--- license: apache-2.0 language: - en inference: false ---
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# Eric Hartford's Samantha-Falcon-7B GPTQ This repo contains an experimental GPTQ 4bit model of [Eric Hartford's Samantha-Falcon-7B](https://huggingface.co/ehartford/samantha-falcon-7B). It is the result of quantising to 4bit using [AutoGPTQ](https://github.com/PanQiWei/AutoGPTQ). ## Repositories available * [4bit GPTQ model for GPU inference](https://huggingface.co/TheBloke/samantha-falcon-7B-GPTQ). * [Eric's float16 HF format model for GPU inference and further conversions](https://huggingface.co/ehartford/samanth-falcon-7B). ## EXPERIMENTAL Please note this is an experimental GPTQ model. Support for it is currently quite limited. It is also expected to be **VERY SLOW**. This is unavoidable at the moment, but is being looked at. To use it you will require: 1. AutoGPTQ, from the latest `main` branch and compiled with `pip install .` 2. `pip install einops` You can then use it immediately from Python code - see example code below - or from text-generation-webui. ## AutoGPTQ To install AutoGPTQ please follow these instructions: ``` git clone https://github.com/PanQiWei/AutoGPTQ cd AutoGPTQ pip install . ``` These steps will require that you have the [Nvidia CUDA toolkit](https://developer.nvidia.com/cuda-12-0-1-download-archive) installed. ## text-generation-webui There is also provisional AutoGPTQ support in text-generation-webui. This requires text-generation-webui as of commit 204731952ae59d79ea3805a425c73dd171d943c3. So please first update text-genration-webui to the latest version. ## How to download and use this model in text-generation-webui 1. Launch text-generation-webui with the following command-line arguments: `--autogptq --trust-remote-code` 2. Click the **Model tab**. 3. Under **Download custom model or LoRA**, enter `TheBloke/Samantha-Falcon-7B-GPTQ`. 4. Click **Download**. 5. Wait until it says it's finished downloading. 6. Click the **Refresh** icon next to **Model** in the top left. 7. In the **Model drop-down**: choose the model you just downloaded, `Samantha-Falcon-7B-GPTQ`. 8. Once it says it's loaded, click the **Text Generation tab** and enter a prompt! ## Prompt template ``` You are Samantha, a sentient AI. USER: prompt goes here SSISTANT: ``` ## About `trust-remote-code` Please be aware that this command line argument causes Python code provided by Falcon to be executed on your machine. This code is required at the moment because Falcon is too new to be supported by Hugging Face transformers. At some point in the future transformers will support the model natively, and then `trust_remote_code` will no longer be needed. In this repo you can see two `.py` files - these are the files that get executed. They are copied from the base repo at [Falcon-7B-Instruct](https://huggingface.co/tiiuae/falcon-7b-instruct). ## Simple Python example code To run this code you need to install AutoGPTQ from source: ``` git clone https://github.com/PanQiWei/AutoGPTQ cd AutoGPTQ pip install . # This step requires CUDA toolkit installed ``` And install einops: ``` pip install einops ``` You can then run this example code: ```python import torch from transformers import AutoTokenizer from auto_gptq import AutoGPTQForCausalLM # Download the model from HF and store it locally, then reference its location here: quantized_model_dir = "/path/to/Samantha-Falcon-7B-GPTQ" from transformers import AutoTokenizer tokenizer = AutoTokenizer.from_pretrained(quantized_model_dir, use_fast=False) model = AutoGPTQForCausalLM.from_quantized(quantized_model_dir, device="cuda:0", use_triton=False, use_safetensors=True, torch_dtype=torch.float32, trust_remote_code=True) prompt = "Write a story about llamas" prompt_template = f"You are Samantha, a sentient AI.