Spaces:
Runtime error
Runtime error
updated BAM models
Browse files
app.py
ADDED
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@@ -0,0 +1,315 @@
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| 1 |
+
from dotenv import load_dotenv
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| 2 |
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import datetime
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| 3 |
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import openai
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import uuid
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import gradio as gr
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from langchain.embeddings import OpenAIEmbeddings
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| 7 |
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from langchain.vectorstores import Chroma
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| 8 |
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from langchain.text_splitter import CharacterTextSplitter, RecursiveCharacterTextSplitter
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| 9 |
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from langchain.chains import ConversationalRetrievalChain
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| 10 |
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from langchain.chains import RetrievalQA
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| 11 |
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from langchain.embeddings import SentenceTransformerEmbeddings
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| 12 |
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| 13 |
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import os
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| 14 |
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from langchain.chat_models import ChatOpenAI
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| 15 |
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from langchain import OpenAI
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| 16 |
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from langchain.document_loaders import WebBaseLoader, TextLoader, Docx2txtLoader, PyMuPDFLoader
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| 17 |
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from whatsapp_chat_custom import WhatsAppChatLoader # use this instead of from langchain.document_loaders import WhatsAppChatLoader
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| 19 |
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from ibm_watson_machine_learning.metanames import GenTextParamsMetaNames as GenParams
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| 20 |
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from ibm_watson_machine_learning.foundation_models.utils.enums import DecodingMethods
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from ibm_watson_machine_learning.foundation_models import Model
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| 22 |
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from ibm_watson_machine_learning.foundation_models.extensions.langchain import WatsonxLLM
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from ibm_watson_machine_learning.foundation_models.utils.enums import ModelTypes
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| 24 |
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import genai
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| 26 |
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from collections import deque
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import re
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from bs4 import BeautifulSoup
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import requests
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from urllib.parse import urlparse
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import mimetypes
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from pathlib import Path
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import tiktoken
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from ttyd_functions import *
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from ttyd_consts import *
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| 37 |
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| 38 |
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###############################################################################################
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| 39 |
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| 40 |
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load_dotenv()
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| 41 |
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TTYD_MODE = os.getenv("TTYD_MODE",'')
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| 42 |
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| 43 |
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| 44 |
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# select the mode when starting container - modes options are in ttyd_consts.py
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| 45 |
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if TTYD_MODE.split('_')[0]=='personalBot':
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| 46 |
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mode = mode_arslan
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| 47 |
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if TTYD_MODE!='personalBot_Arslan':
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| 48 |
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user = TTYD_MODE.split('_')[1]
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| 49 |
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mode.title='## Talk to '+user
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| 50 |
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mode.welcomeMsg= welcomeMsgUser(user)
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| 51 |
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| 52 |
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elif os.getenv("TTYD_MODE",'')=='nustian':
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| 53 |
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mode = mode_nustian
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| 54 |
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else:
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| 55 |
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mode = mode_general
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| 56 |
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| 57 |
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| 58 |
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if mode.type!='userInputDocs':
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| 59 |
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# local vector store as opposed to gradio state vector store, if we the user is not uploading the docs
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| 60 |
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vsDict_hard = localData_vecStore(getPersonalBotApiKey(), inputDir=mode.inputDir, file_list=mode.file_list, url_list=mode.url_list, gGrUrl=mode.gDriveFolder)
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| 61 |
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| 62 |
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###############################################################################################
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| 63 |
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| 64 |
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# Gradio
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| 65 |
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| 66 |
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###############################################################################################
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| 67 |
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| 68 |
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def setOaiApiKey(creds):
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| 69 |
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creds = getOaiCreds(creds)
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| 70 |
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try:
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| 71 |
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openai.Model.list(api_key=creds.get('oai_key','Null')) # test the API key
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| 72 |
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api_key_st = creds
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| 73 |
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return 'OpenAI credentials accepted.', *[x.update(interactive=False) for x in credComps_btn_tb], api_key_st
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| 74 |
