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Results 1 - 10 of 37 for 1x6x2xi32 (0.21 sec)

  1. tensorflow/compiler/mlir/lite/tests/shape-inference.mlir

    func.func @testReshapeShapeInference(%arg0: tensor<3x4xi32>) -> tensor<*xi32> {
      %cst = arith.constant dense<[1, 6, 2]> : tensor<3xi32>
      // CHECK: "tfl.reshape"(%arg0, %cst) : (tensor<3x4xi32>, tensor<3xi32>) -> tensor<1x6x2xi32>
      %0 = "tfl.reshape"(%arg0, %cst) : (tensor<3x4xi32>, tensor<3xi32>) -> tensor<*xi32>
      func.return %0 : tensor<*xi32>
    }
    }
    
    // -----
    
    // CHECK-LABEL: testReshapeShapeInferenceUnknownDim
    Registered: Sun Jun 16 05:45:23 UTC 2024
    - Last Modified: Thu May 02 09:41:17 UTC 2024
    - 11.5K bytes
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  2. tensorflow/compiler/mlir/lite/tests/flatbuffer2mlir/vhlo.mlir

    // CHECK-NEXT: return %0 : tensor<2x3x2x2xi32>
    // CHECK-NEXT:}
    
    func.func @transpose(%arg0: tensor<2x3x2xi32>) -> tensor<2x3x2xi32> {
      %0 = "vhlo.transpose_v1"(%arg0) <{permutation = #vhlo.tensor_v1<dense<[2, 1, 0]> : tensor<3xi64>>}> : (tensor<2x3x2xi32>) -> tensor<2x3x2xi32>
      return %0 : tensor<2x3x2xi32>
    }
    
    Registered: Sun Jun 16 05:45:23 UTC 2024
    - Last Modified: Thu Mar 14 19:15:40 UTC 2024
    - 31.9K bytes
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  3. tensorflow/compiler/mlir/lite/stablehlo/tests/compose-uniform-quantized-type.mlir

        %8 = stablehlo.convert %7 : (tensor<1x4x2xi8>) -> tensor<1x4x2xf32>
        %9 = stablehlo.convert %2 : (tensor<2x3xi8>) -> tensor<2x3xf32>
        %10 = stablehlo.dot_general %8, %9, contracting_dims = [2] x [0] : (tensor<1x4x2xf32>, tensor<2x3xf32>) -> tensor<1x4x3xf32>
        %11 = stablehlo.convert %3 : (tensor<1x1x3xi32>) -> tensor<1x1x3xf32>
        %12 = stablehlo.broadcast_in_dim %11, dims = [0, 1, 2] : (tensor<1x1x3xf32>) -> tensor<1x4x3xf32>  // Optional
    Registered: Sun Jun 16 05:45:23 UTC 2024
    - Last Modified: Tue May 14 17:10:32 UTC 2024
    - 37K bytes
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  4. tensorflow/compiler/mlir/lite/stablehlo/tests/legalize-tfl-stablehlo-broadcast.mlir

    module {
      func.func @main(%arg0: tensor<1x2xi32>) -> tensor<1x2x2xi32> {
      %0 = "tfl.custom"(%arg0) {custom_code = "stablehlo.broadcast_in_dim", custom_option = #tfl<const_bytes : "0x62726F6164636173745F64696D656E73696F6E73000201020119010101072C022401">} : (tensor<1x2xi32>) -> tensor<1x2x2xi32>
      func.return %0 : tensor<1x2x2xi32>
      }
    }
    
    // CHECK:      module {
    // CHECK-NEXT:  func @main(%arg0: tensor<1x2xi32>) -> tensor<1x2x2xi32> {
    Registered: Sun Jun 16 05:45:23 UTC 2024
    - Last Modified: Fri Dec 16 05:09:09 UTC 2022
    - 704 bytes
    - Viewed (0)
  5. tensorflow/compiler/mlir/tensorflow/tests/lower_tf.mlir

      %1 = "tf.Const"() {value = dense<[[3, 4]]> : tensor<1x2xi32>} : () -> tensor<1x2xi32>
      %2 = "tf.BatchToSpaceND"(%arg0, %0, %1) {device = ""} : (tensor<3x5x2xf32>, tensor<1xi32>, tensor<1x2xi32>) -> tensor<1x8x2xf32>
    
      // CHECK: return [[VAL8]] : tensor<1x8x2xf32>
      func.return %2 : tensor<1x8x2xf32>
    }
    
    func.func @fake_quant_with_min_max_args(%arg0 : tensor<?x?xf32>) -> tensor<?x?xf32> {
    Registered: Sun Jun 16 05:45:23 UTC 2024
    - Last Modified: Fri Jan 05 18:35:42 UTC 2024
    - 92K bytes
    - Viewed (0)
  6. tensorflow/compiler/mlir/lite/tests/const-fold.mlir

    func.func @concatConstantTensorsMiddleDim() -> tensor<1x4x3xi32> {
      %cst_0 = arith.constant dense<0> : tensor<1x2x3xi32>
      %cst_1 = arith.constant dense<1> : tensor<1x2x3xi32>
      %0 = "tfl.concatenation"(%cst_0, %cst_1) {axis = 1 : i32, fused_activation_function = "NONE"} : (tensor<1x2x3xi32>, tensor<1x2x3xi32>) -> tensor<1x4x3xi32>
      func.return %0 : tensor<1x4x3xi32>
    
