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I have made some research on Stackoverflow about reverse for loops in C++ that use an unsigned integer instead of a signed one. But I still do NOT understand why there is a problem (see Unsigned int reverse iteration with for loops). Why the following code will yield a segmentation fault?

#include <vector>
#include <iostream>
using namespace std;

int main(void)
{
    vector<double> x(10);

    for (unsigned int i = 9; i >= 0; i--)
    {
        cout << "i= " << i << endl;
        x[i] = 1.0;
    }

    cout << "x0= " << x[0] << endl;

    return 0;
}

I understand that the problem is when the index i will be equal to zero, because there is something like an overflow. But I think an unsigned integer is allowed to take the zero value, isn't it? Now if I replace it with a signed integer, there is absolutely no problem.

Does somebody can explain me the mechanism behind that reverse loop with an unsigned integer?

Thank you very much!

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3  
i >= 0 is always true for unsigned i, so the loop never terminates. –  TonyK Jan 28 '12 at 8:58
    
Read compiler warnings, they are useful. In this case, your compiler should probably have warned you about the fact that the condition in your loop is always true. –  dragonroot Jan 28 '12 at 9:20
    
@dragonroot: Unfortunately not. I use the -Wall flag of g++. Do you know a compiler flag that will detect this kind of problem? Thanks. –  Benjamin Jan 28 '12 at 9:27
    
@Benjamin: Use -W -Wall –  dragonroot Feb 5 '12 at 1:49
    
@dragonroot: I already have these warnings enabled but the compiler did not tell me anything. –  Benjamin Feb 15 '12 at 10:50

4 Answers 4

up vote 15 down vote accepted

The problem here is that an unsigned integer is never negative.

Therefore, the loop-test:

i >= 0

will always be true. Thus you get an infinite loop.

When it drops below zero, it wraps around to the largest value unsigned value.
Thus, you will also be accessing x[i] out-of-bounds.

This is not a problem for signed integers because it will simply go negative and thus fail i >= 0.

Thus, if you want to use unsigned integers, you can try one of the following possibilities:

for (unsigned int i = 9; i-- != 0; )

and

for (unsigned int i = 9; i != -1; i--)

These two were suggested by GManNickG and AndreyT from the comments.


And here's my original 3 versions:

for (unsigned int i = 9; i != (unsigned)0 - 1; i--)

or

for (unsigned int i = 9; i != ~(unsigned)0; i--)

or

for (unsigned int i = 9; i != UINT_MAX; i--)
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Or have i be one more than the index, so that 0 is a proper termination condition. As tricky as the rest though. –  Matthieu M. Jan 28 '12 at 13:23
2  
@josefx Only signed integer over/underflow is undefined behavior. –  Mysticial Jan 28 '12 at 18:19
3  
Or for (unsigned int i = 9; i-- != 0; ) –  GManNickG Aug 28 '12 at 4:09
1  
@GManNickG Ha. I never considered dumping the decrement into the test. :) –  Mysticial Aug 28 '12 at 4:31
2  
I'm not sure what the purpose of all those complicated conditions is. You can simply do for (unsigned int i = 9; i != -1; i--). No need for any casts. A direct comparison to -1 will automatically perform all necessary conversions. -1 is equivalent to UINT_MAX in this context, but -1 is better because it is type-independent. –  AndreyT Aug 28 '12 at 5:53

The problem is, your loop allows i to be as low as zero and only expects to exit the loop if i is less than 0. Since i is unsigned, it can never be less than 0. It rolls over to 2^32-1. That is greater than the size of your vector and so results in a segfault.

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Whatever the value of unsigned int i it is always true that i >= 0 so your for loop never ends.

In other words, if at some point i is 0 and you decrement it, it still stays non-negative, because it contains then a huge number, probably 4294967295 (that is 232-1).

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The problem is here:

for (unsigned int i = 9; i >= 0; i--) 

You are starting with a value of 9 for an unsigned int and your exit definition is i >= 0 and this will be always true. (unsigned int will never be negative!!!). Because of this your loop will start over (endless loop, because i=0 then -1 goes max uint).

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