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So here's the code:

if(rand_s(&number) != 0) cout << "Random number generator failed!" << endl;

Question is - does it mean that the program outputs a failure message every time the random number generated with this rand_s(&number) expression is greater than zero? And if so, why would i want such a thing?

// complete code

unsigned int number = 0;

cout << "Random values are:" << endl;
double max = 1000000.0;

for(int i = 0 ; i<100 ; i++)
{
   if(rand_s(&number) != 0)
   cout << "Random number generator failed!" << endl;

   number = static_cast<unsigned int>(static_cast<double>(number)/UINT_MAX*max)+1;

   // output
   cout << setw(12) << number;
   if((i+1) % 5 == 0) cout << endl;
}
share|improve this question
    
Googling for c++ and rand_r (--> third result on google for me: msdn.microsoft.com/en-us/library/sxtz2fa8%28v=vs.80%29.aspx) would have been much less work than opening a full question here. –  phresnel Sep 9 '11 at 15:20
    
i believed that rand_s returns a random value, that is why i was confused in the first place –  Vis Viva Sep 9 '11 at 21:21
    
It seriously improved my own productivity to always look up the manual of something or googling it first. I think your question is a good example for the reason ;) Of course, sometimes google and the manual are too hard, outdated, or something; then is the time to come here :) –  phresnel Sep 12 '11 at 8:57

3 Answers 3

up vote 6 down vote accepted

No rand_s returns an errno_t so 0 means there was no error. Anything else is indicating that there was an error when running the function.

More information can be found here

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No. here is the link.

rand_s return value: Zero if successful, otherwise, an error code.

Your random value will be: number

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The return value of function is 0 if the function execution completes successfully. The result is stored in number. Note that you are passing by address.

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