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readme : add GPT4All instructions (close #588)
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README.md
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README.md
@ -10,9 +10,7 @@ Inference of [LLaMA](https://arxiv.org/abs/2302.13971) model in pure C/C++
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**Hot topics:**
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- [Roadmap (short-term)](https://github.com/ggerganov/llama.cpp/discussions/457)
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- New C-style API is now available: https://github.com/ggerganov/llama.cpp/pull/370
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- Cache input prompts for faster initialization: https://github.com/ggerganov/llama.cpp/issues/64
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- Create a `llama.cpp` logo: https://github.com/ggerganov/llama.cpp/issues/105
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- Support for [GPT4All](https://github.com/ggerganov/llama.cpp#using-gpt4all)
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## Description
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@ -37,6 +35,12 @@ Supported platforms:
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- [X] Windows (via CMake)
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- [X] Docker
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Supported models:
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- [X] LLaMA
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- [X] [Alpaca](https://github.com/ggerganov/llama.cpp#instruction-mode-with-alpaca)
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- [X] [GPT4All](https://github.com/ggerganov/llama.cpp#using-gpt4all)
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---
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Here is a typical run using LLaMA-7B:
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@ -222,6 +226,17 @@ cadaver, cauliflower, cabbage (vegetable), catalpa (tree) and Cailleach.
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>
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```
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### Using [GPT4All](https://github.com/nomic-ai/gpt4all)
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- Obtain the `gpt4all-lora-quantized.bin` model
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- It is distributed in the old `ggml` format which is not obsoleted. So you have to convert it to the new format using [./convert-gpt4all-to-ggml.py](./convert-gpt4all-to-ggml.py):
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```bash
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python3 convert-gpt4all-to-ggml.py models/gpt4all-7B/gpt4all-lora-quantized.bin ./models/tokenizer.model
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```
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- You can now use the newly generated `gpt4all-lora-quantized.bin` model in exactly the same way as all other models. The original model is stored in the same folder with a suffix `.orig`
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### Obtaining and verifying the Facebook LLaMA original model and Stanford Alpaca model data
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- **Under no circumstances share IPFS, magnet links, or any other links to model downloads anywhere in this respository, including in issues, discussions or pull requests. They will be immediately deleted.**
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