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@ -28,7 +28,7 @@ static void BuildPattern(PDPattern* pattern, const std::string& name_scope,
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auto* fc_out = patterns::FC(pattern, name_scope, x, with_fc_bias);
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fc_out->AsIntermediate(); // fc_out is a tmp var, will be removed after fuse.
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patterns::GRU(pattern, name_scope, fc_out);
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VLOG(3) << "\n" << pattern->DotString();
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VLOG(3) << "fc_gru pattern \n" << pattern->DotString();
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}
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static int BuildFusion(Graph* graph, const std::string& name_scope,
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@ -51,65 +51,72 @@ static int BuildFusion(Graph* graph, const std::string& name_scope,
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OpDesc op_desc;
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op_desc.SetType("fusion_gru");
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#define NEW_NAME(x) name_scope + "/at." #x ".new"
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#define SET_IN(Key, node__) op_desc.SetInput(#Key, {node__##_n->Name()});
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SET_IN(X, x);
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SET_IN(WeightX, weight_x);
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SET_IN(WeightH, weight_h);
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SET_IN(Bias, bias);
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if (with_fc_bias) {
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op_desc.SetInput("Bias", {NEW_NAME(bias) + bias_n->Name()});
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} else {
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SET_IN(Bias, bias);
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}
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#undef SET_IN
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op_desc.SetInput("H0", {});
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op_desc.SetOutput("Hidden", {hidden_n->Name()});
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op_desc.SetAttr("is_reverse", gru_n->Op()->GetAttr("is_reverse"));
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// TODO(TJ): This should be a option for infer
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op_desc.SetAttr("use_seq", true);
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#define SET_IMTERMEDIATE_OUT(key) op_desc.SetOutput(#key, {NEW_NAME(key)})
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SET_IMTERMEDIATE_OUT(ReorderedH0);
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SET_IMTERMEDIATE_OUT(XX);
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SET_IMTERMEDIATE_OUT(BatchedInput);
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SET_IMTERMEDIATE_OUT(BatchedOut);
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#undef SET_IMTERMEDIATE_OUT
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auto* op = graph->CreateOpNode(&op_desc);
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PADDLE_ENFORCE(graph->Has(kParamScopeAttr));
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auto* scope = graph->Get<Scope*>(kParamScopeAttr);
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PADDLE_ENFORCE(scope);
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if (with_fc_bias) {
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// Add FC-bias with LSTM-bias and create a new weight
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PADDLE_ENFORCE(scope);
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const std::string& new_bias_var = name_scope + "_bias.new";
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auto* bias_var = scope->Var(new_bias_var);
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PADDLE_ENFORCE(bias_var);
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auto* bias_tensor = bias_var->GetMutable<framework::LoDTensor>();
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// Fusion GRU bias = fcbias + grubias
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auto* fusion_bias_var = scope->Var(NEW_NAME(bias) + bias_n->Name());
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auto* out_bias_tensor =
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fusion_bias_var->GetMutable<framework::LoDTensor>();
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PADDLE_ENFORCE(fusion_bias_var);
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GET_NODE(fc_bias);
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PADDLE_ENFORCE(fc_bias_n);
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auto* gru_bias_var = scope->FindVar(bias_n->Name());
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auto* fc_bias_var = scope->FindVar(fc_bias_n->Name());
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PADDLE_ENFORCE(gru_bias_var);
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PADDLE_ENFORCE(fc_bias_var);
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const auto& gru_bias_tenosr = gru_bias_var->Get<framework::LoDTensor>();
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bias_tensor->Resize(gru_bias_tenosr.dims());
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GET_NODE(fc_bias);
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auto* fc_bias_var = scope->FindVar(fc_bias_n->Name());
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const auto& fc_bias_tensor = fc_bias_var->Get<framework::LoDTensor>();
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// new bias = fc bias + gru bias
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auto* data = bias_tensor->mutable_data<float>(platform::CPUPlace());
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for (int i = 0; i < bias_tensor->numel(); i++) {
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out_bias_tensor->Resize(gru_bias_tenosr.dims());
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auto* data = out_bias_tensor->mutable_data<float>(platform::CPUPlace());
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for (int i = 0; i < out_bias_tensor->numel(); i++) {
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data[i] =
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fc_bias_tensor.data<float>()[i] + gru_bias_tenosr.data<float>()[i];
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}
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op_desc.SetInput("Bias", {new_bias_var});
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}
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#undef GET_NODE
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op_desc.SetInput("H0", {});
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op_desc.SetOutput("Hidden", {hidden_n->Name()});
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op_desc.SetAttr("is_reverse", gru_n->Op()->GetAttr("is_reverse"));
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// TODO(TJ): This should be a option for infer
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op_desc.SetAttr("use_seq", true);
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// Create temp variables.
