v0.3.0-dev-9 #324
@ -2745,6 +2745,34 @@ public class space/kscience/kmath/tensors/core/BufferedTensor : space/kscience/k
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public final fun vectorSequence ()Lkotlin/sequences/Sequence;
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}
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public final class space/kscience/kmath/tensors/core/BufferedTensor1D : space/kscience/kmath/tensors/core/BufferedTensor, space/kscience/kmath/nd/MutableStructure1D {
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public fun copy ()Lspace/kscience/kmath/structures/MutableBuffer;
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public fun get (I)Ljava/lang/Object;
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public fun get ([I)Ljava/lang/Object;
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public fun getDimension ()I
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public fun getSize ()I
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public fun iterator ()Ljava/util/Iterator;
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public fun set (ILjava/lang/Object;)V
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public fun set ([ILjava/lang/Object;)V
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}
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public final class space/kscience/kmath/tensors/core/BufferedTensor2D : space/kscience/kmath/tensors/core/BufferedTensor, space/kscience/kmath/nd/MutableStructure2D {
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public fun elements ()Lkotlin/sequences/Sequence;
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public fun get (II)Ljava/lang/Object;
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public fun get ([I)Ljava/lang/Object;
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public fun getColNum ()I
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public fun getColumns ()Ljava/util/List;
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public fun getRowNum ()I
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public fun getRows ()Ljava/util/List;
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public fun getShape ()[I
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public fun set (IILjava/lang/Object;)V
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}
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public final class space/kscience/kmath/tensors/core/BufferedTensorKt {
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public static final fun as1D (Lspace/kscience/kmath/tensors/core/BufferedTensor;)Lspace/kscience/kmath/tensors/core/BufferedTensor1D;
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public static final fun as2D (Lspace/kscience/kmath/tensors/core/BufferedTensor;)Lspace/kscience/kmath/tensors/core/BufferedTensor2D;
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}
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public final class space/kscience/kmath/tensors/core/DoubleAnalyticTensorAlgebra : space/kscience/kmath/tensors/core/DoubleTensorAlgebra, space/kscience/kmath/tensors/AnalyticTensorAlgebra {
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public fun <init> ()V
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public synthetic fun acos (Lspace/kscience/kmath/nd/MutableStructureND;)Lspace/kscience/kmath/nd/MutableStructureND;
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@ -1,23 +1,26 @@
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package space.kscience.kmath.tensors.core
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import space.kscience.kmath.nd.*
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import space.kscience.kmath.nd.MutableStructure1D
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import space.kscience.kmath.nd.MutableStructure2D
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import space.kscience.kmath.structures.*
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import space.kscience.kmath.tensors.TensorStructure
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import kotlin.math.atanh
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public open class BufferedTensor<T>(
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override val shape: IntArray,
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public val buffer: MutableBuffer<T>,
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internal val bufferStart: Int
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) : TensorStructure<T>
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{
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) : TensorStructure<T> {
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public val linearStructure: TensorLinearStructure
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get() = TensorLinearStructure(shape)
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public val numel: Int
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get() = linearStructure.size
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internal constructor(tensor: BufferedTensor<T>) :
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this(tensor.shape, tensor.buffer, tensor.bufferStart)
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override fun get(index: IntArray): T = buffer[bufferStart + linearStructure.offset(index)]
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override fun set(index: IntArray, value: T) {
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@ -32,8 +35,8 @@ public open class BufferedTensor<T>(
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override fun hashCode(): Int = 0
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public fun vectorSequence(): Sequence<MutableStructure1D<T>> = sequence {
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check(shape.size >= 1) {"todo"}
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public fun vectorSequence(): Sequence<BufferedTensor1D<T>> = sequence {
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check(shape.size >= 1) { "todo" }
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val n = shape.size
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val vectorOffset = shape[n - 1]
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val vectorShape = intArrayOf(shape.last())
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@ -43,8 +46,8 @@ public open class BufferedTensor<T>(
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}
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}
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public fun matrixSequence(): Sequence<MutableStructure2D<T>> = sequence {
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check(shape.size >= 2) {"todo"}
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public fun matrixSequence(): Sequence<BufferedTensor2D<T>> = sequence {
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check(shape.size >= 2) { "todo" }
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val n = shape.size
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val matrixOffset = shape[n - 1] * shape[n - 2]
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val matrixShape = intArrayOf(shape[n - 2], shape[n - 1]) //todo better way?
