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| import os | |
| import gradio as gr | |
| import pandas as pd | |
| from functools import partial | |
| from ai_classroom_suite.UIBaseComponents import * | |
| # Testing purpose | |
| class EchoingTutor(SlightlyDelusionalTutor): | |
| def add_user_message(self, user_message): | |
| self.conversation_memory.append([user_message, None]) | |
| self.flattened_conversation = self.flattened_conversation + '\n\n' + 'User: ' + user_message | |
| def get_tutor_reply(self, user_message): | |
| # get tutor message | |
| tutor_message = "You said: " + user_message | |
| # add tutor message to conversation memory | |
| self.conversation_memory[-1][1] = tutor_message | |
| self.flattened_conversation = self.flattened_conversation + '\nAI: ' + tutor_message | |
| def forget_conversation(self): | |
| self.conversation_memory = [] | |
| self.flattened_conversation = '' | |
| ### Chatbot Functions ### | |
| def add_user_message(user_message, chat_tutor): | |
| chat_tutor.add_user_message(user_message) | |
| return chat_tutor.conversation_memory, chat_tutor | |
| """ | |
| def get_tutor_reply(user_message, chat_tutor): | |
| chat_tutor.get_tutor_reply(user_message) | |
| return gr.update(value="", interactive=True), chat_tutor.conversation_memory, chat_tutor | |
| """ | |
| def get_tutor_reply(chat_tutor): | |
| chat_tutor.get_tutor_reply(input_kwargs={'question':''}) | |
| return gr.update(value="", interactive=True), chat_tutor.conversation_memory, chat_tutor | |
| def get_conversation_history(chat_tutor): | |
| return chat_tutor.conversation_memory, chat_tutor | |
| def create_prompt_store(chat_tutor, vs_button, upload_files, openai_auth): | |
| text_segs = [] | |
| upload_segs = [] | |
| if upload_files: | |
| print(upload_files) | |
| upload_fnames = [f.name for f in upload_files] | |
| upload_segs = get_document_segments(upload_fnames, 'file', chunk_size=700, chunk_overlap=100) | |
| # get the full list of everything | |
| all_segs = text_segs + upload_segs | |
| print(all_segs) | |
| # create the vector store and update tutor | |
| vs_db, vs_retriever = create_local_vector_store(all_segs, search_kwargs={"k": 2}) | |
| chat_tutor.vector_store = vs_db | |
| chat_tutor.vs_retriever = vs_retriever | |
| # create the tutor chain | |
| if not chat_tutor.api_key_valid or not chat_tutor.openai_auth: | |
| chat_tutor = embed_key(openai_auth, chat_tutor) | |
| qa_chain = create_tutor_mdl_chain(kind="retrieval_qa", mdl=chat_tutor.chat_llm, retriever = chat_tutor.vs_retriever, return_source_documents=True) | |
| chat_tutor.tutor_chain = qa_chain | |
| # return the store | |
| return chat_tutor, gr.update(interactive=True, value='Tutor Initialized!') | |
| ### Instructor Interface Helper Functions ### | |
| def get_instructor_prompt(fileobj): | |
| file_path = fileobj.name | |
| f = open(file_path, "r") | |
| instructor_prompt = f.read() | |
| return instructor_prompt | |
| def embed_prompt(instructor_prompt): | |
| os.environ["SECRET_PROMPT"] = instructor_prompt | |
| return os.environ.get("SECRET_PROMPT") | |
| ### User Interfaces ### | |
| with gr.Blocks() as demo: | |
| #initialize tutor (with state) | |
| study_tutor = gr.State(SlightlyDelusionalTutor()) | |
| # Student interface | |
| with gr.Tab("For Students"): | |
| # Chatbot interface | |
| gr.Markdown(""" | |
| ## Chat with the Model | |
| Description here | |
| """) | |
| with gr.Row(equal_height=True): | |
| with gr.Column(scale=2): | |
| chatbot = gr.Chatbot() | |
| with gr.Row(): | |
| user_chat_input = gr.Textbox(label="User input", scale=9) | |
| user_chat_submit = gr.Button("Ask/answer model", scale=1) | |
| user_chat_submit.click( | |
