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License.\nYou may obtain a copy of the License at\n\n   http://www.apache.org/licenses/LICENSE-2.0\n\nUnless required by applicable law or agreed to in writing, software\ndistributed under the License is distributed on an \"AS IS\" BASIS,\nWITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.\nSee the License for the specific language governing permissions and\nlimitations under the License.\n\n-->\n\n\n<details>\n  <summary>\n    About stdlib...\n  </summary>\n  <p>We believe in a future in which the web is a preferred environment for numerical computation. To help realize this future, we've built stdlib. stdlib is a standard library, with an emphasis on numerical and scientific computation, written in JavaScript (and C) for execution in browsers and in Node.js.</p>\n  <p>The library is fully decomposable, being architected in such a way that you can swap out and mix and match APIs and functionality to cater to your exact preferences and use cases.</p>\n  <p>When you use stdlib, you can be absolutely certain that you are using the most thorough, rigorous, well-written, studied, documented, tested, measured, and high-quality code out there.</p>\n  <p>To join us in bringing numerical computing to the web, get started by checking us out on <a href=\"https://github.com/stdlib-js/stdlib\">GitHub</a>, and please consider <a href=\"https://opencollective.com/stdlib\">financially supporting stdlib</a>. We greatly appreciate your continued support!</p>\n</details>\n\n# Binary\n\n[![NPM version][npm-image]][npm-url] [![Build Status][test-image]][test-url] [![Coverage Status][coverage-image]][coverage-url] <!-- [![dependencies][dependencies-image]][dependencies-url] -->\n\n> Apply a binary callback to strided input array elements and assign results to elements in a strided output array.\n\n<section class=\"intro\">\n\n</section>\n\n<!-- /.intro -->\n\n<section class=\"installation\">\n\n## Installation\n\n```bash\nnpm install @stdlib/strided-base-binary\n```\n\n</section>\n\n<section class=\"usage\">\n\n## Usage\n\n```javascript\nvar binary = require( '@stdlib/strided-base-binary' );\n```\n\n#### binary( arrays, shape, strides, fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```javascript\nvar Float64Array = require( '@stdlib/array-float64' );\n\nfunction add( x, y ) {\n    return x + y;\n}\n\nvar x = new Float64Array( [ 1.0, 2.0, 3.0, 4.0, 5.0, 6.0 ] );\nvar y = new Float64Array( [ 1.0, 2.0, 3.0, 4.0, 5.0, 6.0 ] );\nvar z = new Float64Array( [ 0.0, 0.0, 0.0, 0.0, 0.0, 0.0 ] );\n\nbinary( [ x, y, z ], [ x.length ], [ 1, 1, 1 ], add );\n// z => <Float64Array>[ 2.0, 4.0, 6.0, 8.0, 10.0 ]\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: array-like object containing two strided input arrays and one strided output array.\n-   **shape**: array-like object containing a single element, the number of indexed elements.\n-   **strides**: array-like object containing the stride lengths for the strided input and output arrays.\n-   **fcn**: binary function to apply.\n\nThe `shape` and `strides` parameters determine which elements in the strided input and output arrays are accessed at runtime. For example, to index every other value in the strided input arrays and to index the first `N` elements of the strided output array in reverse order,\n\n```javascript\nvar Float64Array = require( '@stdlib/array-float64' );\n\nfunction add( x, y ) {\n    return x + y;\n}\n\nvar x = new Float64Array( [ 1.0, 2.0, 3.0, 4.0, 5.0, 6.0 ] );\nvar y = new Float64Array( [ 1.0, 2.0, 3.0, 4.0, 5.0, 6.0 ] );\nvar z = new Float64Array( [ 0.0, 0.0, 0.0, 0.0, 0.0, 0.0 ] );\n\nvar N = 3;\n\nbinary( [ x, y, z ], [ N ], [ 2, 2, -1 ], add );\n// z => <Float64Array>[ 10.0, 6.0, 2.0, 0.0, 0.0, 0.0 ]\n```\n\nNote that indexing is relative to the first index. To introduce an offset, use [`typed array`][mdn-typed-array] views.\n\n```javascript\nvar Float64Array = require( '@stdlib/array-float64' );\n\nfunction add( x, y ) {\n    return x + y;\n}\n\n// Initial arrays...\nvar x0 = new Float64Array( [ 1.0, 2.0, 3.0, 4.0, 5.0, 6.0 ] );\nvar y0 = new Float64Array( [ 1.0, 2.0, 3.0, 4.0, 5.0, 6.0 ] );\nvar z0 = new Float64Array( [ 0.0, 0.0, 0.0, 0.0, 0.0, 0.0 ] );\n\n// Create offset views...\nvar x1 = new Float64Array( x0.buffer, x0.BYTES_PER_ELEMENT*1 ); // start at 2nd element\nvar y1 = new Float64Array( y0.buffer, y0.BYTES_PER_ELEMENT*1 ); // start at 2nd element\nvar z1 = new Float64Array( z0.buffer, z0.BYTES_PER_ELEMENT*3 ); // start at 4th element\n\nvar N = 3;\n\nbinary( [ x1, y1, z1 ], [ N ], [ -2, -2, 1 ], add );\n// z0 => <Float64Array>[ 0.0, 0.0, 0.0, 12.0, 8.0, 4.0 ]\n```\n\n#### binary.ndarray( arrays, shape, strides, offsets, fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array using alternative indexing semantics.