Custom Uniform Random Distribution
7 views (last 30 days)
Show older comments
matlabkid602 on 23 Feb 2018
Answered: Roger Stafford on 24 Feb 2018
Say I have a uniform random distribution in matlab using the rand() function.
How can I change the distribution for a given function such as 1/sqrt(x), so the distribution follows this curve?
I've tried to reject values but had no luck.
John BG on 23 Feb 2018
this is John BG <mailto:email@example.com firstname.lastname@example.org>
the main constraint is that whatever probability density function you choose, it must have area 1, integrating from -Inf to +Inf.
Since you choose 1/sqrt(x), you have to truncate, let's say with a continuous interval [a b], a<b.
The new pdf should have the shape
3. make sure that for instance 0<b<a, otherwise and undesired discontinuity will be included in the function intended to behave as pdf and it will not work.
The values of the interval [a b] are related in the following way:
Image Analyst on 23 Feb 2018
Roger Stafford on 24 Feb 2018
If you want to obtain a density distribution proportional to 1/sqrt(x) for x in some finite interval [a,b], you can proceed as follows. The cumulative probability function must be:
cdf(x) = (sqrt(x)-sqrt(a))/(sqrt(b)-sqrt(a))
which you get by integrating 1/sqrt(x) from a to x and adjusting the proportionality constant to get a cdf(b)=1 for the entire interval from a to b.
To generate this using rand, set the above cdf(x) to r = rand and solve for x:
r = rand;
%Solve for x in (sqrt(x)-sqrt(a))/(sqrt(b)-sqrt(a)) = r:
x = (sqrt(a)+(sqrt(b)-sqrt(a))*r).^2;
This illustrates how one would proceed to use rand for generating any given probability density function. It depends on being able to solve for x in an equation cdf(x) = r.
Find more on Binomial Distribution in Help Center and File Exchange
Community Treasure Hunt
Find the treasures in MATLAB Central and discover how the community can help you!Start Hunting!