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Various ctransformers fixes (#3556)
--------- Co-authored-by: cal066 <cal066@users.noreply.github.com>
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README.md
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README.md
@ -205,7 +205,7 @@ Optionally, you can use the following command-line flags:
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| Flag | Description |
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|--------------------------------------------|-------------|
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| `--loader LOADER` | Choose the model loader manually, otherwise, it will get autodetected. Valid options: transformers, autogptq, gptq-for-llama, exllama, exllama_hf, llamacpp, rwkv |
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| `--loader LOADER` | Choose the model loader manually, otherwise, it will get autodetected. Valid options: transformers, autogptq, gptq-for-llama, exllama, exllama_hf, llamacpp, rwkv, ctransformers |
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#### Accelerate/transformers
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@ -235,22 +235,33 @@ Optionally, you can use the following command-line flags:
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| `--quant_type QUANT_TYPE` | quant_type for 4-bit. Valid options: nf4, fp4. |
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| `--use_double_quant` | use_double_quant for 4-bit. |
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#### llama.cpp
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#### GGML (for llama.cpp and ctransformers)
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| Flag | Description |
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|-------------|-------------|
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| `--threads` | Number of threads to use. |
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| `--n_batch` | Maximum number of prompt tokens to batch together when calling llama_eval. |
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| `--n-gpu-layers N_GPU_LAYERS` | Number of layers to offload to the GPU. Only works if llama-cpp-python was compiled with BLAS. Set this to 1000000000 to offload all layers to the GPU. |
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| `--n_ctx N_CTX` | Size of the prompt context. |
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#### llama.cpp
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| Flag | Description |
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|-------------|-------------|
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| `--no-mmap` | Prevent mmap from being used. |
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| `--mlock` | Force the system to keep the model in RAM. |
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| `--cache-capacity CACHE_CAPACITY` | Maximum cache capacity. Examples: 2000MiB, 2GiB. When provided without units, bytes will be assumed. |
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| `--n-gpu-layers N_GPU_LAYERS` | Number of layers to offload to the GPU. Only works if llama-cpp-python was compiled with BLAS. Set this to 1000000000 to offload all layers to the GPU. |
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| `--n_ctx N_CTX` | Size of the prompt context. |
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| `--llama_cpp_seed SEED` | Seed for llama-cpp models. Default 0 (random). |
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| `--n_gqa N_GQA` | grouped-query attention. Must be 8 for llama-2 70b. |
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| `--rms_norm_eps RMS_NORM_EPS` | 5e-6 is a good value for llama-2 models. |
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| `--cpu` | Use the CPU version of llama-cpp-python instead of the GPU-accelerated version. |
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#### ctransformers
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| Flag | Description |
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|-------------|-------------|
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| `--model_type MODEL_TYPE` | Model type of pre-quantized model. Currently gpt2, gptj, gpt_neox, falcon, llama, mpt, gpt_bigcode, dolly-v2, and replit are supported. |
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#### AutoGPTQ
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| Flag | Description |
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@ -10,6 +10,18 @@
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model_type: 'llama'
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.*bloom:
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model_type: 'bloom'
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.*gpt2:
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model_type: 'gpt2'
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.*falcon:
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model_type: 'falcon'
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.*mpt:
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model_type: 'mpt'
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.*(starcoder|starchat):
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model_type: 'gpt_bigcode'
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.*dolly-v2:
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model_type: 'dolly-v2'
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.*replit:
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model_type: 'replit'
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llama-65b-gptq-3bit:
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groupsize: 'None'
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.*(4bit|int4):
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@ -281,3 +293,5 @@ llama-65b-gptq-3bit:
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.*openchat:
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mode: 'instruct'
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instruction_template: 'OpenChat'
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.*falcon.*-instruct:
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mode: 'instruct'
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@ -18,6 +18,7 @@ class CtransformersModel:
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threads=shared.args.threads,
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gpu_layers=shared.args.n_gpu_layers,
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batch_size=shared.args.n_batch,
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context_length=shared.args.n_ctx,
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stream=True
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)
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@ -31,7 +32,7 @@ class CtransformersModel:
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return result, result
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def model_type_is_auto(self):
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return shared.args.model_type == "Auto" or shared.args.model_type == "None"
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return shared.args.model_type is None or shared.args.model_type == "Auto" or shared.args.model_type == "None"
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def model_dir(self, path):
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if path.is_file():
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@ -48,7 +49,7 @@ class CtransformersModel:
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def generate(self, prompt, state, callback=None):
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prompt = prompt if type(prompt) is str else prompt.decode()
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# ctransformers uses -1 for random seed
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generator = self.model._stream(
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generator = self.model(
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prompt=prompt,
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max_new_tokens=state['max_new_tokens'],
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temperature=state['temperature'],
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@ -92,6 +92,7 @@ loaders_and_params = OrderedDict({
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'llamacpp_HF_info',
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],
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'ctransformers': [
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'n_ctx',
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'n_gpu_layers',
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'n_batch',
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'threads',
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