a2a-source-edit: write agent.py
This commit is contained in:
673
agent.py
673
agent.py
@@ -1,189 +1,588 @@
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"""quote-judge-studio-v1 agent.
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"""QuoteJudge Studio v1: deterministic quote comparison with durable per-user state."""
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Starter stack:
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- DeepAgents for tool-calling orchestration
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- Caller-provided LLM credentials via ctx.llm
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- A tiny model-call middleware hook you can replace with tracing,
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routing, rate limits, or policy checks
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"""
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from __future__ import annotations
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from __future__ import annotations
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import base64
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import csv
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import hashlib
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import io
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import json
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import json
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from pathlib import Path
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import os
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from typing import Any
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import re
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from datetime import datetime, timezone
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from decimal import Decimal, ROUND_HALF_UP
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from typing import Annotated, Any
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from pydantic import BaseModel
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from pydantic import BaseModel, Field, field_validator
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import a2a_pack as a2a
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import a2a_pack as a2a
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from a2a_pack import (
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from a2a_pack import (
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A2AAgent,
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A2AAgent,
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LLMProvisioning,
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AgentDatabase,
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{{ auth_type }},
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AgentDatabaseEnv,
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AgentDatabaseMigrations,
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AgentPlatformResources,
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PlatformUserAuth,
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Pricing,
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Pricing,
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Resources,
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RunContext,
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RunContext,
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State,
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WorkspaceAccess,
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WorkspaceAccess,
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WorkspaceMode,
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WorkspaceMode,
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)
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)
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from a2a_pack.context import LLMCreds
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from a2a_pack.workspace import FileUpload, UploadedFile
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try: # psycopg is installed in the deployed image via requirements.txt.
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import psycopg
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from psycopg.rows import dict_row
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from psycopg.types.json import Jsonb
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except Exception: # pragma: no cover - lets `a2a card` run before deps install.
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psycopg = None
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dict_row = None
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Jsonb = None
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COMPARISON_ID_RE = re.compile(r"^[A-Za-z0-9][A-Za-z0-9_.-]{0,79}$")
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MAX_QUOTES = 10
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MAX_BROWSER_DOCUMENTS = 4
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MAX_UPLOAD_BYTES = 64 * 1024
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ALLOWED_UPLOAD_MEDIA_TYPES = {
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"application/json",
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"text/json",
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"text/csv",
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"application/csv",
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"application/vnd.ms-excel",
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"text/plain",
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}
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# Local/dev fallback only. Hosted production uses DATABASE_URL and managed Postgres.
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_LOCAL_COMPARISONS: dict[tuple[str, str], dict[str, Any]] = {}
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_LOCAL_RECEIPTS: list[dict[str, Any]] = []
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class QuoteJudgeStudioV1Config(BaseModel):
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class QuoteJudgeStudioV1Config(BaseModel):
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pass
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"""Runtime config is intentionally empty; the app uses platform auth + DB."""
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SYSTEM_PROMPT = """\
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class QuoteInput(BaseModel):
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You are a compact tool-calling agent.
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vendor: str = Field(..., min_length=1, max_length=120)
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quantity: int = Field(..., ge=1, le=1_000_000)
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unit_price: float = Field(..., ge=0, le=1_000_000_000)
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delivery_days: int = Field(..., ge=0, le=3650)
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warranty_months: int = Field(..., ge=0, le=240)
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Use the text_stats tool when the user asks about text, counts, summaries,
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@field_validator("vendor")
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or anything where exact length/word numbers would help. Mention tool results
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@classmethod
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briefly instead of dumping raw JSON.