    Registered: Sun Jun 16 05:45:23 UTC 2024
    - Last Modified: Thu May 02 09:41:17 UTC 2024
    - 45.8K bytes
    - Viewed (0)
  7. tensorflow/compiler/mlir/tensorflow/tests/stack_ops_decomposition.mlir

      // CHECK-NEXT: %[[UPDATE:.*]] = "tf.XlaDynamicUpdateSlice"(%[[STACK_VAL]], %[[UPDATE_SLICE]], %[[CONCAT_OFFETS]]) : (tensor<10x2xi32>, tensor<1x2xi32>, tensor<2xi32>) -> tensor<10x2xi32>
      // CHECK-NEXT: "tf.AssignVariableOp"(%[[BUFFER]], %[[UPDATE]]) : (tensor<!tf_type.resource<tensor<10x2xi32>>>, tensor<10x2xi32>) -> ()
      // CHECK-NEXT: %[[CONST1:.*]] = "tf.Const"() <{value = dense<1> : tensor<1xi32>}> : () -> tensor<1xi32>
    Registered: Sun Jun 16 05:45:23 UTC 2024
    - Last Modified: Mon Oct 30 06:52:55 UTC 2023
    - 25.8K bytes
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  8. tensorflow/compiler/mlir/lite/stablehlo/tests/tf-tfl-translate-serialize-stablehlo.mlir

    module {
    func.func @tfInplaceUpdate(%arg0: tensor<2x1x2xf32>) -> tensor<2x1x2xf32> {
      %1 = arith.constant dense<1> : tensor<1xi32>
      %2 = arith.constant dense<2.0> : tensor<1x1x2xf32>
      %3 = "tf.InplaceUpdate"(%arg0, %1, %2) {device = ""}
        : (tensor<2x1x2xf32>, tensor<1xi32>, tensor<1x1x2xf32>) -> tensor<2x1x2xf32>
      func.return %3 : tensor<2x1x2xf32>
    }
    }
    
    //CHECK: module attributes
    //CHECK-SAME: keep_stablehlo_constant = "true"
    Registered: Sun Jun 16 05:45:23 UTC 2024
    - Last Modified: Sun Apr 14 18:33:43 UTC 2024
    - 1.2K bytes
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  9. tensorflow/compiler/mlir/tf2xla/tests/legalize-tf-BatchMatMulV2.mlir

    func.func @batchmatmulv2_basic(%arg0: tensor<1x4x2xf32>, %arg1: tensor<3x2x4xf32>) -> tensor<3x4x4xf32> {
    // CHECK-LABEL:   func @batchmatmulv2_basic
    // CHECK-SAME:        ([[LHS:%.*]]: tensor<1x4x2xf32>, [[RHS:%.*]]: tensor<3x2x4xf32>) -> tensor<3x4x4xf32>
    // CHECK:           [[LHSSHAPE:%.*]] = shape.shape_of [[LHS]] : tensor<1x4x2xf32>
    // CHECK:           [[RHSSHAPE:%.*]] = shape.shape_of [[RHS]] : tensor<3x2x4xf32>
    Registered: Sun Jun 16 05:45:23 UTC 2024
    - Last Modified: Sat Apr 06 15:32:52 UTC 2024
    - 5.5K bytes
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  10. tensorflow/compiler/mlir/tensorflow/tests/batchmatmul_to_einsum.mlir

    func.func @test_batch_matmulV2_adj_to_einsum(%arg0: tensor<1x3x2xf32>, %arg1: tensor<3x4xf32>) -> tensor<1x2x4xf32> {
      // CHECK: %[[RES_EINSUM:[0-9]*]] = "tf.Einsum"(%arg0, %arg1) <{equation = "...km,...kn->...mn"}> : (tensor<1x3x2xf32>, tensor<3x4xf32>) -> tensor<1x2x4xf32>
      // CHECK: return %[[RES_EINSUM]] : tensor<1x2x4xf32>
      %0 = "tf.BatchMatMulV2"(%arg0, %arg1) {adj_x = true, adj_y = false} : (tensor<1x3x2xf32>, tensor<3x4xf32>) -> tensor<1x2x4xf32>
    Registered: Sun Jun 16 05:45:23 UTC 2024
    - Last Modified: Mon Oct 30 06:52:55 UTC 2023
    - 3K bytes
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