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How does one make random numbers in the interval -10 to 10 in C++ ?

srand(int(time(0)));//seed
for(int i  = 0; i < size; i++){
 myArray[i] = 1 + rand()  % 20 - 10;//this will give from -9 to 10
 myArray2[i] =rand()  % 20 - 10;//and this will -10 to 9
}
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1  
In C++11 you'd want to use the <random> library. –  bames53 Oct 12 '12 at 17:26
    
@bames53 Agreed using std::uniform_int_distribution like I did in my answer makes more sense especially in light of rand() Considered Harmful. –  Shafik Yaghmour Sep 9 '13 at 1:54

11 Answers 11

up vote 8 down vote accepted

You need a range of 21, not 20, so do something like this:

x = rand() % 21 - 10;
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1  
Just to add to this... The reason is that there are actually 21 possibilities.... count them out. 0 is included. –  Mark Apr 19 '10 at 7:54
3  
Note that using naïve modulus will have a bias towards smaller numbers. If you need uniformity then you'll need to reject some numbers rand() returns. –  Joey Apr 19 '10 at 8:00
5  
rand() generates numbers from 0..RAND_MAX where RAND_MAX is library dependent but must be at least 32767. If RAND_MAX%21!=0 you have higher probabilities to get certain numbers. In most of practical applications it doesn't really matter but in some scientific calculations this may seriously affect the calculation results. –  zoli2k Apr 19 '10 at 8:03
    
@zoli2k: Well noted - still, for a scientific calculation I wouldn't rely on built-in rand() anyway. –  peterchen Apr 19 '10 at 8:39
    
Why the down-vote ? With no comment ? –  Paul R Apr 19 '10 at 9:01

To get uniform distribution you must divide with RAND_MAX first

static_cast<int>(21*static_cast<double>(rand())/(RAND_MAX+1)) - 10

using

rand() % 21 - 10;

is faster and is often used in applications but the resulted distribution is not uniform. Function rand() generates numbers from from 0 to RAND_MAX. If RAND_MAX%21!=0 lower numbers are generated with higher probability.

You may also consider to use the modulo method but with dropping of some of the random numbers:

int randMax = RAND_MAX - RAND_MAX%21;

int p=RAND_MAX+1;
while(p>randMax)
        p=rand();

x=p%21 - 10;

Edit (comments from Johannes and Steve):

When dividing with RAND_MAX there are some numbers from the range which will be picked more often so the proper way to handle is to reject numbers which would lead to an uneven distribution on the target interval.

Using the Boost Random Library (mentioned by Danvil) all the problems with uniformity of random numbers are eliminated.

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Using modulus instead of division is a much neater way to get random integers. –  Danvil Apr 19 '10 at 8:08
5  
@Danvil It is faster but wrong. It doesn't produce a uniformly distributed random numbers. –  zoli2k Apr 19 '10 at 8:13
1  
@zoli2k: Suppose for the sake of argument that RAND_MAX is 2^16-1. So there are 65536 possible results of rand(). There are 21 possible results of your function. Since 65536 is not a multiple of 21, it is not possible for your function to produce a uniform distribution. Some of the 21 outcomes must be more common than others, it just isn't immediately obvious which. –  Steve Jessop Apr 19 '10 at 8:46
1  
Dividing instead of using modulus is not done in order to "get a uniform result", it's done in order to work around the fact that an LCG (and hence rand()) has trivial relations between consecutive outputs (serial correlation). For example, rand() may well produce alternately odd and even results, so if you mod with an even number then you'd preserve this property. Hence the advice to use division with rand(). It still doesn't give uniformity, it improves things by giving the (better-varying) high bits of the output more influence than the (serially correlated) low bits. –  Steve Jessop Apr 19 '10 at 8:52
1  
@Steve: Depending on the generator it doesn't have to have bad lower bits, though. Marsaglias's Recursion with Carry generator generates wirse bits at the upper end, for example. –  Joey Apr 19 '10 at 8:55

Use the Boost Random Number Library. The built-in random number generator has a notoriously poor distribution quality. Moreover, boost provides you a lot of useful generators.

// based on boost random_demo.cpp profane demo
#include <iostream>

#include <boost/random/mersenne_twister.hpp>
#include <boost/random/uniform_int.hpp>
#include <boost/random/variate_generator.hpp>

int main() {
  boost::mt19937 gen(42u); // seed generator
  boost::uniform_int<> uni_dist(-10, 10); // random int from -10 to 10 inclusive
  boost::variate_generator<boost::mt19937&, boost::uniform_int<> > 
    uni(gen, uni_dist); // callable

  for(int i = 0; i < 10; i++)
    std::cout << uni() << ' ';
}

Output:

-3 6 9 -7 5 6 2 2 -7 -1 

Note from the future: This is built-in in C++11 now.

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+1. It even gives you a function that generates you a number from a range. Without all that hassle of doing it wrong :-) –  Joey Apr 19 '10 at 9:05

You can generate random numbers between [0,20] using rand() % 21 and then subtract 10 from every generated number.

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Using C++11's random library this is much simpler and less error prone(see rand() Considered Harmful presentation and slides for more details) . The example below generates numbers in the interval [-10,10]:

#include <iostream>
#include <random>

int main()
{
    std::random_device rd;

    std::mt19937 e2(rd());

    std::uniform_int_distribution<int> dist(-10, 10);

    for (int n = 0; n < 10; ++n) {
            std::cout << dist(e2) << ", " ;
    }
    std::cout << std::endl ;
}
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You could use Knuth's subtractive random number generator to generate a number, 'u' in (0,1) and then use this simple linear equation to get a random number in [-10,10]:

-10*u + (1-u)*10
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You've got a fencepost error -- the range you're interested in is one larger than the modulo you were using; instead try:

myArray2[i] =rand()  % 21 - 10;//and this will -10 to +10
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Wonder why this attracted an anonymous downvote? –  Rowland Shaw Sep 7 '13 at 18:23

rand() % 21 - 10

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If you want the numbers to be in the range [-10, 10], then you have 21 possible numbers.

(rand() % 21) - 10;
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How about (rand() % 21) - 10; ?

Or am I missing something here?

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use this will work:

int x = (rand() % 21) - 10;
cout<<x;
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