from datetime import timedelta from typing import List, Optional, Tuple, Dict import subprocess import time from subprocess import run from sys import platform import gc import uuid import logging from pathlib import Path import os import pinecone import requests_cache import responses from sqlalchemy import create_engine, text import posthog import numpy as np import psutil import pytest import requests from haystack.nodes.base import BaseComponent, MultiLabel try: from milvus import Milvus milvus1 = True except ImportError: milvus1 = False from pymilvus import utility try: from elasticsearch import Elasticsearch from haystack.document_stores.elasticsearch import ElasticsearchDocumentStore import weaviate from haystack.document_stores.weaviate import WeaviateDocumentStore from haystack.document_stores import MilvusDocumentStore, PineconeDocumentStore from haystack.document_stores.graphdb import GraphDBKnowledgeGraph from haystack.document_stores.faiss import FAISSDocumentStore from haystack.document_stores.sql import SQLDocumentStore except (ImportError, ModuleNotFoundError) as ie: from haystack.utils.import_utils import _optional_component_not_installed _optional_component_not_installed("test", "test", ie) from haystack.document_stores import BaseDocumentStore, DeepsetCloudDocumentStore, InMemoryDocumentStore from haystack.nodes import BaseReader, BaseRetriever from haystack.nodes.answer_generator.transformers import Seq2SeqGenerator from haystack.nodes.answer_generator.transformers import RAGenerator from haystack.nodes.ranker import SentenceTransformersRanker from haystack.nodes.document_classifier.transformers import TransformersDocumentClassifier from haystack.nodes.retriever.sparse import FilterRetriever, BM25Retriever, TfidfRetriever from haystack.nodes.retriever.dense import DensePassageRetriever, EmbeddingRetriever, TableTextRetriever from haystack.nodes.reader.farm import FARMReader from haystack.nodes.reader.transformers import TransformersReader from haystack.nodes.reader.table import TableReader, RCIReader from haystack.nodes.summarizer.transformers import TransformersSummarizer from haystack.nodes.translator import TransformersTranslator from haystack.nodes.question_generator import QuestionGenerator from haystack.modeling.infer import Inferencer, QAInferencer from haystack.schema import Document # To manually run the tests with default PostgreSQL instead of SQLite, switch the lines below SQL_TYPE = "sqlite" # SQL_TYPE = "postgres" SAMPLES_PATH = Path(__file__).parent / "samples" # to run tests against Deepset Cloud set MOCK_DC to False and set the following params DC_API_ENDPOINT = "https://DC_API/v1" DC_TEST_INDEX = "document_retrieval_1" DC_API_KEY = "NO_KEY" MOCK_DC = True # Disable telemetry reports when running tests posthog.disabled = True # Cache requests (e.g. huggingface model) to circumvent load protection # See https://requests-cache.readthedocs.io/en/stable/user_guide/filtering.html requests_cache.install_cache(urls_expire_after={"huggingface.co": timedelta(hours=1), "*": requests_cache.DO_NOT_CACHE}) def _sql_session_rollback(self, attr): """ Inject SQLDocumentStore at runtime to do a session rollback each time it is called. This allows to catch errors where an intended operation is still in a transaction, but not committed to the database. """ method = object.__getattribute__(self, attr) if callable(method): try: self.session.rollback() except AttributeError: pass return method SQLDocumentStore.