\n\n```javascript\nvar Float64Array = require( '@stdlib/array-float64' );\n\nfunction add( x, y ) {\n    return x + y;\n}\n\nvar x = new Float64Array( [ 1.0, 2.0, 3.0, 4.0, 5.0 ] );\nvar y = new Float64Array( [ 1.0, 2.0, 3.0, 4.0, 5.0 ] );\nvar z = new Float64Array( [ 0.0, 0.0, 0.0, 0.0, 0.0 ] );\n\nbinary.ndarray( [ x, y, z ], [ x.length ], [ 1, 1, 1 ], [ 0, 0, 0 ], add );\n// z => <Float64Array>[ 2.0, 4.0, 6.0, 8.0, 10.0 ]\n```\n\nThe function accepts the following additional arguments:\n\n-   **offsets**: array-like object containing the starting indices (i.e., index offsets) for the strided input and output arrays.\n\nWhile [`typed array`][mdn-typed-array] views mandate a view offset based on the underlying `buffer`, the `offsets` parameter supports indexing semantics based on starting indices. For example, to index every other value in the strided input arrays starting from the second value and to index the last `N` elements in the strided output array,\n\n```javascript\nvar Float64Array = require( '@stdlib/array-float64' );\n\nfunction add( x, y ) {\n    return x + y;\n}\n\nvar x = new Float64Array( [ 1.0, 2.0, 3.0, 4.0, 5.0, 6.0 ] );\nvar y = new Float64Array( [ 1.0, 2.0, 3.0, 4.0, 5.0, 6.0 ] );\nvar z = new Float64Array( [ 0.0, 0.0, 0.0, 0.0, 0.0, 0.0 ] );\n\nvar N = 3;\n\nbinary.ndarray( [ x, y, z ], [ N ], [ 2, 2, -1 ], [ 1, 1, z.length-1 ], add );\n// z => <Float64Array>[ 0.0, 0.0, 0.0, 12.0, 8.0, 4.0 ]\n```\n\n</section>\n\n<!-- /.usage -->\n\n<section class=\"notes\">\n\n</section>\n\n<!-- /.notes -->\n\n<section class=\"examples\">\n\n## Examples\n\n<!-- eslint no-undef: \"error\" -->\n\n```javascript\nvar discreteUniform = require( '@stdlib/random-base-discrete-uniform' ).factory;\nvar filledarrayBy = require( '@stdlib/array-filled-by' );\nvar filledarray = require( '@stdlib/array-filled' );\nvar binary = require( '@stdlib/strided-base-binary' );\n\nfunction add( x, y ) {\n    return x + y;\n}\n\nvar N = 10;\n\nvar x = filledarrayBy( N, 'generic', discreteUniform( -100, 100 ) );\nconsole.log( x );\n\nvar y = filledarrayBy( N, 'generic', discreteUniform( -100, 100 ) );\nconsole.log( y );\n\nvar z = filledarray( 0.0, N, 'generic' );\nconsole.log( z );\n\nvar shape = [ N ];\nvar strides = [ 1, 1, -1 ];\nvar offsets = [ 0, 0, N-1 ];\n\nbinary.ndarray( [ x, y, z ], shape, strides, offsets, add );\nconsole.log( z );\n```\n\n</section>\n\n<!-- /.examples -->\n\n<!-- C interface documentation. -->\n\n* * *\n\n<section class=\"c\">\n\n## C APIs\n\n<!-- Section to include introductory text. Make sure to keep an empty line after the intro `section` element and another before the `/section` close. -->\n\n<section class=\"intro\">\n\nCharacter codes for data types:\n\n<!-- The following is auto-generated. Do not manually edit. See scripts/loops.js. -->\n\n<!-- charcodes -->\n\n-   **x**: `bool` (boolean).\n-   **c**: `complex64` (single-precision floating-point complex number).\n-   **z**: `complex128` (double-precision floating-point complex number).\n-   **f**: `float32` (single-precision floating-point number).\n-   **d**: `float64` (double-precision floating-point number).\n-   **k**: `int16` (signed 16-bit integer).\n-   **i**: `int32` (signed 32-bit integer).\n-   **s**: `int8` (signed 8-bit integer).\n-   **t**: `uint16` (unsigned 16-bit integer).\n-   **u**: `uint32` (unsigned 32-bit integer).\n-   **b**: `uint8` (unsigned 8-bit integer).\n\n<!-- ./charcodes -->\n\nFunction name suffix naming convention:\n\n```text\nstdlib_strided_<input_data_types>_<output_data_type>[_as_<callback_arg_data_types>_<callback_return_data_type>]\n```\n\nFor example,\n\n<!-- run-disable -->\n\n```c\nvoid stdlib_strided_dd_d(...) {...}\n```\n\nis a function which accepts two double-precision floating-point strided input arrays and one double-precision floating-point strided output array. In other words, the suffix encodes a function type signature.\n\nTo support callbacks whose input arguments and/or return values are of a different data type than the strided input and/or output array data types, the naming convention supports appending an `as` suffix. For example,\n\n<!-- run-disable -->\n\n```c\nvoid stdlib_strided_ff_f_as_dd_d(...) {...}\n```\n\nis a function which accepts two single-precision floating-point strided input arrays and one single-precision floating-point strided output array. However, the callback accepts and returns double-precision floating-point numbers. Accordingly, the input and output values need to be cast using the following conversion sequence\n\n<!-- run-disable -->\n\n```c\n// Convert each input array element to double-precision:\ndouble in1 = (double)x[ i ];\ndouble in2 = (double)y[ i ];\n\n// Evaluate the callback:\ndouble out = f( in1, in2 );\n\n// Convert the callback return value to single-precision:\nz[ i ] = (float)out;\n```\n\nWhen both strided input arrays and the callback (i.e., both input arguments and return value) share the same data type, the `as` suffix can be omitted. For example,\n\n<!-- run-disable -->\n\n```c\nvoid stdlib_strided_ff_d(...) {...