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@ -54,14 +57,14 @@ public open class BufferedTensor<T>(
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}
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}
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public inline fun forEachVector(vectorAction : (MutableStructure1D<T>) -> Unit): Unit {
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for (vector in vectorSequence()){
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public inline fun forEachVector(vectorAction: (BufferedTensor1D<T>) -> Unit): Unit {
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for (vector in vectorSequence()) {
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vectorAction(vector)
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}
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}
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public inline fun forEachMatrix(matrixAction : (MutableStructure2D<T>) -> Unit): Unit {
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for (matrix in matrixSequence()){
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public inline fun forEachMatrix(matrixAction: (BufferedTensor2D<T>) -> Unit): Unit {
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for (matrix in matrixSequence()) {
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matrixAction(matrix)
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}
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}
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@ -74,21 +77,125 @@ public class IntTensor internal constructor(
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buffer: IntArray,
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offset: Int = 0
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) : BufferedTensor<Int>(shape, IntBuffer(buffer), offset)
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{
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internal constructor(bufferedTensor: BufferedTensor<Int>):
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this(bufferedTensor.shape, bufferedTensor.buffer.array(), bufferedTensor.bufferStart)
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}
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public class LongTensor internal constructor(
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shape: IntArray,
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buffer: LongArray,
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offset: Int = 0
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) : BufferedTensor<Long>(shape, LongBuffer(buffer), offset)
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{
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internal constructor(bufferedTensor: BufferedTensor<Long>):
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this(bufferedTensor.shape, bufferedTensor.buffer.array(), bufferedTensor.bufferStart)
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}
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public class FloatTensor internal constructor(
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shape: IntArray,
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buffer: FloatArray,
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offset: Int = 0
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) : BufferedTensor<Float>(shape, FloatBuffer(buffer), offset)
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{
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internal constructor(bufferedTensor: BufferedTensor<Float>):
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this(bufferedTensor.shape, bufferedTensor.buffer.array(), bufferedTensor.bufferStart)
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}
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public class DoubleTensor internal constructor(
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shape: IntArray,
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buffer: DoubleArray,
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offset: Int = 0
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) : BufferedTensor<Double>(shape, DoubleBuffer(buffer), offset)
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{
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internal constructor(bufferedTensor: BufferedTensor<Double>):
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this(bufferedTensor.shape, bufferedTensor.buffer.array(), bufferedTensor.bufferStart)
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}
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public class BufferedTensor2D<T> internal constructor(
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private val tensor: BufferedTensor<T>,
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) : BufferedTensor<T>(tensor), MutableStructure2D<T> {
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init {
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check(shape.size == 2) {
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"Shape ${shape.toList()} not compatible with DoubleTensor2D"
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}
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}
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override val shape: IntArray
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get() = tensor.shape
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override val rowNum: Int
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get() = shape[0]
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override val colNum: Int
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get() = shape[1]
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override fun get(i: Int, j: Int): T = tensor[intArrayOf(i, j)]
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override fun get(index: IntArray): T = tensor[index]
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override fun elements(): Sequence<Pair<IntArray, T>> = tensor.elements()
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override fun set(i: Int, j: Int, value: T) {
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tensor[intArrayOf(i, j)] = value
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}
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override val rows: List<BufferedTensor1D<T>>
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get() = List(rowNum) { i ->
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BufferedTensor1D(
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BufferedTensor(
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shape = intArrayOf(colNum),
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buffer = VirtualMutableBuffer(colNum) { j -> get(i, j) },
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bufferStart = 0
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)
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)
