Spaces:
Running
Running
removed speech feature
Browse files
app.py
CHANGED
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@@ -1,166 +1,122 @@
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import streamlit as st
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}
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)
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st.
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#
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#
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st.chat_message(
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if msg["role"] == "assistant":
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if st.button(f"🔊", key=f"voice_button_{i}"):
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speak_text(msg["content"], i)
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# Chat input and processing
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if prompt := st.chat_input():
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# Append user message to the session state
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st.session_state.messages.append({"role": "user", "content": prompt})
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st.chat_message("user").write(prompt)
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# Sentiment Analysis
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user_sentiment = TextBlob(prompt).sentiment.polarity
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# Craft System Prompt based on sentiment
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system_prompt = SYSTEM_PROMPT_GENERAL
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if user_sentiment < 0: # User expresses negative sentiment
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system_prompt = f"""{system_prompt}
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The user seems to be feeling down. Prioritize empathetic responses and open-ended questions."""
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# Format prompt using LangChain's PromptTemplate
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formatted_prompt = prompt_template.format(
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system_prompt=system_prompt,
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user_input=prompt
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)
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# Generate a response using Hugging Face API
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response = ""
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for message in client.chat_completion(
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messages=[{"role": "user", "content": formatted_prompt}],
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max_tokens=500,
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stream=True,
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):
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response += message.choices[0].delta.content
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# Append assistant message to the session state
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st.session_state.messages.append({"role": "assistant", "content": response.strip()})
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st.chat_message("assistant").write(response.strip())
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st.button(f"🔊", key=f"voice_button_{len(st.session_state.messages)-2}", on_click=speak_text, args=(response.strip(), len(st.session_state.messages)-1))
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## https://wallpapercave.com/wp/wp9668133.jpg
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## https://wallpapercave.com/wp/wp14059461.jpg
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## https://wallpapercave.com/wp/wp8219187.jpg
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## https://wallpapercave.com/uwp/uwp4189566.png
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import streamlit as st
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import os
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from huggingface_hub import InferenceClient
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from textblob import TextBlob
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from langchain.prompts import PromptTemplate
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from dotenv import load_dotenv
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# Load environment variables
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load_dotenv()
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# Configure Hugging Face API
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client = InferenceClient(
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"microsoft/Phi-3-mini-4k-instruct",
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token=os.getenv("HF_API_KEY"),
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)
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# Define System Prompts
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SYSTEM_PROMPT_GENERAL = """Answer the following question in a comforting and supportive manner.
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If the user expresses negative sentiment, prioritize empathetic responses and open-ended questions."""
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# Define LangChain Prompt Template
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prompt_template = PromptTemplate(
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input_variables=["system_prompt", "user_input"],
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template="{system_prompt}\n\nUser: {user_input}\nAssistant:"
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)
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page_bg_img="""
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<style>
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[data-testid="stAppViewContainer"] {
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background-image: url("https://i.pinimg.com/originals/d4/d7/2f/d4d72f71231ae5995e425b7a813d87f6.webp");
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background-size: cover;
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}
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[data-testid="stAppViewContainer"]::before {
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content: "";
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position: absolute;
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top: 0;
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left: 0;
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right: 0;
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bottom: 0;
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background: rgba(0, 0, 0, 0.5);
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pointer-events: none;
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}
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[data-testid="stToolbar"] {
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right: 2rem;
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}
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[data-testid="stSidebar"] {
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background-image: url("https://i.pinimg.com/originals/cb/74/8b/cb748be384b8ccc3e757fceb3820f9d4.jpg");
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background-size: 220%;
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background-position: center top;
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}
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[data-testid="stSidebar"]::before {
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background-image: url("https://i.pinimg.com/originals/cb/74/8b/cb748be384b8ccc3e757fceb3820f9d4.jpg");
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background-size: 220%;
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background-position: center top;
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content: "";
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position: absolute;
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top: 0;
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left: 0;
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right: 0;
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bottom: 0;
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background: rgba(0, 0, 0, 0.4);
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pointer-events: none;
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}
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</style>
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"""
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# Streamlit app layout
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st.markdown(page_bg_img, unsafe_allow_html=True)
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st.title("What's on your mind today?")
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# Define the desired navy blue color in hex code
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navy_blue = "#edf7fc"
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st.sidebar.markdown("")
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st.sidebar.markdown(f"""<h1 style="color: {navy_blue}; ">Feel Ashley like your BestFriend!. she will support you and helps you!</h1>""", unsafe_allow_html=True)
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if "messages" not in st.session_state:
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st.session_state["messages"] = [
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{"role": "assistant", "content": "Hi there! I'm Ashley, your best friend. How can I support you today?"}
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]
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# Display previous messages
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for msg in st.session_state.messages:
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st.chat_message(msg["role"]).write(msg["content"])
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# Chat input and processing
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if prompt := st.chat_input():
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# Append user message to the session state
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st.session_state.messages.append({"role": "user", "content": prompt})
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st.chat_message("user").write(prompt)
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# Sentiment Analysis
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user_sentiment = TextBlob(prompt).sentiment.polarity
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# Craft System Prompt based on sentiment
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system_prompt = SYSTEM_PROMPT_GENERAL
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if user_sentiment < 0: # User expresses negative sentiment
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system_prompt = f"""{system_prompt}
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The user seems to be feeling down. Prioritize empathetic responses and open-ended questions."""
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# Format prompt using LangChain's PromptTemplate
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formatted_prompt = prompt_template.format(
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system_prompt=system_prompt,
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user_input=prompt
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)
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# Generate a response using Hugging Face API
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response = ""
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for message in client.chat_completion(
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messages=[{"role": "user", "content": formatted_prompt}],
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max_tokens=500,
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stream=True,
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):
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response += message.choices[0].delta.content
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# Append assistant message to the session state
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st.session_state.messages.append({"role": "assistant", "content": response.strip()})
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st.chat_message("assistant").write(response.strip())
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