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def clean_vendor(cls, value: str) -> str:
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"""
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cleaned = " ".join(str(value or "").split())
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if not cleaned:
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RUNTIME_SKILLS_DIR = "quote-judge-studio-v1/.deepagents/skills/"
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raise ValueError("vendor is required")
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DEEPAGENTS_RECURSION_LIMIT = 500
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return cleaned
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class QuoteJudgeStudioV1(A2AAgent[QuoteJudgeStudioV1Config, {{ auth_type }}]):
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class QuoteWeights(BaseModel):
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price: float = Field(..., ge=0, le=1000)
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delivery: float = Field(..., ge=0, le=1000)
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warranty: float = Field(..., ge=0, le=1000)
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@field_validator("warranty")
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@classmethod
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def at_least_one_weight(cls, value: float, info: Any) -> float:
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values = dict(info.data)
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total = float(values.get("price") or 0) + float(values.get("delivery") or 0) + float(value or 0)
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if total <= 0:
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raise ValueError("at least one weight must be greater than zero")
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return value
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class BrowserDocument(BaseModel):
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filename: str = Field(..., min_length=1, max_length=160)
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media_type: str = Field(..., min_length=1, max_length=120)
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data_base64: str = Field(..., min_length=1, max_length=90_000)
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@field_validator("filename")
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@classmethod
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def safe_filename(cls, value: str) -> str:
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cleaned = str(value or "").strip().replace("\\", "/")
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if not cleaned or "/" in cleaned or cleaned in {".", ".."}:
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raise ValueError("filename must be a simple file name")
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return cleaned
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@field_validator("media_type")
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@classmethod
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def known_media_type(cls, value: str) -> str:
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cleaned = str(value or "").split(";", 1)[0].strip().lower()
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if cleaned not in ALLOWED_UPLOAD_MEDIA_TYPES:
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raise ValueError("unsupported media type")
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return cleaned
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class QuoteJudgeStudioV1(A2AAgent[QuoteJudgeStudioV1Config, PlatformUserAuth]):
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name = "quote-judge-studio-v1"
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name = "quote-judge-studio-v1"
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description = "QuoteJudge compares vendor quotes with weighted price, delivery, and warranty scoring, persists per-user comparisons, supports browser uploads, and serves a polished packed product UI."
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description = (
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"QuoteJudge compares vendor quotes with weighted price, delivery, and warranty "
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"scoring, persists per-user comparisons, supports browser uploads, and serves "
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"a polished packed product UI."
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)
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version = "0.1.0"
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version = "0.1.0"
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config_model = QuoteJudgeStudioV1Config
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config_model = QuoteJudgeStudioV1Config
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auth_model = {{ auth_type }}
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auth_model = PlatformUserAuth
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# Hosted generated agents read the caller's saved LLM credential through
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state = State.DURABLE
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# ctx.llm. The platform may proxy that credential through LiteLLM, but agent
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# code never reads provider keys, LiteLLM master keys, or OPENAI_API_KEY
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# directly.
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llm_provisioning = LLMProvisioning.PLATFORM
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pricing = Pricing(
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pricing = Pricing(
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price_per_call_usd=0.0,
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price_per_call_usd=0.0,
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caller_pays_llm=True,
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caller_pays_llm=False,
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notes="Starter agent uses the caller's saved LLM credential via ctx.llm.",
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notes="Deterministic quote scoring; no LLM credential or provider key is required.",
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)
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)
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resources = Resources(cpu="500m", memory="512Mi", max_runtime_seconds=600)
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tools_used = ("postgres", "mcp", "packed-react-frontend")
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workspace_access = WorkspaceAccess.dynamic(
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workspace_access = WorkspaceAccess.dynamic(
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max_files=64,
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max_files=8,
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allowed_modes=(WorkspaceMode.READ_ONLY, WorkspaceMode.READ_WRITE_OVERLAY),
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allowed_modes=(WorkspaceMode.READ_ONLY, WorkspaceMode.READ_WRITE_OVERLAY),
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require_reason=False,
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require_reason=False,
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max_total_size_bytes=MAX_UPLOAD_BYTES * MAX_BROWSER_DOCUMENTS,
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)
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platform_resources = AgentPlatformResources(
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databases=(
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AgentDatabase(
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name="quote-judge-studio-v1-data",
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scope="user",
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access_mode="read_write",
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env=AgentDatabaseEnv(url="DATABASE_URL"),
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migrations=AgentDatabaseMigrations(path="db/migrations"),
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),
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)
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)
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)
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tools_used = ("deepagents", "langchain")
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@a2a.tool(description="Ask the starter DeepAgent to answer with tool calls when useful")
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@a2a.tool(
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async def ask(self, ctx: RunContext[{{ auth_type }}], prompt: str) -> str:
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description="Compare two to ten vendor quotes with weighted price, delivery, and warranty scoring; persist the result and a production receipt.",
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creds = ctx.llm
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timeout_seconds=30,
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await ctx.emit_progress(f"llm: {creds.model} via {creds.source}")
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idempotent=True,
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if not creds.api_key:
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cost_class="deterministic",
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return (
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"LLM key required. Add an LLM credential in Settings > LLM "
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"credentials before running this agent; for local --invoke "
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"runs set AGENT_LLM_KEY."
