@stdlib/stats-base-dists-exponential-pdf v0.2.2
Probability Density Function
Exponential distribution probability density function (PDF).
The probability density function (PDF) for an exponential random variable is
where λ is the rate parameter.
Installation
npm install @stdlib/stats-base-dists-exponential-pdfUsage
var pdf = require( '@stdlib/stats-base-dists-exponential-pdf' );pdf( x, lambda )
Evaluates the probability density function (PDF) for an exponential distribution with rate parameter lambda.
var y = pdf( 2.0, 0.3 );
// returns ~0.165
y = pdf( 2.0, 1.0 );
// returns ~0.135If provided NaN as any argument, the function returns NaN.
var y = pdf( NaN, 0.0 );
// returns NaN
y = pdf( 0.0, NaN );
// returns NaNIf provided lambda < 0, the function returns NaN.
var y = pdf( 2.0, -1.0 );
// returns NaNpdf.factory( lambda )
Partially apply lambda to create a reusable function for evaluating the PDF.
var mypdf = pdf.factory( 0.1 );
var y = mypdf( 8.0 );
// returns ~0.045
y = mypdf( 5.0 );
// returns ~0.06Examples
var randu = require( '@stdlib/random-base-randu' );
var pdf = require( '@stdlib/stats-base-dists-exponential-pdf' );
var lambda;
var x;
var y;
var i;
for ( i = 0; i < 10; i++ ) {
    x = randu() * 10.0;
    lambda = randu() * 10.0;
    y = pdf( x, lambda );
    console.log( 'x: %d, λ: %d, f(x;λ): %d', x, lambda, y );
}Notice
This package is part of 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, see the main project repository.
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License
See LICENSE.
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