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}
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override val columns: List<BufferedTensor1D<T>>
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get() = List(colNum) { j ->
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BufferedTensor1D(
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BufferedTensor(
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shape = intArrayOf(rowNum),
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buffer = VirtualMutableBuffer(rowNum) { i -> get(i, j) },
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bufferStart = 0
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)
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)
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}
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}
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public class BufferedTensor1D<T> internal constructor(
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private val tensor: BufferedTensor<T>
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) : BufferedTensor<T>(tensor), MutableStructure1D<T> {
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init {
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check(shape.size == 1) {
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"Shape ${shape.toList()} not compatible with DoubleTensor1D"
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}
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}
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override fun get(index: IntArray): T = tensor[index]
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override fun set(index: IntArray, value: T) {
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tensor[index] = value
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}
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override val size: Int
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get() = tensor.linearStructure.size
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override fun get(index: Int): T = tensor[intArrayOf(index)]
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override fun set(index: Int, value: T) {
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tensor[intArrayOf(index)] = value
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}
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override fun copy(): MutableBuffer<T> = tensor.buffer.copy()
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}
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internal fun BufferedTensor<Int>.asIntTensor(): IntTensor = IntTensor(this)
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internal fun BufferedTensor<Long>.asLongTensor(): LongTensor = LongTensor(this)
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internal fun BufferedTensor<Float>.asFloatTensor(): FloatTensor = FloatTensor(this)
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internal fun BufferedTensor<Double>.asDoubleTensor(): DoubleTensor = DoubleTensor(this)
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public fun <T> BufferedTensor<T>.as2D(): BufferedTensor2D<T> = BufferedTensor2D(this)
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public fun <T> BufferedTensor<T>.as1D(): BufferedTensor1D<T> = BufferedTensor1D(this)
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@ -1,8 +1,5 @@
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package space.kscience.kmath.tensors.core
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import space.kscience.kmath.nd.MutableStructure2D
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import space.kscience.kmath.nd.Structure1D
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import space.kscience.kmath.nd.Structure2D
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import space.kscience.kmath.tensors.LinearOpsTensorAlgebra
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import kotlin.math.sqrt
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@ -153,7 +150,7 @@ public class DoubleLinearOpsTensorAlgebra :
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TODO("ANDREI")
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}
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private fun luMatrixDet(lu: Structure2D<Double>, pivots: Structure1D<Int>): Double {
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private fun luMatrixDet(lu: BufferedTensor2D<Double>, pivots: BufferedTensor1D<Int>): Double {
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val m = lu.shape[0]
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val sign = if((pivots[m] - m) % 2 == 0) 1.0 else -1.0
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return (0 until m).asSequence().map { lu[it, it] }.fold(sign) { left, right -> left * right }
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@ -180,9 +177,9 @@ public class DoubleLinearOpsTensorAlgebra :
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}
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private fun luMatrixInv(
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lu: Structure2D<Double>,
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pivots: Structure1D<Int>,
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invMatrix : MutableStructure2D<Double>
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lu: BufferedTensor2D<Double>,
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pivots: BufferedTensor1D<Int>,
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invMatrix : BufferedTensor2D<Double>
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): Unit {
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val m = lu.shape[0]
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@ -1,7 +1,6 @@
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package space.kscience.kmath.tensors.core
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import kotlin.math.abs
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import kotlin.math.exp
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import kotlin.test.Test
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import kotlin.test.assertEquals
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import kotlin.test.assertTrue
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@ -1,8 +1,5 @@
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package space.kscience.kmath.tensors.core
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import space.kscience.kmath.nd.as1D
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import space.kscience.kmath.nd.as2D
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import space.kscience.kmath.structures.toDoubleArray
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import kotlin.test.Test
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import kotlin.test.assertEquals
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