}\n```\n\nis a function which accepts two single-precision floating-point strided input arrays and one double-precision floating-point strided output array. The callback is assumed to accept and return single-precision floating-point numbers. Accordingly, the input and output values are cast according to the following conversion sequence\n\n<!-- run-disable -->\n\n```c\n// Retrieve each input array element as single-precision:\nfloat in1 = (float)x[ i ];\nfloat in2 = (float)y[ i ];\n\n// Evaluate the callback:\nfloat out = f( in1, in2 );\n\n// Convert the callback return value to double-precision:\nz[ i ] = (double)out;\n```\n\n</section>\n\n<!-- /.intro -->\n\n<!-- C usage documentation. -->\n\n<section class=\"usage\">\n\n### Usage\n\n```c\n#include \"stdlib/strided/base/binary.h\"\n```\n\n<!-- The following is auto-generated. Do not manually edit. See scripts/loops.js. -->\n\n<!-- loops -->\n\n#### stdlib_strided_bb_b( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 1, 1 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic uint8_t fcn( uint8_t x, uint8_t y ) {\n    return x + y;\n}\n\n// Apply the callback:\nstdlib_strided_bb_b( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `uint8_t (*f)(uint8_t, uint8_t)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bb_b( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bb_c( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 1, 8 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic uint8_t fcn( uint8_t x, uint8_t y ) {\n    return x + y;\n}\n\n// Apply the callback:\nstdlib_strided_bb_c( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `uint8_t (*f)(uint8_t, uint8_t)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bb_c( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bb_c_as_cc_c( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include \"stdlib/complex/float32/ctor.h\"\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 1, 8 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic stdlib_complex64_t fcn( stdlib_complex64_t x, stdlib_complex64_t y ) {\n    // ...\n}\n\n// Apply the callback:\nstdlib_strided_bb_c_as_cc_c( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `stdlib_complex64_t (*f)(stdlib_complex64_t, stdlib_complex64_t)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bb_c_as_cc_c( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bb_c_as_zz_z( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include \"stdlib/complex/float64/ctor.h\"\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 1, 8 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic stdlib_complex128_t fcn( stdlib_complex128_t x, stdlib_complex128_t y ) {\n    // ...\n}\n\n// Apply the callback:\nstdlib_strided_bb_c_as_zz_z( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `stdlib_complex128_t (*f)(stdlib_complex128_t, stdlib_complex128_t)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bb_c_as_zz_z( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bb_d( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 1, 8 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic uint8_t fcn( uint8_t x, uint8_t y ) {\n    return x + y;\n}\n\n// Apply the callback:\nstdlib_strided_bb_d( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `uint8_t (*f)(uint8_t, uint8_t)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bb_d( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bb_d_as_dd_d( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 1, 8 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic double fcn( double x, double y ) {\n    return x + y;\n}\n\n// Apply the callback:\nstdlib_strided_bb_d_as_dd_d( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `double (*f)(double, double)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bb_d_as_dd_d( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bb_f( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 1, 4 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic uint8_t fcn( uint8_t x, uint8_t y ) {\n    return x + y;\n}\n\n// Apply the callback:\nstdlib_strided_bb_f( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `uint8_t (*f)(uint8_t, uint8_t)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bb_f( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bb_f_as_dd_d( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 1, 4 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic double fcn( double x, double y ) {\n    return x + y;\n}\n\n// Apply the callback:\nstdlib_strided_bb_f_as_dd_d( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `double (*f)(double, double)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bb_f_as_dd_d( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bb_f_as_ff_f( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 1, 4 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic float fcn( float x, float y ) {\n    return x + y;\n}\n\n// Apply the callback:\nstdlib_strided_bb_f_as_ff_f( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `float (*f)(float, float)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bb_f_as_ff_f( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bb_i( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 1, 4 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic uint8_t fcn( uint8_t x, uint8_t y ) {\n    return x + y;\n}\n\n// Apply the callback:\nstdlib_strided_bb_i( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `uint8_t (*f)(uint8_t, uint8_t)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bb_i( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bb_i_as_ii_i( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 1, 4 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic int32_t fcn( int32_t x, int32_t y ) {\n    return x + y;\n}\n\n// Apply the callback:\nstdlib_strided_bb_i_as_ii_i( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `int32_t (*f)(int32_t, int32_t)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bb_i_as_ii_i( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bb_k( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 1, 2 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic uint8_t fcn( uint8_t x, uint8_t y ) {\n    return x + y;\n}\n\n// Apply the callback:\nstdlib_strided_bb_k( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `uint8_t (*f)(uint8_t, uint8_t)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bb_k( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bb_k_as_kk_k( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 1, 2 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic int16_t fcn( int16_t x, int16_t y ) {\n    return x + y;\n}\n\n// Apply the callback:\nstdlib_strided_bb_k_as_kk_k( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `int16_t (*f)(int16_t, int16_t)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bb_k_as_kk_k( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bb_t( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 1, 2 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic uint8_t fcn( uint8_t x, uint8_t y ) {\n    return x + y;\n}\n\n// Apply the callback:\nstdlib_strided_bb_t( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `uint8_t (*f)(uint8_t, uint8_t)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bb_t( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bb_t_as_tt_t( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 1, 2 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic uint16_t fcn( uint16_t x, uint16_t y ) {\n    return x + y;\n}\n\n// Apply the callback:\nstdlib_strided_bb_t_as_tt_t( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `uint16_t (*f)(uint16_t, uint16_t)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bb_t_as_tt_t( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bb_u( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 1, 4 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic uint8_t fcn( uint8_t x, uint8_t y ) {\n    return x + y;\n}\n\n// Apply the callback:\nstdlib_strided_bb_u( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `uint8_t (*f)(uint8_t, uint8_t)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bb_u( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bb_u_as_uu_u( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 1, 4 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic uint32_t fcn( uint32_t x, uint32_t y ) {\n    return x + y;\n}\n\n// Apply the callback:\nstdlib_strided_bb_u_as_uu_u( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `uint32_t (*f)(uint32_t, uint32_t)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bb_u_as_uu_u( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bb_z( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 1, 16 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic uint8_t fcn( uint8_t x, uint8_t y ) {\n    return x + y;\n}\n\n// Apply the callback:\nstdlib_strided_bb_z( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `uint8_t (*f)(uint8_t, uint8_t)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bb_z( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bb_z_as_zz_z( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include \"stdlib/complex/float64/ctor.h\"\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 1, 16 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic stdlib_complex128_t fcn( stdlib_complex128_t x, stdlib_complex128_t y ) {\n    // ...\n}\n\n// Apply the callback:\nstdlib_strided_bb_z_as_zz_z( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `stdlib_complex128_t (*f)(stdlib_complex128_t, stdlib_complex128_t)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bb_z_as_zz_z( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bc_c_as_cc_c( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include \"stdlib/complex/float32/ctor.h\"\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 8, 8 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic stdlib_complex64_t fcn( stdlib_complex64_t x, stdlib_complex64_t y ) {\n    // ...