HumanLikeness / src /envs.py
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import os
import torch
from huggingface_hub import HfApi
# replace this with our token
TOKEN = os.environ.get("HF_TOKEN", None)
# print(TOKEN)
# OWNER = "vectara"
# REPO_ID = f"{OWNER}/Humanlike"
# QUEUE_REPO = f"{OWNER}/requests"
# RESULTS_REPO = f"{OWNER}/results"
OWNER = "Simondon" # Change to your org - don't forget to create a results and request dataset, with the correct format!
# ----------------------------------
REPO_ID = f"{OWNER}/Humanlike"
QUEUE_REPO = f"{OWNER}/requests"
RESULTS_REPO = f"{OWNER}/results"
# print(RESULTS_REPO)
CACHE_PATH=os.getenv("HF_HOME", ".")
# Local caches
EVAL_REQUESTS_PATH = os.path.join(CACHE_PATH, "eval-queue")
EVAL_RESULTS_PATH = os.path.join(CACHE_PATH, "eval-results")
EVAL_REQUESTS_PATH_BACKEND = os.path.join(CACHE_PATH, "eval-queue-bk")
EVAL_RESULTS_PATH_BACKEND = os.path.join(CACHE_PATH, "eval-results-bk")
# print(EVAL_RESULTS_PATH)
# exit()
DEVICE = torch.device('cuda' if torch.cuda.is_available() else 'cpu') #"cpu"
API = HfApi(token=TOKEN)
DATASET_PATH = "./src/datasets/Material_Llama2_0603.xlsx" #experiment data
PROMPT_PATH = "./src/datasets/prompt.xlsx" #prompt for each experiment
HEM_PATH = 'vectara/hallucination_evaluation_model'
HUMAN_DATA = "./src/datasets/human_data.csv" #experiment data
ITEM_4_DATA = "./src/datasets/associataion_dataset.csv" #database
ITEM_5_DATA = "./src/datasets/Items_5.csv" #experiment 5 need verb words
# SYSTEM_PROMPT = "You are a chat bot answering questions using data. You must stick to the answers provided solely by the text in the passage provided."
SYSTEM_PROMPT = "You are a participant of a psycholinguistic experiment. You will do a task on English language use."
'''prompt'''
# USER_PROMPT = "You are asked the question 'Provide a concise summary of the following passage, covering the core pieces of information described': "
USER_PROMPT = ""