mirror of
https://github.com/langgenius/dify.git
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743 lines
28 KiB
Python
743 lines
28 KiB
Python
import json
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import logging
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import os
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import queue
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import threading
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import time
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from datetime import timedelta
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from typing import Any, Optional, Union
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from uuid import UUID
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from flask import current_app
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from core.helper.encrypter import decrypt_token, encrypt_token, obfuscated_token
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from core.ops.entities.config_entity import (
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LangfuseConfig,
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LangSmithConfig,
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TracingProviderEnum,
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)
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from core.ops.entities.trace_entity import (
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DatasetRetrievalTraceInfo,
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GenerateNameTraceInfo,
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MessageTraceInfo,
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ModerationTraceInfo,
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SuggestedQuestionTraceInfo,
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ToolTraceInfo,
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TraceTaskName,
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WorkflowTraceInfo,
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)
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from core.ops.langfuse_trace.langfuse_trace import LangFuseDataTrace
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from core.ops.langsmith_trace.langsmith_trace import LangSmithDataTrace
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from core.ops.utils import get_message_data
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from extensions.ext_database import db
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from models.model import App, AppModelConfig, Conversation, Message, MessageAgentThought, MessageFile, TraceAppConfig
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from models.workflow import WorkflowAppLog, WorkflowRun
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from tasks.ops_trace_task import process_trace_tasks
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provider_config_map = {
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TracingProviderEnum.LANGFUSE.value: {
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"config_class": LangfuseConfig,
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"secret_keys": ["public_key", "secret_key"],
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"other_keys": ["host", "project_key"],
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"trace_instance": LangFuseDataTrace,
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},
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TracingProviderEnum.LANGSMITH.value: {
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"config_class": LangSmithConfig,
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"secret_keys": ["api_key"],
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"other_keys": ["project", "endpoint"],
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"trace_instance": LangSmithDataTrace,
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},
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}
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class OpsTraceManager:
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@classmethod
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def encrypt_tracing_config(
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cls, tenant_id: str, tracing_provider: str, tracing_config: dict, current_trace_config=None
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):
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"""
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Encrypt tracing config.
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:param tenant_id: tenant id
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:param tracing_provider: tracing provider
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:param tracing_config: tracing config dictionary to be encrypted
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:param current_trace_config: current tracing configuration for keeping existing values
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:return: encrypted tracing configuration
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"""
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# Get the configuration class and the keys that require encryption
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config_class, secret_keys, other_keys = (
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provider_config_map[tracing_provider]["config_class"],
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provider_config_map[tracing_provider]["secret_keys"],
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provider_config_map[tracing_provider]["other_keys"],
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)
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new_config = {}
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# Encrypt necessary keys
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for key in secret_keys:
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if key in tracing_config:
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if "*" in tracing_config[key]:
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# If the key contains '*', retain the original value from the current config
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new_config[key] = current_trace_config.get(key, tracing_config[key])
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else:
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# Otherwise, encrypt the key
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new_config[key] = encrypt_token(tenant_id, tracing_config[key])
