Add fused_rmsnorm_gated_cpu kernel for CPU to support Qwen3-Next (#11577)
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@@ -221,6 +221,85 @@ void fused_add_rmsnorm_kernel_impl(
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});
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}
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template <typename scalar_t>
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void fused_rmsnorm_gated_kernel_impl(
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scalar_t* __restrict__ output,
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const scalar_t* __restrict__ input,
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const scalar_t* __restrict__ weight,
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const scalar_t* __restrict__ gate,
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int64_t batch_size,
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int64_t hidden_size,
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int64_t input_strideN,
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float eps = 1e-5) {
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using bVec = at::vec::Vectorized<scalar_t>;
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using fVec = at::vec::Vectorized<float>;
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const fVec one = fVec(1.f);
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constexpr int kVecSize = bVec::size();
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at::parallel_for(0, batch_size, 0, [&](int64_t begin, int64_t end) {
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for (int64_t i = begin; i < end; ++i) {
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// local ptrs
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scalar_t* __restrict__ out_ptr = output + i * hidden_size;
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const scalar_t* __restrict__ input_ptr = input + i * input_strideN;
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const scalar_t* __restrict__ gate_ptr = gate + i * hidden_size;
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fVec sum_fvec = fVec(float(0));
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float sum_val = float(0);
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int64_t d;
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#pragma GCC unroll 4
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for (d = 0; d <= hidden_size - kVecSize; d += kVecSize) {
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bVec x_bvec = bVec::loadu(input_ptr + d);
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fVec x_fvec0, x_fvec1;
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std::tie(x_fvec0, x_fvec1) = at::vec::convert_to_float(x_bvec);
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sum_fvec += x_fvec0 * x_fvec0;
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sum_fvec += x_fvec1 * x_fvec1;
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}
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#pragma GCC unroll 4
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for (; d < hidden_size; ++d) {
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float x_val = static_cast<float>(input_ptr[d]);
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sum_val += x_val * x_val;
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}
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sum_val += vec_reduce_sum(sum_fvec);
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float rsqrt_var = float(1) / std::sqrt(sum_val / hidden_size + eps);
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const fVec scale_fvec = fVec(rsqrt_var);
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#pragma GCC unroll 4
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for (d = 0; d <= hidden_size - kVecSize; d += kVecSize) {
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bVec x_bvec = bVec::loadu(input_ptr + d);
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fVec x_fvec0, x_fvec1;
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std::tie(x_fvec0, x_fvec1) = at::vec::convert_to_float(x_bvec);
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bVec w_bvec = bVec::loadu(weight + d);
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fVec w_fvec0, w_fvec1;
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std::tie(w_fvec0, w_fvec1) = at::vec::convert_to_float(w_bvec);
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bVec g_bvec = bVec::loadu(gate_ptr + d);
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fVec g_fvec0, g_fvec1;
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std::tie(g_fvec0, g_fvec1) = at::vec::convert_to_float(g_bvec);
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g_fvec0 = g_fvec0 / (one + g_fvec0.neg().exp_u20());
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g_fvec1 = g_fvec1 / (one + g_fvec1.neg().exp_u20());
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x_fvec0 = x_fvec0 * scale_fvec * w_fvec0 * g_fvec0;
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x_fvec1 = x_fvec1 * scale_fvec * w_fvec1 * g_fvec1;
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bVec out_bvec = convert_from_float_ext<scalar_t>(x_fvec0, x_fvec1);
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out_bvec.store(out_ptr + d);
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}
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#pragma GCC unroll 4
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for (; d < hidden_size; ++d) {
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float x_val = static_cast<float>(input_ptr[d]);
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float w_val = static_cast<float>(weight[d]);
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float g_val = static_cast<float>(gate_ptr[d]);
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out_ptr[d] = static_cast<scalar_t>(x_val * rsqrt_var * w_val * g_val / (1.f + std::exp(-g_val)));
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}
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}
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});
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}
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} // anonymous namespace
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// input : {batch_size, hidden_size}
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@@ -267,6 +346,40 @@ at::Tensor rmsnorm_cpu(at::Tensor& input, at::Tensor& weight, double eps) {
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return output;
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}
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// input : {batch_size, hidden_size}
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// weight: {hidden_size}
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// gate: {batch_size, hidden_size}
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at::Tensor fused_rmsnorm_gated_cpu(at::Tensor& input, at::Tensor& weight, at::Tensor& gate, double eps) {
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RECORD_FUNCTION("sgl-kernel::fused_rmsnorm_gated_cpu", std::vector<c10::IValue>({input, weight, gate}));
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CHECK_LAST_DIM_CONTIGUOUS_INPUT(input);
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CHECK_INPUT(weight);
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CHECK_INPUT(gate);
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CHECK_DIM(2, input);