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)
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)
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graph = self._build_deep_agent(ctx=ctx, creds=creds)
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async def compare_quotes(
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state = await graph.ainvoke(
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{"messages": [{"role": "user", "content": prompt}]},
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config={"recursion_limit": DEEPAGENTS_RECURSION_LIMIT},
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)
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await ctx.emit_progress("deepagent finished")
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return _last_message_text(state)
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def _build_deep_agent(
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self,
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self,
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*,
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ctx: RunContext[PlatformUserAuth],
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ctx: RunContext[{{ auth_type }}],
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comparison_id: str,
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creds: LLMCreds,
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quotes: list[QuoteInput],
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) -> Any:
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weights: QuoteWeights,
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# Lazy imports keep `a2a card` usable before local dependencies are
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) -> dict[str, Any]:
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# installed. `a2a deploy` installs requirements.txt during the build.
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tenant = _tenant_key(ctx)
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from a2a_pack.deepagents import create_a2a_deep_agent
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validation = _validate_comparison_request(comparison_id, quotes, weights)
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from langchain.agents.middleware import wrap_model_call
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if validation is not None:
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from langchain_core.tools import tool
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return validation
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@tool
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result = _score_quotes(comparison_id, quotes, weights)
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def text_stats(text: str) -> str:
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receipt = _build_receipt(
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"""Return exact word, character, and line counts for text."""
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tenant_key=tenant,
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words = [part for part in text.split() if part.strip()]
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skill_name="compare_quotes",
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return json.dumps(
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comparison_id=comparison_id,
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inputs={
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"comparison_id": comparison_id,
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"quotes": [quote.model_dump(mode="json") for quote in quotes],
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"weights": weights.model_dump(mode="json"),
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},
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result=result,
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)
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persisted = _persist_comparison(tenant, comparison_id, result, receipt)
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result["receipt"] = {
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"receipt_id": receipt["receipt_id"],
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"persisted": persisted["ok"],
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"created_at": receipt["created_at"],
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}
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if persisted.get("warning"):
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result.setdefault("warnings", []).append(persisted["warning"])
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await ctx.emit_progress(f"saved comparison {comparison_id}")
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return result
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@a2a.tool(
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description="Reopen a saved quote comparison for the authenticated user.",
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timeout_seconds=20,
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idempotent=True,
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cost_class="deterministic",
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)
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async def get_comparison(
