The names of the functions that are supposed to be exported do not match the implementations. This is due in part to cac7aabbd8.
This change makes the implementations and declarations match and adds a couple missing declarations.
The new names follow the pattern of the existing `verify` functions where the prefix is maintained as `_mlir_ciface_` but the suffix follows the new naming convention.
Reviewed By: rriddle
Differential Revision: https://reviews.llvm.org/D124891
79 lines
3.2 KiB
MLIR
79 lines
3.2 KiB
MLIR
// RUN: mlir-opt %s -pass-pipeline="async-to-async-runtime,func.func(async-runtime-ref-counting,async-runtime-ref-counting-opt),convert-async-to-llvm,func.func(convert-arith-to-llvm),convert-vector-to-llvm,convert-memref-to-llvm,convert-func-to-llvm,reconcile-unrealized-casts" \
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// RUN: | mlir-cpu-runner \
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// RUN: -e main -entry-point-result=void -O0 \
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// RUN: -shared-libs=%linalg_test_lib_dir/libmlir_c_runner_utils%shlibext \
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// RUN: -shared-libs=%linalg_test_lib_dir/libmlir_runner_utils%shlibext \
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// RUN: -shared-libs=%linalg_test_lib_dir/libmlir_async_runtime%shlibext \
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// RUN: | FileCheck %s --dump-input=always
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func.func @main() {
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// ------------------------------------------------------------------------ //
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// Blocking async.await outside of the async.execute.
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// ------------------------------------------------------------------------ //
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%token, %result = async.execute -> !async.value<f32> {
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%0 = arith.constant 123.456 : f32
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async.yield %0 : f32
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}
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%1 = async.await %result : !async.value<f32>
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// CHECK: 123.456
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vector.print %1 : f32
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// ------------------------------------------------------------------------ //
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// Non-blocking async.await inside the async.execute
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// ------------------------------------------------------------------------ //
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%token0, %result0 = async.execute -> !async.value<f32> {
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%token1, %result2 = async.execute -> !async.value<f32> {
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%2 = arith.constant 456.789 : f32
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async.yield %2 : f32
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}
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%3 = async.await %result2 : !async.value<f32>
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async.yield %3 : f32
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}
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%4 = async.await %result0 : !async.value<f32>
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// CHECK: 456.789
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vector.print %4 : f32
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// ------------------------------------------------------------------------ //
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// Memref allocated inside async.execute region.
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// ------------------------------------------------------------------------ //
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%token2, %result2 = async.execute[%token0] -> !async.value<memref<f32>> {
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%5 = memref.alloc() : memref<f32>
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%c0 = arith.constant 0.25 : f32
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memref.store %c0, %5[]: memref<f32>
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async.yield %5 : memref<f32>
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}
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%6 = async.await %result2 : !async.value<memref<f32>>
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%7 = memref.cast %6 : memref<f32> to memref<*xf32>
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// CHECK: Unranked Memref
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// CHECK-SAME: rank = 0 offset = 0 sizes = [] strides = []
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// CHECK-NEXT: [0.25]
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call @printMemrefF32(%7): (memref<*xf32>) -> ()
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// ------------------------------------------------------------------------ //
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// Memref passed as async.execute operand.
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// ------------------------------------------------------------------------ //
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%token3 = async.execute(%result2 as %unwrapped : !async.value<memref<f32>>) {
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%8 = memref.load %unwrapped[]: memref<f32>
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%9 = arith.addf %8, %8 : f32
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memref.store %9, %unwrapped[]: memref<f32>
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async.yield
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}
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async.await %token3 : !async.token
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// CHECK: Unranked Memref
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// CHECK-SAME: rank = 0 offset = 0 sizes = [] strides = []
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// CHECK-NEXT: [0.5]
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call @printMemrefF32(%7): (memref<*xf32>) -> ()
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memref.dealloc %6 : memref<f32>
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return
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}
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func.func private @printMemrefF32(memref<*xf32>)
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attributes { llvm.emit_c_interface }
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