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for key in other_keys:
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new_config[key] = tracing_config.get(key, "")
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# Create a new instance of the config class with the new configuration
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encrypted_config = config_class(**new_config)
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return encrypted_config.model_dump()
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@classmethod
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def decrypt_tracing_config(cls, tenant_id: str, tracing_provider: str, tracing_config: dict):
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"""
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Decrypt tracing config
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:param tenant_id: tenant id
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:param tracing_provider: tracing provider
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:param tracing_config: tracing config
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:return:
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"""
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config_class, secret_keys, other_keys = (
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provider_config_map[tracing_provider]["config_class"],
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provider_config_map[tracing_provider]["secret_keys"],
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provider_config_map[tracing_provider]["other_keys"],
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)
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new_config = {}
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for key in secret_keys:
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if key in tracing_config:
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new_config[key] = decrypt_token(tenant_id, tracing_config[key])
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for key in other_keys:
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new_config[key] = tracing_config.get(key, "")
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return config_class(**new_config).model_dump()
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@classmethod
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def obfuscated_decrypt_token(cls, tracing_provider: str, decrypt_tracing_config: dict):
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"""
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Decrypt tracing config
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:param tracing_provider: tracing provider
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:param decrypt_tracing_config: tracing config
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:return:
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"""
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config_class, secret_keys, other_keys = (
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provider_config_map[tracing_provider]["config_class"],
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provider_config_map[tracing_provider]["secret_keys"],
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provider_config_map[tracing_provider]["other_keys"],
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)
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new_config = {}
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for key in secret_keys:
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if key in decrypt_tracing_config:
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new_config[key] = obfuscated_token(decrypt_tracing_config[key])
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for key in other_keys:
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new_config[key] = decrypt_tracing_config.get(key, "")
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return config_class(**new_config).model_dump()
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@classmethod
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def get_decrypted_tracing_config(cls, app_id: str, tracing_provider: str):
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"""
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Get decrypted tracing config
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:param app_id: app id
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:param tracing_provider: tracing provider
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:return:
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"""
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trace_config_data: TraceAppConfig = (
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db.session.query(TraceAppConfig)
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.filter(TraceAppConfig.app_id == app_id, TraceAppConfig.tracing_provider == tracing_provider)
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.first()
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)
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if not trace_config_data:
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return None
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# decrypt_token
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tenant_id = db.session.query(App).filter(App.id == app_id).first().tenant_id
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decrypt_tracing_config = cls.decrypt_tracing_config(
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tenant_id, tracing_provider, trace_config_data.tracing_config
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)
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return decrypt_tracing_config
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@classmethod
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def get_ops_trace_instance(
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cls,
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app_id: Optional[Union[UUID, str]] = None,
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):
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"""
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Get ops trace through model config
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:param app_id: app_id
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:return:
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"""
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if isinstance(app_id, UUID):
