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397 lines
13 KiB
Python
397 lines
13 KiB
Python
import os
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from collections.abc import Generator
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import pytest
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from core.model_runtime.entities.llm_entities import LLMResult, LLMResultChunk, LLMResultChunkDelta
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from core.model_runtime.entities.message_entities import (
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AssistantPromptMessage,
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PromptMessageTool,
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SystemPromptMessage,
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TextPromptMessageContent,
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UserPromptMessage,
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)
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from core.model_runtime.entities.model_entities import AIModelEntity
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from core.model_runtime.errors.validate import CredentialsValidateFailedError
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from core.model_runtime.model_providers.xinference.llm.llm import XinferenceAILargeLanguageModel
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"""FOR MOCK FIXTURES, DO NOT REMOVE"""
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from tests.integration_tests.model_runtime.__mock.openai import setup_openai_mock
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from tests.integration_tests.model_runtime.__mock.xinference import setup_xinference_mock
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@pytest.mark.parametrize('setup_openai_mock, setup_xinference_mock', [['chat', 'none']], indirect=True)
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def test_validate_credentials_for_chat_model(setup_openai_mock, setup_xinference_mock):
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model = XinferenceAILargeLanguageModel()
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with pytest.raises(CredentialsValidateFailedError):
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model.validate_credentials(
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model='ChatGLM3',
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credentials={
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'server_url': os.environ.get('XINFERENCE_SERVER_URL'),
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'model_uid': 'www ' + os.environ.get('XINFERENCE_CHAT_MODEL_UID')
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}
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)
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with pytest.raises(CredentialsValidateFailedError):
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model.validate_credentials(
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model='aaaaa',
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credentials={
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'server_url': '',
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'model_uid': ''
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}
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)
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model.validate_credentials(
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model='ChatGLM3',
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credentials={
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'server_url': os.environ.get('XINFERENCE_SERVER_URL'),
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'model_uid': os.environ.get('XINFERENCE_CHAT_MODEL_UID')
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}
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)
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@pytest.mark.parametrize('setup_openai_mock, setup_xinference_mock', [['chat', 'none']], indirect=True)
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def test_invoke_chat_model(setup_openai_mock, setup_xinference_mock):
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model = XinferenceAILargeLanguageModel()
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response = model.invoke(
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model='ChatGLM3',
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credentials={
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'server_url': os.environ.get('XINFERENCE_SERVER_URL'),
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'model_uid': os.environ.get('XINFERENCE_CHAT_MODEL_UID')
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},
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prompt_messages=[
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SystemPromptMessage(
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content='You are a helpful AI assistant.',
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),
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UserPromptMessage(
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content='Hello World!'
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)
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],
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model_parameters={
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'temperature': 0.7,
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'top_p': 1.0,
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},
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stop=['you'],
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user="abc-123",
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stream=False
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)
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assert isinstance(response, LLMResult)
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assert len(response.message.content) > 0
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assert response.usage.total_tokens > 0
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@pytest.mark.parametrize('setup_openai_mock, setup_xinference_mock', [['chat', 'none']], indirect=True)
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def test_invoke_stream_chat_model(setup_openai_mock, setup_xinference_mock):
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model = XinferenceAILargeLanguageModel()
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response = model.invoke(
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model='ChatGLM3',
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credentials={
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'server_url': os.environ.get('XINFERENCE_SERVER_URL'),
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'model_uid': os.environ.get('XINFERENCE_CHAT_MODEL_UID')
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},
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prompt_messages=[
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SystemPromptMessage(
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content='You are a helpful AI assistant.',
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),
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UserPromptMessage(
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content='Hello World!'
