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Working on my assignment, more details in another question. If I use

arr[(i * 16) % arrLen] *= 2; // seg fault

vs

arr[i % arrLen] *= 2; // OK!

Why? Full source see line 31. Why? I modulus the array length so it should be OK?

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They are going to get you 2 different addresses - 1st one may not be valid? –  John3136 Sep 26 '12 at 11:03
2  
Overflow is a failure mode, it produces negative numbers. –  Hans Passant Sep 26 '12 at 11:04
    
Are you in a 32-bit environment (e.g. x86)? I tried your code in my x64 machine and didn't get any error. So, Hans Passant and Alexey Frunze seem to be right. –  Nadir Sampaoli Sep 26 '12 at 11:11

3 Answers 3

up vote 1 down vote accepted

Looking at your full source:

  1. You should be checking the return of malloc to make sure you were able to get that memory
  2. You should be freeing the memory, you have a leak
  3. The memory inside your arr array is uninitialized, you allocate it but don't set it to anything so you're getting (most likely) a large negitive number. This can be done by memset(arr,0,arrLen);
  4. You malloc(arrLen * sizeof(int)) however arrLen is created with a /sizeof(int), so you're canceling your work there...

Regarding your seg fault, as others have stated your overflowing your array. You've created an array of ints. The then you're looping from 0 to reps (268,435,456) which is the max size of an int. When you try to multiply that by 16 you're overflowing and creating a negative offset.

Try multiplying the 16 into the initialization of reps:

int reps = 256 * 1024 * 1024 * 16;

Your compiler should throw a warning letting you know this exact thing:

warning: integer overflow in expression [-Woverflow]
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hmm I am not getting any errors, I'm new to C. I think I need a flag? Regarding (3) how can I zero or initialize my array? –  Jiew Meng Sep 26 '12 at 12:47
    
Well it's not an error, it's a warning, and your not going to see it unless you make the * 16; I pointed out. What compiler/command are you using to build? I updated 3 with the code (note I only used arrLen for the length because of point 4). –  Mike Sep 26 '12 at 12:50
    
I am using gcc on linux –  Jiew Meng Sep 26 '12 at 13:01
    
RE: (4), actually, I think malloc is right tho? I am allocating targetSizesInKB[sizeIndex] * 1024 bytes? –  Jiew Meng Sep 26 '12 at 13:06

Assuming the size of an int on your system is 32-bits, chances are you're causing an overflow and the result of i * 16 is becoming negative. In a two's complement system, negative values are represented with a higher binary value.

int reps = 256 * 1024 * 1024;

So reps = 268,435,456, which is the value you're looping up until. The greatest value of i is therefore 268,435,455 and 268,435,455 * 16 = 4,294,967,280.

The largest positive value a 32-bit int can represent is 2,147,483,647 (4,294,967,295 for an unsigned int, so you haven't wrapped around the negatives yet), which means that result is being interpreted as a negative value.

Accessing a negative offset from arr is out of the bounds of your allocated memory, which causes undefined behaviour and fortunately a seg fault.

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i * 16 can overflow into the negative range of signed integers. When you take modulo of a negative integer, you can get a negative remainder and that'll make your array subscript negative and result in an access outside of the array's allocated memory and sometimes a crash.

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