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app_id = str(app_id)
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if app_id is None:
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return None
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app: App = db.session.query(App).filter(App.id == app_id).first()
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app_ops_trace_config = json.loads(app.tracing) if app.tracing else None
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if app_ops_trace_config is not None:
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tracing_provider = app_ops_trace_config.get("tracing_provider")
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else:
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return None
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# decrypt_token
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decrypt_trace_config = cls.get_decrypted_tracing_config(app_id, tracing_provider)
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if app_ops_trace_config.get("enabled"):
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trace_instance, config_class = (
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provider_config_map[tracing_provider]["trace_instance"],
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provider_config_map[tracing_provider]["config_class"],
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)
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tracing_instance = trace_instance(config_class(**decrypt_trace_config))
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return tracing_instance
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return None
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@classmethod
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def get_app_config_through_message_id(cls, message_id: str):
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app_model_config = None
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message_data = db.session.query(Message).filter(Message.id == message_id).first()
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conversation_id = message_data.conversation_id
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conversation_data = db.session.query(Conversation).filter(Conversation.id == conversation_id).first()
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if conversation_data.app_model_config_id:
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app_model_config = (
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db.session.query(AppModelConfig)
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.filter(AppModelConfig.id == conversation_data.app_model_config_id)
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.first()
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)
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elif conversation_data.app_model_config_id is None and conversation_data.override_model_configs:
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app_model_config = conversation_data.override_model_configs
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return app_model_config
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@classmethod
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def update_app_tracing_config(cls, app_id: str, enabled: bool, tracing_provider: str):
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"""
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Update app tracing config
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:param app_id: app id
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:param enabled: enabled
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:param tracing_provider: tracing provider
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:return:
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"""
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# auth check
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if tracing_provider not in provider_config_map and tracing_provider is not None:
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raise ValueError(f"Invalid tracing provider: {tracing_provider}")
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app_config: App = db.session.query(App).filter(App.id == app_id).first()
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app_config.tracing = json.dumps(
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{
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"enabled": enabled,
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"tracing_provider": tracing_provider,
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}
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)
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db.session.commit()
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@classmethod
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def get_app_tracing_config(cls, app_id: str):
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"""
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Get app tracing config
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:param app_id: app id
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:return:
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"""
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app: App = db.session.query(App).filter(App.id == app_id).first()
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if not app.tracing:
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return {"enabled": False, "tracing_provider": None}
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app_trace_config = json.loads(app.tracing)
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return app_trace_config
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@staticmethod
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def check_trace_config_is_effective(tracing_config: dict, tracing_provider: str):
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"""
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Check trace config is effective
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:param tracing_config: tracing config
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:param tracing_provider: tracing provider
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:return:
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"""
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config_type, trace_instance = (
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provider_config_map[tracing_provider]["config_class"],
