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* @license Apache-2.0
*
* Copyright (c) 2026 The Stdlib 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.
*/
/* eslint-disable max-len */
'use strict';
// MODULES //
var reinterpret = require( '@stdlib/strided/base/reinterpret-complex64' );
var cmulf = require( '@stdlib/complex/float32/base/mul' ).assign;
// VARIABLES //
var M = 5;
// MAIN //
/**
* Multiplies elements of a single-precision complex floating-point strided array `x` by the corresponding elements of a single-precision complex floating-point strided array `y` and assigns the results to `y` using alternative indexing semantics.
*
* @param {PositiveInteger} N - number of indexed elements
* @param {Complex64Array} x - input array
* @param {integer} strideX - `x` stride length
* @param {NonNegativeInteger} offsetX - starting `x` index
* @param {Complex64Array} y - output array
* @param {integer} strideY - `y` stride length
* @param {NonNegativeInteger} offsetY - starting `y` index
* @returns {Complex64Array} output array
*
* @example
* var Complex64Array = require( '@stdlib/array/complex64' );
*
* var x = new Complex64Array( [ 1.0, 2.0, 3.0, 4.0, 5.0, 6.0 ] );
* var y = new Complex64Array( [ 2.0, 3.0, 4.0, 5.0, 6.0, 7.0 ] );
*
* cxmy( x.length, x, 1, 0, y, 1, 0 );
* // y => <Complex64Array>[ -4.0, 7.0, -8.0, 31.0, -12.0, 71.0 ]
*/
function cxmy( N, x, strideX, offsetX, y, strideY, offsetY ) {
var xview;
var yview;
var ix;
var iy;
var sx;
var sy;
var m;
var i;
if ( N <= 0 ) {
return y;
}
// Reinterpret the complex input arrays as real-valued arrays:
xview = reinterpret( x, 0 );
yview = reinterpret( y, 0 );
// Adjust the strides and offsets according to the real-valued arrays:
ix = offsetX * 2;
iy = offsetY * 2;
sx = strideX * 2;
sy = strideY * 2;
// Use loop unrolling if both strides are equal to `1`...
if ( strideX === 1 && strideY === 1 ) {
m = N % M;
// If we have a remainder, run a clean-up loop...
if ( m > 0 ) {
for ( i = 0; i < m; i++ ) {
cmulf( xview[ ix ], xview[ ix+1 ], yview[ iy ], yview[ iy+1 ], yview, 1, iy );
ix += sx;
iy += sy;
}
}
if ( N < M ) {
return y;
}
for ( i = m; i < N; i += M ) {
cmulf( xview[ ix ], xview[ ix+1 ], yview[ iy ], yview[ iy+1 ], yview, 1, iy );
cmulf( xview[ ix+2 ], xview[ ix+3 ], yview[ iy+2 ], yview[ iy+3 ], yview, 1, iy+2 );
cmulf( xview[ ix+4 ], xview[ ix+5 ], yview[ iy+4 ], yview[ iy+5 ], yview, 1, iy+4 );
cmulf( xview[ ix+6 ], xview[ ix+7 ], yview[ iy+6 ], yview[ iy+7 ], yview, 1, iy+6 );
cmulf( xview[ ix+8 ], xview[ ix+9 ], yview[ iy+8 ], yview[ iy+9 ], yview, 1, iy+8 );
ix += M * 2;
iy += M * 2;
}
return y;
}
for ( i = 0; i < N; i++ ) {
cmulf( xview[ ix ], xview[ ix+1 ], yview[ iy ], yview[ iy+1 ], yview, 1, iy );
ix += sx;
iy += sy;
}
return y;
}
// EXPORTS //
module.exports = cxmy;
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