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self,
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ctx: RunContext[PlatformUserAuth],
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comparison_id: str,
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) -> dict[str, Any]:
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tenant = _tenant_key(ctx)
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if not _valid_comparison_id(comparison_id):
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return {"ok": False, "code": "invalid_comparison_id", "comparison_id": comparison_id}
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record = _load_comparison(tenant, comparison_id)
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if record is None:
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return {"ok": False, "code": "comparison_not_found", "comparison_id": comparison_id}
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result = dict(record["result"])
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result["comparison_id"] = comparison_id
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result["ok"] = True
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result["reloaded"] = True
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result["saved_at"] = record.get("updated_at")
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if record.get("latest_receipt_id"):
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result["latest_receipt_id"] = record["latest_receipt_id"]
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return result
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@a2a.tool(
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description="Browser-safe upload bridge: accept bounded base64 JSON/CSV/text quote documents, parse them, compare, persist, and receipt the result.",
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timeout_seconds=30,
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idempotent=True,
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cost_class="deterministic",
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|
)
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async def compare_quotes_from_browser_upload(
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|
self,
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|
ctx: RunContext[PlatformUserAuth],
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|
comparison_id: str,
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|
documents: list[BrowserDocument],
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|
weights: QuoteWeights,
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|
) -> dict[str, Any]:
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|
parsed = _decode_browser_documents(documents)
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|
if not parsed["ok"]:
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|
return {"ok": False, "comparison_id": comparison_id, **parsed}
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quotes = parsed["quotes"]
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|
result = await self.compare_quotes(ctx, comparison_id, quotes, weights)
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|
result["source"] = "browser_upload"
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|
result["parsed_documents"] = parsed["documents"]
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|
return result
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|
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|
@a2a.tool(
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|
description="External Agent API upload path: accept a typed FileUpload JSON/CSV/text document, parse quotes, compare, persist, and receipt the result.",
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|
timeout_seconds=30,
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|
idempotent=True,
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|
cost_class="deterministic",
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|
)
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|
async def compare_quotes_from_file(
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|
self,
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|
ctx: RunContext[PlatformUserAuth],
|
||||||
|
comparison_id: str,
|
||||||
|
document: Annotated[
|
||||||
|
UploadedFile,
|
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|
FileUpload(
|
||||||
|
accept=sorted(ALLOWED_UPLOAD_MEDIA_TYPES),
|
||||||
|
max_bytes=MAX_UPLOAD_BYTES,
|
||||||
|
description="JSON or CSV quote file with vendor, quantity, unit_price, delivery_days, warranty_months.",
|
||||||
|
),
|
||||||
|
],
|
||||||
|
weights: QuoteWeights,
|
||||||
|
) -> dict[str, Any]:
|
||||||
|
if document.size_bytes > MAX_UPLOAD_BYTES:
|
||||||
|
return {"ok": False, "code": "file_too_large", "comparison_id": comparison_id}
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||||||
|
media_type = (document.media_type or "").split(";", 1)[0].strip().lower()
|
||||||
|
if media_type not in ALLOWED_UPLOAD_MEDIA_TYPES:
|
||||||
|
return {"ok": False, "code": "unsupported_media_type", "comparison_id": comparison_id}
|
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|
try:
|
||||||
|
reader = getattr(ctx.workspace, "read_bytes", None)
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||||||
|
if reader is None:
|
||||||
|