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provider_config_map[tracing_provider]["trace_instance"],
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)
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tracing_config = config_type(**tracing_config)
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return trace_instance(tracing_config).api_check()
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@staticmethod
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def get_trace_config_project_key(tracing_config: dict, tracing_provider: str):
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"""
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get trace config is project key
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:param tracing_config: tracing config
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:param tracing_provider: tracing provider
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:return:
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"""
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config_type, trace_instance = (
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provider_config_map[tracing_provider]["config_class"],
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provider_config_map[tracing_provider]["trace_instance"],
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)
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tracing_config = config_type(**tracing_config)
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return trace_instance(tracing_config).get_project_key()
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@staticmethod
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def get_trace_config_project_url(tracing_config: dict, tracing_provider: str):
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"""
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get trace config is project key
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:param tracing_config: tracing config
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:param tracing_provider: tracing provider
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:return:
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"""
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config_type, trace_instance = (
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provider_config_map[tracing_provider]["config_class"],
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provider_config_map[tracing_provider]["trace_instance"],
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)
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tracing_config = config_type(**tracing_config)
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return trace_instance(tracing_config).get_project_url()
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class TraceTask:
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def __init__(
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self,
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trace_type: Any,
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message_id: Optional[str] = None,
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workflow_run: Optional[WorkflowRun] = None,
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conversation_id: Optional[str] = None,
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user_id: Optional[str] = None,
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timer: Optional[Any] = None,
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**kwargs,
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):
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self.trace_type = trace_type
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self.message_id = message_id
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self.workflow_run = workflow_run
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self.conversation_id = conversation_id
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self.user_id = user_id
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self.timer = timer
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self.kwargs = kwargs
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self.file_base_url = os.getenv("FILES_URL", "http://127.0.0.1:5001")
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self.app_id = None
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def execute(self):
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return self.preprocess()
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def preprocess(self):
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preprocess_map = {
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TraceTaskName.CONVERSATION_TRACE: lambda: self.conversation_trace(**self.kwargs),
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TraceTaskName.WORKFLOW_TRACE: lambda: self.workflow_trace(
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self.workflow_run, self.conversation_id, self.user_id
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),
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TraceTaskName.MESSAGE_TRACE: lambda: self.message_trace(self.message_id),
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TraceTaskName.MODERATION_TRACE: lambda: self.moderation_trace(self.message_id, self.timer, **self.kwargs),
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TraceTaskName.SUGGESTED_QUESTION_TRACE: lambda: self.suggested_question_trace(
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self.message_id, self.timer, **self.kwargs
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),
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TraceTaskName.DATASET_RETRIEVAL_TRACE: lambda: self.dataset_retrieval_trace(
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self.message_id, self.timer, **self.kwargs
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),
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TraceTaskName.TOOL_TRACE: lambda: self.tool_trace(self.message_id, self.timer, **self.kwargs),
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TraceTaskName.GENERATE_NAME_TRACE: lambda: self.generate_name_trace(
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self.conversation_id, self.timer, **self.kwargs
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),
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}
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return preprocess_map.get(self.trace_type, lambda: None)()
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# process methods for different trace types