__getattribute__ = _sql_session_rollback def pytest_collection_modifyitems(config, items): for item in items: # add pytest markers for tests that are not explicitly marked but include some keywords # in the test name (e.g. test_elasticsearch_client would get the "elasticsearch" marker) # TODO evaluate if we need all of there (the non document store ones seems to be unused) if "generator" in item.nodeid: item.add_marker(pytest.mark.generator) elif "summarizer" in item.nodeid: item.add_marker(pytest.mark.summarizer) elif "tika" in item.nodeid: item.add_marker(pytest.mark.tika) elif "pipeline" in item.nodeid: item.add_marker(pytest.mark.pipeline) elif "slow" in item.nodeid: item.add_marker(pytest.mark.slow) elif "elasticsearch" in item.nodeid: item.add_marker(pytest.mark.elasticsearch) elif "graphdb" in item.nodeid: item.add_marker(pytest.mark.graphdb) elif "weaviate" in item.nodeid: item.add_marker(pytest.mark.weaviate) elif "faiss" in item.nodeid: item.add_marker(pytest.mark.faiss) elif "milvus" in item.nodeid: item.add_marker(pytest.mark.milvus) item.add_marker(pytest.mark.milvus1) # if the cli argument "--document_store_type" is used, we want to skip all tests that have markers of other docstores # Example: pytest -v test_document_store.py --document_store_type="memory" => skip all tests marked with "elasticsearch" document_store_types_to_run = config.getoption("--document_store_type") document_store_types_to_run = document_store_types_to_run.split(", ") keywords = [] for i in item.keywords: if "-" in i: keywords.extend(i.split("-")) else: keywords.append(i) for cur_doc_store in ["elasticsearch", "faiss", "sql", "memory", "milvus1", "milvus", "weaviate", "pinecone"]: if cur_doc_store in keywords and cur_doc_store not in document_store_types_to_run: skip_docstore = pytest.mark.skip( reason=f'{cur_doc_store} is disabled. Enable via pytest --document_store_type="{cur_doc_store}"' ) item.add_marker(skip_docstore) if "milvus1" in keywords and not milvus1: skip_milvus1 = pytest.mark.skip(reason="Skipping Tests for 'milvus1', as Milvus2 seems to be installed.") item.add_marker(skip_milvus1) elif "milvus" in keywords and milvus1: skip_milvus = pytest.mark.skip(reason="Skipping Tests for 'milvus', as Milvus1 seems to be installed.") item.add_marker(skip_milvus) # Skip PineconeDocumentStore if PINECONE_API_KEY not in environment variables if not os.environ.get("PINECONE_API_KEY", False) and "pinecone" in keywords: skip_pinecone = pytest.mark.skip(reason="PINECONE_API_KEY not in environment variables.") item.add_marker(skip_pinecone) # # Empty mocks, as a base for unit tests. # # Monkeypatch the methods you need with either a mock implementation # or a unittest.mock.MagicMock object (https://docs.python.org/3/library/unittest.mock.html) # class MockNode(BaseComponent): outgoing_edges = 1 def run(self, *a, **k): pass class MockDocumentStore(BaseDocumentStore): outgoing_edges = 1 def _create_document_field_map(self, *a, **k): pass def delete_documents(self, *a, **k): pass def delete_labels(self, *a, **k): pass def get_all_documents(self, *a, **k): pass def get_all_documents_generator(self, *a, **k): pass def get_all_labels(self, *a, **k): pass def get_document_by_id(self, *a, **k): pass def get_document_count(self, *a, **k): pass def get_documents_by_id(self, *a, **k): pass def get_label_count(self, *a, **k): pass def query_by_embedding(self, *a, **k): pass def write_documents(self, *a, **k): pass def write_labels(self, *a, **k): pass def delete_index(self, *a, **k): pass class MockRetriever(BaseRetriever): outgoing_edges = 1 def retrieve(self, query: str, top_k: int): pass class MockReader(BaseReader): outgoing_edges = 1 def predict(self, query: str, documents: List[Document], top_k: Optional[int] = None): pass def predict_batch(self, query_doc_list: List[dict], top_k: Optional[int] = None, batch_size: Optional[int] = None): pass @pytest.fixture(scope="function", autouse=True) def gc_cleanup(request): """ Run garbage collector between tests in order to reduce memory footprint for CI. """ yield gc.collect() @pytest.fixture(scope="session") def elasticsearch_fixture(): # test if a ES cluster is already running. If not, download and start an ES instance locally. try: client = Elasticsearch(hosts=[{"host": "localhost", "port": "9200"}]) client.info() except: print("Starting