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I am trying to figure out a way that I can randomly generate -1,0, or 1 using srand and rand. Whenever I do, however, I am only able to get the values inside the range generated and never the -1 or 1.

This is what I tried:

   int value;
   srand(time(NULL));
   value=2*rand()/(RAND_MAX)-1;

However, when executed, I always generate 0. I want to be able to generate -1 and 1 occasionally. The problem is I have to use the rand and srand, as part of the specifications. Any help would be appreciated and thanks in advance :).

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closed as too localized by WhozCraig, Mario, nhahtdh, mvp, Keith Nicholas Mar 4 '13 at 1:00

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1  
Remember to call srand(time(NULL)); no more than once in your program. Especially do not put it inside a loop or in a function that gets called more than once. –  pmg Mar 3 '13 at 20:26

3 Answers 3

up vote 8 down vote accepted

How about

value = (rand() % 3) - 1;

The expression rand() % 3 generates a random number between 0 and 2 (inclusive), then subtract one to get between -1 and 1 (inclusive).

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Thank you for helping this noob :)! I truly appreciate it. –  user2129657 Mar 3 '13 at 20:23
4  
There is a very slight bias with this approach when RAND_MAX % 3 is not 2. When this is a problem, the fix is usually to discard when they happen the last one or two problematic values that rand() can take. –  Pascal Cuoq Mar 3 '13 at 20:35
    
2^n-1 mod 3 is never 2, so for many common values of RAND_MAX there will be bias. –  harold Mar 3 '13 at 20:42

First, you want 3 different values but you're only asking for 2. Second, in some implementations (and apparently the one you're using) RAND_MAX == INT_MAX so your calculation is subject to overflow. You can address that by using floating point

// srand(time(NULL)); Only do this once per invocation of your program
int value = (int)(3.0*rand()/RAND_MAX) - 1;

or long long

int value = 3LL*rand()/RAND_MAX - 1;

or by moving the factor into the divisor:

int value = rand()/(RAND_MAX/3) - 1;

Edit: note that these will produce slightly skewed (more or less as RAND_MAX is less or more) results because RAND_MAX isn't a multiple of 3. You can avoid this with:

int r;
do
{
    r = rand();
} while (r >= RAND_MAX/3 * 3);
int value = r / (RAND_MAX/3) - 1;
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Thank you for the response! For some reason, all three of your suggestions are resulting in -1 each time. I am not sure why that is as your reasoning makes perfect sense to me. –  user2129657 Mar 3 '13 at 21:21
    
@user2129657 They work here ... what values is rand() returning, and what is RAND_MAX? Possibly your implementation doesn't define RAND_MAX correctly. –  Jim Balter Mar 4 '13 at 0:23
    
@JimBalter, +1 for attempting to evenly distribute the results and showing how. –  Josh Petitt Mar 4 '13 at 1:24

Your code has an off-by-one error and potentially suffers from integer overflow.

Change

value = 2 * rand() / RAND_MAX - 1;

to

value = rand() / (RAND_MAX / 3 + 1) - 1;
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Thanks for the response! I tried the second expression but it generates 1 every time. –  user2129657 Mar 3 '13 at 20:29
    
@pmg: Good point, I've removed that remark. –  NPE Mar 3 '13 at 20:29

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