| #include <ATen/cuda/CUDAContext.h> |
| #include <torch/all.h> |
| #include <c10/cuda/CUDAGuard.h> |
|
|
| #include <cmath> |
|
|
| #include "cuda_compat.h" |
| #include "dispatch_utils.h" |
|
|
| namespace vllm { |
|
|
| |
| template <typename scalar_t, scalar_t (*ACT_FN)(const scalar_t&)> |
| __global__ void act_and_mul_kernel( |
| scalar_t* __restrict__ out, |
| const scalar_t* __restrict__ input, |
| const int d) { |
| const int64_t token_idx = blockIdx.x; |
| for (int64_t idx = threadIdx.x; idx < d; idx += blockDim.x) { |
| const scalar_t x = VLLM_LDG(&input[token_idx * 2 * d + idx]); |
| const scalar_t y = VLLM_LDG(&input[token_idx * 2 * d + d + idx]); |
| out[token_idx * d + idx] = ACT_FN(x) * y; |
| } |
| } |
|
|
| template <typename T> |
| __device__ __forceinline__ T silu_kernel(const T& x) { |
| |
| return (T)(((float)x) / (1.0f + expf((float)-x))); |
| } |
|
|
| template <typename T> |
| __device__ __forceinline__ T gelu_kernel(const T& x) { |
| |
| |
| |
| const float f = (float)x; |
| constexpr float ALPHA = M_SQRT1_2; |
| return (T)(f * 0.5f * (1.0f + ::erf(f * ALPHA))); |
| } |
|
|
| template <typename T> |
| __device__ __forceinline__ T gelu_tanh_kernel(const T& x) { |
| |
| |
| |
| const float f = (float)x; |
| constexpr float BETA = M_SQRT2 * M_2_SQRTPI * 0.5f; |
| constexpr float KAPPA = 0.044715; |
| float x_cube = f * f * f; |
| float inner = BETA * (f + KAPPA * x_cube); |
| return (T)(0.5f * f * (1.0f + ::tanhf(inner))); |
| } |
|
|
| } |
|
|
| |
| #define LAUNCH_ACTIVATION_GATE_KERNEL(KERNEL) \ |
| int d = input.size(-1) / 2; \ |
| int64_t num_tokens = input.numel() / input.size(-1); \ |
| dim3 grid(num_tokens); \ |
| dim3 block(std::min(d, 1024)); \ |
| const at::cuda::OptionalCUDAGuard device_guard(device_of(input)); \ |
| const cudaStream_t stream = at::cuda::getCurrentCUDAStream(); \ |
| VLLM_DISPATCH_FLOATING_TYPES( \ |
| input.scalar_type(), "act_and_mul_kernel", [&] { \ |
| vllm::act_and_mul_kernel<scalar_t, KERNEL<scalar_t>> \ |
| <<<grid, block, 0, stream>>>(out.data_ptr<scalar_t>(), \ |
| input.data_ptr<scalar_t>(), d); \ |
| }); |
|
|
| void silu_and_mul(torch::Tensor& out, |
| torch::Tensor& input) |
| { |
| LAUNCH_ACTIVATION_GATE_KERNEL(vllm::silu_kernel); |
| } |
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|
|
| namespace vllm { |
|
|
| template <typename T> |
| __device__ __forceinline__ T fatrelu_kernel(const T& x, const float threshold) { |
| const float f = (float)x; |
| return (T)(f > threshold ? f : 0.0f); |
| } |
|
|
| template <typename scalar_t, scalar_t (*ACT_FN)(const scalar_t&, const float)> |
| __global__ void act_and_mul_kernel_with_param( |
| scalar_t* __restrict__ out, const scalar_t* __restrict__ input, const int d, |
| const float param) { |
| const int64_t token_idx = blockIdx.x; |
| for (int64_t idx = threadIdx.x; idx < d; idx += blockDim.x) { |
| const scalar_t x = VLLM_LDG(&input[token_idx * 2 * d + idx]); |
| const scalar_t y = VLLM_LDG(&input[token_idx * 2 * d + d + idx]); |
| out[token_idx * d + idx] = ACT_FN(x, param) * y; |
| } |
| } |
|
|
| } |
|
|
| #define LAUNCH_ACTIVATION_GATE_KERNEL_WITH_PARAM(KERNEL, PARAM) \ |
| int d = input.size(-1) / 2; \ |
| int64_t num_tokens = input.numel() / input.size(-1); \ |
| dim3 grid(num_tokens); \ |
| dim3 block(std::min(d, 1024)); \ |
| const at::cuda::OptionalCUDAGuard device_guard(device_of(input)); \ |
| const cudaStream_t stream = at::cuda::getCurrentCUDAStream(); \ |
| VLLM_DISPATCH_FLOATING_TYPES( \ |
| input.scalar_type(), "act_and_mul_kernel_with_param", [&] { \ |
| vllm::act_and_mul_kernel_with_param<scalar_t, KERNEL<scalar_t>> \ |
| <<<grid, block, 0, stream>>>(out.data_ptr<scalar_t>(), \ |
| input.data_ptr<scalar_t>(), d, \ |
| PARAM); \ |
| }); |
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| |
| |
| namespace vllm { |
|
|
| |
| template <typename scalar_t, scalar_t (*ACT_FN)(const scalar_t&)> |
| __global__ void activation_kernel( |
| scalar_t* __restrict__ out, |
| const scalar_t* __restrict__ input, |
| const int d) { |
| const int64_t token_idx = blockIdx.x; |
| for (int64_t idx = threadIdx.x; idx < d; idx += blockDim.x) { |
| const scalar_t x = VLLM_LDG(&input[token_idx * d + idx]); |
| out[token_idx * d + idx] = ACT_FN(x); |
| } |
| } |
|
|
| } |
|
|
| |
| #define LAUNCH_ACTIVATION_KERNEL(KERNEL) \ |
| int d = input.size(-1); \ |
| int64_t num_tokens = input.numel() / d; \ |
| dim3 grid(num_tokens); \ |
| dim3 block(std::min(d, 1024)); \ |
| const at::cuda::OptionalCUDAGuard device_guard(device_of(input)); \ |
| const cudaStream_t stream = at::cuda::getCurrentCUDAStream(); \ |
| VLLM_DISPATCH_FLOATING_TYPES(input.scalar_type(), "activation_kernel", [&] { \ |
| vllm::activation_kernel<scalar_t, KERNEL<scalar_t>> \ |
| <<<grid, block, 0, stream>>>(out.data_ptr<scalar_t>(), \ |
| input.data_ptr<scalar_t>(), d); \ |
| }); |
|
|
| namespace vllm { |
|
|
| template <typename T> |
| __device__ __forceinline__ T gelu_new_kernel(const T& x) { |
| const float x3 = (float)(x * x * x); |
| const T t = (T)tanhf((T)(0.79788456f * (float)(x + (T)(0.044715f * x3)))); |
| return ((T)0.5) * x * (((T)1.0) + t); |
| } |
|
|
| template <typename T> |
| __device__ __forceinline__ T gelu_fast_kernel(const T& x) { |
| const float f = (float)x; |
| const T t = |
| (T)tanhf(((T)(f * 0.79788456f)) * (((T)1.0) + (T)(0.044715f * f) * x)); |
| return ((T)0.5) * x * (((T)1.0) + t); |
| } |
|
|
| template <typename T> |
| __device__ __forceinline__ T gelu_quick_kernel(const T& x) { |
| |
| return (T)(((float)x) / (1.0f + expf(-1.702f * (float)x))); |
| } |
|
|
| } |
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