Load previous conversation #2
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@ -1,6 +1,6 @@
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[tool.poetry]
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name = "llm-chat"
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version = "0.4.0"
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version = "0.5.0"
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description = "A general CLI interface for large language models."
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authors = ["Paul Harrison <paul@harrison.sh>"]
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readme = "README.md"
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@ -23,7 +23,7 @@ mypy = "^1.5.0"
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pydocstyle = "^6.3.0"
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[tool.poetry.scripts]
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chat = "llm_chat.cli:app"
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llm = "llm_chat.cli:app"
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[build-system]
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requires = ["poetry-core"]
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@ -1,7 +1,7 @@
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from datetime import datetime
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from enum import StrEnum, auto
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from pathlib import Path
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from typing import Any, Protocol
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from typing import Any, Protocol, Type
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from zoneinfo import ZoneInfo
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from openai import ChatCompletion
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@ -45,10 +45,16 @@ class Token(StrEnum):
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class ChatProtocol(Protocol):
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"""Protocol for chat classes."""
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conversation: Conversation
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@property
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def cost(self) -> float:
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"""Get the cost of the conversation."""
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@property
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def settings(self) -> OpenAISettings:
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"""Get OpenAI chat settings."""
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def save(self) -> None:
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"""Save the conversation to the history directory."""
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@ -80,15 +86,41 @@ class Chat:
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self,
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settings: OpenAISettings | None = None,
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context: list[Message] = [],
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initial_system_messages: bool = True,
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) -> None:
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self._settings = settings
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self.conversation = Conversation(
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messages=INITIAL_SYSTEM_MESSAGES + context,
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messages=INITIAL_SYSTEM_MESSAGES + context
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if initial_system_messages
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else context,
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model=self.settings.model,
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temperature=self.settings.temperature,
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)
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self._start_time = datetime.now(tz=ZoneInfo("UTC"))
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@classmethod
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def load(
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cls, path: Path, api_key: str | None = None, history_dir: Path | None = None
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) -> ChatProtocol:
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"""Load a chat from a file."""
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with path.open() as f:
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conversation = Conversation.model_validate_json(f.read())
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args: dict[str, Any] = {
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"model": conversation.model,
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"temperature": conversation.temperature,
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}
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if api_key is not None:
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args["api_key"] = api_key
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if history_dir is not None:
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args["history_dir"] = history_dir
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settings = OpenAISettings(**args)
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return cls(
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settings=settings,
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context=conversation.messages,
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initial_system_messages=False,
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)
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@property
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def settings(self) -> OpenAISettings:
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"""Get OpenAI chat settings."""
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@ -158,3 +190,8 @@ def get_chat(
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) -> ChatProtocol:
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"""Get a chat object."""
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return Chat(settings=settings, context=context)
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def get_chat_class() -> Type[Chat]:
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"""Get the chat class."""
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return Chat
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@ -6,7 +6,7 @@ from prompt_toolkit import PromptSession
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from rich.console import Console
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from rich.markdown import Markdown
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from llm_chat.chat import ChatProtocol, get_chat
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from llm_chat.chat import ChatProtocol, get_chat, get_chat_class
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from llm_chat.models import Message, Role
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from llm_chat.settings import DEFAULT_MODEL, DEFAULT_TEMPERATURE, Model, OpenAISettings
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@ -60,7 +60,30 @@ def display_cost(console: Console, chat: ChatProtocol) -> None:
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console.print(f"\n[bold green]Cost:[/bold green] ${chat.cost}\n")
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@app.command()
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def run_conversation(current_chat: ChatProtocol) -> None:
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"""Run a conversation."""