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def conversation_trace(self, **kwargs):
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return kwargs
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def workflow_trace(self, workflow_run: WorkflowRun, conversation_id, user_id):
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workflow_id = workflow_run.workflow_id
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tenant_id = workflow_run.tenant_id
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workflow_run_id = workflow_run.id
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workflow_run_elapsed_time = workflow_run.elapsed_time
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workflow_run_status = workflow_run.status
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workflow_run_inputs = json.loads(workflow_run.inputs) if workflow_run.inputs else {}
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workflow_run_outputs = json.loads(workflow_run.outputs) if workflow_run.outputs else {}
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workflow_run_version = workflow_run.version
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error = workflow_run.error or ""
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total_tokens = workflow_run.total_tokens
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file_list = workflow_run_inputs.get("sys.file") or []
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query = workflow_run_inputs.get("query") or workflow_run_inputs.get("sys.query") or ""
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# get workflow_app_log_id
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workflow_app_log_data = (
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db.session.query(WorkflowAppLog)
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.filter_by(tenant_id=tenant_id, app_id=workflow_run.app_id, workflow_run_id=workflow_run.id)
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.first()
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)
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workflow_app_log_id = str(workflow_app_log_data.id) if workflow_app_log_data else None
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# get message_id
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message_data = (
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db.session.query(Message.id)
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.filter_by(conversation_id=conversation_id, workflow_run_id=workflow_run_id)
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.first()
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)
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message_id = str(message_data.id) if message_data else None
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metadata = {
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"workflow_id": workflow_id,
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"conversation_id": conversation_id,
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"workflow_run_id": workflow_run_id,
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"tenant_id": tenant_id,
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"elapsed_time": workflow_run_elapsed_time,
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"status": workflow_run_status,
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"version": workflow_run_version,
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"total_tokens": total_tokens,
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"file_list": file_list,
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"triggered_form": workflow_run.triggered_from,
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"user_id": user_id,
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}
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workflow_trace_info = WorkflowTraceInfo(
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workflow_data=workflow_run.to_dict(),
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conversation_id=conversation_id,
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workflow_id=workflow_id,
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tenant_id=tenant_id,
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workflow_run_id=workflow_run_id,
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workflow_run_elapsed_time=workflow_run_elapsed_time,
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workflow_run_status=workflow_run_status,
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workflow_run_inputs=workflow_run_inputs,
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workflow_run_outputs=workflow_run_outputs,
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workflow_run_version=workflow_run_version,
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error=error,
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total_tokens=total_tokens,
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file_list=file_list,
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query=query,
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metadata=metadata,
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workflow_app_log_id=workflow_app_log_id,
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message_id=message_id,
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start_time=workflow_run.created_at,
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end_time=workflow_run.finished_at,
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)
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return workflow_trace_info
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def message_trace(self, message_id):
|
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message_data = get_message_data(message_id)
|
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if not message_data:
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return {}
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conversation_mode = db.session.query(Conversation.mode).filter_by(id=message_data.conversation_id).first()
|
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conversation_mode = conversation_mode[0]
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created_at = message_data.created_at
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inputs = message_data.message
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|
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# get message file data
