mirror of
https://github.com/hwchase17/langchain
synced 2024-11-18 09:25:54 +00:00
ed58eeb9c5
Moved the following modules to new package langchain-community in a backwards compatible fashion: ``` mv langchain/langchain/adapters community/langchain_community mv langchain/langchain/callbacks community/langchain_community/callbacks mv langchain/langchain/chat_loaders community/langchain_community mv langchain/langchain/chat_models community/langchain_community mv langchain/langchain/document_loaders community/langchain_community mv langchain/langchain/docstore community/langchain_community mv langchain/langchain/document_transformers community/langchain_community mv langchain/langchain/embeddings community/langchain_community mv langchain/langchain/graphs community/langchain_community mv langchain/langchain/llms community/langchain_community mv langchain/langchain/memory/chat_message_histories community/langchain_community mv langchain/langchain/retrievers community/langchain_community mv langchain/langchain/storage community/langchain_community mv langchain/langchain/tools community/langchain_community mv langchain/langchain/utilities community/langchain_community mv langchain/langchain/vectorstores community/langchain_community mv langchain/langchain/agents/agent_toolkits community/langchain_community mv langchain/langchain/cache.py community/langchain_community mv langchain/langchain/adapters community/langchain_community mv langchain/langchain/callbacks community/langchain_community/callbacks mv langchain/langchain/chat_loaders community/langchain_community mv langchain/langchain/chat_models community/langchain_community mv langchain/langchain/document_loaders community/langchain_community mv langchain/langchain/docstore community/langchain_community mv langchain/langchain/document_transformers community/langchain_community mv langchain/langchain/embeddings community/langchain_community mv langchain/langchain/graphs community/langchain_community mv langchain/langchain/llms community/langchain_community mv langchain/langchain/memory/chat_message_histories community/langchain_community mv langchain/langchain/retrievers community/langchain_community mv langchain/langchain/storage community/langchain_community mv langchain/langchain/tools community/langchain_community mv langchain/langchain/utilities community/langchain_community mv langchain/langchain/vectorstores community/langchain_community mv langchain/langchain/agents/agent_toolkits community/langchain_community mv langchain/langchain/cache.py community/langchain_community ``` Moved the following to core ``` mv langchain/langchain/utils/json_schema.py core/langchain_core/utils mv langchain/langchain/utils/html.py core/langchain_core/utils mv langchain/langchain/utils/strings.py core/langchain_core/utils cat langchain/langchain/utils/env.py >> core/langchain_core/utils/env.py rm langchain/langchain/utils/env.py ``` See .scripts/community_split/script_integrations.sh for all changes
72 lines
2.4 KiB
Python
Executable File
72 lines
2.4 KiB
Python
Executable File
"""Test HuggingFace Pipeline wrapper."""
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from pathlib import Path
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from langchain_community.llms.huggingface_pipeline import HuggingFacePipeline
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from langchain_community.llms.loading import load_llm
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from tests.integration_tests.llms.utils import assert_llm_equality
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def test_huggingface_pipeline_text_generation() -> None:
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"""Test valid call to HuggingFace text generation model."""
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llm = HuggingFacePipeline.from_model_id(
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model_id="gpt2", task="text-generation", pipeline_kwargs={"max_new_tokens": 10}
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)
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output = llm("Say foo:")
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assert isinstance(output, str)
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def test_huggingface_pipeline_text2text_generation() -> None:
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"""Test valid call to HuggingFace text2text generation model."""
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llm = HuggingFacePipeline.from_model_id(
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model_id="google/flan-t5-small", task="text2text-generation"
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)
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output = llm("Say foo:")
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assert isinstance(output, str)
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def test_huggingface_pipeline_device_map() -> None:
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"""Test pipelines specifying the device map parameter."""
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llm = HuggingFacePipeline.from_model_id(
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model_id="gpt2",
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task="text-generation",
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device_map="auto",
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pipeline_kwargs={"max_new_tokens": 10},
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)
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output = llm("Say foo:")
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assert isinstance(output, str)
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def text_huggingface_pipeline_summarization() -> None:
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"""Test valid call to HuggingFace summarization model."""
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llm = HuggingFacePipeline.from_model_id(
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model_id="facebook/bart-large-cnn", task="summarization"
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)
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output = llm("Say foo:")
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assert isinstance(output, str)
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def test_saving_loading_llm(tmp_path: Path) -> None:
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"""Test saving/loading an HuggingFaceHub LLM."""
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llm = HuggingFacePipeline.from_model_id(
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model_id="gpt2", task="text-generation", pipeline_kwargs={"max_new_tokens": 10}
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)
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llm.save(file_path=tmp_path / "hf.yaml")
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loaded_llm = load_llm(tmp_path / "hf.yaml")
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assert_llm_equality(llm, loaded_llm)
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def test_init_with_pipeline() -> None:
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"""Test initialization with a HF pipeline."""
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from transformers import AutoModelForCausalLM, AutoTokenizer, pipeline
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model_id = "gpt2"
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tokenizer = AutoTokenizer.from_pretrained(model_id)
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model = AutoModelForCausalLM.from_pretrained(model_id)
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pipe = pipeline(
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"text-generation", model=model, tokenizer=tokenizer, max_new_tokens=10
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)
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llm = HuggingFacePipeline(pipeline=pipe)
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output = llm("Say foo:")
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assert isinstance(output, str)
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