Elasticsearch ...") status = subprocess.run(["docker rm haystack_test_elastic"], shell=True) status = subprocess.run( [ 'docker run -d --name haystack_test_elastic -p 9200:9200 -e "discovery.type=single-node" elasticsearch:7.9.2' ], shell=True, ) if status.returncode: raise Exception("Failed to launch Elasticsearch. Please check docker container logs.") time.sleep(30) @pytest.fixture(scope="session") def milvus_fixture(): # test if a Milvus server is already running. If not, start Milvus docker container locally. # Make sure you have given > 6GB memory to docker engine try: milvus_server = Milvus(uri="tcp://localhost:19530", timeout=5, wait_timeout=5) milvus_server.server_status(timeout=5) except: print("Starting Milvus ...") status = subprocess.run( [ "docker run -d --name milvus_cpu_0.10.5 -p 19530:19530 -p 19121:19121 " "milvusdb/milvus:0.10.5-cpu-d010621-4eda95" ], shell=True, ) time.sleep(40) @pytest.fixture(scope="session") def weaviate_fixture(): # test if a Weaviate server is already running. If not, start Weaviate docker container locally. # Make sure you have given > 6GB memory to docker engine try: weaviate_server = weaviate.Client(url="http://localhost:8080", timeout_config=(5, 15)) weaviate_server.is_ready() except: print("Starting Weaviate servers ...") status = subprocess.run(["docker rm haystack_test_weaviate"], shell=True) status = subprocess.run( ["docker run -d --name haystack_test_weaviate -p 8080:8080 semitechnologies/weaviate:1.11.0"], shell=True ) if status.returncode: raise Exception("Failed to launch Weaviate. Please check docker container logs.") time.sleep(60) @pytest.fixture(scope="session") def graphdb_fixture(): # test if a GraphDB instance is already running. If not, download and start a GraphDB instance locally. try: kg = GraphDBKnowledgeGraph() # fail if not running GraphDB kg.delete_index() except: print("Starting GraphDB ...") status = subprocess.run(["docker rm haystack_test_graphdb"], shell=True) status = subprocess.run( [ "docker run -d -p 7200:7200 --name haystack_test_graphdb docker-registry.ontotext.com/graphdb-free:9.4.1-adoptopenjdk11" ], shell=True, ) if status.returncode: raise Exception("Failed to launch GraphDB. Please check docker container logs.") time.sleep(30) @pytest.fixture(scope="session") def tika_fixture(): try: tika_url = "http://localhost:9998/tika" ping = requests.get(tika_url) if ping.status_code != 200: raise Exception("Unable to connect Tika. Please check tika endpoint {0}.".format(tika_url)) except: print("Starting Tika ...") status = subprocess.run(["docker run -d --name tika -p 9998:9998 apache/tika:1.24.1"], shell=True) if status.returncode: raise Exception("Failed to launch Tika. Please check docker container logs.") time.sleep(30) @pytest.fixture(scope="session") def xpdf_fixture(): verify_installation = run(["pdftotext"], shell=True) if verify_installation.returncode == 127: if platform.startswith("linux"): platform_id = "linux" sudo_prefix = "sudo" elif platform.startswith("darwin"): platform_id = "mac" # For Mac, generally sudo need password in interactive console. # But most of the cases current user already have permission to copy to /user/local/bin. # Hence removing sudo requirement for Mac. sudo_prefix = "" else: raise Exception( """Currently auto installation of pdftotext is not supported on {0} platform """.format(platform) ) commands = """ wget --no-check-certificate https://dl.xpdfreader.com/xpdf-tools-{0}-4.03.tar.gz && tar -xvf xpdf-tools-{0}-4.03.tar.gz && {1} cp xpdf-tools-{0}-4.03/bin64/pdftotext /usr/local/bin""".format( platform_id, sudo_prefix ) run([commands], shell=True) verify_installation = run(["pdftotext -v"], shell=True) if verify_installation.returncode == 127: raise Exception( """pdftotext is not installed. It is part of xpdf or poppler-utils software suite. You can download for your OS from here: https://www.xpdfreader.com/download.html.""" ) @pytest.fixture(scope="function") def