mirror of https://github.com/llvm/torch-mlir
33 lines
1.7 KiB
MLIR
33 lines
1.7 KiB
MLIR
// RUN: npcomp-opt -torch-prepare-for-globalize-object-graph -split-input-file %s | FileCheck %s
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torch.class_type @c {
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torch.method "test_call_method", @test_call_method
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torch.method "test_call_indirect", @test_call_indirect
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}
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// CHECK-LABEL: func private @test_call_method(
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// CHECK-SAME: %[[RECEIVER:.*]]: !torch.nn.Module<"c">,
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// CHECK-SAME: %[[F:.*]]: !torch.float) -> !torch.float {
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// CHECK: %[[RET:.*]] = call @test_call_method(%[[RECEIVER]], %[[F]]) : (!torch.nn.Module<"c">, !torch.float) -> !torch.float
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// CHECK: return %[[RET]] : !torch.float
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func private @test_call_method(%arg0: !torch.nn.Module<"c">, %arg1: !torch.float) -> !torch.float {
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%0 = torch.prim.CallMethod %arg0["test_call_method"] (%arg1) : !torch.nn.Module<"c">, (!torch.float) -> !torch.float
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return %0 : !torch.float
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}
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// CHECK-LABEL: func private @test_call_indirect(
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// CHECK-SAME: %[[RECEIVER:.*]]: !torch.nn.Module<"c">,
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// CHECK-SAME: %[[F:.*]]: !torch.float) -> !torch.float {
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// Ensure no std.constant.
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// CHECK-NEXT: %[[VAL_2:.*]] = call @test_call_method(%[[RECEIVER]], %[[F]]) : (!torch.nn.Module<"c">, !torch.float) -> !torch.float
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// CHECK-NEXT: return %[[VAL_2]] : !torch.float
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func private @test_call_indirect(%arg0: !torch.nn.Module<"c">, %arg1: !torch.float) -> !torch.float {
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%0 = constant @test_call_method : (!torch.nn.Module<"c">, !torch.float) -> !torch.float
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%1 = call_indirect %0(%arg0, %arg1) : (!torch.nn.Module<"c">, !torch.float) -> !torch.float
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return %1 : !torch.float
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}
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torch.nn_module {
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} : !torch.nn.Module<"c">
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