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@@ -7,7 +7,7 @@ AGENT_URL = os.getenv("AGENT_URL", "http://ai-agent:8080")
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OPENAI_MODEL = os.getenv("OPENAI_MODEL", "gpt-4o-mini")
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def _read_api_key():
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# Prefer file from Docker secret if present
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# Prefer Docker secret if available
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path = os.getenv("OPENAI_API_KEY_FILE", "/run/secrets/openai_api_key")
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if os.path.exists(path):
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return open(path, "r").read().strip()
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@@ -18,7 +18,7 @@ SYSTEM_PROMPT = (
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"with fields: action (scale|restart_service), params (dict). No prose. Examples: "
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'{"action":"scale","params":{"service":"weblabs_php","replicas":3}} '
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'or {"action":"restart_service","params":{"service":"weblabs_php"}}. '
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"Only produce valid JSON. If unclear, choose the safest no-op."
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"Only produce valid JSON."
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)
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class ChatIn(BaseModel):
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@@ -36,14 +36,16 @@ async def chat(inp: ChatIn):
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if not api_key:
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raise HTTPException(500, "Missing OPENAI_API_KEY (env or secret).")
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# Call OpenAI Responses API
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url = "https://api.openai.com/v1/responses"
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url = "https://api.openai.com/v1/chat/completions"
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headers = {"Authorization": f"Bearer {api_key}", "Content-Type": "application/json"}
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body = {
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"model": OPENAI_MODEL,
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"input": f"{SYSTEM_PROMPT}\nUSER: {inp.prompt}",
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"max_output_tokens": 300,
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"temperature": 0.1
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"response_format": {"type": "json_object"},
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"temperature": 0.1,
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"messages": [
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{"role": "system", "content": SYSTEM_PROMPT},
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{"role": "user", "content": inp.prompt},
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],
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}
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async with httpx.AsyncClient(timeout=30) as client:
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@@ -51,22 +53,12 @@ async def chat(inp: ChatIn):
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if r.status_code >= 400:
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raise HTTPException(502, f"OpenAI error: {r.text}")
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data = r.json()
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# Responses API returns output in 'output_text' (or tool messages). Try common fields.
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content = data.get("output_text") or data.get("content") or ""
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if isinstance(content, list):
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# Some responses return a list of content parts; take text from first text part
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for part in content:
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if part.get("type") in ("output_text", "text") and part.get("text"):
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content = part["text"]
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break
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if not isinstance(content, str):
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content = str(content)
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# Parse JSON from the model output
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try:
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content = data["choices"][0]["message"]["content"]
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cmd = json.loads(content)
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except Exception as e:
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raise HTTPException(500, f"Failed to parse model JSON: {e}; content={content[:200]}")
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raise HTTPException(500, f"Failed to parse model JSON: {e}; raw={str(data)[:300]}")
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# Forward to the agent
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async with httpx.AsyncClient(timeout=15) as client:
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