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except Exception as e:
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| 75 |
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gr.Warning(str(e))
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| 76 |
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return [x.update() for x in credComps_op]
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| 77 |
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| 78 |
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def setBamApiKey(creds):
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| 79 |
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creds = getBamCreds(creds)
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| 80 |
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try:
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| 81 |
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bam_models = genai.Model.models(credentials=creds['bam_creds'])
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| 82 |
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bam_models = sorted(x.id for x in bam_models)
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| 83 |
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api_key_st = creds
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| 84 |
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return 'BAM credentials accepted.', *[x.update(interactive=False) for x in credComps_btn_tb], api_key_st, model_dd.update(choices=getModelChoices(openAi_models, ModelTypes, bam_models))
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| 85 |
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except Exception as e:
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| 86 |
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gr.Warning(str(e))
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| 87 |
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return *[x.update() for x in credComps_op], model_dd.update()
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| 88 |
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| 89 |
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def setWxApiKey(key, p_id):
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| 90 |
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creds = getWxCreds(key, p_id)
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| 91 |
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try:
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| 92 |
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Model(model_id='google/flan-ul2', credentials=creds['credentials'], project_id=creds['project_id']) # test the API key
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| 93 |
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api_key_st = creds
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| 94 |
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return 'Watsonx credentials accepted.', *[x.update(interactive=False) for x in credComps_btn_tb], api_key_st
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| 95 |
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except Exception as e:
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| 96 |
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gr.Warning(str(e))
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| 97 |
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return [x.update() for x in credComps_op]
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| 98 |
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| 99 |
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| 100 |
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# convert user uploaded data to vectorstore
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| 101 |
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def uiData_vecStore(userFiles, userUrls, api_key_st, vsDict_st={}, progress=gr.Progress()):
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| 102 |
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opComponents = [data_ingest_btn, upload_fb, urls_tb, initChatbot_btn]
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| 103 |
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# parse user data
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| 104 |
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file_paths = []
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| 105 |
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documents = []
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| 106 |
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if userFiles is not None:
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| 107 |
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if not isinstance(userFiles, list): userFiles = [userFiles]
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| 108 |
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file_paths = [file.name for file in userFiles]
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| 109 |
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userUrls = [x.strip() for x in userUrls.split(",")] if userUrls else []
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| 110 |
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#create documents
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| 111 |
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documents = data_ingestion(file_list=file_paths, url_list=userUrls, prog=progress)
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| 112 |
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if documents:
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| 113 |
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for file in file_paths:
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| 114 |
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os.remove(file)
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| 115 |
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else:
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| 116 |
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gr.Error('No documents found')
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| 117 |
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return {}, '', *[x.update() for x in opComponents]
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| 118 |
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# Splitting and Chunks
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| 119 |
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docs = split_docs(documents)
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| 120 |
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# Embeddings
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| 121 |
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try:
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| 122 |
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embeddings = getEmbeddingFunc(api_key_st)
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| 123 |
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except Exception as e:
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| 124 |
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gr.Error(str(e))
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| 125 |
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return {}, '', *[x.update() for x in opComponents]
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| 126 |
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| 127 |
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progress(0.5, 'Creating Vector Database')
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| 128 |
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vsDict_st = getVsDict(embeddings, docs, vsDict_st)
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| 129 |
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# get sources from metadata
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| 130 |
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src_str = getSourcesFromMetadata(vsDict_st['chromaClient'].get()['metadatas'])
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| 131 |
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src_str = str(src_str[1]) + ' source document(s) successfully loaded in vector store.'+'\n\n' + src_str[0]
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| 132 |
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| 133 |
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progress(1, 'Data loaded')
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| 134 |
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return vsDict_st, src_str, *[x.update(interactive=False) for x in [data_ingest_btn, upload_fb]], urls_tb.update(interactive=False, placeholder=''), initChatbot_btn.update(interactive=True)
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| 135 |
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| 136 |
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# initialize chatbot function sets the QA Chain, and also sets/updates any other components to start chatting. updateQaChain function only updates QA chain and will be called whenever Adv Settings are updated.
