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I need random numbers from 1 to 9 (without 0).

//numbers 0 to 9
int iRand = rand() % 10;

But I need 1 to 9.

Thanks.

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Ok, I was young and needed the time... –  Ilyssis Jan 31 '13 at 12:56

7 Answers 7

up vote 11 down vote accepted

Just this:

int iRand = (rand() % 9) + 1;
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Ya thanks! Thats it. –  Ilyssis Jan 6 '11 at 23:48

Well, you know how to get a random integer in the range [0, x], right? That's:

rand() % (x + 1)

In your case, you've set x to 9, giving you rand() % 10. So how can you manipulate a range to get to 1-9? Well, since 0 is the minimum value coming out of this random number generator scheme, we know we'll need to add one to have a minimum of one:

rand() % (x + 1) + 1

Now you get the range [1, x + 1]. If that's suppose to be [1, 9], then x must be 8, giving:

rand() % 9 + 1

That's how you should think about these things.

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You are all right : ) –  Ilyssis Jan 6 '11 at 23:51

Try:

int iRand = 1 + rand() % 9;

It works by taking a random number from 0 to 8, then adding one to it (though I wrote those operations in the opposite order in the code -- which you do first comes down to personal preference).

Note that % has higher precedence than +, so parentheses aren't necessary (but may improve readability).

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To initialize the random number generator call srand(time(0)); Then, to set the integer x to a value between low (inclusive) and high (exclusive):

int x = int(floor(rand() / (RAND_MAX + 1.0) * (high-low) + low));

The floor() is not necessary if high and low are both non-negative.

Using modulus (%) for random numbers is not advisable, as you don't tend to get much variation in the low-order bits so you'll find a very weak distribution.

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How about

int iRand = (rand() % 9) + 1;

doh beaten by seconds

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This code returns a number which is guaranteed to be random: http://xkcd.com/221/

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1  
Yes, a nice comic and all, but not an answer. Maybe a comment would have been better. –  GManNickG Jan 17 '11 at 21:34

Regardless that the answer is picked, modulo based ranging is biased. You can find that all over the internet. So if you really care about that then you have to do a bit more than that (assume arc4random() return a 4 byte integer):

#define NUMBER 9.0
#define RANDOM() (((int)(arc4random() / (float)0xffffffff * (float)NUMBER) + 1) % (NUMBER + 1))

I leave it to you to figure out the correct syntax since you sound like a quite capable developer.

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I my case I don't need a uniform distribution of random numbers. But thanks for your hint ... ; ) –  Ilyssis Jan 7 '11 at 10:08
1  
Why the use of macro's and magic numbers? –  GManNickG Jan 17 '11 at 21:33

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