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console = get_console()
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session = get_session()
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finished = False
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console.print(f"[bold green]Model:[/bold green] {current_chat.settings.model}")
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console.print(
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f"[bold green]Temperature:[/bold green] {current_chat.settings.temperature}"
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)
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while not finished:
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prompt = read_user_input(session)
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if prompt.strip() == "/q":
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finished = True
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current_chat.save()
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else:
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response = current_chat.send_message(prompt.strip())
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console.print(Markdown(response))
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display_cost(console, current_chat)
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@app.command("chat")
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def chat(
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api_key: Annotated[
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Optional[str],
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@ -102,7 +125,6 @@ def chat(
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] = [],
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) -> None:
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"""Start a chat session."""
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# TODO: Add option to load context from file.
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# TODO: Add option to provide context string as an argument.
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if api_key is not None:
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settings = OpenAISettings(api_key=api_key, model=model, temperature=temperature)
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@ -112,20 +134,44 @@ def chat(
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context_messages = [load_context(path) for path in context]
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current_chat = get_chat(settings=settings, context=context_messages)
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console = get_console()
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session = get_session()
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finished = False
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run_conversation(current_chat)
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console.print(f"[bold green]Model:[/bold green] {settings.model}")
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console.print(f"[bold green]Temperature:[/bold green] {settings.temperature}")
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while not finished:
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prompt = read_user_input(session)
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if prompt.strip() == "/q":
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finished = True
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current_chat.save()
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else:
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response = current_chat.send_message(prompt.strip())
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console.print(Markdown(response))
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display_cost(console, current_chat)
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@app.command("load")
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def load(
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path: Annotated[
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Path,
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typer.Argument(
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help="Path to a conversation file.",
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exists=True,
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file_okay=True,
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dir_okay=False,
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readable=True,
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),
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],
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api_key: Annotated[
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Optional[str],
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typer.Option(
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...,
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"--api-key",
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"-k",
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help=(
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"API key. Will read from the environment variable OPENAI_API_KEY "
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"if not provided."
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),
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),
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] = None,
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) -> None:
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"""Load a conversation from a file."""
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Chat = get_chat_class()
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if api_key is not None:
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current_chat = Chat.load(path, api_key=api_key)
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else:
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current_chat = Chat.load(path)
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run_conversation(current_chat)
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if __name__ == "__main__":
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app()
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|
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@ -46,6 +46,42 @@ def test_save_conversation(tmp_path: Path) -> None:
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assert conversation == conversation_from_file
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def test_load(tmp_path: Path) -> None:
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# Create a conversation object to save
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conversation = Conversation(
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messages=[
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Message(role=Role.SYSTEM, content="Hello!"),
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Message(role=Role.USER, content="Hi!"),
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Message(role=Role.ASSISTANT, content="How are you?"),
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],
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model=Model.GPT3,
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temperature=0.5,
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completion_tokens=10,
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prompt_tokens=15,
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cost=0.000043,
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)
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# Save the conversation to a file
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file_path = tmp_path / "conversation.json"
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with file_path.open("w") as f:
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f.write(conversation.model_dump_json())
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# Load the conversation from the file
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loaded_chat = Chat.load(file_path, api_key="foo", history_dir=tmp_path)
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# Check that the loaded conversation matches the original conversation
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assert loaded_chat.settings.model == conversation.model
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assert loaded_chat.settings.temperature == conversation.temperature
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assert loaded_chat.conversation.messages == conversation.messages
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assert loaded_chat.settings.api_key == "foo"
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assert loaded_chat.settings.history_dir == tmp_path
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# We don't want to load the tokens or cost from the previous session
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assert loaded_chat.conversation.completion_tokens == 0
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assert loaded_chat.conversation.prompt_tokens == 0
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assert loaded_chat.cost == 0
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def test_send_message() -> None:
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with patch("llm_chat.chat.Chat._make_request") as mock_make_request:
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mock_make_request.return_value = {
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|
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@ -1,6 +1,6 @@
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from io import StringIO
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from pathlib import Path
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from typing import Any
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from typing import Any, Type
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from unittest.mock import MagicMock
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import pytest
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@ -11,7 +11,8 @@ from typer.testing import CliRunner
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import llm_chat
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from llm_chat.chat import ChatProtocol
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from llm_chat.cli import app
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from llm_chat.models import Message, Role
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from llm_chat.models import Conversation, Message, Role
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from llm_chat.settings import Model, OpenAISettings
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runner = CliRunner()
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@ -20,9 +21,15 @@ class ChatFake:
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"""Fake chat class for testing."""