| add_user_message, | |
| [user_chat_input, study_tutor], | |
| [chatbot, study_tutor], | |
| queue=False | |
| ).then( | |
| get_tutor_reply, | |
| [study_tutor], | |
| [user_chat_input, chatbot, study_tutor], | |
| queue=True) | |
| # Testing purpose | |
| test_btn = gr.Button("View your chat history") | |
| chat_history = gr.JSON(label = "conversation history") | |
| test_btn.click(get_conversation_history, inputs=[study_tutor], outputs=[chat_history, study_tutor]) | |
| # Download conversation history file | |
| with gr.Blocks(): | |
| gr.Markdown(""" | |
| ## Export Your Chat History | |
| Export your chat history as a .json, .txt, or .csv file | |
| """) | |
| with gr.Row(): | |
| export_dialogue_button_json = gr.Button("JSON") | |
| export_dialogue_button_txt = gr.Button("TXT") | |
| export_dialogue_button_csv = gr.Button("CSV") | |
| file_download = gr.Files(label="Download here", file_types=['.json', '.txt', '.csv'], type="file", visible=False) | |
| export_dialogue_button_json.click(save_json, study_tutor, file_download, show_progress=True) | |
| export_dialogue_button_txt.click(save_txt, study_tutor, file_download, show_progress=True) | |
| export_dialogue_button_csv.click(save_csv, study_tutor, file_download, show_progress=True) | |
| # Instructor interface | |
| with gr.Tab("Instructor Only"): | |
| # API Authentication functionality | |
| # Instead of ask students to provide key, the key is now provided by the instructor | |
| with gr.Box(): | |
| gr.Markdown("### OpenAI API Key ") | |
| gr.HTML("""<span>Embed your OpenAI API key below; if you haven't created one already, visit | |
| <a href="https://platform.openai.com/account/api-keys">platform.openai.com/account/api-keys</a> | |
| to sign up for an account and get your personal API key</span>""", | |
| elem_classes="textbox_label") | |
| api_input = gr.Textbox(show_label=False, type="password", container=False, autofocus=True, | |
| placeholder="βββββββββββββββββ", value='') | |
| api_input.submit(fn=embed_key, inputs=[api_input, study_tutor], outputs=study_tutor) | |
| api_input.blur(fn=embed_key, inputs=[api_input, study_tutor], outputs=study_tutor) | |
| """ | |
| Another way to permanently set the key is to directly go to | |
| Settings -> Variables and secrets -> Secrets | |
| Then replace OPENAI_API_KEY value with whatever openai key of the instructor. | |
| """ | |
| # api_input = os.environ.get("OPENAI_API_KEY") | |
| # embed_key(api_input, study_tutor) | |
| # Upload secret prompt functionality | |
| # The instructor will provide a secret prompt/persona to the tutor | |
| with gr.Blocks(): | |
| # testing purpose, change visible to False at deployment | |
| test_secret = gr.Textbox(label="Current secret prompt", value=os.environ.get("SECRET_PROMPT"), visible=True) | |
| file_input = gr.File(label="Load a .txt or .py file", | |
| file_types=['.py', '.txt'], type="file", | |
| elem_classes="short-height") | |
| # Verify prompt content | |
| instructor_prompt = gr.Textbox(label="Verify your prompt content", visible=True) | |
| file_input.upload(fn=get_instructor_prompt, inputs=file_input, outputs=instructor_prompt) | |
| # Set the secret prompt in this session and embed it to the study tutor | |
| prompt_submit_btn = gr.Button("Submit") | |
| prompt_submit_btn.click( | |
| fn=embed_prompt, inputs=instructor_prompt, outputs=test_secret | |
| ).then( | |
| fn=create_prompt_store, | |
| inputs=[study_tutor, prompt_submit_btn, file_input, api_input], | |
| outputs=[study_tutor, prompt_submit_btn] | |
| ) | |
| # TODO: may need a way to set the secret prompt permanently in settings/secret | |
| demo.queue().launch(server_name='0.0.0.0', server_port=7860) |