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Parent(s):
aa77f68
Update app.py
Browse files
app.py
CHANGED
@@ -8,7 +8,6 @@ st.set_page_config(page_title="π¦π¬ Llama 2 Chatbot")
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# Replicate Credentials
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with st.sidebar:
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st.title('π¦π¬ Llama 2 Chatbot')
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st.write('This chatbot is created using the open-source Llama 2 LLM model from Meta.')
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if 'REPLICATE_API_TOKEN' in st.secrets:
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st.success('API key already provided!', icon='β
')
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replicate_api = st.secrets['REPLICATE_API_TOKEN']
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@@ -18,18 +17,23 @@ with st.sidebar:
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st.warning('Please enter your credentials!', icon='β οΈ')
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else:
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st.success('Proceed to entering your prompt message!', icon='π')
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os.environ['REPLICATE_API_TOKEN'] = replicate_api
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st.subheader('Models and parameters')
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selected_model = st.sidebar.selectbox('Choose a Llama2 model', ['Llama2-7B', 'Llama2-13B'], key='selected_model')
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if selected_model == 'Llama2-7B':
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llm = 'a16z-infra/llama7b-v2-chat:4f0a4744c7295c024a1de15e1a63c880d3da035fa1f49bfd344fe076074c8eea'
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elif selected_model == 'Llama2-13B':
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llm = 'a16z-infra/llama13b-v2-chat:df7690f1994d94e96ad9d568eac121aecf50684a0b0963b25a41cc40061269e5'
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temperature = st.sidebar.slider('temperature', min_value=0.01, max_value=5.0, value=0.1, step=0.01)
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top_p = st.sidebar.slider('top_p', min_value=0.01, max_value=1.0, value=0.9, step=0.01)
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max_length = st.sidebar.slider('max_length', min_value=
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st.markdown('π Learn how to build this app in this [blog](https://blog.streamlit.io/how-to-build-a-llama-2-chatbot/)!')
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# Store LLM generated responses
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if "messages" not in st.session_state.keys():
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@@ -44,7 +48,7 @@ def clear_chat_history():
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st.session_state.messages = [{"role": "assistant", "content": "How may I assist you today?"}]
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st.sidebar.button('Clear Chat History', on_click=clear_chat_history)
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# Function for generating LLaMA2 response
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def generate_llama2_response(prompt_input):
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string_dialogue = "You are a helpful assistant. You do not respond as 'User' or pretend to be 'User'. You only respond once as 'Assistant'."
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for dict_message in st.session_state.messages:
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@@ -52,7 +56,7 @@ def generate_llama2_response(prompt_input):
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string_dialogue += "User: " + dict_message["content"] + "\n\n"
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else:
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string_dialogue += "Assistant: " + dict_message["content"] + "\n\n"
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output = replicate.run(
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input={"prompt": f"{string_dialogue} {prompt_input} Assistant: ",
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"temperature":temperature, "top_p":top_p, "max_length":max_length, "repetition_penalty":1})
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return output
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# Replicate Credentials
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with st.sidebar:
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st.title('π¦π¬ Llama 2 Chatbot')
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if 'REPLICATE_API_TOKEN' in st.secrets:
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st.success('API key already provided!', icon='β
')
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replicate_api = st.secrets['REPLICATE_API_TOKEN']
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st.warning('Please enter your credentials!', icon='β οΈ')
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else:
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st.success('Proceed to entering your prompt message!', icon='π')
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# Refactored from https://github.com/a16z-infra/llama2-chatbot
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st.subheader('Models and parameters')
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selected_model = st.sidebar.selectbox('Choose a Llama2 model', ['Llama2-7B', 'Llama2-13B', 'Llama2-70B'], key='selected_model')
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if selected_model == 'Llama2-7B':
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llm = 'a16z-infra/llama7b-v2-chat:4f0a4744c7295c024a1de15e1a63c880d3da035fa1f49bfd344fe076074c8eea'
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elif selected_model == 'Llama2-13B':
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llm = 'a16z-infra/llama13b-v2-chat:df7690f1994d94e96ad9d568eac121aecf50684a0b0963b25a41cc40061269e5'
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else:
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llm = 'replicate/llama70b-v2-chat:e951f18578850b652510200860fc4ea62b3b16fac280f83ff32282f87bbd2e48'
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temperature = st.sidebar.slider('temperature', min_value=0.01, max_value=5.0, value=0.1, step=0.01)
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top_p = st.sidebar.slider('top_p', min_value=0.01, max_value=1.0, value=0.9, step=0.01)
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max_length = st.sidebar.slider('max_length', min_value=64, max_value=4096, value=512, step=8)
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st.markdown('π Learn how to build this app in this [blog](https://blog.streamlit.io/how-to-build-a-llama-2-chatbot/)!')
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os.environ['REPLICATE_API_TOKEN'] = replicate_api
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# Store LLM generated responses
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if "messages" not in st.session_state.keys():
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st.session_state.messages = [{"role": "assistant", "content": "How may I assist you today?"}]
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st.sidebar.button('Clear Chat History', on_click=clear_chat_history)
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# Function for generating LLaMA2 response
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def generate_llama2_response(prompt_input):
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string_dialogue = "You are a helpful assistant. You do not respond as 'User' or pretend to be 'User'. You only respond once as 'Assistant'."
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for dict_message in st.session_state.messages:
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string_dialogue += "User: " + dict_message["content"] + "\n\n"
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else:
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string_dialogue += "Assistant: " + dict_message["content"] + "\n\n"
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output = replicate.run(llm,
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input={"prompt": f"{string_dialogue} {prompt_input} Assistant: ",
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"temperature":temperature, "top_p":top_p, "max_length":max_length, "repetition_penalty":1})
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return output
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