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Results 1 - 3 of 3 for 1x80xf32 (0.09 sec)

  1. tensorflow/compiler/mlir/tensorflow/tests/tpu_cluster_formation.mlir

        _xla_compile_device_type = "TPU", _replication_info = "cluster",
        device = "/task:0/device:TPU:0", dtype = f32
      } : (tensor<1x80xf32>, tensor<1x80xf32>) -> tensor<1x80xf32>
      %3 = "tf.ResourceGatherNd"(%arg0, %0) {
        Tindices = i32
      } : (tensor<*x!tf_type.resource<tensor<80xf32>>>, tensor<i32>) -> tensor<1x80xf32>
    Registered: Sun Jun 16 05:45:23 UTC 2024
    - Last Modified: Thu May 02 22:03:30 UTC 2024
    - 53.9K bytes
    - Viewed (0)
  2. tensorflow/compiler/mlir/lite/tests/prepare-tf.mlir

    }
    
    func.func @QDQsFollowedByTranspose(tensor<1x2xf32>) -> (tensor<2x1xf32>) {
    ^bb0(%arg0: tensor<1x2xf32>):
      %cst_0 = arith.constant dense<[1, 0]> : tensor<2xi32>
      %0 = "tfl.quantize"(%arg0){qtype = tensor<1x2x!quant.uniform<u8:f32, 1.0>>}: (tensor<1x2xf32>) -> (tensor<1x2x!quant.uniform<u8:f32, 1.0>>)
      %1 = "tfl.dequantize"(%0): (tensor<1x2x!quant.uniform<u8:f32, 1.0>>) -> (tensor<1x2xf32>)
    Registered: Sun Jun 16 05:45:23 UTC 2024
    - Last Modified: Wed May 29 07:26:59 UTC 2024
    - 59.8K bytes
    - Viewed (0)
  3. tensorflow/compiler/mlir/lite/tests/prepare-quantize-post-training.mlir

        %recurrent_stats = "quantfork.stats"(%recurrent_input) {layerStats = dense<[-2.0, 1.0]> : tensor<2xf32>} : (tensor<1x20xf32>) -> tensor<1x20xf32>
        %cell_input = arith.constant dense<1.0> : tensor<1x20xf32>
        %cell_stats = "quantfork.stats"(%cell_input) {layerStats = dense<[-2.73090601, 7.94872093]> : tensor<2xf32>} : (tensor<1x20xf32>) -> tensor<1x20xf32>
        %0 = "tfl.unidirectional_sequence_lstm"(%arg0,
    Registered: Sun Jun 16 05:45:23 UTC 2024
    - Last Modified: Thu May 02 09:41:17 UTC 2024
    - 52.6K bytes
    - Viewed (0)
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