deepset_cloud_fixture(): if MOCK_DC: responses.add( method=responses.GET, url=f"{DC_API_ENDPOINT}/workspaces/default/indexes/{DC_TEST_INDEX}", match=[responses.matchers.header_matcher({"authorization": f"Bearer {DC_API_KEY}"})], json={"indexing": {"status": "INDEXED", "pending_file_count": 0, "total_file_count": 31}}, status=200, ) else: responses.add_passthru(DC_API_ENDPOINT) @pytest.fixture(scope="function") @responses.activate def deepset_cloud_document_store(deepset_cloud_fixture): return DeepsetCloudDocumentStore(api_endpoint=DC_API_ENDPOINT, api_key=DC_API_KEY, index=DC_TEST_INDEX) @pytest.fixture(scope="function") def rag_generator(): return RAGenerator(model_name_or_path="facebook/rag-token-nq", generator_type="token", max_length=20) @pytest.fixture(scope="function") def question_generator(): return QuestionGenerator(model_name_or_path="valhalla/t5-small-e2e-qg") @pytest.fixture(scope="function") def lfqa_generator(request): return Seq2SeqGenerator(model_name_or_path=request.param, min_length=100, max_length=200) @pytest.fixture(scope="function") def summarizer(): return TransformersSummarizer(model_name_or_path="google/pegasus-xsum", use_gpu=-1) @pytest.fixture(scope="function") def en_to_de_translator(): return TransformersTranslator(model_name_or_path="Helsinki-NLP/opus-mt-en-de") @pytest.fixture(scope="function") def de_to_en_translator(): return TransformersTranslator(model_name_or_path="Helsinki-NLP/opus-mt-de-en") @pytest.fixture(scope="function") def test_docs_xs(): return [ # current "dict" format for a document { "content": "My name is Carla and I live in Berlin", "meta": {"meta_field": "test1", "name": "filename1", "date_field": "2020-03-01", "numeric_field": 5.5}, }, # metafield at the top level for backward compatibility { "content": "My name is Paul and I live in New York", "meta_field": "test2", "name": "filename2", "date_field": "2019-10-01", "numeric_field": 5.0, }, # Document object for a doc Document( content="My name is Christelle and I live in Paris", meta={"meta_field": "test3", "name": "filename3", "date_field": "2018-10-01", "numeric_field": 4.5}, ), Document( content="My name is Camila and I live in Madrid", meta={"meta_field": "test4", "name": "filename4", "date_field": "2021-02-01", "numeric_field": 3.0}, ), Document( content="My name is Matteo and I live in Rome", meta={"meta_field": "test5", "name": "filename5", "date_field": "2019-01-01", "numeric_field": 0.0}, ), ] @pytest.fixture(scope="function") def reader_without_normalized_scores(): return FARMReader( model_name_or_path="distilbert-base-uncased-distilled-squad", use_gpu=False, top_k_per_sample=5, num_processes=0, use_confidence_scores=False, ) @pytest.fixture(params=["farm", "transformers"], scope="function") def reader(request): if request.param == "farm": return FARMReader( model_name_or_path="distilbert-base-uncased-distilled-squad", use_gpu=False, top_k_per_sample=5, num_processes=0, ) if request.param == "transformers": return TransformersReader( model_name_or_path="distilbert-base-uncased-distilled-squad", tokenizer="distilbert-base-uncased", use_gpu=-1, ) @pytest.fixture(params=["tapas", "rci"], scope="function") def table_reader(request): if request.param == "tapas": return TableReader(model_name_or_path="google/tapas-base-finetuned-wtq") elif request.param == "rci": return RCIReader( row_model_name_or_path="michaelrglass/albert-base-rci-wikisql-row", column_model_name_or_path="michaelrglass/albert-base-rci-wikisql-col", ) @pytest.fixture(scope="function") def ranker_two_logits(): return SentenceTransformersRanker(model_name_or_path="deepset/gbert-base-germandpr-reranking") @pytest.fixture(scope="function") def ranker(): return SentenceTransformersRanker(model_name_or_path="cross-encoder/ms-marco-MiniLM-L-12-v2") @pytest.fixture(scope="function") def document_classifier(): return