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AFischer1985
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47e0125
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Parent(s):
923df80
Update run.py
Browse files
run.py
CHANGED
@@ -1,8 +1,8 @@
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#########################################################################################
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# Title: German AI-Interface
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# Author: Andreas Fischer
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# Date: January 31st, 2023
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# Last update: February
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##########################################################################################
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#https://github.com/abetlen/llama-cpp-python/issues/306
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@@ -26,10 +26,13 @@ if(os.path.exists(filename)==True): os.remove(filename)
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#-----------
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import os
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import chromadb
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dbPath="/home/af/Schreibtisch/gradio/Chroma/db"
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if(os.path.exists(dbPath)
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print(dbPath)
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#client = chromadb.Client()
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path=dbPath
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client = chromadb.PersistentClient(path=path)
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@@ -40,7 +43,7 @@ from chromadb.utils import embedding_functions
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default_ef = embedding_functions.DefaultEmbeddingFunction()
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#sentence_transformer_ef = embedding_functions.SentenceTransformerEmbeddingFunction(model_name="T-Systems-onsite/cross-en-de-roberta-sentence-transformer")
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#instructor_ef = embedding_functions.InstructorEmbeddingFunction(model_name="hkunlp/instructor-large", device="cuda")
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embeddingModel = embedding_functions.
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print(str(client.list_collections()))
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@@ -143,37 +146,41 @@ x=[x["type2"] for x in rag0["metadatas"][0]]
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x.index("1c") if "1c" in x else len(x)+1
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# Get model
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#-----------
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import os
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import requests
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modelPath="/home/af/gguf/models/discolm_german_7b_v1.Q4_0.gguf"
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if(os.path.exists(modelPath)==False):
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#url="https://huggingface.co/TheBloke/WizardLM-13B-V1.2-GGUF/resolve/main/wizardlm-13b-v1.2.Q4_0.gguf"
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#url="https://huggingface.co/TheBloke/Mixtral-8x7B-Instruct-v0.1-GGUF/resolve/main/mixtral-8x7b-instruct-v0.1.Q4_0.gguf?download=true"
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#url="https://huggingface.co/TheBloke/Mistral-7B-Instruct-v0.2-GGUF/resolve/main/mistral-7b-instruct-v0.2.Q4_0.gguf?download=true"
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url="https://huggingface.co/TheBloke/DiscoLM_German_7b_v1-GGUF/resolve/main/discolm_german_7b_v1.Q4_0.gguf?download=true"
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response = requests.get(url)
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with open("./model.gguf", mode="wb") as file:
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file.write(response.content)
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print("Model downloaded")
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modelPath="./model.gguf"
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print(modelPath)
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# Llama-cpp-Server
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#------------------
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# Gradio-GUI
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historylimit=historylimit # number of past messages to consider for response to current message
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)
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print(prompt)
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if
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part
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print(part, end="", flush=True)
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response
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pass
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)
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gr.ChatInterface(
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response,
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chatbot=gr.Chatbot(value=[[None,"Herzlich willkommen! Ich bin ein KI-basiertes Assistenzsystem, das für jede Anfrage die am besten geeigneten KI-Tools empfiehlt.<br>Aktuell bin ich wenig mehr als eine Tech-Demo und kenne nur 7 KI-Modelle - also sei bitte nicht zu streng mit mir.<br>Was ist dein Anliegen?"]],render_markdown=True),
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title="German AI-Interface
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#additional_inputs=[gr.Dropdown(["Permanent","Temporär"],value="Temporär",label="Dialog sichern?")]
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).queue().launch(share=True) #False, server_name="0.0.0.0", server_port=7864)
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print("Interface up and running!")
