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created a function for generating keywords for bodies of text
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import os
from dotenv import load_dotenv
from rag_app.database.db_handler import DataBaseHandler
from langchain_huggingface import HuggingFaceEndpoint
load_dotenv()
SQLITE_FILE_NAME = os.getenv('SOURCES_CACHE')
PERSIST_DIRECTORY = os.getenv('VECTOR_DATABASE_LOCATION')
EMBEDDING_MODEL = os.getenv("EMBEDDING_MODEL")
SEVEN_B_LLM_MODEL = os.getenv("SEVEN_B_LLM_MODEL")
BERT_MODEL = os.getenv("BERT_MODEL")
db = DataBaseHandler()
db.create_all_tables()
# This model is used for task that a larger model may not need to do
# as of currently we have been getting MODEL OVERLOADED errors
# with huggingface
SEVEN_B_LLM_MODEL = HuggingFaceEndpoint(
repo_id=SEVEN_B_LLM_MODEL,
temperature=0.1, # Controls randomness in response generation (lower value means less random)
max_new_tokens=1024, # Maximum number of new tokens to generate in responses
repetition_penalty=1.2, # Penalty for repeating the same words (higher value increases penalty)
return_full_text=False # If False, only the newly generated text is returned; if True, the input is included as well
)