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Results 81 - 90 of 95 for 1x3xi32 (0.1 sec)

  1. tensorflow/compiler/mlir/quantization/stablehlo/tests/passes/lift_quantizable_spots_as_functions.mlir

    func.func @dot_general_with_bias_same_shape_fn(%arg0: tensor<1x2xf32>) -> tensor<1x3xf32> {
      %0 = stablehlo.constant dense<2.000000e+00> : tensor<2x3xf32>
      %1 = stablehlo.constant dense<2.000000e+00> : tensor<1x3xf32>
      %2 = stablehlo.dot_general %arg0, %0, contracting_dims = [1] x [0], precision = [DEFAULT, DEFAULT] : (tensor<1x2xf32>, tensor<2x3xf32>) -> tensor<1x3xf32>
    Registered: Sun Jun 16 05:45:23 UTC 2024
    - Last Modified: Fri May 10 04:07:09 UTC 2024
    - 49.8K bytes
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  2. tensorflow/compiler/mlir/lite/tests/post-quantize.mlir

      %0 = "tfl.quantize"(%arg0) {qtype = tensor<1x3x3x!quant.uniform<i8:f32, 0.003:-128>>} : (tensor<1x3x3xf32>) -> tensor<1x3x3x!quant.uniform<i8:f32, 0.003:-128>>
      %1 = "tfl.logistic"(%0) : (tensor<1x3x3x!quant.uniform<i8:f32, 0.003:-128>>) -> tensor<1x3x3x!quant.uniform<i8:f32, 3.906250e-03:-128>>
    Registered: Sun Jun 16 05:45:23 UTC 2024
    - Last Modified: Thu May 02 09:41:17 UTC 2024
    - 19.9K bytes
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  3. tensorflow/compiler/mlir/tensorflow/tests/group_by_dialect.mlir

      %one = "glue.constant"() { value = 1: i32 } : () -> i32
      %done = "glue.compare" (%one, %one) { predicate = #glue<"compare LTE"> } : (i32, i32) -> i1
      %2 = mhlo.constant dense<[[1.1]]> : tensor<1x1xf32>
      %3 = mhlo.multiply %2, %2 : tensor<1x1xf32>
      %cst = "tf.Const"() {value = dense<0.0> : tensor<f32>} : () -> tensor<f32>
      %0 = "tf.AddV2"(%arg0, %cst) {device = "/device:CPU:0"} : (tensor<f32>, tensor<f32>) -> tensor<f32>
    Registered: Sun Jun 16 05:45:23 UTC 2024
    - Last Modified: Wed Sep 28 23:43:21 UTC 2022
    - 5.7K bytes
    - Viewed (0)
  4. tensorflow/compiler/mlir/tfrt/tests/fuse_tpu_compile_and_execute_ops.mlir

      %1 = "tf.ReadVariableOp"(%0) {device = "/CPU:0"} : (tensor<!tf_type.resource<tensor<1x1xf32>>>) -> tensor<1x1xf32>
      %2:2 = "tf.Split"(%cst, %arg0) {device = "/CPU:0"} : (tensor<i32>,  tensor<1x4xf32>) -> (tensor<1x2xf32>, tensor<1x2xf32>)
      %3:2 = "tf.Split"(%cst, %2#0) {device = "/CPU:0"} : (tensor<i32>,  tensor<1x2xf32>) -> (tensor<1x1xf32>, tensor<1x1xf32>)
    Registered: Sun Jun 16 05:45:23 UTC 2024
    - Last Modified: Mon Oct 30 06:52:55 UTC 2023
    - 13.8K bytes
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  5. tensorflow/compiler/mlir/tensorflow/transforms/tf_passes.td

        ```mlir
          %0 = "tf.Const"() {value = dense<[[42.0]]> : tensor<1x1xf32>} : () -> tensor<1x1xf32>
          %1 = "tf.Const"() {device = "", value = dense<[[42.0]]> : tensor<1x1xf32>} : () -> tensor<1x1xf32>
          %2 = "tf.Const"() {device = "baz", value = dense<[[42.0]]> : tensor<1x1xf32>} : () -> tensor<1x1xf32>
        ```
    
        then running this pass with 'default-device=foobar', we get:
    
