158 lines
5.8 KiB
Markdown
158 lines
5.8 KiB
Markdown
# rwkv.cpp
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This is a port of [BlinkDL/RWKV-LM](https://github.com/BlinkDL/RWKV-LM) to [ggerganov/ggml](https://github.com/ggerganov/ggml).
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Besides the usual **FP32**, it supports **FP16**, **quantized INT4** and **quantized INT8** inference. This project is **CPU only**.
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This project provides [a C library rwkv.h](rwkv.h) and [a convinient Python wrapper](rwkv%2Frwkv_cpp_model.py) for it.
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RWKV is a novel large language model architecture, [with the largest model in the family having 14B parameters](https://huggingface.co/BlinkDL/rwkv-4-pile-14b). In contrast to Transformer with `O(n^2)` attention, RWKV requires only state from previous step to calculate logits. This makes RWKV very CPU-friendly on large context lenghts.
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Loading LoRA checkpoints in [Blealtan's format](https://github.com/Blealtan/RWKV-LM-LoRA) is supported through [merge_lora_into_ggml.py script](rwkv%2Fmerge_lora_into_ggml.py).
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### Quality and performance
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If you use `rwkv.cpp` for anything serious, please [test all available formats for perplexity and latency](rwkv%2Fmeasure_pexplexity.py) on a representative dataset, and decide which trade-off is best for you.
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Below table is for reference only. Measurements were made on 4C/8T x86 CPU with AVX2, 4 threads.
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| Format | Perplexity (169M) | Latency, ms (1.5B) | File size, GB (1.5B) |
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|-----------|-------------------|--------------------|----------------------|
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| `Q4_0` | 17.507 | *76* | **1.53** |
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| `Q4_1` | 17.187 | **72** | 1.68 |
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| `Q4_2` | 17.060 | 85 | **1.53** |
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| `Q5_0` | 16.194 | 78 | *1.60* |
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| `Q5_1` | 15.851 | 81 | 1.68 |
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| `Q8_0` | *15.652* | 89 | 2.13 |
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| `FP16` | **15.623** | 117 | 2.82 |
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| `FP32` | **15.623** | 198 | 5.64 |
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## How to use
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### 1. Clone the repo
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**Requirements**: [git](https://gitforwindows.org/).
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```commandline
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git clone --recursive https://github.com/saharNooby/rwkv.cpp.git
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cd rwkv.cpp
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```
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### 2. Get the rwkv.cpp library
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#### Option 2.1. Download a pre-compiled library
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##### Windows / Linux / MacOS
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Check out [Releases](https://github.com/saharNooby/rwkv.cpp/releases), download appropriate ZIP for your OS and CPU, extract `rwkv` library file into the repository directory.
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On Windows: to check whether your CPU supports AVX2 or AVX-512, [use CPU-Z](https://www.cpuid.com/softwares/cpu-z.html).
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#### Option 2.2. Build the library yourself
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##### Windows
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**Requirements**: [CMake](https://cmake.org/download/) or [CMake from anaconda](https://anaconda.org/conda-forge/cmake), MSVC compiler.
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```commandline
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cmake -DBUILD_SHARED_LIBS=ON .
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cmake --build . --config Release
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```
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If everything went OK, `bin\Release\rwkv.dll` file should appear.
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##### Linux / MacOS
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**Requirements**: CMake (Linux: `sudo apt install cmake`, MacOS: `brew install cmake`, anaconoda: [cmake package](https://anaconda.org/conda-forge/cmake)).
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```commandline
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cmake -DBUILD_SHARED_LIBS=ON .
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cmake --build . --config Release
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```
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**Anaconda & M1 users**: please verify that `CMAKE_SYSTEM_PROCESSOR: arm64` after running `cmake -DBUILD_SHARED_LIBS=ON .` — if it detects `x86_64`, edit the `CMakeLists.txt` file under the `# Compile flags` to add `set(CMAKE_SYSTEM_PROCESSOR "arm64")`.
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If everything went OK, `librwkv.so` (Linux) or `librwkv.dylib` (MacOS) file should appear in the base repo folder.
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### 3. Download an RWKV model from [Hugging Face](https://huggingface.co/BlinkDL) like [this one](https://huggingface.co/BlinkDL/rwkv-4-pile-169m/blob/main/RWKV-4-Pile-169M-20220807-8023.pth) and convert it into `ggml` format
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**Requirements**: Python 3.x with [PyTorch](https://pytorch.org/get-started/locally/).
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```commandline
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# Windows
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python rwkv\convert_pytorch_to_ggml.py C:\RWKV-4-Pile-169M-20220807-8023.pth C:\rwkv.cpp-169M.bin float16
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# Linux / MacOS
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python rwkv/convert_pytorch_to_ggml.py ~/Downloads/RWKV-4-Pile-169M-20220807-8023.pth ~/Downloads/rwkv.cpp-169M.bin float16
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```
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#### 3.1. Optionally, quantize the model
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To convert the model into one of quantized formats from the table above, run:
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```commandline
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# Windows
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python rwkv\quantize.py C:\rwkv.cpp-169M.bin C:\rwkv.cpp-169M-Q4_2.bin Q4_2
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# Linux / MacOS
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python rwkv/quantize.py ~/Downloads/rwkv.cpp-169M.bin ~/Downloads/rwkv.cpp-169M-Q4_2.bin Q4_2
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```
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### 4. Run the model
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**Requirements**: Python 3.x with [PyTorch](https://pytorch.org/get-started/locally/) and [tokenizers](https://pypi.org/project/tokenizers/).
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**Note**: change the model path with the non-quantized model for the full weights model.
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To generate some text, run:
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```commandline
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# Windows
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python rwkv\generate_completions.py C:\rwkv.cpp-169M-Q4_2.bin
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# Linux / MacOS
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python rwkv/generate_completions.py ~/Downloads/rwkv.cpp-169M-Q4_2.bin
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```
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To chat with a bot, run:
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```commandline
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# Windows
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python rwkv\chat_with_bot.py C:\rwkv.cpp-169M-Q4_2.bin
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# Linux / MacOS
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python rwkv/chat_with_bot.py ~/Downloads/rwkv.cpp-169M-Q4_2.bin
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```
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Edit [generate_completions.py](rwkv%2Fgenerate_completions.py) or [chat_with_bot.py](rwkv%2Fchat_with_bot.py) to change prompts and sampling settings.
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---
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Example of using `rwkv.cpp` in your custom Python script:
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```python
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import rwkv_cpp_model
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import rwkv_cpp_shared_library
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# Change to model paths used above (quantized or full weights)
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model_path = r'C:\rwkv.cpp-169M.bin'
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model = rwkv_cpp_model.RWKVModel(
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rwkv_cpp_shared_library.load_rwkv_shared_library(),
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model_path
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)
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logits, state = None, None
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for token in [1, 2, 3]:
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logits, state = model.eval(token, state)
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print(f'Output logits: {logits}')
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# Don't forget to free the memory after you've done working with the model
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model.free()
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```
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