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message_file_data = db.session.query(MessageFile).filter_by(message_id=message_id).first()
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file_list = []
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if message_file_data and message_file_data.url is not None:
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file_url = f"{self.file_base_url}/{message_file_data.url}" if message_file_data else ""
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file_list.append(file_url)
|
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|
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metadata = {
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"conversation_id": message_data.conversation_id,
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"ls_provider": message_data.model_provider,
|
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"ls_model_name": message_data.model_id,
|
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"status": message_data.status,
|
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"from_end_user_id": message_data.from_account_id,
|
|
"from_account_id": message_data.from_account_id,
|
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"agent_based": message_data.agent_based,
|
|
"workflow_run_id": message_data.workflow_run_id,
|
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"from_source": message_data.from_source,
|
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"message_id": message_id,
|
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}
|
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message_tokens = message_data.message_tokens
|
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message_trace_info = MessageTraceInfo(
|
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message_id=message_id,
|
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message_data=message_data.to_dict(),
|
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conversation_model=conversation_mode,
|
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message_tokens=message_tokens,
|
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answer_tokens=message_data.answer_tokens,
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total_tokens=message_tokens + message_data.answer_tokens,
|
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error=message_data.error or "",
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inputs=inputs,
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outputs=message_data.answer,
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file_list=file_list,
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start_time=created_at,
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end_time=created_at + timedelta(seconds=message_data.provider_response_latency),
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metadata=metadata,
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message_file_data=message_file_data,
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conversation_mode=conversation_mode,
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)
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return message_trace_info
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|
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def moderation_trace(self, message_id, timer, **kwargs):
|
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moderation_result = kwargs.get("moderation_result")
|
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inputs = kwargs.get("inputs")
|
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message_data = get_message_data(message_id)
|
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if not message_data:
|
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return {}
|
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metadata = {
|
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"message_id": message_id,
|
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"action": moderation_result.action,
|
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"preset_response": moderation_result.preset_response,
|
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"query": moderation_result.query,
|
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}
|
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|
|
# get workflow_app_log_id
|
|
workflow_app_log_id = None
|
|
if message_data.workflow_run_id:
|
|
workflow_app_log_data = (
|
|
db.session.query(WorkflowAppLog).filter_by(workflow_run_id=message_data.workflow_run_id).first()
|
|
)
|
|
workflow_app_log_id = str(workflow_app_log_data.id) if workflow_app_log_data else None
|
|
|
|
moderation_trace_info = ModerationTraceInfo(
|
|
message_id=workflow_app_log_id or message_id,
|
|
inputs=inputs,
|
|
message_data=message_data.to_dict(),
|
|
flagged=moderation_result.flagged,
|
|
action=moderation_result.action,
|
|
preset_response=moderation_result.preset_response,
|
|
query=moderation_result.query,
|
|
start_time=timer.get("start"),
|
|
end_time=timer.get("end"),
|
|
metadata=metadata,
|
|
)
|
|
|
|
return moderation_trace_info
|
|
|
|
def suggested_question_trace(self, message_id, timer, **kwargs):
|
|
suggested_question = kwargs.get("suggested_question")
|
|
message_data = get_message_data(message_id)
|
|
if not message_data:
|
|
return {}
|
|
metadata = {
|
|
"message_id": message_id,
|
|
"ls_provider": message_data.model_provider,
|
|
"ls_model_name": message_data.model_id,
|
|
"status": message_data.status,
|
|
"from_end_user_id": message_data.from_account_id,
|
|
"from_account_id": message_data.from_account_id,
|
|
"agent_based": message_data.agent_based,
|
|
"workflow_run_id": message_data.workflow_run_id,
|
|
"from_source": message_data.from_source,
|
|
}
|
|
|
|
# get workflow_app_log_id
|
|
workflow_app_log_id = None
|
|
if message_data.workflow_run_id:
|
|
workflow_app_log_data = (
|
|
db.session.query(WorkflowAppLog).filter_by(workflow_run_id=message_data.workflow_run_id).first()
|
|
)
|
|
workflow_app_log_id = str(workflow_app_log_data.id) if workflow_app_log_data else None
|
|
|
|
suggested_question_trace_info = SuggestedQuestionTraceInfo(
|
|
message_id=workflow_app_log_id or message_id,
|
|
message_data=message_data.to_dict(),
|
|
inputs=message_data.message,
|
|
outputs=message_data.answer,
|
|
start_time=timer.get("start"),
|
|
end_time=timer.get("end"),
|
|
metadata=metadata,
|
|
total_tokens=message_data.message_tokens + message_data.answer_tokens,
|
|
status=message_data.status,
|
|
error=message_data.error,
|
|
from_account_id=message_data.from_account_id,
|
|