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#########################################################################################
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# Title: German AI-Interface with advanced RAG
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# Author: Andreas Fischer
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# Date: January 31st, 2023
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# Last update: February 22st, 2024
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##########################################################################################
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#https://github.com/abetlen/llama-cpp-python/issues/306
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#-----------
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import os
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import chromadb
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dbPath = "/home/af/Schreibtisch/Code/gradio/Chroma/db"
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onPrem = True if(os.path.exists(dbPath)) else False
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if(onPrem==False): dbPath="/home/user/app/db"
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onPrem=False
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print(dbPath)
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#client = chromadb.Client()
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path=dbPath
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client = chromadb.PersistentClient(path=path)
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default_ef = embedding_functions.DefaultEmbeddingFunction()
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#sentence_transformer_ef = embedding_functions.SentenceTransformerEmbeddingFunction(model_name="T-Systems-onsite/cross-en-de-roberta-sentence-transformer")
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#instructor_ef = embedding_functions.InstructorEmbeddingFunction(model_name="hkunlp/instructor-large", device="cuda")
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embeddingModel = embedding_functions.InstructorEmbeddingFunction(model_name="T-Systems-onsite/cross-en-de-roberta-sentence-transformer", device="cuda" if(onPrem) else "cpu")
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print(str(client.list_collections()))
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x.index("1c") if "1c" in x else len(x)+1
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# Model
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#-------
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#onPrem=False
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if(onPrem==False):
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modelPath="mistralai/Mixtral-8x7B-Instruct-v0.1"
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from huggingface_hub import InferenceClient
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import gradio as gr
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client = InferenceClient(
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modelPath
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#"mistralai/Mixtral-8x7B-Instruct-v0.1"
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#"mistralai/Mistral-7B-Instruct-v0.1"
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)
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else:
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import os
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import requests
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import subprocess
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modelPath="/home/af/gguf/models/discolm_german_7b_v1.Q4_0.gguf"
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if(os.path.exists(modelPath)==False):
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#url="https://huggingface.co/TheBloke/WizardLM-13B-V1.2-GGUF/resolve/main/wizardlm-13b-v1.2.Q4_0.gguf"
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#url="https://huggingface.co/TheBloke/Mixtral-8x7B-Instruct-v0.1-GGUF/resolve/main/mixtral-8x7b-instruct-v0.1.Q4_0.gguf?download=true"
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#url="https://huggingface.co/TheBloke/Mistral-7B-Instruct-v0.2-GGUF/resolve/main/mistral-7b-instruct-v0.2.Q4_0.gguf?download=true"
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url="https://huggingface.co/TheBloke/DiscoLM_German_7b_v1-GGUF/resolve/main/discolm_german_7b_v1.Q4_0.gguf?download=true"
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response = requests.get(url)
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with open("./model.gguf", mode="wb") as file:
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file.write(response.content)
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print("Model downloaded")
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modelPath="./model.gguf"
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print(modelPath)
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n="20"
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if("mixtral-8x7b-instruct" in modelPath): n="0" # mixtral seems to cause problems here...
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command = ["python3", "-m", "llama_cpp.server", "--model", modelPath, "--host", "0.0.0.0", "--port", "2600", "--n_threads", "8", "--n_gpu_layers", n]
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subprocess.Popen(command)
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print("Server ready!")
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# Gradio-GUI
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historylimit=historylimit # number of past messages to consider for response to current message
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)
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print(prompt)
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## Request response from model
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#------------------------------
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print("AI running on prem!" if(onPrem) else "AI running HFHub!")