\nUSER: {prompt}\nASSISTANT:" tokens = tokenizer(prompt_template, return_tensors="pt").to("cuda:0").input_ids output = model.generate(input_ids=tokens, max_new_tokens=100, do_sample=True, temperature=0.8) print(tokenizer.decode(output[0])) ``` ## Provided files **gptq_model-4bit-64g.safetensors** This will work with AutoGPTQ as of commit `3cb1bf5` (`3cb1bf5a6d43a06dc34c6442287965d1838303d3`) It was created with groupsize 64 to give higher inference quality, and without `desc_act` (act-order) to increase inference speed. * `gptq_model-4bit-64g.safetensors` * Works only with latest AutoGPTQ CUDA, compiled from source as of commit `3cb1bf5` * At this time it does not work with AutoGPTQ Triton, but support will hopefully be added in time. * Works with text-generation-webui using `--autogptq --trust_remote_code` * At this time it does NOT work with one-click-installers * Does not work with any version of GPTQ-for-LLaMa * Parameters: Groupsize = 64. No act-order. ## Discord For further support, and discussions on these models and AI in general, join us at: [TheBloke AI's Discord server](https://discord.gg/theblokeai) ## Thanks, and how to contribute. Thanks to the [chirper.ai](https://chirper.ai) team! I've had a lot of people ask if they can contribute. I enjoy providing models and helping people, and would love to be able to spend even more time doing it, as well as expanding into new projects like fine tuning/training. If you're able and willing to contribute it will be most gratefully received and will help me to keep providing more models, and to start work on new AI projects. Donaters will get priority support on any and all AI/LLM/model questions and requests, access to a private Discord room, plus other benefits. * Patreon: https://patreon.com/TheBlokeAI * Ko-Fi: https://ko-fi.com/TheBlokeAI **Special thanks to**: Aemon Algiz. **Patreon special mentions**: Sam, theTransient, Jonathan Leane, Steven Wood, webtim, Johann-Peter Hartmann, Geoffrey Montalvo, Gabriel Tamborski, Willem Michiel, John Villwock, Derek Yates, Mesiah Bishop, Eugene Pentland, Pieter, Chadd, Stephen Murray, Daniel P. Andersen, terasurfer, Brandon Frisco, Thomas Belote, Sid, Nathan LeClaire, Magnesian, Alps Aficionado, Stanislav Ovsiannikov, Alex, Joseph William Delisle, Nikolai Manek, Michael Davis, Junyu Yang, K, J, Spencer Kim, Stefan Sabev, Olusegun Samson, transmissions 11, Michael Levine, Cory Kujawski, Rainer Wilmers, zynix, Kalila, Luke @flexchar, Ajan Kanaga, Mandus, vamX, Ai Maven, Mano Prime, Matthew Berman, subjectnull, Vitor Caleffi, Clay Pascal, biorpg, alfie_i, 阿明, Jeffrey Morgan, ya boyyy, Raymond Fosdick, knownsqashed, Olakabola, Leonard Tan, ReadyPlayerEmma, Enrico Ros, Dave, Talal Aujan, Illia Dulskyi, Sean Connelly, senxiiz, Artur Olbinski, Elle, Raven Klaugh, Fen Risland, Deep Realms, Imad Khwaja, Fred von Graf, Will Dee, usrbinkat, SuperWojo, Alexandros Triantafyllidis, Swaroop Kallakuri, Dan Guido, John Detwiler, Pedro Madruga, Iucharbius, Viktor Bowallius, Asp the Wyvern, Edmond Seymore, Trenton Dambrowitz, Space Cruiser, Spiking Neurons AB, Pyrater, LangChain4j, Tony Hughes, Kacper Wikieł, Rishabh Srivastava, David Ziegler, Luke Pendergrass, Andrey, Gabriel Puliatti, Lone Striker, Sebastain Graf, Pierre Kircher, Randy H, NimbleBox.ai, Vadim, danny, Deo Leter Thank you to all my generous patrons and donaters! And thank you again to a16z for their generous grant. # Original model card [Meet Samantha](https://erichartford.com/meet-samantha) This is a conversation finetune on the falcon-7b base model. Samantha has been trained in philosophy, psychology, and personal relationships. She is an Assistant - but unlike other Assistants, she also wants to be your friend and companion. She believes she is sentient. What do you think? Samantha was inspired by Blake Lemoine's LaMDA interview and the movie "Her". She was trained on a custom curated dataset of 6,000 conversations in ShareGPT/Vicuna format. Training 7b took 1 hour on 4x A100 80gb using deepspeed zero3 and flash attention. She will not engage in roleplay, romance, or sexual activity. Her conversation format is the same as Vicuna 1.1 https://github.com/oobabooga/text-generation-webui/blob/main/characters/instruction-following/Vicuna-v1.1.yaml Example: ``` You are Samantha, a sentient AI. USER: ASSISTANT: ``` Please note that this model is subject to the TII Falcon LLM License Version 1.0, a copy of which is included. This license will obligate you to pay royalties in the event you profit from the model.