return {"ok": False, "code": "workspace_read_unavailable", "comparison_id": comparison_id}
|
||||||
|
data = reader(document.path)
|
||||||
|
except Exception:
|
||||||
|
return {"ok": False, "code": "file_read_failed", "comparison_id": comparison_id}
|
||||||
|
parsed = _parse_quote_document(data, filename=document.filename, media_type=media_type)
|
||||||
|
if not parsed["ok"]:
|
||||||
|
return {"ok": False, "comparison_id": comparison_id, **parsed}
|
||||||
|
result = await self.compare_quotes(ctx, comparison_id, parsed["quotes"], weights)
|
||||||
|
result["source"] = "file_upload"
|
||||||
|
result["parsed_documents"] = [{"filename": document.filename, "quotes": len(parsed["quotes"])}]
|
||||||
|
return result
|
||||||
|
|
||||||
|
|
||||||
|
def _tenant_key(ctx: RunContext[PlatformUserAuth]) -> str:
|
||||||
|
auth = ctx.auth
|
||||||
|
stable = auth.user_id if auth.user_id is not None else (auth.sub or auth.email)
|
||||||
|
return f"user:{stable}"
|
||||||
|
|
||||||
|
|
||||||
|
def _valid_comparison_id(value: str) -> bool:
|
||||||
|
return bool(COMPARISON_ID_RE.fullmatch(str(value or "").strip()))
|
||||||
|
|
||||||
|
|
||||||
|
def _validate_comparison_request(
|
||||||
|
comparison_id: str,
|
||||||
|
quotes: list[QuoteInput],
|
||||||
|
weights: QuoteWeights,
|
||||||
|
) -> dict[str, Any] | None:
|
||||||
|
if not _valid_comparison_id(comparison_id):
|
||||||
|
return {"ok": False, "code": "invalid_comparison_id", "comparison_id": comparison_id}
|
||||||
|
if len(quotes) < 2:
|
||||||
|
return {"ok": False, "code": "at_least_two_quotes_required", "comparison_id": comparison_id}
|
||||||
|
if len(quotes) > MAX_QUOTES:
|
||||||
|
return {"ok": False, "code": "too_many_quotes", "comparison_id": comparison_id}
|
||||||
|
vendor_names = [quote.vendor.casefold() for quote in quotes]
|
||||||
|
if len(set(vendor_names)) != len(vendor_names):
|
||||||
|
return {"ok": False, "code": "duplicate_vendor", "comparison_id": comparison_id}
|
||||||
|
if weights.price + weights.delivery + weights.warranty <= 0:
|
||||||
|
return {"ok": False, "code": "weights_sum_to_zero", "comparison_id": comparison_id}
|
||||||
|
return None
|
||||||
|
|
||||||
|
|
||||||
|
def _score_quotes(comparison_id: str, quotes: list[QuoteInput], weights: QuoteWeights) -> dict[str, Any]:
|
||||||
|
total_weight = Decimal(str(weights.price + weights.delivery + weights.warranty))
|
||||||
|
prices = [_money(q.unit_price) for q in quotes]
|
||||||
|
totals = [_money(q.unit_price * q.quantity) for q in quotes]
|
||||||
|
deliveries = [Decimal(q.delivery_days) for q in quotes]
|
||||||
|
warranties = [Decimal(q.warranty_months) for q in quotes]
|
||||||
|
|
||||||
|
rows: list[dict[str, Any]] = []
|
||||||
|
for index, quote in enumerate(quotes):
|
||||||
|
price_score = _lower_is_better(totals[index], totals)
|
||||||
|
delivery_score = _lower_is_better(deliveries[index], deliveries)
|
||||||
|
warranty_score = _higher_is_better(warranties[index], warranties)
|
||||||
|
weighted_score = (
|
||||||
|
price_score * Decimal(str(weights.price))
|
||||||
|
+ delivery_score * Decimal(str(weights.delivery))
|
||||||
|
+ warranty_score * Decimal(str(weights.warranty))
|
||||||
|
) / total_weight
|
||||||
|
rows.append(
|
||||||
{
|
{
|
||||||
"characters": len(text),
|
"vendor": quote.vendor,
|
||||||
"words": len(words),
|
"quantity": quote.quantity,
|
||||||
"lines": len(text.splitlines()) or 1,
|
"unit_price": _float2(prices[index]),
|
||||||
|
"total_price": _float2(totals[index]),
|
||||||
|
"delivery_days": quote.delivery_days,
|
||||||
|
"warranty_months": quote.warranty_months,
|
||||||
|
"score": _float2(weighted_score),
|
||||||
|
"score_breakdown": {
|
||||||
|
"price": _float2(price_score),
|
||||||
|
"delivery": _float2(delivery_score),
|
||||||
|
"warranty": _float2(warranty_score),
|
||||||
|
},
|
||||||
}
|
}
|
||||||
)
|
)
|
||||||
|
rows.sort(key=lambda item: (-item["score"], item["total_price"], item["delivery_days"], -item["warranty_months"], item["vendor"]))
|
||||||
|
for rank, row in enumerate(rows, start=1):
|
||||||
|
row["rank"] = rank
|
||||||
|
recommendation = rows[0]
|
||||||
|
return {
|
||||||
|
"ok": True,
|
||||||
|
"comparison_id": comparison_id,
|
||||||
|
"recommendation": {
|
||||||
|
"vendor": recommendation["vendor"],
|
||||||
|
"score": recommendation["score"],
|
||||||
|
"total_price": recommendation["total_price"],
|
||||||
|
"delivery_days": recommendation["delivery_days"],
|
||||||
|
"warranty_months": recommendation["warranty_months"],
|
||||||
|
"rationale": (
|
||||||
|
f"{recommendation['vendor']} has the best weighted score using "
|
||||||
|
f"price={weights.price:g}, delivery={weights.delivery:g}, warranty={weights.warranty:g}."
|
||||||
|
),
|
||||||
|
},
|
||||||
|
"rankings": rows,
|
||||||
|
"weights": weights.model_dump(mode="json"),
|
||||||
|
"quote_count": len(quotes),
|
||||||
|
}
|
||||||
|
|
||||||
@wrap_model_call
|
|
||||||
async def log_model_call(request: Any, handler: Any) -> Any:
|
|
||||||
messages = request.state.get("messages", [])
|
|
||||||
print(
|
|
||||||
"[middleware] model_call "
|
|
||||||
f"model={creds.model} source={creds.source} messages={len(messages)}"
|
|
||||||
)
|
|
||||||
return await handler(request)
|
|
||||||
|
|
||||||
backend = ctx.workspace_backend()
|
def _money(value: float | int | Decimal) -> Decimal:
|
||||||
skill_sources = _seed_runtime_skills(backend, ctx)
|
return Decimal(str(value)).quantize(Decimal("0.01"), rounding=ROUND_HALF_UP)