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if(onPrem==False):
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temperature=float(0.9)
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max_new_tokens=500
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top_p=0.95
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repetition_penalty=1.0
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if temperature < 1e-2: temperature = 1e-2
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top_p = float(top_p)
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generate_kwargs = dict(
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temperature=temperature,
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max_new_tokens=max_new_tokens,
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top_p=top_p,
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repetition_penalty=repetition_penalty,
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do_sample=True,
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seed=42,
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)
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stream = client.text_generation(prompt, **generate_kwargs, stream=True, details=True, return_full_text=False)
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response = ""
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print("User: "+message+"\nAI: ")
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for text in stream:
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part=text.token.text
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print(part, end="", flush=True)
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response += part
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yield response
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if((myType=="1a")|(myType=="1b")): #add RAG-results to chat-output if appropriate
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response=response+"\n\n<br><details><summary><strong>Sources</strong></summary><br><ul>"+ "".join(["<li>" + s + "</li>" for s in combination])+"</ul></details>"
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yield response
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history.append((message, response)) # add current dialog to history
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# Store current state in DB if settings=="Permanent"
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if (settings=="Permanent"):
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x=collection.get(include=[])["ids"] # add current dialog to db
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collection.add(
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documents=[message,response],
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metadatas=[
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{ "source": "ICH", "dialog": f"ICH: {message.strip()}\n DU: {response.strip()}", "type":"episode"},
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{ "source": "DU", "dialog": f"ICH: {message.strip()}\n DU: {response.strip()}", "type":"episode"}
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],
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ids=[str(len(x)+1),str(len(x)+2)]
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)
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json.dump(history,open(filename,'w',encoding="utf-8"),ensure_ascii=False)
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if(onPrem==True):
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# url="https://afischer1985-wizardlm-13b-v1-2-q4-0-gguf.hf.space/v1/completions"
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url="http://0.0.0.0:2600/v1/completions"
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body={"prompt":prompt,"max_tokens":None, "echo":"False","stream":"True"} # e.g. Mixtral-Instruct
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if("discolm_german_7b" in modelPath): body.update({"stop": ["<|im_end|>"]}) # fix stop-token of DiscoLM
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response="" #+"("+myType+")\n"
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buffer=""
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#print("URL: "+url)
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print("User: "+message+"\nAI: ")
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for text in requests.post(url, json=body, stream=True): #-H 'accept: application/json' -H 'Content-Type: application/json'
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if buffer is None: buffer=""
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buffer=str("".join(buffer))
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# print("*** Raw String: "+str(text)+"\n***\n")
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text=text.decode('utf-8')
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if((text.startswith(": ping -")==False) & (len(text.strip("\n\r"))>0)): buffer=buffer+str(text)
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# print("\n*** Buffer: "+str(buffer)+"\n***\n")
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buffer=buffer.split('"finish_reason": null}]}')
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if(len(buffer)==1):
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buffer="".join(buffer)
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pass
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if(len(buffer)==2):
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part=buffer[0]+'"finish_reason": null}]}'
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if(part.lstrip('\n\r').startswith("data: ")): part=part.lstrip('\n\r').replace("data: ", "")
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try:
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part = str(json.loads(part)["choices"][0]["text"])
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print(part, end="", flush=True)
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response=response+part
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buffer="" # reset buffer
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except Exception as e:
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print("Exception:"+str(e))
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pass
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yield response
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if((myType=="1a")|(myType=="1b")): #add RAG-results to chat-output if appropriate
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response=response+"\n\n<br><details><summary><strong>Sources</strong></summary><br><ul>"+ "".join(["<li>" + s + "</li>" for s in combination])+"</ul></details>"
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yield response
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history.append((message, response)) # add current dialog to history
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# Store current state in DB if settings=="Permanent"
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if (settings=="Permanent"):
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x=collection.get(include=[])["ids"] # add current dialog to db
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collection.add(
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documents=[message,response],
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metadatas=[
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{ "source": "ICH", "dialog": f"ICH: {message.strip()}\n DU: {response.strip()}", "type":"episode"},
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{ "source": "DU", "dialog": f"ICH: {message.strip()}\n DU: {response.strip()}", "type":"episode"}
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],
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ids=[str(len(x)+1),str(len(x)+2)]
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)
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json.dump(history,open(filename,'w',encoding="utf-8"),ensure_ascii=False)
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gr.ChatInterface(
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response,
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chatbot=gr.Chatbot(value=[[None,"Herzlich willkommen! Ich bin ein KI-basiertes Assistenzsystem, das für jede Anfrage die am besten geeigneten KI-Tools empfiehlt.<br>Aktuell bin ich wenig mehr als eine Tech-Demo und kenne nur 7 KI-Modelle - also sei bitte nicht zu streng mit mir.<br>Was ist dein Anliegen?"]],render_markdown=True),
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title="German AI-Interface with advanced RAG",
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#additional_inputs=[gr.Dropdown(["Permanent","Temporär"],value="Temporär",label="Dialog sichern?")]
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).queue().launch(share=True) #False, server_name="0.0.0.0", server_port=7864)
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print("Interface up and running!")
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