com.intel.analytics.bigdl.nn.ops.Inv.scala Maven / Gradle / Ivy
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/*
* Copyright 2016 The BigDL Authors.
*
* Licensed under the Apache License, Version 2.0 (the "License");
* you may not use this file except in compliance with the License.
* You may obtain a copy of the License at
*
* http://www.apache.org/licenses/LICENSE-2.0
*
* Unless required by applicable law or agreed to in writing, software
* distributed under the License is distributed on an "AS IS" BASIS,
* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
* See the License for the specific language governing permissions and
* limitations under the License.
*/
package com.intel.analytics.bigdl.nn.ops
import com.intel.analytics.bigdl.tensor.Tensor
import com.intel.analytics.bigdl.tensor.TensorNumericMath.{NumericWildCard, TensorNumeric}
import com.intel.analytics.bigdl.utils.Table
import scala.reflect.ClassTag
class Inv[T: ClassTag, D: ClassTag]()(implicit ev: TensorNumeric[T], ev2: TensorNumeric[D])
extends Operation[Tensor[D], Tensor[D], T] {
output = Tensor[D]()
override def updateOutput(input: Tensor[D]): Tensor[D] = {
output.resizeAs(input).copy(input).inv()
output
}
override def getClassTagNumerics() : (Array[ClassTag[_]], Array[TensorNumeric[_]]) = {
(Array[ClassTag[_]](scala.reflect.classTag[T], scala.reflect.classTag[D]),
Array[TensorNumeric[_]](ev, ev2))
}
}
object Inv {
def apply[T: ClassTag, D: ClassTag]()(
implicit ev: TensorNumeric[T], ev2: TensorNumeric[D]): Inv[T, D] = new Inv()
}
private[bigdl] class InvGrad[T: ClassTag, D: ClassTag]()
(implicit ev: TensorNumeric[T], ev2: TensorNumeric[D]) extends Operation[Table, Tensor[D], T] {
output = Tensor[D]()
override def updateOutput(input: Table): Tensor[D] = {
require(input.length() == 2, "InvGrad requires two tensors as input")
val x = input[Tensor[D]](1)
val d = input[Tensor[D]](2)
if (d.getType() != output.getType()) {
output = d.emptyInstance()
}
output.resizeAs(x)
output.copy(x).pow(ev2.fromType(2)).cmul(d).mul(ev2.fromType(-1))
output
}
override def getClassTagNumerics() : (Array[ClassTag[_]], Array[TensorNumeric[_]]) = {
(Array[ClassTag[_]](scala.reflect.classTag[T], scala.reflect.classTag[D]),
Array[TensorNumeric[_]](ev, ev2))
}
}
private[bigdl] object InvGrad {
def apply[T: ClassTag, D: ClassTag]()(implicit ev: TensorNumeric[T], ev2: TensorNumeric[D])
: InvGrad[T, D] = new InvGrad()
}
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