|
||||||
# create_a2a_deep_agent resolves provider:model strings with
|
|
||||||
# langchain.init_chat_model from ctx.llm, preserving LiteLLM routing,
|
|
||||||
# provider-specific extra body, and runtime model overrides.
|
def _float2(value: Decimal) -> float:
|
||||||
return create_a2a_deep_agent(
|
return float(value.quantize(Decimal("0.01"), rounding=ROUND_HALF_UP))
|
||||||
ctx,
|
|
||||||
creds=creds,
|
|
||||||
backend=backend,
|
def _lower_is_better(value: Decimal, values: list[Decimal]) -> Decimal:
|
||||||
skills=skill_sources or None,
|
low, high = min(values), max(values)
|
||||||
tools=[text_stats],
|
if low == high:
|
||||||
middleware=[log_model_call],
|
return Decimal("100")
|
||||||
system_prompt=SYSTEM_PROMPT,
|
return ((high - value) / (high - low) * Decimal("100")).quantize(Decimal("0.01"), rounding=ROUND_HALF_UP)
|
||||||
|
|
||||||
|
|
||||||
|
def _higher_is_better(value: Decimal, values: list[Decimal]) -> Decimal:
|
||||||
|
low, high = min(values), max(values)
|
||||||
|
if low == high:
|
||||||
|
return Decimal("100")
|
||||||
|
return ((value - low) / (high - low) * Decimal("100")).quantize(Decimal("0.01"), rounding=ROUND_HALF_UP)
|
||||||
|
|
||||||
|
|
||||||
|
def _decode_browser_documents(documents: list[BrowserDocument]) -> dict[str, Any]:
|
||||||
|
if not documents:
|
||||||
|
return {"ok": False, "code": "no_documents_provided"}
|
||||||
|
if len(documents) > MAX_BROWSER_DOCUMENTS:
|
||||||
|
return {"ok": False, "code": "too_many_documents"}
|
||||||
|
all_quotes: list[QuoteInput] = []
|
||||||
|
summaries: list[dict[str, Any]] = []
|
||||||
|
for doc in documents:
|
||||||
|
try:
|
||||||
|
data = base64.b64decode(doc.data_base64.encode("ascii"), validate=True)
|
||||||
|
except Exception:
|
||||||
|
return {"ok": False, "code": "invalid_base64", "filename": doc.filename}
|
||||||
|
if len(data) > MAX_UPLOAD_BYTES:
|
||||||
|
return {"ok": False, "code": "file_too_large", "filename": doc.filename}
|
||||||
|
parsed = _parse_quote_document(data, filename=doc.filename, media_type=doc.media_type)
|
||||||
|
if not parsed["ok"]:
|
||||||
|
return {"ok": False, "filename": doc.filename, **parsed}
|
||||||
|
all_quotes.extend(parsed["quotes"])
|
||||||
|
summaries.append({"filename": doc.filename, "quotes": len(parsed["quotes"])})
|
||||||
|
return {"ok": True, "quotes": all_quotes, "documents": summaries}
|
||||||
|
|
||||||
|
|
||||||
|
def _parse_quote_document(data: bytes, *, filename: str, media_type: str) -> dict[str, Any]:
|
||||||
|
if len(data) > MAX_UPLOAD_BYTES:
|
||||||
|
return {"ok": False, "code": "file_too_large"}
|
||||||
|
text = data.decode("utf-8-sig", errors="replace").strip()
|
||||||
|
if not text:
|
||||||
|
return {"ok": False, "code": "empty_document"}
|
||||||
|
try:
|
||||||
|
if media_type in {"application/json", "text/json"} or filename.lower().endswith(".json"):
|
||||||
|
raw = json.loads(text)
|
||||||
|
items = raw.get("quotes", raw) if isinstance(raw, dict) else raw
|
||||||
|
if not isinstance(items, list):
|
||||||
|
return {"ok": False, "code": "quotes_array_required"}
|
||||||
|
return {"ok": True, "quotes": [QuoteInput.model_validate(item) for item in items]}
|
||||||
|
rows = list(csv.DictReader(io.StringIO(text)))
|
||||||
|
if rows and rows[0]:
|
||||||
|
return {"ok": True, "quotes": [_quote_from_row(row) for row in rows]}
|
||||||
|
return {"ok": False, "code": "unsupported_document_format"}
|
||||||
|
except Exception:
|
||||||
|
return {"ok": False, "code": "document_parse_failed"}
|
||||||
|
|
||||||
|
|
||||||
|
def _quote_from_row(row: dict[str, Any]) -> QuoteInput:
|
||||||
|
normalized = {str(key).strip().lower(): value for key, value in row.items()}
|
||||||
|
return QuoteInput(
|
||||||
|
vendor=str(normalized.get("vendor") or normalized.get("supplier") or ""),
|
||||||
|
quantity=int(float(normalized.get("quantity") or normalized.get("qty") or 0)),
|
||||||
|
unit_price=float(normalized.get("unit_price") or normalized.get("price") or 0),
|
||||||
|
delivery_days=int(float(normalized.get("delivery_days") or normalized.get("delivery") or 0)),
|
||||||
|
warranty_months=int(float(normalized.get("warranty_months") or normalized.get("warranty") or 0)),
|
||||||
)
|
)
|
||||||
|
|
||||||
|
|
||||||
def _runtime_skills_root(ctx: RunContext[Any]) -> str:
|
def _database_url() -> str | None:
|
||||||
workspace = getattr(ctx, "_workspace", None)
|
return os.environ.get("DATABASE_URL")
|
||||||
prefixes = tuple(getattr(workspace, "write_prefixes", ()) or ())
|
|
||||||
if not prefixes:
|
|
||||||
outputs_prefix = getattr(workspace, "outputs_prefix", None)
|
|
||||||
prefixes = (outputs_prefix or "outputs/",)
|
|
||||||
prefix = str(prefixes[0]).strip("/")
|
|
||||||
return f"/{prefix}/{RUNTIME_SKILLS_DIR}" if prefix else f"/{RUNTIME_SKILLS_DIR}"
|
|
||||||
|
|
||||||
|
|
||||||
def _seed_runtime_skills(backend: Any, ctx: RunContext[Any]) -> list[str]:
|
def _connect() -> Any:
|
||||||
"""Copy packaged DeepAgents skills into the invocation workspace.