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// TODO(TJ): clean code
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scope->Var(name_scope + "/ReorderedH0.new")
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->GetMutable<framework::LoDTensor>();
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scope->Var(name_scope + "/XX.new")->GetMutable<framework::LoDTensor>();
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scope->Var(name_scope + "/BatchedInput.new")
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->GetMutable<framework::LoDTensor>();
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scope->Var(name_scope + "/BatchedOut.new")
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->GetMutable<framework::LoDTensor>();
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op_desc.SetOutput("ReorderedH0", {name_scope + "/ReorderedH0.new"});
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op_desc.SetOutput("XX", {name_scope + "/XX.new"});
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op_desc.SetOutput("BatchedInput", {name_scope + "/BatchedInput.new"});
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op_desc.SetOutput("BatchedOut", {name_scope + "/BatchedOut.new"});
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auto* op = graph->CreateOpNode(&op_desc);
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PADDLE_ENFORCE(graph->Has(kParamScopeAttr));
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// auto* scope = graph->Get<Scope*>(kParamScopeAttr);
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#define NEW_IMTERMEDIATE_OUT(key) \
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scope->Var(NEW_NAME(key))->GetMutable<framework::LoDTensor>()
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NEW_IMTERMEDIATE_OUT(ReorderedH0);
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NEW_IMTERMEDIATE_OUT(XX);
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NEW_IMTERMEDIATE_OUT(BatchedInput);
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NEW_IMTERMEDIATE_OUT(BatchedOut);
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#undef NEW_NAME
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#undef NEW_IMTERMEDIATE_OUT
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IR_NODE_LINK_TO(x_n, op);
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IR_NODE_LINK_TO(weight_x_n, op);
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IR_NODE_LINK_TO(weight_h_n, op);
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IR_NODE_LINK_TO(bias_n, op);
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IR_NODE_LINK_TO(bias_n, op); // actually should link to new bias if have
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IR_NODE_LINK_TO(op, hidden_n);
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// h0?
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return op;
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@ -127,26 +134,33 @@ static int BuildFusion(Graph* graph, const std::string& name_scope,
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int name__ __attribute__((unused)) = name__##_n->id();
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GET_NODE(x);
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GET_NODE(w);
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GET_NODE(w); // fc weight
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GET_NODE(mul);
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GET_NODE(fc_out);
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GET_NODE(Weight);
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GET_NODE(gru);
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GET_NODE(Bias);
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GET_NODE(Hidden);
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// nodes need be removed
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GET_NODE(BatchGate);
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GET_NODE(BatchResetHiddenPrev);
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GET_NODE(BatchHidden);
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if (with_fc_bias) {
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GET_NODE(mul_out);
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GET_NODE(fc_bias);
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GET_NODE(elementwise_add);
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gru_creater(gru, x, w, Weight, Bias, Hidden, fc_bias);
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// Remove unneeded nodes.
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std::unordered_set<const Node*> marked_nodes(
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{mul_n, gru_n, elementwise_add_n});
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{mul_n, gru_n, elementwise_add_n, fc_bias_n, fc_out_n, mul_out_n,
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BatchGate_n, BatchResetHiddenPrev_n, BatchHidden_n});
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GraphSafeRemoveNodes(graph, marked_nodes);
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} else {
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gru_creater(gru, x, w, Weight, Bias, Hidden, -1);
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// Remove unneeded nodes.
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std::unordered_set<const Node*> marked_nodes({mul_n, gru_n});
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std::unordered_set<const Node*> marked_nodes(
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{mul_n, gru_n, BatchGate_n, BatchResetHiddenPrev_n, BatchHidden_n});
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GraphSafeRemoveNodes(graph, marked_nodes);
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}
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#undef GET_NODE
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