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I think that my problem is very stupid... My function doesn't return a decimal value, but an int value... How can I solve this? Thanks!

        #include <stdio.h>
        #include <stdlib.h>
        #include <math.h>

        int main()
        {
          //Dichiarazione variabili
          int nCasuale, i, MAX = 0, min = 100;
          float radice;

          //Generazione numeri casuali
          srand(time(NULL));

          for (i = 0; i < 10; ++i) //Ciclo numeri casuali
            {
              nCasuale = 1 + rand() % 100; //Casuale tra 1 e 100
              printf("Numero casuale[%d]: %d\n", i, nCasuale); //Lo stampo

              radice = sqrt(nCasuale); //Radice del numero
              printf("Radice quadrata(%d)= %2.f\n\n", nCasuale, radice); //Stampo

And so on...

I don't understand why... Thanks for help =)

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What do you mean "it returns an int value"? What output do you get, and what do you expect? – Oliver Charlesworth Mar 14 '12 at 13:04
    
because you're using an int and main is set to return an int. – Brian Mar 14 '12 at 13:04
1  
sqrt() returns a double, so define radice as a double or use sqrtf(). – ckruse Mar 14 '12 at 13:05
    
You're also invoking Undefined Behaviour by calling time() without a prototype in scope (eg: the compiler will assume the argument is of type int rather the time_t* and the result of conversion may wreak havoc ... or may make sqrt() return a value of type int). – pmg Mar 14 '12 at 18:31
up vote 11 down vote accepted

You are printing the square root with the format specifier "%2.f", this tells printf() to suppress any digits after the decimal point.

You probably meant "%.2f" to get two fractional digits.

share|improve this answer
    
Oh my god! Bad error... Thank you very much! – Francesco B. Mar 14 '12 at 13:15

I hope this link has what is needed for you to clear your doubts.

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