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args: dict[str, Any]
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conversation: Conversation
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received_messages: list[str]
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settings: OpenAISettings
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|
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def __init__(self) -> None:
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def __init__(self, settings: OpenAISettings | None = None) -> None:
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if settings is not None:
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self.settings = settings
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else:
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self.settings = OpenAISettings()
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self.args = {}
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self.received_messages = []
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@ -34,6 +41,13 @@ class ChatFake:
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"""Get the cost of the conversation."""
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return 0.0
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@classmethod
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def load(
|
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cls, path: Path, api_key: str | None = None, history_dir: Path | None = None
|
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) -> ChatProtocol:
|
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"""Load a chat from a file."""
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return cls()
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def save(self) -> None:
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"""Dummy save method."""
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pass
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@ -61,7 +75,7 @@ def test_chat(monkeypatch: MonkeyPatch) -> None:
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monkeypatch.setattr(llm_chat.cli, "get_console", mock_get_console)
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monkeypatch.setattr(llm_chat.cli, "read_user_input", mock_read_user_input)
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result = runner.invoke(app)
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result = runner.invoke(app, ["chat"])
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assert result.exit_code == 0
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assert chat_fake.received_messages == ["Hello"]
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@ -91,8 +105,49 @@ def test_chat_with_context(
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monkeypatch.setattr(llm_chat.cli, "get_console", mock_get_console)
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monkeypatch.setattr(llm_chat.cli, "read_user_input", mock_read_user_input)
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result = runner.invoke(app, [argument, str(tmp_file)])
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result = runner.invoke(app, ["chat", argument, str(tmp_file)])
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assert result.exit_code == 0
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assert chat_fake.received_messages == ["Hello"]
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assert "context" in chat_fake.args
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assert chat_fake.args["context"] == [Message(role=Role.SYSTEM, content=context)]
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|
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def test_load(monkeypatch: MonkeyPatch, tmp_path: Path) -> None:
|
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# Create a conversation object to save
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conversation = Conversation(
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messages=[
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Message(role=Role.SYSTEM, content="Hello!"),
|
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Message(role=Role.USER, content="Hi!"),
|
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Message(role=Role.ASSISTANT, content="How are you?"),
|
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],
|
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model=Model.GPT3,
|
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temperature=0.5,
|
||||
completion_tokens=10,
|
||||
prompt_tokens=15,
|
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cost=0.000043,
|
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)
|
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|
||||
# Save the conversation to a file
|
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file_path = tmp_path / "conversation.json"
|
||||
with file_path.open("w") as f:
|
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f.write(conversation.model_dump_json())
|
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|
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output = StringIO()
|
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console = Console(file=output)
|
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|
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def mock_get_chat() -> Type[ChatFake]:
|
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return ChatFake
|
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|
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def mock_get_console() -> Console:
|
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return console
|
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|
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mock_read_user_input = MagicMock(side_effect=["Hello", "/q"])
|
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|
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monkeypatch.setattr(llm_chat.cli, "get_chat_class", mock_get_chat)
|
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monkeypatch.setattr(llm_chat.cli, "get_console", mock_get_console)
|
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monkeypatch.setattr(llm_chat.cli, "read_user_input", mock_read_user_input)
|
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|
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# Load the conversation from the file
|
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result = runner.invoke(app, ["load", str(file_path)])
|
||||
|
||||
assert result.exit_code == 0
|
||||
|
|
Loading…
Reference in New Issue