder(StreamChatCompletionChunk)
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async def _parse_sse(self, resp: AsyncResponse) -> AsyncIterator[ChatCompletionChunk]:
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lines = resp.iter_lines()
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@@ -37,6 +46,33 @@ class BaseOpenAIClient:
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if line.startswith(b"data: "):
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yield self.chunk_decoder.decode(line[6:])
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async def _parse_sse_stream(self, resp: AsyncResponse) -> AsyncIterator[StreamChatCompletionChunk]:
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"""Parse SSE using the tolerant ::class:`StreamChatCompletionChunk` decoder."""
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lines = resp.iter_lines()
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async for line in lines:
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if not line or line == b"data: [DONE]":
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continue
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if line.startswith(b"data: "):
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yield self.stream_decoder.decode(line[6:])
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async def chat_completions_raw_lines(self, param: ChatCompletionsParam) -> AsyncIterator[bytes]:
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"""Yield raw SSE ``data: `` payload bytes for manual accumulation.
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Each yielded bytes object is a complete JSON object (no ``data: `` prefix).
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"""
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data = self.encoder.encode(msgspec.structs.replace(param, stream=True))
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resp = await self.session.post(
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"/chat/completions",
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data=data,
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headers={"Content-Type": "application/json"},
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stream=True,
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)
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async for line in resp.iter_lines():
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if not line or line == b"data: [DONE]":
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continue
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if line.startswith(b"data: "):
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yield line[6:]
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class OpenAIClient(BaseOpenAIClient):
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def __init__(self, config: OpenAIConfig) -> None:
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@@ -73,3 +109,75 @@ class OpenAIClient(BaseOpenAIClient):
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)
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assert resp.content is not None
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return self.decoder.decode(resp.content)
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def _merge_tool_entry(
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merge: dict[int, dict[str, object]],
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tc: dict[str, object],
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) -> None:
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idx = tc.get("index", 0)
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if not isinstance(idx, int):
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idx = 0
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if idx not in merge:
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merge[idx] = {"id": "", "function": {"name": "", "arguments": ""}}
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entry = merge[idx]
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if isinstance(tc.get("id"), str) and tc["id"]:
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entry["id"] = tc["id"]
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fn_raw = tc.get("function", {})
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if isinstance(fn_raw, dict):
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entry_fn = entry["function"]
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if isinstance(entry_fn, dict):
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if isinstance(fn_raw.get("name"), str) and fn_raw["name"]:
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entry_fn["name"] = fn_raw["name"]
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if isinstance(fn_raw.get("arguments"), str) and fn_raw["arguments"]:
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entry_fn["arguments"] = entry_fn.get("arguments", "") + fn_raw["arguments"]
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def _stream_choices(raw_line: bytes) -> list[dict[str, object]]:
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"""Extract ``choices`` list from a raw SSE payload byte string, or empty list."""
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import json as _json
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try:
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data: object = _json.loads(raw_line)
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except _json.JSONDecodeError:
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return []
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if not isinstance(data, dict):
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return []
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choices = data.get("choices", [])
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if not isinstance(choices, list):
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return []
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return [c for c in choices if isinstance(c, dict)]
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def merge_stream_tool_calls(raw_lines: list[bytes]) -> list[AssistantFunctionToolCall]:
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"""Accumulate streaming tool-call deltas by index across raw SSE payload bytes."""
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merge: dict[int, dict[str, object]] = {}
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for raw in raw_lines:
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for choice in _stream_choices(raw):
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delta = choice.get("delta", {})
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if not isinstance(delta, dict):
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continue
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for tc in delta.get("tool_calls", []):
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if isinstance(tc, dict):
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_merge_tool_entry(merge, tc)
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result: list[AssistantFunctionToolCall] = []
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for idx in sorted(merge):
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entry = merge[idx]
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if not isinstance(entry, dict):
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continue
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entry_id: object = entry.get("id", "")
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entry_fn: object = entry.get("function", {})
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if not isinstance(entry_fn, dict):
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continue
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fn_name: object = entry_fn.get("name", "")
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fn_args: object = entry_fn.get("arguments", "")
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if not entry_id or not fn_name:
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continue
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result.append(
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AssistantFunctionToolCall(
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id=str(entry_id),
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function=AssistantFunctionTool(name=str(fn_name), arguments=str(fn_args or "")),
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)
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)
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return result
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@@ -239,3 +239,25 @@ class ChatCompletionChunk(Struct):
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model: str
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choices: list[ChunkChoice]
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usage: dict[str, Any] | Unset = UNSET
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# -- Streaming-tolerant models (ignore partial tool calls in stream) --
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class StreamDelta(Struct):
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"""Delta that accepts any extra fields (partial tool calls), ignoring them."""
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content: str | Unset = UNSET
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class StreamChunkChoice(Struct):
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index: int
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delta: StreamDelta
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finish_reason: FinishReason | None | Unset = UNSET
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class StreamChatCompletionChunk(Struct):
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id: str
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object: Literal["chat.completion.chunk"]
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created: int
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model: str
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choices: list[StreamChunkChoice]
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usage: dict[str, Any] | Unset = UNSET
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