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1 // Generated file (from: depthwise_conv2d_float_large_2_weights_as_inputs.mod.py). Do not edit
CreateModel(Model * model)2 void CreateModel(Model *model) {
3   OperandType type3(Type::INT32, {});
4   OperandType type4(Type::TENSOR_FLOAT32, {1, 1, 1, 4});
5   OperandType type0(Type::TENSOR_FLOAT32, {1, 2, 2, 3});
6   OperandType type1(Type::TENSOR_FLOAT32, {1, 2, 2, 4});
7   OperandType type2(Type::TENSOR_FLOAT32, {4});
8   // Phase 1, operands
9   auto op1 = model->addOperand(&type0);
10   auto op2 = model->addOperand(&type1);
11   auto op3 = model->addOperand(&type2);
12   auto pad0 = model->addOperand(&type3);
13   auto act = model->addOperand(&type3);
14   auto stride = model->addOperand(&type3);
15   auto channelMultiplier = model->addOperand(&type3);
16   auto op4 = model->addOperand(&type4);
17   // Phase 2, operations
18   static int32_t pad0_init[] = {0};
19   model->setOperandValue(pad0, pad0_init, sizeof(int32_t) * 1);
20   static int32_t act_init[] = {0};
21   model->setOperandValue(act, act_init, sizeof(int32_t) * 1);
22   static int32_t stride_init[] = {1};
23   model->setOperandValue(stride, stride_init, sizeof(int32_t) * 1);
24   static int32_t channelMultiplier_init[] = {1};
25   model->setOperandValue(channelMultiplier, channelMultiplier_init, sizeof(int32_t) * 1);
26   model->addOperation(ANEURALNETWORKS_DEPTHWISE_CONV_2D, {op1, op2, op3, pad0, pad0, pad0, pad0, stride, stride, channelMultiplier, act}, {op4});
27   // Phase 3, inputs and outputs
28   model->identifyInputsAndOutputs(
29     {op1, op2, op3},
30     {op4});
31   assert(model->isValid());
32 }
33 
is_ignored(int i)34 bool is_ignored(int i) {
35   static std::set<int> ignore = {};
36   return ignore.find(i) != ignore.end();
37 }
38