\n}\n\n// Apply the callback:\nstdlib_strided_bc_c_as_cc_c( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `stdlib_complex64_t (*f)(stdlib_complex64_t, stdlib_complex64_t)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bc_c_as_cc_c( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bc_c_as_zz_z( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include \"stdlib/complex/float64/ctor.h\"\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 8, 8 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic stdlib_complex128_t fcn( stdlib_complex128_t x, stdlib_complex128_t y ) {\n    // ...\n}\n\n// Apply the callback:\nstdlib_strided_bc_c_as_zz_z( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `stdlib_complex128_t (*f)(stdlib_complex128_t, stdlib_complex128_t)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bc_c_as_zz_z( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bc_z_as_zz_z( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include \"stdlib/complex/float64/ctor.h\"\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 8, 16 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic stdlib_complex128_t fcn( stdlib_complex128_t x, stdlib_complex128_t y ) {\n    // ...\n}\n\n// Apply the callback:\nstdlib_strided_bc_z_as_zz_z( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `stdlib_complex128_t (*f)(stdlib_complex128_t, stdlib_complex128_t)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bc_z_as_zz_z( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bd_d_as_dd_d( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 8, 8 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic double fcn( double x, double y ) {\n    return x + y;\n}\n\n// Apply the callback:\nstdlib_strided_bd_d_as_dd_d( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `double (*f)(double, double)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bd_d_as_dd_d( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bd_z_as_zz_z( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include \"stdlib/complex/float64/ctor.h\"\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 8, 16 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic stdlib_complex128_t fcn( stdlib_complex128_t x, stdlib_complex128_t y ) {\n    // ...\n}\n\n// Apply the callback:\nstdlib_strided_bd_z_as_zz_z( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `stdlib_complex128_t (*f)(stdlib_complex128_t, stdlib_complex128_t)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bd_z_as_zz_z( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bf_c_as_cc_c( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include \"stdlib/complex/float32/ctor.h\"\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 4, 8 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic stdlib_complex64_t fcn( stdlib_complex64_t x, stdlib_complex64_t y ) {\n    // ...\n}\n\n// Apply the callback:\nstdlib_strided_bf_c_as_cc_c( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `stdlib_complex64_t (*f)(stdlib_complex64_t, stdlib_complex64_t)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bf_c_as_cc_c( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bf_c_as_zz_z( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include \"stdlib/complex/float64/ctor.h\"\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 4, 8 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic stdlib_complex128_t fcn( stdlib_complex128_t x, stdlib_complex128_t y ) {\n    // ...\n}\n\n// Apply the callback:\nstdlib_strided_bf_c_as_zz_z( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `stdlib_complex128_t (*f)(stdlib_complex128_t, stdlib_complex128_t)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bf_c_as_zz_z( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bf_d_as_dd_d( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 4, 8 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic double fcn( double x, double y ) {\n    return x + y;\n}\n\n// Apply the callback:\nstdlib_strided_bf_d_as_dd_d( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `double (*f)(double, double)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bf_d_as_dd_d( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bf_f_as_dd_d( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 4, 4 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic double fcn( double x, double y ) {\n    return x + y;\n}\n\n// Apply the callback:\nstdlib_strided_bf_f_as_dd_d( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `double (*f)(double, double)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bf_f_as_dd_d( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bf_f_as_ff_f( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 4, 4 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic float fcn( float x, float y ) {\n    return x + y;\n}\n\n// Apply the callback:\nstdlib_strided_bf_f_as_ff_f( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `float (*f)(float, float)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bf_f_as_ff_f( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bf_z_as_zz_z( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include \"stdlib/complex/float64/ctor.h\"\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 4, 16 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic stdlib_complex128_t fcn( stdlib_complex128_t x, stdlib_complex128_t y ) {\n    // ...