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CognitiveScience
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4fe8a03
1
Parent(s):
8c3e918
Create app.py
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app.py
ADDED
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import gradio as gr
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from bs4 import BeautifulSoup
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import requests
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from acogsphere import acf
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from bcogsphere import bcf
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import math
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import glob
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#from python_actr import *
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#from cogscidighum import *
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#class myCelSci(Model):
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# pass
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#def main(link):
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# response=getviews(link)+getresult("hello world")[0]["label"] + str(math.trunc(getresult("hello world")[0]["score"])*100/100)
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# return response #result #soup.prettify()
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import sqlite3
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import huggingface_hub
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import pandas as pd
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import shutil
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import os
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import datetime
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from apscheduler.schedulers.background import BackgroundScheduler
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import random
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import time
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DB_FILE = "./reviews.db"
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TOKEN = os.environ.get('HF_KEY')
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repo = huggingface_hub.Repository(
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local_dir="data",
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repo_type="dataset",
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clone_from="CognitiveScience/csdhdata",
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use_auth_token=TOKEN
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)
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repo.git_pull()
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# Set db to latest
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shutil.copyfile("./data/reviews.db", DB_FILE)
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# Create table if it doesn't already exist
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db = sqlite3.connect(DB_FILE)
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try:
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db.execute("SELECT * FROM reviews").fetchall()
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db.close()
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except sqlite3.OperationalError:
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db.execute(
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'''
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CREATE TABLE reviews (id INTEGER PRIMARY KEY AUTOINCREMENT NOT NULL,
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created_at TIMESTAMP DEFAULT CURRENT_TIMESTAMP NOT NULL,
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name TEXT, review INTEGER, comments TEXT)
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''')
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db.commit()
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db.close()
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def get_latest_reviews(db: sqlite3.Connection):
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reviews = db.execute("SELECT * FROM reviews ORDER BY id DESC limit 10").fetchall()
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total_reviews = db.execute("Select COUNT(id) from reviews").fetchone()[0]
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reviews = pd.DataFrame(reviews, columns=["id", "date_created", "name", "review", "comments"])
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return reviews, total_reviews
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def add_review(name: str, review: int, comments: str):
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db = sqlite3.connect(DB_FILE)
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cursor = db.cursor()
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cursor.execute("INSERT INTO reviews(name, review, comments) VALUES(?,?,?)", [name, review, comments])
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db.commit()
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reviews, total_reviews = get_latest_reviews(db)
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db.close()
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return reviews, total_reviews
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def load_data():
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db = sqlite3.connect(DB_FILE)
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reviews, total_reviews = get_latest_reviews(db)
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db.close()
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return reviews, total_reviews
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def delete_review(id: int):
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db = sqlite3.connect(DB_FILE)
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cursor = db.cursor()
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cursor.execute("DELETE FROM reviews WHERE id = ?", [id])
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db.commit()
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reviews, total_reviews = get_latest_reviews(db)
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db.close()
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return reviews, total_reviews
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def delete_all_reviews():
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db = sqlite3.connect(DB_FILE)
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cursor = db.cursor()
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cursor.execute("DELETE FROM reviews")
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db.commit()
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reviews, total_reviews = get_latest_reviews(db)
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db.close()
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return reviews, total_reviews
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#def cs(link):
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# response="Hi " + "bcf" #(link) #acf("hello world")[0]["label"] + str(math.trunc(acf("hello world")[0]["score"])*100/100)+bcf(link)
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# return response #result #soup.prettify()
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def respond3(message, chat_history):
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bot_message = random.choice(["How are you3?", "I love you3", "I'm very hungry3"])
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chat_history.append((message, bot_message))
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time.sleep(2)
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return "", chat_history
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with gr.Blocks() as demo:
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with gr.Row():
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with gr.Column():
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with gr.Box():
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gr.Markdown("Based on dataset [here](https://huggingface.co/datasets/freddyaboulton/gradio-reviews)")
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#data = gr.Dataframe()
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count = gr.Number(label="Total number of reviews")
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name = gr.Textbox(label="Name", placeholder="ur name?")
