Weibull distribution cumulative distribution function (CDF).
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> [Weibull][weibull-distribution] distribution [cumulative distribution function][cdf].
The [cumulative distribution function][cdf] for a [Weibull][weibull-distribution] random variable is
where lambda > 0 is the [scale parameter][scale] and k > 0 is the [shape parameter][shape].
``bash`
npm install @stdlib/stats-base-dists-weibull-cdf
`javascript`
var cdf = require( '@stdlib/stats-base-dists-weibull-cdf' );
#### cdf( x, k, lambda )
Evaluates the [cumulative distribution function][cdf] (CDF) for a [Weibull][weibull-distribution] distribution with [shape parameter][shape] k and [scale parameter][scale] lambda.
`javascript
var y = cdf( 2.0, 1.0, 0.5 );
// returns ~0.982
y = cdf( 0.0, 1.0, 0.5 );
// returns 0.0
y = cdf( -Infinity, 4.0, 2.0 );
// returns 0.0
y = cdf( +Infinity, 4.0, 2.0 );
// returns 1.0
`
If provided NaN as any argument, the function returns NaN.
`javascript
var y = cdf( NaN, 1.0, 1.0 );
// returns NaN
y = cdf( 0.0, NaN, 1.0 );
// returns NaN
y = cdf( 0.0, 1.0, NaN );
// returns NaN
`
If provided k <= 0, the function returns NaN.
`javascript
var y = cdf( 2.0, 0.5, -1.0 );
// returns NaN
y = cdf( 2.0, 0.5, 0.0 );
// returns NaN
`
If provided lambda <= 0, the function returns NaN.
`javascript
var y = cdf( 2.0, 0.5, -1.0 );
// returns NaN
y = cdf( 2.0, 0.5, 0.0 );
// returns NaN
`
#### cdf.factory( k, lambda )
Returns a function for evaluating the [cumulative distribution function][cdf] of a [Weibull][weibull-distribution] distribution with [shape parameter][shape] k and [scale parameter][scale] lambda.
`javascript
var mycdf = cdf.factory( 2.0, 10.0 );
var y = mycdf( 10.0 );
// returns ~0.632
y = mycdf( 8.0 );
// returns ~0.473
`
`javascript
var uniform = require( '@stdlib/random-array-uniform' );
var logEachMap = require( '@stdlib/console-log-each-map' );
var cdf = require( '@stdlib/stats-base-dists-weibull-cdf' );
var opts = {
'dtype': 'float64'
};
var lambda = uniform( 10, 0.0, 10.0, opts );
var k = uniform( 10, 0.0, 10.0, opts );
var x = uniform( 10, 0.0, 10.0, opts );
logEachMap( 'x: %0.4f, k: %0.4f, λ: %0.4f, F(x;k,λ): %0.4f', x, k, lambda, cdf );
`
*
`c`
#include "stdlib/stats/base/dists/weibull/cdf.h"
#### stdlib_base_dists_weibull_cdf( x, k, lambda )
Evaluates the [cumulative distribution function][cdf] (CDF) for a [Weibull][weibull-distribution] distribution with [shape parameter][shape] k and [scale parameter][scale] lambda.
`c`
double out = stdlib_base_dists_weibull_cdf( 2.0, 1.0, 1.0 );
// returns ~0.865
The function accepts the following arguments:
- x: [in] double input value.[in] double
- k: shape parameter.[in] double
- lambda: scale parameter.
`c`
double stdlib_base_dists_weibull_cdf( const double x, const double k, const double lambda );
`c
#include "stdlib/stats/base/dists/weibull/cdf.h"
#include
#include
static double random_uniform( const double min, const double max ) {
double v = (double)rand() / ( (double)RAND_MAX + 1.0 );
return min + ( v*(max-min) );
}
int main( void ) {
double lambda;
double x;
double k;
double y;
int i;
for ( i = 0; i < 25; i++ ) {
x = random_uniform( 0.0, 10.0 );
lambda = random_uniform( 0.0, 10.0 );
k = random_uniform( 0.0, 10.0 );
y = stdlib_base_dists_weibull_cdf( x, k, lambda );
printf( "x: %lf, k: %lf, λ: %lf, F(x;k,λ): %lf\n", x, k, lambda, y );
}
}
`
*
This package is part of [stdlib][stdlib], a standard library for JavaScript and Node.js, with an emphasis on numerical and scientific computing. The library provides a collection of robust, high performance libraries for mathematics, statistics, streams, utilities, and more.
For more information on the project, filing bug reports and feature requests, and guidance on how to develop [stdlib][stdlib], see the main project [repository][stdlib].
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[cdf]: https://en.wikipedia.org/wiki/Cumulative_distribution_function
[weibull-distribution]: https://en.wikipedia.org/wiki/Weibull_distribution
[shape]: https://en.wikipedia.org/wiki/Shape_parameter
[scale]: https://en.wikipedia.org/wiki/Scale_parameter