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I would like to generate a random number between 0 and 3 and I have the following in my code:

int random = rand() % 4;

This works fine but I would like it to generate 1, 2, and 3 most of the time and 0 only occasionally.

What is the best way to go about this? What are the names of common algorithms to address this problem?

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That's not a random number. That's a probability distribution, which is kind of the opposite of random (predictability is horrible when you're talking about a RNG). – Chris Dec 16 '11 at 4:15
up vote 15 down vote accepted

Here's one way. Suppose you want 0, 1, 2, 3 to have a distribution of 5%, 20%, 30%, 45%.
You could do it like this:

double val = (double)rand() / RAND_MAX;

int random;
if (val < 0.05)       //  5%
    random = 0;
else if (val < 0.25)  //  5% + 20%
    random = 1;
else if (val < 0.55)  //  5% + 20% + 30%
    random = 2;
else
    random = 3;

Of course it doesn't have to be done with floating-point. I just did it this way since it's more intuitive.

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For what it's worth, this is the method I actually use when I need to deal with probabilities. – LaceySnr Dec 16 '11 at 4:21

You can use the discrete_distribution class from the random library.

#include <iostream>
#include <random>
#include <ctime>

int main()
{
    std::discrete_distribution<> dist({ 1.0, 4.0, 4.0, 4.0 });  
    std::mt19937 eng(std::time(0));
    for (int i=0; i<100; ++i)
        std::cout << dist(eng);
}

Demo: http://ideone.com/z8bq4

If you can't use C++11, these classes also exist in boost.

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You didn't give exact proportions, but suppose you want 1, 2, and 3 to each occur 32% of the time, and 0 to occur the other 4%. Then you could write:

int random = rand() % 25;
if(random > 0)
    random = random % 3 + 1;

(Obviously you'd need to adjust that for different proportions. And the above is just one approach; many similar approaches could work.)

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how many numbers have you tested this on? if it is actually true you can instead generate a range from say 0->3999 using a = rand()%4000 and use int = a/1000 this should remove the weight of the apparently under produced zero.

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1  
I think you misunderstood the question as asking the exact opposite of what it is. The OP is saying that rand() % 4 evenly distributes the numbers, but that (s)he wants zero to occur less often. – ruakh Dec 16 '11 at 4:17
1  
I think the OP wants the under-produced zero. It's not an observation, it's a requirement. – Chris Dec 16 '11 at 4:17
    
ah my bad somehow I missed the words I would like in that sentence – smitec Dec 16 '11 at 4:21
    
Sorry for late reply, ruakh is correct. – user974967 Dec 16 '11 at 4:57

I would just map more values to 1,2,3 from a larger set. For example: 9 and map 1,2,3 => 1, 3,4,5=>2, 6,7,8=>3 and 0 for zero. There are other ways, but I am working within your question

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Just code exactly what you want:

int myrand(void)
{
    const int percentZero = 10;
    if ((rand()%100) < percentZero) return 0;
    return 1 + (rand() % 3);
}

You can change the percentage of time zero is returned to whatever you want.

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You need to find a probability distribution that works for your case. Since you're only talking about the numbers 0-3 this is quite easy, you could either call rand() again if the first result is a 0, or you could use weights:

int random = rand() % 16;

if(random > 10)
{
    random = 3;
}
else if(random > 5)
{
    random = 2;
}
else if(random > 0)
{
random = 1;
}

This isn't a particularly elegant, but hopefully it shows you how you can create a custom distribution to fit your needs.

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