TransformersDocumentClassifier( model_name_or_path="bhadresh-savani/distilbert-base-uncased-emotion", use_gpu=False ) @pytest.fixture(scope="function") def zero_shot_document_classifier(): return TransformersDocumentClassifier( model_name_or_path="cross-encoder/nli-distilroberta-base", use_gpu=False, task="zero-shot-classification", labels=["negative", "positive"], ) @pytest.fixture(scope="function") def batched_document_classifier(): return TransformersDocumentClassifier( model_name_or_path="bhadresh-savani/distilbert-base-uncased-emotion", use_gpu=False, batch_size=16 ) @pytest.fixture(scope="function") def indexing_document_classifier(): return TransformersDocumentClassifier( model_name_or_path="bhadresh-savani/distilbert-base-uncased-emotion", use_gpu=False, batch_size=16, classification_field="class_field", ) # TODO Fix bug in test_no_answer_output when using # @pytest.fixture(params=["farm", "transformers"]) @pytest.fixture(params=["farm"], scope="function") def no_answer_reader(request): if request.param == "farm": return FARMReader( model_name_or_path="deepset/roberta-base-squad2", use_gpu=False, top_k_per_sample=5, no_ans_boost=0, return_no_answer=True, num_processes=0, ) if request.param == "transformers": return TransformersReader( model_name_or_path="deepset/roberta-base-squad2", tokenizer="deepset/roberta-base-squad2", use_gpu=-1, top_k_per_candidate=5, ) @pytest.fixture(scope="function") def prediction(reader, test_docs_xs): docs = [Document.from_dict(d) if isinstance(d, dict) else d for d in test_docs_xs] prediction = reader.predict(query="Who lives in Berlin?", documents=docs, top_k=5) return prediction @pytest.fixture(scope="function") def no_answer_prediction(no_answer_reader, test_docs_xs): docs = [Document.from_dict(d) if isinstance(d, dict) else d for d in test_docs_xs] prediction = no_answer_reader.predict(query="What is the meaning of life?", documents=docs, top_k=5) return prediction @pytest.fixture(params=["es_filter_only", "elasticsearch", "dpr", "embedding", "tfidf", "table_text_retriever"]) def retriever(request, document_store): return get_retriever(request.param, document_store) # @pytest.fixture(params=["es_filter_only", "elasticsearch", "dpr", "embedding", "tfidf"]) @pytest.fixture(params=["tfidf"]) def retriever_with_docs(request, document_store_with_docs): return get_retriever(request.param, document_store_with_docs) def get_retriever(retriever_type, document_store): if retriever_type == "dpr": retriever = DensePassageRetriever( document_store=document_store, query_embedding_model="facebook/dpr-question_encoder-single-nq-base", passage_embedding_model="facebook/dpr-ctx_encoder-single-nq-base", use_gpu=False, embed_title=True, ) elif retriever_type == "tfidf": retriever = TfidfRetriever(document_store=document_store) retriever.fit() elif retriever_type == "embedding": retriever = EmbeddingRetriever( document_store=document_store, embedding_model="deepset/sentence_bert", use_gpu=False ) elif retriever_type == "retribert": retriever = EmbeddingRetriever( document_store=document_store, embedding_model="yjernite/retribert-base-uncased", model_format="retribert", use_gpu=False, ) elif retriever_type == "dpr_lfqa": retriever = DensePassageRetriever( document_store=document_store, query_embedding_model="vblagoje/dpr-question_encoder-single-lfqa-wiki", passage_embedding_model="vblagoje/dpr-ctx_encoder-single-lfqa-wiki", use_gpu=False, embed_title=True, ) elif retriever_type == "elasticsearch": retriever = BM25Retriever(document_store=document_store) elif retriever_type == "es_filter_only": retriever = FilterRetriever(document_store=document_store) elif retriever_type == "table_text_retriever": retriever = TableTextRetriever( document_store=document_store, query_embedding_model="deepset/bert-small-mm_retrieval-question_encoder", passage_embedding_model="deepset/bert-small-mm_retrieval-passage_encoder", table_embedding_model="deepset/bert-small-mm_retrieval-table_encoder", use_gpu=False, ) else: raise Exception(f"No retriever fixture for '{retriever_type}'") return retriever def ensure_ids_are_correct_uuids(docs: list, document_store: object) -> None: # Weaviate currently only supports UUIDs if type(document_store) == WeaviateDocumentStore: for d in docs: d["id"] = str(uuid.uuid4()) @pytest.fixture(params=["elasticsearch", "faiss", "memory", "milvus1", "milvus", "weaviate", "pinecone"]) def document_store_with_docs(request, test_docs_xs, tmp_path): embedding_dim = request.node.get_closest_marker("embedding_dim", pytest.mark.embedding_dim(768)) document_store = get_document_store( document_store_type=request.param, embedding_dim=embedding_dim.args[0], tmp_path=tmp_path ) document_store.write_documents(test_docs_xs) yield document_store document_store.delete_index(document_store.index) @pytest.fixture def document_store(request, tmp_path): embedding_dim = request.node.get_closest_marker("embedding_dim", pytest.mark.embedding_dim(768)) document_store = get_document_store( document_store_type=request.param, embedding_dim=embedding_dim.args[0], tmp_path=tmp_path ) yield document_store document_store.delete_index(document_store.index) @pytest.fixture(params=["memory", "faiss", "milvus1", "milvus", "elasticsearch", "pinecone"]) def document_store_dot_product(request, tmp_path): embedding_dim = request.node.get_closest_marker("embedding_dim", pytest.mark.embedding_dim(768)) document_store = get_document_store( document_store_type=request.param, embedding_dim=embedding_dim.args[0], similarity="dot_product", tmp_path=tmp_path, ) yield document_store document_store.delete_index(document_store.index) @pytest.fixture(params=["memory", "faiss", "milvus1", "milvus", "elasticsearch", "pinecone"]) def document_store_dot_product_with_docs(request, test_docs_xs, tmp_path): embedding_dim = request.node.get_closest_marker("embedding_dim", pytest.mark.embedding_dim(768)) document_store = get_document_store( document_store_type=request.param, embedding_dim=embedding_dim.args[0], similarity="dot_product", tmp_path=tmp_path, ) document_store.write_documents(test_docs_xs) yield document_store document_store.delete_index(document_store.index) @pytest.fixture(params=["elasticsearch", "faiss", "memory", "milvus1", "pinecone"]) def document_store_dot_product_small(request, tmp_path): embedding_dim = request.node.get_closest_marker("embedding_dim", pytest.mark.embedding_dim(3)) document_store = get_document_store( document_store_type=request.param, embedding_dim=embedding_dim.args[0], similarity="dot_product", tmp_path=tmp_path, ) yield document_store document_store.delete_index(document_store.index) @pytest.fixture(params=["elasticsearch", "faiss", "memory", "milvus1", "milvus", "weaviate", "pinecone"]) def document_store_small(request, tmp_path): embedding_dim = request.node.get_closest_marker("embedding_dim", pytest.mark.embedding_dim(3)) document_store = get_document_store( document_store_type=request.param, embedding_dim=embedding_dim.args[0], similarity="cosine", tmp_path=tmp_path ) yield document_store document_store.delete_index(document_store.index) @pytest.fixture(scope="function", autouse=True) def postgres_fixture(): if SQL_TYPE == "postgres": setup_postgres() yield teardown_postgres() else: yield @pytest.fixture def sql_url(tmp_path): return get_sql_url(tmp_path) def get_sql_url(tmp_path): if SQL_TYPE == "postgres": return "postgresql://postgres:postgres@127.0.0.1/postgres" else: return f"sqlite:///{tmp_path}/haystack_test.db" def setup_postgres(): # status = subprocess.run(["docker run --name postgres_test -d -e POSTGRES_HOST_AUTH_METHOD=trust -p 5432:5432 postgres"], shell=True) # if status.returncode: # logging.warning("Tried to start PostgreSQL through Docker but this failed. It is likely that there is already an existing instance running.") # else: # sleep(5) engine = create_engine("postgresql://postgres:postgres@127.0.0.1/postgres", isolation_level="AUTOCOMMIT") with engine.connect() as connection: try: connection.execute(text("DROP SCHEMA public CASCADE")) except Exception as e: logging.error(e) connection.execute(text("CREATE SCHEMA public;")) connection.execute(text('SET SESSION idle_in_transaction_session_timeout = "1s";')) def teardown_postgres(): engine = create_engine("postgresql://postgres:postgres@127.0.0.1/postgres", isolation_level="AUTOCOMMIT") with engine.connect() as connection: connection.execute(text("DROP SCHEMA public CASCADE")) connection.close() def get_document_store( document_store_type, tmp_path, embedding_dim=768, embedding_field="embedding", index="haystack_test", similarity: str = "cosine", ): # cosine is default similarity as dot product is not supported by Weaviate if document_store_type == "sql": document_store = SQLDocumentStore(url=get_sql_url(tmp_path), index=index, isolation_level="AUTOCOMMIT") elif document_store_type == "memory": document_store = InMemoryDocumentStore( return_embedding=True, embedding_dim=embedding_dim, embedding_field=embedding_field, index=index, similarity=similarity, ) elif document_store_type == "elasticsearch": # make sure we start from a fresh index document_store = ElasticsearchDocumentStore( index=index, return_embedding=True, embedding_dim=embedding_dim, embedding_field=embedding_field, similarity=similarity, recreate_index=True, ) elif document_store_type == "faiss": document_store = FAISSDocumentStore( embedding_dim=embedding_dim, sql_url=get_sql_url(tmp_path), return_embedding=True, embedding_field=embedding_field, index=index, similarity=similarity, isolation_level="AUTOCOMMIT", ) elif document_store_type == "milvus1": document_store = MilvusDocumentStore( embedding_dim=embedding_dim, sql_url=get_sql_url(tmp_path), return_embedding=True, embedding_field=embedding_field, index=index, similarity=similarity, isolation_level="AUTOCOMMIT", ) elif document_store_type == "milvus": document_store = MilvusDocumentStore( embedding_dim=embedding_dim, sql_url=get_sql_url(tmp_path), return_embedding=True, embedding_field=embedding_field, index=index, similarity=similarity, isolation_level="AUTOCOMMIT", recreate_index=True, ) elif document_store_type == "weaviate": document_store = WeaviateDocumentStore( index=index, similarity=similarity, embedding_dim=embedding_dim, recreate_index=True ) elif document_store_type == "pinecone": document_store = PineconeDocumentStore( api_key=os.environ["PINECONE_API_KEY"], embedding_dim=embedding_dim, embedding_field=embedding_field, index=index, similarity=similarity, recreate_index=True, ) else: raise Exception(f"No document store fixture for '{document_store_type}'") return document_store @pytest.fixture(scope="function") def adaptive_model_qa(num_processes): """ PyTest Fixture for a Question Answering Inferencer based on PyTorch. """ try: model = Inferencer.load( "deepset/bert-base-cased-squad2", task_type="question_answering", batch_size=16, num_processes=num_processes, gpu=False, ) yield model finally: if num_processes != 0: # close the pool # we pass join=True to wait for all sub processes to close # this is because below we want to test if all sub-processes # have exited model.close_multiprocessing_pool(join=True) # check if all workers (sub processes) are closed current_process = psutil.Process() children = current_process.children() assert len(children) == 0 @pytest.fixture(scope="function") def bert_base_squad2(request): model = QAInferencer.load( "deepset/minilm-uncased-squad2", task_type="question_answering", batch_size=4, num_processes=0, multithreading_rust=False, use_fast=True, # TODO parametrize this to test slow as well ) return model DOCS_WITH_EMBEDDINGS = [ Document( content="""The capital of Germany is the city state of Berlin.""", embedding=np.array( [ 2.22920075e-01, 1.07770450e-02, 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