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I am using the pow function in C and storing the return value in an integer type. see the code snippet below:

for (i = 0; i < 5; i++){
    val = (int)pow(5, i);
    printf("%d, ", val);
}

here i, and val are integers and the output is 1, 5, 24, 124, 624. I believe this is because a float 25 is treated as 24.99999... which gets rounded down to 24 on assignment to an integer.

How can I by pass this if I still need to store the return value in an int ?

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float 25 isn't "treated as" 24.9..., 25 can be exactly represented as a float. It's just that pow isn't completely accurate, and for some reason on this occasion has missed low. For many values it can't possibly be completely accurate, since the mathematically correct answer isn't an exact float, but for these calculations it could be, and so it's a quality-of-implementation issue whether or not it is. –  Steve Jessop Oct 29 '11 at 8:36
1  
See also stackoverflow.com/questions/101439/… for discussion of how to implement an integer version of pow() –  Salvatore Previti Oct 29 '11 at 11:11
    
Don't use pow for integer exponentiation. There are much better, safer ways. By the way, what platform are you getting this behavior on? I thought a good pow would always be exact for integers where the exact result fits in double. –  R.. Oct 29 '11 at 12:15

4 Answers 4

up vote 6 down vote accepted

Add 0.5 before casting to int. If your system sports it, you can call the C99 round() function, but I prefer to avoid it for portability reasons.

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2  
There's a slight difference, that round rounds away from zero, whereas adding 0.5 and casting to int rounds up. So for example round(pow(-0.5,1)) is -1, whereas (int)(pow(-0.5,1) + 0.5) is 0. So questioner may need to decide which they want, although of course if the answer is close to an integer it makes no difference. –  Steve Jessop Oct 29 '11 at 8:32
    
"round rounds away from zero, whereas adding 0.5 and casting to int rounds up" - for half-integer values, I mean. –  Steve Jessop Oct 29 '11 at 8:39
    
@JoelSpolsky: Thanks for the edit, but round() isn't supported on all systems. I've qualified your edit accordingly. –  Marcelo Cantos Oct 29 '11 at 11:15
    
thanks. I did not know that. –  Joel Spolsky Oct 29 '11 at 19:13
    
@Joel: I think you were right. round() is standard (C99), it's just that some systems aren't. It's sometimes necessary to program to C89, but if a function is in C99 then all you have to worry about is primitive systems with very old compilers. Windows being the example that most often matters. –  Steve Jessop Oct 31 '11 at 9:34

Implement pow yourself.

int myPow(int base, int exponent) {
    int n = 1;
    for (int i = 0; i < exponent; i++) {
        n *= base;
    }
    return n;
}

This, of course, only handles positive exponents, and only works on ints, and there are certainly more efficient ways to do it. See, for example, the source for ^ in Haskell.

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replace

val = (int)pow(5, i);

with

double d = pow(5,i);
val = (int)((d > 0.0) ? floor(d + 0.5) : ceil(d - 0.5));
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I had this problem my self. I solved it easily in your instruction simply just add if statement. if (k%n>0) { k=k+1; }

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