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@ -97,15 +97,15 @@ class LayerNormKernel : public framework::OpKernel<T> {
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auto &dev_ctx = ctx.template device_context<DeviceContext>();
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math::RowwiseMean<DeviceContext, T> row_mean;
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// functor-> get mean
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// get mean
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row_mean(dev_ctx, x, mean);
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// functor-> get variance
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// get variance
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ElementwiseComputeEx<SubAndSquareFunctor<T>, DeviceContext, T>(
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ctx, &x, mean, /*axis*/ 0, SubAndSquareFunctor<T>(), &out);
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row_mean(dev_ctx, out, var);
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// functor-> get norm_out
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// get x_norm
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ElementwiseComputeEx<SubFunctor<T>, DeviceContext, T>(
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ctx, &x, mean, /*axis*/ 0, SubFunctor<T>(), &out);
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ElementwiseComputeEx<DivAndSqrtFunctor<T>, DeviceContext, T>(
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@ -129,9 +129,11 @@ class LayerNormGradKernel : public framework::OpKernel<T> {
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void Compute(const framework::ExecutionContext &ctx) const override {
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const float epsilon = ctx.Attr<float>("epsilon");
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auto x = *ctx.Input<Tensor>("X");
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auto mean = *ctx.Input<Tensor>("Mean");
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auto var = *ctx.Input<Tensor>("Variance");
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auto scale = *ctx.Input<Tensor>("Scale");
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auto *y = ctx.Input<Tensor>("Y");
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auto *mean = ctx.Input<Tensor>("Mean");
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auto *var = ctx.Input<Tensor>("Variance");
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auto *scale = ctx.Input<Tensor>("Scale");
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auto *bias = ctx.Input<Tensor>("Bias");
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auto d_y = *ctx.Input<Tensor>(framework::GradVarName("Y"));
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const auto begin_norm_axis = ctx.Attr<int>("begin_norm_axis");
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@ -155,14 +157,19 @@ class LayerNormGradKernel : public framework::OpKernel<T> {
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if (d_scale || d_x) {
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x.Resize(matrix_shape);
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temp.mutable_data<T>(matrix_shape, ctx.GetPlace());
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temp_norm.mutable_data<T>(matrix_shape, ctx.GetPlace());
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// get x_norm
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ElementwiseComputeEx<SubFunctor<T>, DeviceContext, T>(
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ctx, &x, &mean, /*axis*/ 0, SubFunctor<T>(), &temp_norm);
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ElementwiseComputeEx<DivAndSqrtFunctor<T>, DeviceContext, T>(
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ctx, &temp_norm, &var, /*axis*/ 0,
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DivAndSqrtFunctor<T>(static_cast<T>(epsilon)), &temp_norm);
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if (!(bias && scale)) {
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temp_norm.ShareDataWith(*y);
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temp_norm.Resize(matrix_shape);
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} else {
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temp_norm.mutable_data<T>(matrix_shape, ctx.GetPlace());
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// get x_norm
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ElementwiseComputeEx<SubFunctor<T>, DeviceContext, T>(
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ctx, &x, mean, /*axis*/ 0, SubFunctor<T>(), &temp_norm);
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ElementwiseComputeEx<DivAndSqrtFunctor<T>, DeviceContext, T>(
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ctx, &temp_norm, var, /*axis*/ 0,
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DivAndSqrtFunctor<T>(static_cast<T>(epsilon)), &temp_norm);
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}
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}
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if (d_bias) {
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@ -188,7 +195,7 @@ class LayerNormGradKernel : public framework::OpKernel<T> {
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if (d_scale) {
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// dy_dx
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ElementwiseComputeEx<MulFunctor<T>, DeviceContext, T>(
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ctx, &d_y, &scale, /*axis*/ 1, MulFunctor<T>(), &temp);
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ctx, &d_y, scale, /*axis*/ 1, MulFunctor<T>(), &temp);
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framework::Copy(temp, ctx.GetPlace(), ctx.device_context(), d_x);
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// dy_dmean_dx
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@ -199,7 +206,6 @@ class LayerNormGradKernel : public framework::OpKernel<T> {
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// dy_var_dx
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ElementwiseComputeEx<MulFunctor<T>, DeviceContext, T>(
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ctx, &temp, &temp_norm, /*axis*/ 0, MulFunctor<T>(), &temp);
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} else {
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// dy_dx
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framework::Copy(d_y, ctx.GetPlace(), ctx.device_context(), d_x);
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@ -216,12 +222,12 @@ class LayerNormGradKernel : public framework::OpKernel<T> {
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// dy_var_dx
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row_mean(dev_ctx, temp, &temp_vec);
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ElementwiseComputeEx<MulFunctor<T>, DeviceContext, T>(
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ctx, &temp_norm, &temp_vec, /*axis*/ 0, MulFunctor<T>(), &temp_norm);
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ctx, &temp_norm, &temp_vec, /*axis*/ 0, MulFunctor<T>(), &temp);
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ElementwiseComputeEx<SubFunctor<T>, DeviceContext, T>(
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ctx, d_x, &temp_norm, /*axis*/ 0, SubFunctor<T>(), d_x);
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ctx, d_x, &temp, /*axis*/ 0, SubFunctor<T>(), d_x);
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ElementwiseComputeEx<DivAndSqrtFunctor<T>, DeviceContext, T>(
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ctx, d_x, &var, /*axis*/ 0,
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ctx, d_x, var, /*axis*/ 0,
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DivAndSqrtFunctor<T>(static_cast<T>(epsilon)), d_x);
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d_x->Resize(dx_dim);
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}
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