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CHECK_DIM(1, weight);
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CHECK_DIM(2, gate);
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CHECK_EQ(input.size(1), weight.size(0));
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int64_t batch_size = input.size(0);
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int64_t hidden_size = input.size(1);
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CHECK_EQ(input.size(0), gate.size(0));
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CHECK_EQ(input.size(1), gate.size(1));
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at::Tensor output = at::empty_like(input);
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int64_t input_strideN = input.stride(0);
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AT_DISPATCH_REDUCED_FLOATING_TYPES(input.scalar_type(), "fused_rmsnorm_gated_kernel", [&] {
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fused_rmsnorm_gated_kernel_impl<scalar_t>(
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output.data_ptr<scalar_t>(),
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input.data_ptr<scalar_t>(),
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weight.data_ptr<scalar_t>(),
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gate.data_ptr<scalar_t>(),
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batch_size,
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hidden_size,
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input_strideN,
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eps);
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});
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return output;
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}
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// input : {batch_size, hidden_size}
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// residual: {batch_size, hidden_size}
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// weight : {hidden_size}
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@@ -33,6 +33,9 @@ at::Tensor l2norm_cpu(at::Tensor& input, double eps);
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// rmsnorm
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at::Tensor rmsnorm_cpu(at::Tensor& input, at::Tensor& weight, double eps);
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// qwen3_next_rmsnorm_gated
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at::Tensor fused_rmsnorm_gated_cpu(at::Tensor& input, at::Tensor& weight, at::Tensor& gate, double eps);
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// fused_add_rmsnorm
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void fused_add_rmsnorm_cpu(at::Tensor& input, at::Tensor& residual, at::Tensor& weight, double eps);
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@@ -247,6 +250,8 @@ TORCH_LIBRARY_FRAGMENT(sgl_kernel, m) {
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m.impl("rmsnorm_cpu", torch::kCPU, &rmsnorm_cpu);
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m.def("l2norm_cpu(Tensor input, float eps) -> Tensor");
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m.impl("l2norm_cpu", torch::kCPU, &l2norm_cpu);
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m.def("fused_rmsnorm_gated_cpu(Tensor input, Tensor weight, Tensor gate, float eps) -> Tensor");
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m.impl("fused_rmsnorm_gated_cpu", torch::kCPU, &fused_rmsnorm_gated_cpu);
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m.def("fused_add_rmsnorm_cpu(Tensor(a!) input, Tensor residual, Tensor weight, float eps) -> ()");
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m.impl("fused_add_rmsnorm_cpu", torch::kCPU, &fused_add_rmsnorm_cpu);
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@@ -85,5 +85,51 @@ class TestNorm(CustomTestCase):
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self._l2norm_test(*params)
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class TestFusedRMSNormGated(CustomTestCase):
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M = [4096, 1024]
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N = [4096, 4096 + 13]
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dtype = [torch.float16, torch.bfloat16]
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def _forward_native(
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self,
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hidden_states: torch.Tensor,
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weight: torch.Tensor,
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variance_epsilon: float = 1e-6,
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gate: Optional[torch.Tensor] = None,
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) -> torch.Tensor:
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input_dtype = hidden_states.dtype
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hidden_states = hidden_states.to(torch.float32)
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variance = hidden_states.pow(2).mean(-1, keepdim=True)
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# Norm before gate
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hidden_states = hidden_states * torch.rsqrt(variance + variance_epsilon)
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hidden_states = weight * hidden_states.to(input_dtype)
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hidden_states = hidden_states * torch.nn.functional.silu(gate.to(torch.float32))
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return hidden_states.to(input_dtype)
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def _norm_test(self, m, n, dtype):
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x = torch.randn([m, n], dtype=dtype)
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x = make_non_contiguous(x)
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batch_size = x.size(0)
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hidden_size = x.size(-1)
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weight = torch.randn(hidden_size, dtype=dtype)
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variance_epsilon = 1e-6
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gate = torch.randn([batch_size, hidden_size], dtype=dtype)
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out = torch.ops.sgl_kernel.fused_rmsnorm_gated_cpu(
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x, weight, gate, variance_epsilon
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)
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ref_out = self._forward_native(x, weight, variance_epsilon, gate)
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atol = rtol = precision[ref_out.dtype] * 2
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torch.testing.assert_close(ref_out, out, atol=atol, rtol=rtol)
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def test_norm(self):
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for params in itertools.product(self.M, self.N, self.dtype):
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with self.subTest(m=params[0], n=params[1], dtype=params[2]):
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self._norm_test(*params)
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if __name__ == "__main__":
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unittest.main()
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