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| 137 |
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def initializeChatbot(temp, k, modelNameDD, stdlQs, api_key_st, vsDict_st, progress=gr.Progress()):
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| 138 |
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progress(0.1, waitText_initialize)
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| 139 |
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chainTuple = updateQaChain(temp, k, modelNameDD, stdlQs, api_key_st, vsDict_st)
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| 140 |
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qa_chain_st = chainTuple[0]
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| 141 |
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progress(0.5, waitText_initialize)
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| 142 |
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#generate welcome message
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| 143 |
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if mode.welcomeMsg:
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| 144 |
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welMsg = mode.welcomeMsg
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| 145 |
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else:
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| 146 |
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welMsg = welcomeMsgDefault
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| 147 |
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print('Chatbot initialized at ', datetime.datetime.now().strftime('%Y-%m-%d %H:%M:%S'))
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| 148 |
+
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| 149 |
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return qa_chain_st, chainTuple[1], btn.update(interactive=True), initChatbot_btn.update('Chatbot ready. Now visit the chatbot Tab.', interactive=False)\
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| 150 |
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, status_tb.update(), gr.Tabs.update(selected='cb'), chatbot.update(value=[('', welMsg)])
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| 151 |
+
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| 152 |
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# just update the QA Chain, no updates to any UI
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| 153 |
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def updateQaChain(temp, k, modelNameDD, stdlQs, api_key_st, vsDict_st):
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| 154 |
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# if we are not adding data from ui, then use vsDict_hard as vectorstore
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| 155 |
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if vsDict_st=={} and mode.type!='userInputDocs': vsDict_st=vsDict_hard
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| 156 |
+
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| 157 |
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if api_key_st['service']=='openai':
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| 158 |
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if not 'openai' in modelNameDD:
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| 159 |
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modelNameDD = changeModel(modelNameDD, OaiDefaultModel)
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| 160 |
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llm = getOaiLlm(temp, modelNameDD, api_key_st)
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| 161 |
+
elif api_key_st['service']=='watsonx':
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| 162 |
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if not 'watsonx' in modelNameDD:
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| 163 |
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modelNameDD = changeModel(modelNameDD, WxDefaultModel)
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| 164 |
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llm = getWxLlm(temp, modelNameDD, api_key_st)
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| 165 |
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elif api_key_st['service']=='bam':
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| 166 |
+
if not 'bam' in modelNameDD:
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| 167 |
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modelNameDD = changeModel(modelNameDD, BamDefaultModel)
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| 168 |
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llm = getBamLlm(temp, modelNameDD, api_key_st)
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| 169 |
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else:
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| 170 |
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raise Exception('Error: Invalid or None Credentials')
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| 171 |
+
# settingsUpdated = 'Settings updated:'+ ' Model=' + modelName + ', Temp=' + str(temp)+ ', k=' + str(k)
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| 172 |
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# gr.Info(settingsUpdated)
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| 173 |
+
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| 174 |
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if 'meta-llama/llama-2' in modelNameDD:
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| 175 |
