mirror of
https://github.com/kvcache-ai/ktransformers.git
synced 2026-03-15 02:47:22 +00:00
101 lines
4.8 KiB
C++
101 lines
4.8 KiB
C++
/**
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* @Description :
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* @Author : Azure-Tang, Boxin Zhang
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* @Date : 2024-07-25 13:38:30
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* @Version : 0.2.2
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* @Copyright (c) 2024 by KVCache.AI, All Rights Reserved.
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**/
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#include "custom_gguf/ops.h"
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#ifdef KTRANSFORMERS_USE_CUDA
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#include "gptq_marlin/ops.h"
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#include "moe/ops.h"
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#endif
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// Python bindings
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#include <pybind11/pybind11.h>
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#include <pybind11/stl.h>
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#include <torch/extension.h>
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#include <torch/library.h>
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#include <torch/torch.h>
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// namespace py = pybind11;
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PYBIND11_MODULE(KTransformersOps, m) {
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m.def(
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"dequantize_q8_0",
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[](const intptr_t data, int num_bytes, int blk_size, const int ele_per_blk, torch::Device device,
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py::object target_dtype) {
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torch::Dtype dtype = torch::python::detail::py_object_to_dtype(target_dtype);
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return dequantize_q8_0((int8_t*)data, num_bytes, blk_size, ele_per_blk, device, dtype);
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},
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"Function to dequantize q8_0 data.", py::arg("data"), py::arg("num_bytes"), py::arg("blk_size"),
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py::arg("ele_per_blk"), py::arg("device"), py::arg("target_dtype"));
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m.def(
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"dequantize_q6_k",
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[](const intptr_t data, int num_bytes, int blk_size, const int ele_per_blk, torch::Device device,
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py::object target_dtype) {
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torch::Dtype dtype = torch::python::detail::py_object_to_dtype(target_dtype);
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return dequantize_q6_k((int8_t*)data, num_bytes, blk_size, ele_per_blk, device, dtype);
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},
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"Function to dequantize q6_k data.", py::arg("data"), py::arg("num_bytes"), py::arg("blk_size"),
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py::arg("ele_per_blk"), py::arg("device"), py::arg("target_dtype"));
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m.def(
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"dequantize_q5_k",
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[](const intptr_t data, int num_bytes, int blk_size, const int ele_per_blk, torch::Device device,
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py::object target_dtype) {
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torch::Dtype dtype = torch::python::detail::py_object_to_dtype(target_dtype);
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return dequantize_q5_k((int8_t*)data, num_bytes, blk_size, ele_per_blk, device, dtype);
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},
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"Function to dequantize q5_k data.", py::arg("data"), py::arg("num_bytes"), py::arg("blk_size"),
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py::arg("ele_per_blk"), py::arg("device"), py::arg("target_dtype"));
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m.def(
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"dequantize_q4_k",
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[](const intptr_t data, int num_bytes, int blk_size, const int ele_per_blk, torch::Device device,
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py::object target_dtype) {
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torch::Dtype dtype = torch::python::detail::py_object_to_dtype(target_dtype);
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return dequantize_q4_k((int8_t*)data, num_bytes, blk_size, ele_per_blk, device, dtype);
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},
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"Function to dequantize q4_k data.", py::arg("data"), py::arg("num_bytes"), py::arg("blk_size"),
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py::arg("ele_per_blk"), py::arg("device"), py::arg("target_dtype"));
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m.def(
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"dequantize_q3_k",
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[](const intptr_t data, int num_bytes, int blk_size, const int ele_per_blk, torch::Device device,
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py::object target_dtype) {
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torch::Dtype dtype = torch::python::detail::py_object_to_dtype(target_dtype);
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return dequantize_q3_k((int8_t*)data, num_bytes, blk_size, ele_per_blk, device, dtype);
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},
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"Function to dequantize q3_k data.", py::arg("data"), py::arg("num_bytes"), py::arg("blk_size"),
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py::arg("ele_per_blk"), py::arg("device"), py::arg("target_dtype"));
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m.def(
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"dequantize_q2_k",
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[](const intptr_t data, int num_bytes, int blk_size, const int ele_per_blk, torch::Device device,
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py::object target_dtype) {
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torch::Dtype dtype = torch::python::detail::py_object_to_dtype(target_dtype);
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return dequantize_q2_k((int8_t*)data, num_bytes, blk_size, ele_per_blk, device, dtype);
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},
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"Function to dequantize q2_k data.", py::arg("data"), py::arg("num_bytes"), py::arg("blk_size"),
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py::arg("ele_per_blk"), py::arg("device"), py::arg("target_dtype"));
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m.def(
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"dequantize_iq4_xs",
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[](const intptr_t data, int num_bytes, int blk_size, const int ele_per_blk, torch::Device device,
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py::object target_dtype) {
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torch::Dtype dtype = torch::python::detail::py_object_to_dtype(target_dtype);
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return dequantize_iq4_xs((int8_t*)data, num_bytes, blk_size, ele_per_blk, device, dtype);
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},
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"Function to dequantize iq4_xs data.", py::arg("data"), py::arg("num_bytes"), py::arg("blk_size"),
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py::arg("ele_per_blk"), py::arg("device"), py::arg("target_dtype"));
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#ifdef KTRANSFORMERS_USE_CUDA
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m.def("gptq_marlin_gemm", &gptq_marlin_gemm, "Function to perform GEMM using Marlin quantization.", py::arg("a"),
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py::arg("b_q_weight"), py::arg("b_scales"), py::arg("g_idx"), py::arg("perm"), py::arg("workspace"),
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py::arg("num_bits"), py::arg("size_m"), py::arg("size_n"), py::arg("size_k"), py::arg("is_k_full"));
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m.def("topk_softmax", &topk_softmax, "Function to perform topk_softmax.", py::arg("topk_weights"),
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py::arg("topk_indices"), py::arg("token_expert_indices"), py::arg("gating_output"));
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#endif
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}
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