agent_based=message_data.agent_based,
|
|
from_source=message_data.from_source,
|
|
model_provider=message_data.model_provider,
|
|
model_id=message_data.model_id,
|
|
suggested_question=suggested_question,
|
|
level=message_data.status,
|
|
status_message=message_data.error,
|
|
)
|
|
|
|
return suggested_question_trace_info
|
|
|
|
def dataset_retrieval_trace(self, message_id, timer, **kwargs):
|
|
documents = kwargs.get("documents")
|
|
message_data = get_message_data(message_id)
|
|
if not message_data:
|
|
return {}
|
|
|
|
metadata = {
|
|
"message_id": message_id,
|
|
"ls_provider": message_data.model_provider,
|
|
"ls_model_name": message_data.model_id,
|
|
"status": message_data.status,
|
|
"from_end_user_id": message_data.from_account_id,
|
|
"from_account_id": message_data.from_account_id,
|
|
"agent_based": message_data.agent_based,
|
|
"workflow_run_id": message_data.workflow_run_id,
|
|
"from_source": message_data.from_source,
|
|
}
|
|
|
|
dataset_retrieval_trace_info = DatasetRetrievalTraceInfo(
|
|
message_id=message_id,
|
|
inputs=message_data.query or message_data.inputs,
|
|
documents=[doc.model_dump() for doc in documents],
|
|
start_time=timer.get("start"),
|
|
end_time=timer.get("end"),
|
|
metadata=metadata,
|
|
message_data=message_data.to_dict(),
|
|
)
|
|
|
|
return dataset_retrieval_trace_info
|
|
|
|
def tool_trace(self, message_id, timer, **kwargs):
|
|
tool_name = kwargs.get("tool_name")
|
|
tool_inputs = kwargs.get("tool_inputs")
|
|
tool_outputs = kwargs.get("tool_outputs")
|
|
message_data = get_message_data(message_id)
|
|
if not message_data:
|
|
return {}
|
|
tool_config = {}
|
|
time_cost = 0
|
|
error = None
|
|
tool_parameters = {}
|
|
created_time = message_data.created_at
|
|
end_time = message_data.updated_at
|
|
agent_thoughts: list[MessageAgentThought] = message_data.agent_thoughts
|
|
for agent_thought in agent_thoughts:
|
|
if tool_name in agent_thought.tools:
|
|
created_time = agent_thought.created_at
|
|
tool_meta_data = agent_thought.tool_meta.get(tool_name, {})
|
|
tool_config = tool_meta_data.get("tool_config", {})
|
|
time_cost = tool_meta_data.get("time_cost", 0)
|
|
end_time = created_time + timedelta(seconds=time_cost)
|
|
error = tool_meta_data.get("error", "")
|
|
tool_parameters = tool_meta_data.get("tool_parameters", {})
|
|
metadata = {
|
|
"message_id": message_id,
|
|
"tool_name": tool_name,
|
|
"tool_inputs": tool_inputs,
|
|
"tool_outputs": tool_outputs,
|
|
"tool_config": tool_config,
|
|
"time_cost": time_cost,
|
|
"error": error,
|
|
"tool_parameters": tool_parameters,
|
|
}
|
|
|
|
file_url = ""
|
|
message_file_data = db.session.query(MessageFile).filter_by(message_id=message_id).first()
|
|
if message_file_data:
|
|
message_file_id = message_file_data.id if message_file_data else None
|
|
type = message_file_data.type
|
|
created_by_role = message_file_data.created_by_role
|
|
created_user_id = message_file_data.created_by
|
|
file_url = f"{self.file_base_url}/{message_file_data.url}"
|
|
|
|
metadata.update(
|
|
{
|
|
"message_file_id": message_file_id,
|
|
"created_by_role": created_by_role,
|
|
"created_user_id": created_user_id,
|
|
"type": type,
|
|
}
|
|
)
|
|
|
|
tool_trace_info = ToolTraceInfo(
|
|
message_id=message_id,
|
|
message_data=message_data.to_dict(),
|
|
tool_name=tool_name,
|
|
start_time=timer.get("start") if timer else created_time,
|
|
end_time=timer.get("end") if timer else end_time,
|
|
tool_inputs=tool_inputs,
|
|
tool_outputs=tool_outputs,
|
|
metadata=metadata,
|
|
message_file_data=message_file_data,
|
|
error=error,
|
|
inputs=message_data.message,
|
|
outputs=message_data.answer,
|
|
tool_config=tool_config,
|
|
time_cost=time_cost,
|
|
tool_parameters=tool_parameters,
|
|
file_url=file_url,
|
|
)
|
|
|
|
return tool_trace_info
|
|
|
|
def generate_name_trace(self, conversation_id, timer, **kwargs):
|
|
generate_conversation_name = kwargs.get("generate_conversation_name")
|
|
inputs = kwargs.get("inputs")
|
|
tenant_id = kwargs.get("tenant_id")
|
|
start_time = timer.get("start")
|
|
end_time = timer.get("end")
|
|
|
|
metadata = {
|
|
"conversation_id": conversation_id,
|
|
"tenant_id": tenant_id,
|
|
}
|
|
|
|
generate_name_trace_info = GenerateNameTraceInfo(
|
|
conversation_id=conversation_id,
|
|
inputs=inputs,
|
|
outputs=generate_conversation_name,
|
|
start_time=start_time,
|
|
end_time=end_time,
|
|
metadata=metadata,
|
|
tenant_id=tenant_id,
|
|
)
|
|
|
|
return generate_name_trace_info
|
|
|
|
|
|
trace_manager_timer = None
|
|
trace_manager_queue = queue.Queue()
|
|
trace_manager_interval = int(os.getenv("TRACE_QUEUE_MANAGER_INTERVAL", 5))
|
|
trace_manager_batch_size = int(os.getenv("TRACE_QUEUE_MANAGER_BATCH_SIZE", 100))
|
|
|
|
|
|
class TraceQueueManager:
|
|
def __init__(self, app_id=None, user_id=None):
|
|
global trace_manager_timer
|
|
|
|
self.app_id = app_id
|
|
self.user_id = user_id
|
|
self.trace_instance = OpsTraceManager.get_ops_trace_instance(app_id)
|
|
self.flask_app = current_app._get_current_object()
|
|
if trace_manager_timer is None:
|
|
self.start_timer()
|
|
|
|
def add_trace_task(self, trace_task: TraceTask):
|
|
global trace_manager_timer, trace_manager_queue
|
|
try:
|
|
if self.trace_instance:
|
|
trace_task.app_id = self.app_id
|
|
trace_manager_queue.put(trace_task)
|
|
except Exception as e:
|
|
logging.debug(f"Error adding trace task: {e}")
|
|
finally:
|
|
self.start_timer()
|
|
|
|
def collect_tasks(self):
|
|
global trace_manager_queue
|
|
tasks = []
|
|
while len(tasks) < trace_manager_batch_size and not trace_manager_queue.empty():
|
|
task = trace_manager_queue.get_nowait()
|
|
tasks.append(task)
|
|
trace_manager_queue.task_done()
|
|
return tasks
|
|
|
|
def run(self):
|
|
try:
|
|
tasks = self.collect_tasks()
|
|
if tasks:
|
|
self.send_to_celery(tasks)
|
|
except Exception as e:
|
|
logging.debug(f"Error processing trace tasks: {e}")
|
|
|
|
def start_timer(self):
|
|
global trace_manager_timer
|
|
if trace_manager_timer is None or not trace_manager_timer.is_alive():
|
|
trace_manager_timer = threading.Timer(trace_manager_interval, self.run)
|
|
trace_manager_timer.name = f"trace_manager_timer_{time.strftime('%Y-%m-%d %H:%M:%S', time.localtime())}"
|
|
trace_manager_timer.daemon = False
|
|
trace_manager_timer.start()
|
|
|
|
def send_to_celery(self, tasks: list[TraceTask]):
|
|
with self.flask_app.app_context():
|
|
for task in tasks:
|
|
trace_info = task.execute()
|
|
task_data = {
|
|
"app_id": task.app_id,
|
|
"trace_info_type": type(trace_info).__name__,
|
|
"trace_info": trace_info.model_dump() if trace_info else {},
|
|
}
|
|
process_trace_tasks.delay(task_data)
|