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prompt = promptLlama
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| 176 |
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else:
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| 177 |
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prompt = None
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| 178 |
+
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| 179 |
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# Now create QA Chain using the LLM
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| 180 |
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if stdlQs==0: # 0th index i.e. first option
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| 181 |
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qa_chain_st = RetrievalQA.from_llm(
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| 182 |
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llm=llm,
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| 183 |
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retriever=vsDict_st['chromaClient'].as_retriever(search_type="similarity", search_kwargs={"k": int(k)}),
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| 184 |
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return_source_documents=True,
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| 185 |
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prompt=prompt,
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| 186 |
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input_key = 'question', output_key='answer' # to align with ConversationalRetrievalChain for downstream functions
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| 187 |
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)
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| 188 |
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else:
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| 189 |
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rephQs = False if stdlQs==1 else True
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| 190 |
+
qa_chain_st = ConversationalRetrievalChain.from_llm(
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| 191 |
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llm=llm,
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| 192 |
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retriever=vsDict_st['chromaClient'].as_retriever(search_type="similarity", search_kwargs={"k": int(k)}),
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| 193 |
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rephrase_question=rephQs,
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| 194 |
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return_source_documents=True,
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| 195 |
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return_generated_question=True,
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| 196 |
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combine_docs_chain_kwargs={'prompt':promptLlama}
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| 197 |
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)
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| 198 |
+
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| 199 |
+
return qa_chain_st, model_dd.update(value=modelNameDD)
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| 200 |
+
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| 201 |
+
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| 202 |
+
def respond(message, chat_history, qa_chain):
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| 203 |
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result = qa_chain({'question': message, "chat_history": [tuple(x) for x in chat_history]})
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| 204 |
+
src_docs = getSourcesFromMetadata([x.metadata for x in result["source_documents"]], sourceOnly=False)[0]
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| 205 |
+
# streaming
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| 206 |
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streaming_answer = ""
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| 207 |
+
for ele in "".join(result['answer']):
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| 208 |
+
streaming_answer += ele
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| 209 |
+
yield "", chat_history + [(message, streaming_answer)], src_docs, btn.update('Please wait...', interactive=False)
|
| 210 |
+
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| 211 |
+
chat_history.extend([(message, result['answer'])])
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| 212 |
+
yield "", chat_history, src_docs, btn.update('Send Message', interactive=True)
|
| 213 |
+
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| 214 |
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#####################################################################################################
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| 215 |
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| 216 |
+
with gr.Blocks(theme=gr.themes.Default(primary_hue='orange', secondary_hue='gray', neutral_hue='blue'), css="footer {visibility: hidden}") as demo:
|
| 217 |
+
|
| 218 |
+
# Initialize state variables - stored in this browser session - these can only be used within input or output of .click/.submit etc, not as a python var coz they are not stored in backend, only as a frontend gradio component
|
| 219 |
+
# but if you initialize it with a default value, that value will be stored in backend and accessible across all users. You can also change it with statear.value='newValue'
|