\n}\n\n// Apply the callback:\nstdlib_strided_bf_z_as_zz_z( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `stdlib_complex128_t (*f)(stdlib_complex128_t, stdlib_complex128_t)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bf_z_as_zz_z( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bi_d_as_dd_d( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 4, 8 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic double fcn( double x, double y ) {\n    return x + y;\n}\n\n// Apply the callback:\nstdlib_strided_bi_d_as_dd_d( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `double (*f)(double, double)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bi_d_as_dd_d( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bi_i_as_ii_i( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 4, 4 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic int32_t fcn( int32_t x, int32_t y ) {\n    return x + y;\n}\n\n// Apply the callback:\nstdlib_strided_bi_i_as_ii_i( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `int32_t (*f)(int32_t, int32_t)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bi_i_as_ii_i( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bi_z_as_zz_z( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include \"stdlib/complex/float64/ctor.h\"\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 4, 16 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic stdlib_complex128_t fcn( stdlib_complex128_t x, stdlib_complex128_t y ) {\n    // ...\n}\n\n// Apply the callback:\nstdlib_strided_bi_z_as_zz_z( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `stdlib_complex128_t (*f)(stdlib_complex128_t, stdlib_complex128_t)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bi_z_as_zz_z( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bk_c_as_cc_c( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include \"stdlib/complex/float32/ctor.h\"\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0, 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 2, 8 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic stdlib_complex64_t fcn( stdlib_complex64_t x, stdlib_complex64_t y ) {\n    // ...\n}\n\n// Apply the callback:\nstdlib_strided_bk_c_as_cc_c( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `stdlib_complex64_t (*f)(stdlib_complex64_t, stdlib_complex64_t)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bk_c_as_cc_c( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bk_c_as_zz_z( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include \"stdlib/complex/float64/ctor.h\"\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0, 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 2, 8 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic stdlib_complex128_t fcn( stdlib_complex128_t x, stdlib_complex128_t y ) {\n    // ...\n}\n\n// Apply the callback:\nstdlib_strided_bk_c_as_zz_z( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `stdlib_complex128_t (*f)(stdlib_complex128_t, stdlib_complex128_t)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bk_c_as_zz_z( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bk_d_as_dd_d( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#include <stdint.h>\n\n// Create underlying byte arrays:\nuint8_t x[] = { 0, 0, 0 };\nuint8_t y[] = { 0, 0, 0, 0, 0, 0 };\nuint8_t out[] = { 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0 };\n\n// Define a pointer to an array containing pointers to strided arrays:\nuint8_t *arrays[] = { x, y, out };\n\n// Define the strides:\nint64_t strides[] = { 1, 2, 8 };\n\n// Define the number of elements over which to iterate:\nint64_t shape[] = { 3 };\n\n// Define a callback:\nstatic double fcn( double x, double y ) {\n    return x + y;\n}\n\n// Apply the callback:\nstdlib_strided_bk_d_as_dd_d( arrays, shape, strides, (void *)fcn );\n```\n\nThe function accepts the following arguments:\n\n-   **arrays**: `[inout] uint8_t**` array whose first two elements are pointers to strided input arrays and whose last element is a pointer to a strided output array.\n-   **shape**: `[in] int64_t*` array whose only element is the number of elements over which to iterate.\n-   **strides**: `[in] int64_t*` array containing strides (in bytes) for each strided array.\n-   **fcn**: `[in] void*` a `double (*f)(double, double)` function to apply provided as a `void` pointer.\n\n```c\nvoid stdlib_strided_bk_d_as_dd_d( uint8_t *arrays[], const int64_t *shape, const int64_t *strides, void *fcn );\n```\n\n#### stdlib_strided_bk_f_as_dd_d( \\*arrays\\[], \\*shape, \\*strides, \\*fcn )\n\nApplies a binary callback to strided input array elements and assigns results to elements in a strided output array.\n\n```c\n#inclu","readmeFilename":"README.md"}