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)
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],
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model_parameters={
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'temperature': 0.7,
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'top_p': 1.0,
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},
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stop=['you'],
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stream=True,
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user="abc-123"
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)
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assert isinstance(response, Generator)
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for chunk in response:
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assert isinstance(chunk, LLMResultChunk)
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assert isinstance(chunk.delta, LLMResultChunkDelta)
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assert isinstance(chunk.delta.message, AssistantPromptMessage)
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assert len(chunk.delta.message.content) > 0 if chunk.delta.finish_reason is None else True
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"""
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Funtion calling of xinference does not support stream mode currently
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"""
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# def test_invoke_stream_chat_model_with_functions():
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# model = XinferenceAILargeLanguageModel()
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# response = model.invoke(
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# model='ChatGLM3-6b',
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# credentials={
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# 'server_url': os.environ.get('XINFERENCE_SERVER_URL'),
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# 'model_type': 'text-generation',
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# 'model_name': 'ChatGLM3',
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# 'model_uid': os.environ.get('XINFERENCE_CHAT_MODEL_UID')
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# },
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# prompt_messages=[
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# SystemPromptMessage(
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# content='你是一个天气机器人,可以通过调用函数来获取天气信息',
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# ),
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# UserPromptMessage(
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# content='波士顿天气如何?'
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# )
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# ],
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# model_parameters={
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# 'temperature': 0,
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# 'top_p': 1.0,
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# },
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# stop=['you'],
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# user='abc-123',
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# stream=True,
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# tools=[
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# PromptMessageTool(
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# name='get_current_weather',
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# description='Get the current weather in a given location',
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# parameters={
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# "type": "object",
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# "properties": {
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# "location": {
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# "type": "string",
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# "description": "The city and state e.g. San Francisco, CA"
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# },
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# "unit": {
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# "type": "string",
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# "enum": ["celsius", "fahrenheit"]
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# }
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# },
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# "required": [
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# "location"
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# ]
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# }
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# )
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# ]
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# )
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# assert isinstance(response, Generator)
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# call: LLMResultChunk = None
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# chunks = []
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# for chunk in response:
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# chunks.append(chunk)
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# assert isinstance(chunk, LLMResultChunk)
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# assert isinstance(chunk.delta, LLMResultChunkDelta)
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# assert isinstance(chunk.delta.message, AssistantPromptMessage)
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# assert len(chunk.delta.message.content) > 0 if chunk.delta.finish_reason is None else True
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# if chunk.delta.message.tool_calls and len(chunk.delta.message.tool_calls) > 0:
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# call = chunk
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# break
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# assert call is not None
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# assert call.delta.message.tool_calls[0].function.name == 'get_current_weather'
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# def test_invoke_chat_model_with_functions():
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# model = XinferenceAILargeLanguageModel()
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# response = model.invoke(
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# model='ChatGLM3-6b',
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# credentials={
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# 'server_url': os.environ.get('XINFERENCE_SERVER_URL'),
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# 'model_type': 'text-generation',
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# 'model_name': 'ChatGLM3',
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# 'model_uid': os.environ.get('XINFERENCE_CHAT_MODEL_UID')
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# },
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# prompt_messages=[
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# UserPromptMessage(
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# content='What is the weather like in San Francisco?'
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# )
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# ],
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# model_parameters={
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# 'temperature': 0.7,
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# 'top_p': 1.0,
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# },
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# stop=['you'],
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# user='abc-123',
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# stream=False,
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# tools=[
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# PromptMessageTool(
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# name='get_current_weather',
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# description='Get the current weather in a given location',
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# parameters={
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# "type": "object",
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# "properties": {
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# "location": {
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# "type": "string",
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# "description": "The city and state e.g. San Francisco, CA"
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# },
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# "unit": {
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# "type": "string",
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# "enum": [
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# "c",
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# "f"
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# ]
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# }
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# },
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# "required": [
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# "location"
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# ]
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# }
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# )
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# ]
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# )
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# assert isinstance(response, LLMResult)
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# assert len(response.message.content) > 0
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# assert response.usage.total_tokens > 0
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# assert response.message.tool_calls[0].function.name == 'get_current_weather'
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@pytest.mark.parametrize('setup_openai_mock, setup_xinference_mock', [['completion', 'none']], indirect=True)
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def test_validate_credentials_for_generation_model(setup_openai_mock, setup_xinference_mock):