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review = gr.Radio(label="How satisfied are you with your pick?", choices=[1, 2, 3, 4, 5, 6])
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comments = gr.Textbox(label="Comments0", lines=10, placeholder="comm?")
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cssubmit = gr.Button(value="Submit Choice")
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#cschatbot = gr.Chatbot()
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#csinp = gr.Textbox()
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#csout=cs(csinp)
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#csclear = gr.ClearButton([csinp, cschatbot])
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#csinp.submit(cs, [csinp, cschatbot], [csinp, cschatbot])
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def cs(link):
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response="Hi " + link #(link) #acf("hello world")[0]["label"] + str(math.trunc(acf("hello world")[0]["score"])*100/100)+bcf(link)
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return response,1 #result #soup.prettify()
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cssubmit.click(cs, name, [comments,count])
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with gr.Row():
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with gr.Column():
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name = gr.Textbox(label="Name", placeholder="What is your name?")
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review = gr.Radio(label="How satisfied are you with using gradio?", choices=[1, 2, 3, 4, 5])
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comments = gr.Textbox(label="Comments", lines=10, placeholder="Do you have any feedback on gradio?")
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submit = gr.Button(value="Submit Feedback")
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with gr.Column():
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gr.FileExplorer(label="Working directory")
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gr.FileExplorer(root="./data", label="Persistent storage")
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with gr.Column():
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chatbot = gr.Chatbot()
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msg = gr.Textbox()
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clear = gr.ClearButton([msg, chatbot])
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def respond(message, chat_history):
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bot_message = random.choice(["How are you?", "I love you", "I'm very hungry"])
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chat_history.append((message, bot_message))
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time.sleep(2)
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return "", chat_history
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msg.submit(respond, [msg, chatbot], [msg, chatbot])
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with gr.Column():
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submitsave = gr.Button(value="Save")
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def backup_db2():
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shutil.copyfile(DB_FILE, "./data/reviews.db")
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db = sqlite3.connect(DB_FILE)
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reviews = db.execute("SELECT * FROM reviews").fetchall()
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pd.DataFrame(reviews).to_csv("./data/reviews.csv", index=False)
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print("updating db")
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repo.push_to_hub(blocking=False, commit_message=f"Updating data at {datetime.datetime.now()}")
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submit.click(backup_db2)
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with gr.Column():
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with gr.Box():
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gr.Code(
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value="""def hello_world():
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return "Hello, world!"
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print(hello_world())""",
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language="python",
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interactive=True,
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show_label=False,
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)
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gr.Markdown("Based on dataset [here](https://huggingface.co/datasets/freddyaboulton/gradio-reviews)")
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data = gr.Dataframe()
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count = gr.Number(label="Total number of reviews")
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submit.click(add_review, [name, review, comments], [data, count])
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#cssubmit.click(add_review, [name, review, comments], [data, count])
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record2del = gr.Textbox(label="Id: ", lines=1, placeholder="to delete?")
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submit2 = gr.Button(value="Delete Review")
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id_input = gr.Number(value=202, visible=False)
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submit2.click(delete_review, id_input)
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submit3 = gr.Button(value="Delete All Reviews")
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submit3.click(delete_all_reviews)
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demo.load(load_data, None, [data, count])
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def backup_db():
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shutil.copyfile(DB_FILE, "./data/reviews.db")
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db = sqlite3.connect(DB_FILE)
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reviews = db.execute("SELECT * FROM reviews").fetchall()
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pd.DataFrame(reviews).to_csv("./data/reviews.csv", index=False)
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print("updating db")
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repo.push_to_hub(blocking=False, commit_message=f"Updating data at {datetime.datetime.now()}")
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scheduler = BackgroundScheduler()
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scheduler.add_job(func=backup_db, trigger="interval", seconds=60)
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scheduler.start()
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demo.launch()
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