        ```mlir
    Registered: Sun Jun 16 05:45:23 UTC 2024
    - Last Modified: Wed Jun 12 21:18:05 UTC 2024
    - 99.6K bytes
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  6. tensorflow/compiler/mlir/tensorflow/tests/extract_outside_compilation.mlir

        return %0#0, %0#1, %0#2, %0#3, %0#4 : tensor<?xi32>, tensor<?x!tf_type.string>, tensor<?x2xi32>, tensor<3x!tf_type.string>, tensor<?x3xi32>
      }
    
      // CHECK-LABEL: func @deplicated_return_from_host_and_tpu
    Registered: Sun Jun 16 05:45:23 UTC 2024
    - Last Modified: Tue Oct 31 08:59:10 UTC 2023
    - 129.6K bytes
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  7. tensorflow/compiler/mlir/g3doc/_includes/tf_passes.md

    For example, if we have the code
    
    ```mlir
      %0 = "tf.Const"() {value = dense<[[42.0]]> : tensor<1x1xf32>} : () -> tensor<1x1xf32>
      %1 = "tf.Const"() {device = "", value = dense<[[42.0]]> : tensor<1x1xf32>} : () -> tensor<1x1xf32>
      %2 = "tf.Const"() {device = "baz", value = dense<[[42.0]]> : tensor<1x1xf32>} : () -> tensor<1x1xf32>
    ```
    
    then running this pass with 'default-device=foobar', we get:
    
    ```mlir
    Registered: Sun Jun 16 05:45:23 UTC 2024
    - Last Modified: Wed Aug 02 02:26:39 UTC 2023
    - 96.4K bytes
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  8. tensorflow/compiler/mlir/lite/tests/prepare-quantize-post-training.mlir

      %5 = "quantfork.stats"(%4) {layerStats = dense<[-56.2916565, 122.922478]> : tensor<2xf32>} : (tensor<1x4xf32>) -> tensor<1x4xf32>
      %6 = "tfl.svdf"(%0, %1, %2, %3, %5) {fused_activation_function = "RELU", rank = 1 : i32} : (tensor<1x3xf32>, tensor<2x3xf32>, tensor<2x1xf32>, tensor<2xf32>, tensor<1x4xf32>) -> tensor<1x2xf32>
    Registered: Sun Jun 16 05:45:23 UTC 2024
    - Last Modified: Thu May 02 09:41:17 UTC 2024
    - 52.6K bytes
    - Viewed (0)
  9. tensorflow/compiler/mlir/lite/tests/canonicalize.mlir

      func.return %2 : tensor<1x128x32xf32>
    
    // CHECK-DAG:  [[VAL_1:%.*]] = arith.constant dense<0> : tensor<3xi32>
    // CHECK-DAG:  [[VAL_2:%.*]] = arith.constant dense<[1, 128, 32]> : tensor<3xi32>
    // CHECK:  [[VAL_3:%.*]] = "tfl.slice"(%arg0, [[VAL_1]], [[VAL_2]]) : (tensor<4x128x32xf32>, tensor<3xi32>, tensor<3xi32>) -> tensor<1x128x32xf32>
    }
    
    // -----
    
    // CHECK-LABEL: @WhileCanonicalizeBug
    Registered: Sun Jun 16 05:45:23 UTC 2024
    - Last Modified: Thu May 02 09:41:17 UTC 2024
    - 20.6K bytes
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  10. tensorflow/compiler/mlir/lite/tests/prepare-tf.mlir

    }
    
    func.func @snapshot(%arg0: tensor<3xi32>) -> tensor<3xi32> {
      %0 = "tf.Snapshot"(%arg0) : (tensor<3xi32>) -> tensor<3xi32>
      func.return %0 : tensor<3xi32>
      // Should be converted to Identity and then from Identity to value
      // CHECK-LABEL: snapshot
      // CHECK:  return %arg0 : tensor<3xi32>
    }
    
    func.func @stop_gradient(%arg0: tensor<3xi32>) -> tensor<3xi32> {
    Registered: Sun Jun 16 05:45:23 UTC 2024
    - Last Modified: Wed May 29 07:26:59 UTC 2024
    - 59.8K bytes
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