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model = XinferenceAILargeLanguageModel()
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with pytest.raises(CredentialsValidateFailedError):
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model.validate_credentials(
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model='alapaca',
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credentials={
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'server_url': os.environ.get('XINFERENCE_SERVER_URL'),
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'model_uid': 'www ' + os.environ.get('XINFERENCE_GENERATION_MODEL_UID')
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}
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)
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with pytest.raises(CredentialsValidateFailedError):
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model.validate_credentials(
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model='alapaca',
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credentials={
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'server_url': '',
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'model_uid': ''
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}
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)
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model.validate_credentials(
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model='alapaca',
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credentials={
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'server_url': os.environ.get('XINFERENCE_SERVER_URL'),
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'model_uid': os.environ.get('XINFERENCE_GENERATION_MODEL_UID')
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}
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)
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@pytest.mark.parametrize('setup_openai_mock, setup_xinference_mock', [['completion', 'none']], indirect=True)
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def test_invoke_generation_model(setup_openai_mock, setup_xinference_mock):
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model = XinferenceAILargeLanguageModel()
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response = model.invoke(
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model='alapaca',
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credentials={
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'server_url': os.environ.get('XINFERENCE_SERVER_URL'),
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'model_uid': os.environ.get('XINFERENCE_GENERATION_MODEL_UID')
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},
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prompt_messages=[
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UserPromptMessage(
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content='the United States is'
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)
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],
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model_parameters={
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'temperature': 0.7,
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'top_p': 1.0,
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},
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stop=['you'],
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user="abc-123",
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stream=False
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)
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assert isinstance(response, LLMResult)
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assert len(response.message.content) > 0
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assert response.usage.total_tokens > 0
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@pytest.mark.parametrize('setup_openai_mock, setup_xinference_mock', [['completion', 'none']], indirect=True)
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def test_invoke_stream_generation_model(setup_openai_mock, setup_xinference_mock):
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model = XinferenceAILargeLanguageModel()
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response = model.invoke(
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model='alapaca',
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credentials={
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'server_url': os.environ.get('XINFERENCE_SERVER_URL'),
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'model_uid': os.environ.get('XINFERENCE_GENERATION_MODEL_UID')
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},
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prompt_messages=[
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UserPromptMessage(
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content='the United States is'
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)
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],
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model_parameters={
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'temperature': 0.7,
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'top_p': 1.0,
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},
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stop=['you'],
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stream=True,
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user="abc-123"
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)
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assert isinstance(response, Generator)
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for chunk in response:
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assert isinstance(chunk, LLMResultChunk)
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assert isinstance(chunk.delta, LLMResultChunkDelta)
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assert isinstance(chunk.delta.message, AssistantPromptMessage)
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assert len(chunk.delta.message.content) > 0 if chunk.delta.finish_reason is None else True
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def test_get_num_tokens():
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model = XinferenceAILargeLanguageModel()
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num_tokens = model.get_num_tokens(
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model='ChatGLM3',
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credentials={
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'server_url': os.environ.get('XINFERENCE_SERVER_URL'),
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'model_uid': os.environ.get('XINFERENCE_GENERATION_MODEL_UID')
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},
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prompt_messages=[
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SystemPromptMessage(
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content='You are a helpful AI assistant.',
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),
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UserPromptMessage(
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content='Hello World!'
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)
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],
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tools=[
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PromptMessageTool(
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name='get_current_weather',
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description='Get the current weather in a given location',
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parameters={
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"type": "object",
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"properties": {
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"location": {
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"type": "string",
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"description": "The city and state e.g. San Francisco, CA"
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},
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"unit": {
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"type": "string",
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"enum": [
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"c",
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"f"
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]
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}
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},
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"required": [
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"location"
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]
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}
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)
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]
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)
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assert isinstance(num_tokens, int)
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assert num_tokens == 77
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num_tokens = model.get_num_tokens(
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model='ChatGLM3',
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credentials={
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'server_url': os.environ.get('XINFERENCE_SERVER_URL'),
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'model_uid': os.environ.get('XINFERENCE_GENERATION_MODEL_UID')
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},
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prompt_messages=[
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SystemPromptMessage(
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content='You are a helpful AI assistant.',
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),
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UserPromptMessage(
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content='Hello World!'
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)
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],
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)
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assert isinstance(num_tokens, int)
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assert num_tokens == 21 |