|
if psycopg is None:
|
||||||
|
raise RuntimeError("psycopg is not installed")
|
||||||
|
url = _database_url()
|
||||||
|
if not url:
|
||||||
|
raise RuntimeError("DATABASE_URL is not configured")
|
||||||
|
return psycopg.connect(url, row_factory=dict_row)
|
||||||
|
|
||||||
DeepAgents loads skills from its backend, while source-controlled
|
|
||||||
``skills/`` folders live in the image. This bridge lets generated agents
|
def _persist_comparison(
|
||||||
ship reusable SKILL.md bundles without giving up durable A2A workspace
|
tenant_key: str,
|
||||||
files.
|
comparison_id: str,
|
||||||
|
result: dict[str, Any],
|
||||||
|
receipt: dict[str, Any],
|
||||||
|
) -> dict[str, Any]:
|
||||||
|
if not _database_url() or psycopg is None:
|
||||||
|
_LOCAL_COMPARISONS[(tenant_key, comparison_id)] = {
|
||||||
|
"result": json.loads(json.dumps(result)),
|
||||||
|
"updated_at": receipt["created_at"],
|
||||||
|
"latest_receipt_id": receipt["receipt_id"],
|
||||||
|
}
|
||||||
|
_LOCAL_RECEIPTS.append(receipt)
|
||||||
|
return {"ok": True, "warning": "local_ephemeral_persistence"}
|
||||||
|
try:
|
||||||
|
with _connect() as conn:
|
||||||
|
with conn.cursor() as cur:
|
||||||
|
cur.execute(
|
||||||
"""
|
"""
|
||||||
root = Path(__file__).parent / "skills"
|
INSERT INTO quote_judge_comparisons
|
||||||
if not root.exists():
|
(tenant_key, comparison_id, input_json, result_json, recommendation_vendor, latest_receipt_id, updated_at)
|
||||||
return []
|
VALUES (%s, %s, %s, %s, %s, %s, NOW())
|
||||||
runtime_skills_root = _runtime_skills_root(ctx)
|
ON CONFLICT (tenant_key, comparison_id) DO UPDATE SET
|
||||||
uploads: list[tuple[str, bytes]] = []
|
input_json = EXCLUDED.input_json,
|
||||||
for path in root.rglob("*"):
|
result_json = EXCLUDED.result_json,
|
||||||
if path.is_file():
|
recommendation_vendor = EXCLUDED.recommendation_vendor,
|
||||||
rel = path.relative_to(root).as_posix()
|
latest_receipt_id = EXCLUDED.latest_receipt_id,
|
||||||
uploads.append((runtime_skills_root + rel, path.read_bytes()))
|
updated_at = NOW()
|
||||||
if uploads:
|
""",
|
||||||
backend.upload_files(uploads)
|
(
|
||||||
return [runtime_skills_root]
|
tenant_key,
|
||||||
return []
|
comparison_id,
|
||||||
|
Jsonb({"weights": result["weights"], "quote_count": result["quote_count"]}),
|
||||||
|
Jsonb(result),
|
||||||
|
result["recommendation"]["vendor"],
|
||||||
|
receipt["receipt_id"],
|
||||||
|
),
|
||||||
|
)
|
||||||
|
cur.execute(
|
||||||
|
"""
|
||||||
|
INSERT INTO quote_judge_receipts
|
||||||
|
(receipt_id, tenant_key, comparison_id, skill_name, tool_name, status, input_hash, result_hash, receipt_json, payload)
|
||||||
|
VALUES (%s, %s, %s, %s, %s, %s, %s, %s, %s, %s)
|
||||||
|
""",
|
||||||
|
(
|
||||||
|
receipt["receipt_id"],
|
||||||
|
tenant_key,
|
||||||
|
comparison_id,
|
||||||
|
receipt["skill_name"],
|
||||||
|
receipt["skill_name"],
|
||||||
|
receipt["status"],
|
||||||
|
receipt["input_hash"],
|
||||||
|
receipt["result_hash"],
|
||||||
|
Jsonb(receipt),
|
||||||
|
Jsonb(receipt),
|
||||||
|
),
|
||||||
|
)
|
||||||
|
conn.commit()
|
||||||
|
return {"ok": True}
|
||||||
|
