feat: solution for unknown
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@@ -1,57 +1,75 @@
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from langchain_openai import ChatOpenAI
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from pydantic import SecretStr
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from langgraph.graph import StateGraph, START, END, interrupt
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from langgraph.checkpoint.memory import InMemorySaver
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from typing import TypedDict
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import argparse
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import sys
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# LLM placeholder
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llm = ChatOpenAI(
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model="openai/gpt-oss-20b",
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base_url='https://platform.brojs.ru/jrnl-bh/api/inference/v1',
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api_key=SecretStr("jrnl_30283ab953615cbb6846ff9940a1eedce0b76d7b2f59a2394f29e74643e6a90d"),
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temperature=0.7,
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)
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def parse_args() -> argparse.Namespace:
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"""
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Parse command line arguments.
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# State definition
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class GraphState(TypedDict):
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human_value: str | None
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Returns:
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Namespace: Parsed arguments containing the task text.
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"""
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parser = argparse.ArgumentParser(
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description="Run an LLM-based task orchestrator."
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)
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parser.add_argument(
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"--task-text",
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required=True,
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help="Text of the task to be processed by the LLM.",
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)
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return parser.parse_args()
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# Node that triggers an interrupt with a question and options
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def ask_node(state: GraphState) -> dict:
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return interrupt(
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{
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"type": "question",
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"question": "Выберите вариант:",
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"options": ["Опция 1", "Опция 2", "Опция 3"],
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}
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def validate_task_text(text: str) -> None:
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"""
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Validate that the provided task text is non-empty.
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Raises:
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ValueError: If the text is empty or consists only of whitespace.
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"""
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if not text.strip():
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raise ValueError("Task text must be a non-empty string.")
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def init_llm() -> ChatOpenAI:
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"""
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Initialize the LLM client with placeholder configuration.
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Returns:
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ChatOpenAI: Configured LLM instance.
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"""
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return ChatOpenAI(
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model="openai/gpt-oss-20b",
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base_url='https://platform.brojs.ru/jrnl-bh/api/inference/v1',
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api_key=SecretStr("jrnl_30283ab953615cbb6846ff9940a1eedce0b76d7b2f59a2394f29e74643e6a90d"),
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temperature=0.7,
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)
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# Build the graph
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builder = StateGraph(GraphState)
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builder.add_node("ask", ask_node)
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builder.set_entry_point(START)
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builder.add_edge(START, "ask")
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builder.add_edge("ask", END)
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def main() -> None:
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"""
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Main entry point of the orchestrator.
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Parses arguments, validates input, initializes LLM, and prints the response.
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"""
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args = parse_args()
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try:
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validate_task_text(args.task_text)
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except ValueError as exc:
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print(f"Error: {exc}", file=sys.stderr)
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sys.exit(1)
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graph = builder.compile(checkpointer=InMemorySaver())
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# Main loop handling interrupts
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state: GraphState = {"human_value": None}
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while True:
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result = graph.invoke(state)
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if "__interrupt__" in result:
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interrupt_data = result["__interrupt__"]
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print(interrupt_data["question"])
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for idx, opt in enumerate(interrupt_data["options"], 1):
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print(f"{idx}. {opt}")
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choice = input("Выберите номер: ").strip()
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try:
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selected = interrupt_data["options"][int(choice) - 1]
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state["human_value"] = selected
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except (ValueError, IndexError):
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print("Неверный выбор. Повторите.")
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llm = init_llm()
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# Invoke the LLM with the task text
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response = llm.invoke(
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{"messages": [{"role": "human", "content": args.task_text}]}
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)
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# The result contains a list of messages; we print the content of the first AI message.
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ai_message = next(
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(msg for msg in response["messages"] if getattr(msg, "type", None) == "ai"),
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None,
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)
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if ai_message:
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print(ai_message.content)
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else:
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break
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print("No AI response received.", file=sys.stderr)
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print("\nИтоговое состояние:")
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print(state)
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if __name__ == "__main__":
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main()
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