| 220 |
+
qa_state = gr.State()
|
| 221 |
+
api_key_state = gr.State(getPersonalBotApiKey() if mode.type=='personalBot' else {}) # can be string (OpenAI) or dict (WX)
|
| 222 |
+
chromaVS_state = gr.State({})
|
| 223 |
+
|
| 224 |
+
|
| 225 |
+
# Setup the Gradio Layout
|
| 226 |
+
gr.Markdown(mode.title)
|
| 227 |
+
with gr.Tabs() as tabs:
|
| 228 |
+
with gr.Tab('Initialization', id='init'):
|
| 229 |
+
with gr.Row():
|
| 230 |
+
with gr.Column():
|
| 231 |
+
oaiKey_tb = gr.Textbox(label="OpenAI API Key", type='password'\
|
| 232 |
+
, info='You can find OpenAI API key at https://platform.openai.com/account/api-keys')
|
| 233 |
+
oaiKey_btn = gr.Button("Submit OpenAI API Key")
|
| 234 |
+
with gr.Column():
|
| 235 |
+
with gr.Row():
|
| 236 |
+
wxKey_tb = gr.Textbox(label="Watsonx API Key", type='password'\
|
| 237 |
+
, info='You can find IBM Cloud API Key at Manage > Access (IAM) > API keys on https://cloud.ibm.com/iam/overview')
|
| 238 |
+
wxPid_tb = gr.Textbox(label="Watsonx Project ID"\
|
| 239 |
+
, info='You can find Project ID at Project -> Manage -> General -> Details on https://dataplatform.cloud.ibm.com/wx/home')
|
| 240 |
+
wxKey_btn = gr.Button("Submit Watsonx Credentials")
|
| 241 |
+
with gr.Column():
|
| 242 |
+
bamKey_tb = gr.Textbox(label="BAM API Key", type='password'\
|
| 243 |
+
, info='Internal IBMers only')
|
| 244 |
+
bamKey_btn = gr.Button("Submit BAM API Key")
|
| 245 |
+
with gr.Row(visible=mode.uiAddDataVis):
|
| 246 |
+
upload_fb = gr.Files(scale=5, label="Upload (multiple) Files - pdf/txt/docx supported", file_types=['.doc', '.docx', 'text', '.pdf', '.csv', '.ppt', '.pptx'])
|
| 247 |
+
urls_tb = gr.Textbox(scale=5, label="Enter URLs starting with https (comma separated)"\
|
| 248 |
+
, info=url_tb_info\
|
| 249 |
+
, placeholder=url_tb_ph)
|
| 250 |
+
data_ingest_btn = gr.Button("Load Data")
|
| 251 |
+
status_tb = gr.TextArea(label='Status Info')
|
| 252 |
+
initChatbot_btn = gr.Button("Initialize Chatbot", variant="primary", interactive=False)
|
| 253 |
+
|
| 254 |
+
credComps_btn_tb = [oaiKey_tb, oaiKey_btn, bamKey_tb, bamKey_btn, wxKey_tb, wxPid_tb, wxKey_btn]
|
| 255 |
+
credComps_op = [status_tb] + credComps_btn_tb + [api_key_state]
|
| 256 |
+
|
| 257 |
+
with gr.Tab('Chatbot', id='cb'):
|
| 258 |
+
with gr.Row():
|
| 259 |
+
chatbot = gr.Chatbot(label="Chat History", scale=2, avatar_images=(user_avatar, bot_avatar))
|
| 260 |
+
srcDocs = gr.TextArea(label="References")
|
| 261 |
+
msg = gr.Textbox(label="User Input",placeholder="Type your questions here")
|
| 262 |
+
with gr.Row():
|
| 263 |
+
btn = gr.Button("Send Message", interactive=False, variant="primary")
|
| 264 |
+
clear = gr.ClearButton(components=[msg, chatbot, srcDocs], value="Clear chat history")
|
| 265 |
+
with gr.Accordion("Advance Settings - click to expand", open=False):
|
| 266 |
+
with gr.Row():
|
| 267 |
+
with gr.Column():
|
| 268 |
+
temp_sld = gr.Slider(minimum=0, maximum=1, step=0.1, value=0.7, label="Temperature", info='Sampling temperature to use when calling LLM. Defaults to 0.7')
|
| 269 |
+
k_sld = gr.Slider(minimum=1, maximum=10, step=1, value=mode.k, label="K", info='Number of relavant documents to return from Vector Store. Defaults to 4')
|
| 270 |
+
model_dd = gr.Dropdown(label='Model Name'\
|
| 271 |
+
, choices=getModelChoices(openAi_models, ModelTypes, bam_models_old), allow_custom_value=True\
|
| 272 |
+
, info=model_dd_info)
|
| 273 |
+
stdlQs_rb = gr.Radio(label='Standalone Question', info=stdlQs_rb_info\
|
| 274 |
+
, type='index', value=stdlQs_rb_choices[1]\
|
| 275 |
+
, choices=stdlQs_rb_choices)
|
| 276 |
+
|
| 277 |
+
### Setup the Gradio Event Listeners
|
| 278 |
+
|
| 279 |
+
# OpenAI API button
|
| 280 |
+
oaiKey_btn_args = {'fn':setOaiApiKey, 'inputs':[oaiKey_tb], 'outputs':credComps_op}
|
| 281 |
+
oaiKey_btn.click(**oaiKey_btn_args)
|
| 282 |
+
oaiKey_tb.submit(**oaiKey_btn_args)
|
| 283 |
+
|
| 284 |
+
# BAM API button
|
| 285 |
+
bamKey_btn_args = {'fn':setBamApiKey, 'inputs':[bamKey_tb], 'outputs':credComps_op+[model_dd]}
|
| 286 |
+
bamKey_btn.click(**bamKey_btn_args)
|
| 287 |
+
bamKey_tb.submit(**bamKey_btn_args)
|
| 288 |
+
|
| 289 |
+
# Watsonx Creds button
|
| 290 |
+
wxKey_btn_args = {'fn':setWxApiKey, 'inputs':[wxKey_tb, wxPid_tb], 'outputs':credComps_op}
|
| 291 |
+
wxKey_btn.click(**wxKey_btn_args)
|
| 292 |
+
|
| 293 |
+
# Data Ingest Button
|
| 294 |
+
data_ingest_event = data_ingest_btn.click(uiData_vecStore, [upload_fb, urls_tb, api_key_state, chromaVS_state], [chromaVS_state, status_tb, data_ingest_btn, upload_fb, urls_tb, initChatbot_btn])
|
| 295 |
+
|
| 296 |
+
# Adv Settings
|
| 297 |
+
advSet_args = {'fn':updateQaChain, 'inputs':[temp_sld, k_sld, model_dd, stdlQs_rb, api_key_state, chromaVS_state], 'outputs':[qa_state, model_dd]}
|
| 298 |
+
temp_sld.release(**advSet_args)
|
| 299 |
+
k_sld.release(**advSet_args)
|
| 300 |
+
model_dd.change(**advSet_args)
|
| 301 |
+
stdlQs_rb.change(**advSet_args)
|
| 302 |
+
|
| 303 |
+
# Initialize button
|
| 304 |
+
initCb_args = {'fn':initializeChatbot, 'inputs':[temp_sld, k_sld, model_dd, stdlQs_rb, api_key_state, chromaVS_state], 'outputs':[qa_state, model_dd, btn, initChatbot_btn, status_tb, tabs, chatbot]}
|
| 305 |
+
if mode.type=='personalBot':
|
| 306 |
+
demo.load(**initCb_args) # load Chatbot UI directly on startup
|
| 307 |
+
initChatbot_btn.click(**initCb_args)
|
| 308 |
+
|
| 309 |
+
# Chatbot submit button
|
| 310 |
+
chat_btn_args = {'fn':respond, 'inputs':[msg, chatbot, qa_state], 'outputs':[msg, chatbot, srcDocs, btn]}
|
| 311 |
+
btn.click(**chat_btn_args)
|
| 312 |
+
msg.submit(**chat_btn_args)
|
| 313 |
+
|
| 314 |
+
demo.queue(concurrency_count=10)
|
| 315 |
+
demo.launch(show_error=True)
|