* fix(stream): read 'reasoning' SSE field for vLLM 0.20.2 / NIM vLLM 0.20.2 / NVIDIA NIM emit reasoning-parser output in the `reasoning` delta field; older builds use `reasoning_content`. stream_llm() read only the latter, so reasoning from models like Nemotron-3-Nano (--reasoning-parser) was silently dropped and never rendered. Accept either field. Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com> * fix(agent): keep reasoning_content only on the latest assistant turn The agent loop echoed each round's reasoning back as `reasoning_content` on every assistant turn, assuming vendors ignore it. Nemotron's chat template re-injects ALL prior reasoning_content as <think> blocks, and the loop is trimmed only once (before it starts) — so reasoning accumulated unbounded across rounds, bloating context and feeding the model its own prior reasoning, which reinforced repetition/looping. Strip reasoning_content from earlier assistant turns so only the most recent round carries it (still satisfies DeepSeek's thinking-mode follow-up requirement). Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com> * fix(agent-ui): wrap each round's reasoning in its own <think> block The streamed think-tag wrapper gated on whole-message substring checks (accumulated.includes('<think>')), which only ever wrapped ONE reasoning block per message. A multi-round agent response has a reasoning phase per round, so once round 1 closed its <think>...</think>, rounds 2+ reasoning was emitted unwrapped and leaked into the visible answer. Replace the substring checks with a stateful open/close flag that toggles per think/answer cycle, so each round's reasoning gets its own collapsible block. Single-turn chat is unchanged (one open, one close). Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com> * test(stream): reasoning/reasoning_content delta surfaces as thinking chunk Covers @pewdiepie-archdaemon's requested regression: a streamed {reasoning: ...} delta emits a thinking chunk while {content: ...} streams as normal content; plus the older reasoning_content field for backward compat. Mirrors the #591 scenario. Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com> --------- Co-authored-by: Claude Opus 4.8 (1M context) <noreply@anthropic.com>
99 lines
3.0 KiB
Python
99 lines
3.0 KiB
Python
"""Regression: a streamed `reasoning` delta (vLLM 0.20.2 / NIM / Ollama) must surface
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as a thinking chunk, while a `content` delta still streams as normal content. Also
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covers the older `reasoning_content` field name for backward compatibility.
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"""
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import asyncio
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import json
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from src import llm_core
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class _FakeResp:
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status_code = 200
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def __init__(self, lines):
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self._lines = lines
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async def aiter_lines(self):
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for ln in self._lines:
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yield ln
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async def aread(self): # only used on non-200; present for safety
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return b""
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class _FakeStreamCtx:
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def __init__(self, lines):
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self._lines = lines
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async def __aenter__(self):
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return _FakeResp(self._lines)
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async def __aexit__(self, *exc):
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return False
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class _FakeClient:
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def __init__(self, lines):
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self._lines = lines
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def stream(self, *args, **kwargs):
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return _FakeStreamCtx(self._lines)
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def _run_stream(model, lines, monkeypatch):
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"""Drive stream_llm against a faked upstream and return parsed SSE payloads."""
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monkeypatch.setattr(llm_core, "_get_http_client", lambda: _FakeClient(lines))
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async def _go():
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out = []
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async for chunk in llm_core.stream_llm(
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"http://nim-nano:8000/v1/chat/completions",
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model,
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[{"role": "user", "content": "hi"}],
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):
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out.append(chunk)
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return out
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parsed = []
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for chunk in asyncio.run(_go()):
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for raw in chunk.splitlines():
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raw = raw.strip()
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if raw.startswith("data:"):
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payload = raw[5:].strip()
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if payload.startswith("{"):
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try:
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parsed.append(json.loads(payload))
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except json.JSONDecodeError:
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pass
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return [p for p in parsed if "delta" in p]
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def test_reasoning_field_emits_thinking_chunk(monkeypatch):
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deltas = _run_stream(
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"nvidia/nemotron-3-nano",
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[
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'data: {"choices":[{"delta":{"reasoning":"weighing options"}}]}',
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'data: {"choices":[{"delta":{"content":"Hello"}}]}',
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"data: [DONE]",
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],
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monkeypatch,
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)
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assert any(d.get("thinking") and "weighing options" in d["delta"] for d in deltas), deltas
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assert any((not d.get("thinking")) and d["delta"] == "Hello" for d in deltas), deltas
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def test_reasoning_content_field_still_supported(monkeypatch):
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# Older builds emit `reasoning_content`; it must still surface as thinking.
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deltas = _run_stream(
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"some-thinking-model",
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[
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'data: {"choices":[{"delta":{"reasoning_content":"older field"}}]}',
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'data: {"choices":[{"delta":{"content":"Answer"}}]}',
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"data: [DONE]",
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],
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monkeypatch,
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)
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assert any(d.get("thinking") and "older field" in d["delta"] for d in deltas), deltas
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assert any((not d.get("thinking")) and d["delta"] == "Answer" for d in deltas), deltas
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