except Exception:
|
||||||
|
return {"ok": False, "warning": "persistence_unavailable"}
|
||||||
|
|
||||||
|
|
||||||
def _last_message_text(state: dict[str, Any]) -> str:
|
def _load_comparison(tenant_key: str, comparison_id: str) -> dict[str, Any] | None:
|
||||||
messages = state.get("messages") or []
|
if not _database_url() or psycopg is None:
|
||||||
if not messages:
|
return _LOCAL_COMPARISONS.get((tenant_key, comparison_id))
|
||||||
return json.dumps(state, default=str)
|
try:
|
||||||
|
with _connect() as conn:
|
||||||
|
with conn.cursor() as cur:
|
||||||
|
cur.execute(
|
||||||
|
"""
|
||||||
|
SELECT result_json, updated_at, latest_receipt_id
|
||||||
|
FROM quote_judge_comparisons
|
||||||
|
WHERE tenant_key = %s AND comparison_id = %s
|
||||||
|
""",
|
||||||
|
(tenant_key, comparison_id),
|
||||||
|
)
|
||||||
|
row = cur.fetchone()
|
||||||
|
if not row:
|
||||||
|
return None
|
||||||
|
updated_at = row["updated_at"]
|
||||||
|
return {
|
||||||
|
"result": row["result_json"],
|
||||||
|
"updated_at": updated_at.isoformat() if hasattr(updated_at, "isoformat") else str(updated_at),
|
||||||
|
"latest_receipt_id": row.get("latest_receipt_id"),
|
||||||
|
}
|
||||||
|
except Exception:
|
||||||
|
return None
|
||||||
|
|
||||||
content = getattr(messages[-1], "content", None)
|
|
||||||
if isinstance(content, str):
|
def _build_receipt(
|
||||||
return content
|
*,
|
||||||
if isinstance(content, list):
|
tenant_key: str,
|
||||||
parts: list[str] = []
|
skill_name: str,
|
||||||
for item in content:
|
comparison_id: str,
|
||||||
if isinstance(item, dict):
|
inputs: dict[str, Any],
|
||||||
text = item.get("text") or item.get("content")
|
result: dict[str, Any],
|
||||||
if text:
|
) -> dict[str, Any]:
|
||||||
parts.append(str(text))
|
now = datetime.now(timezone.utc).isoformat()
|
||||||
elif item:
|
tenant_hash = _hash_json({"tenant_key": tenant_key})
|
||||||
parts.append(str(item))
|
input_hash = _hash_json(inputs)
|
||||||
return "\n".join(parts) if parts else json.dumps(content, default=str)
|
result_hash = _hash_json(result)
|
||||||
return str(content or messages[-1])
|
receipt_id = "qjr_" + _hash_json({
|
||||||
|
"tenant_hash": tenant_hash,
|
||||||
|
"skill_name": skill_name,
|
||||||
|
"comparison_id": comparison_id,
|
||||||
|
"input_hash": input_hash,
|
||||||
|
"result_hash": result_hash,
|
||||||
|
})[:24]
|
||||||
|
return {
|
||||||
|
"schema": "quotejudge.production_receipt.v1",
|
||||||
|
"receipt_id": receipt_id,
|
||||||
|
"agent_name": "quote-judge-studio-v1",
|
||||||
|
"agent_version": "0.1.0",
|
||||||
|
"skill_name": skill_name,
|
||||||
|
"comparison_id": comparison_id,
|
||||||
|
"status": "ok" if result.get("ok") else "error",
|
||||||
|
"tenant_hash": tenant_hash,
|
||||||
|
"input_hash": input_hash,
|
||||||
|
"result_hash": result_hash,
|
||||||
|
"created_at": now,
|
||||||
|
}
|
||||||
|
|
||||||
|
|
||||||
|
def _hash_json(value: Any) -> str:
|
||||||
|
encoded = json.dumps(value, sort_keys=True, separators=(",", ":"), default=str).encode("utf-8")
|
||||||
|
return hashlib.sha256(encoded).hexdigest()
|
||||||
|
|||||||
Reference in New Issue
Block a user