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Why is the output of the following program 84215045?

int grid[110];
int main()
{
    memset(grid, 5, 100 * sizeof(int));
    printf("%d", grid[0]);
    return 0;
}
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4  
No question is too simple as long as it's written well. –  vcsjones Aug 17 '11 at 22:59
    
I don't think this would cause the problem you're seeing, but did you intentionally make grid an array of 110, but then only allocate 100 of them? –  Alex Aug 17 '11 at 22:59
7  
If you print that number as a hexadecimal value you may see the problem. –  James Black Aug 17 '11 at 23:03
    
@Alex : it won't make change cause i'm printing grid[0] –  Ahmad Aug 17 '11 at 23:05
    
Right, it just looked typo and I wanted to make sure you were aware of it –  Alex Aug 17 '11 at 23:07

8 Answers 8

up vote 33 down vote accepted

memset sets each byte of the destination buffer to the specified value. On your system, an int is four bytes, each of which is 5 after the call to memset. Thus, grid[0] has the value 0x05050505 (hexadecimal), which is 84215045 in decimal.

Some platforms provide alternative APIs to memset that write wider patterns to the destination buffer; for example, on OS X or iOS, you could use:

int pattern = 5;
memset_pattern4(grid, &pattern, sizeof grid);

to get the behavior that you seem to expect. What platform are you targeting?

In C++, you should just use std::fill_n:

std::fill_n(grid, 100, 5);
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Windows 7 32-bit // gnu++ compiler –  Ahmad Aug 17 '11 at 23:13
    
@Ahmad: I'm not sure if Windows provides such an API; if it does, I'm sure someone else can point it out. –  Stephen Canon Aug 17 '11 at 23:18
2  
@Ahmad: didn't notice that you tagged this C++; just use std::fill. –  Stephen Canon Aug 17 '11 at 23:34
memset(grid, 5, 100 * sizeof(int));

You are setting 400 bytes, starting at (char*)grid and ending at (char*)grid + (100 * sizeof(int)), to the value 5 (the casts are necessary here because memset deals in bytes, whereas pointer arithmetic deals in objects.

84215045 in hex is 0x05050505; since int (on your platform/compiler/etc.) is represented by four bytes, when you print it, you get "four fives."

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1  
Works as documented, not as expected :) –  Kerrek SB Aug 17 '11 at 23:01
1  
Setting (100 * 4) bytes, starting at &grid[0], surely? –  Johnsyweb Aug 17 '11 at 23:12
1  
@Johnsyweb: Frak. Yes, thank you. –  James McNellis Aug 17 '11 at 23:16
    
now i can understand your answer :D , but still is there a solution?! –  Ahmad Aug 17 '11 at 23:19

memset is about setting bytes, not values. One of the many ways to set array values in C++ is std::fill_n:

std::fill_n(grid, 100, 5);
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this function is faster than looping for all elements ?? –  Ahmad Aug 17 '11 at 23:21
    
@Ahmad: That function probably does loop over all elements. –  Keith Thompson Aug 17 '11 at 23:43
2  
A good compiler will convert both the for loop and std::fill_n into either an optimized code sequence that uses wide aligned stores (probably vectors) or a library call that is known to be fast on the target platform. –  Stephen Canon Aug 17 '11 at 23:46

Don't use memset.

You set each byte [] of the memory to the value of 5. Each int is 4 bytes long [5][5][5][5], which the compiler correctly interprets as 5*256*256*256 + 5*256*256 + 5*256 + 5 = 84215045. Instead, use a for loop, which also doesn't require sizeof(). In general, sizeof() means you're doing something the hard way.

for(int i=0; i<110; ++i)
    grid[i] = 5;
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i just thought that memset is faster :D –  Ahmad Aug 17 '11 at 23:16
    
The backend of memset basically just does this. –  Brandon Aug 17 '11 at 23:20
1  
@Mooing Duck: how does memset make your program crash, exactly? –  Stephen Canon Aug 17 '11 at 23:25
1  
Actually, for the specific case of array initialization, I would argue that memset is easier to get right, since you can simply use sizeof array. That way, if you change the size of your array in the future, the initialization is automatically kept in sync. –  Stephen Canon Aug 17 '11 at 23:32
2  
Of course, if you're writing C++, this should be a container and std::fill. –  Stephen Canon Aug 17 '11 at 23:36

Well, the memset writes bytes, with the selected value. Therefore an int will look something like this:

00000101 00000101 00000101 00000101

Which is then interpreted as 84215045.

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so ... is there any solution for that?! :D –  Ahmad Aug 17 '11 at 23:15

You haven't actually said what you want your program to do.

Assuming that you want to set each of the first 100 elements of grid to 5 (and ignoring the 100 vs. 110 discrepancy), just do this:

for (int i = 0; i < 100; i ++) {
    grid[i] = 5;
}

I understand that you're concerned about speed, but your concern is probably misplaced. On the one hand, memset() is likely to be optimized and therefore faster than a simple loop. On the other hand, the optimization is likely to consist of writing more than one byte at a time, which is what this loop does. On the other other hand, memset() is a loop anyway; writing the loop explicitly rather than burying it in a function call doesn't change that. On the other other other hand, even if the loop is slow, it's not likely to matter; concentrate on writing clear code, and think about optimizing it if actual measurements indicate that there's a significant performance issue.

You've spent many orders of magnitude more time writing the question than your computer will spend setting grid.

Finally, before I run out of hands (too late!), it doesn't matter how fast memset() is if it doesn't do what you want. (Not setting grid at all is even faster!)

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This code has been tested. Here is a way to memset an "Integer" array to a value between 0 to 255.

MinColCost=new unsigned char[(Len+1) * sizeof(int)];

memset(MinColCost,0x5,(Len+1)*sizeof(int));

memset(MinColCost,0xff,(Len+1)*sizeof(int));
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Since the memset writes bytes,I usually use it to set an int array to zero like:

int a[100];
memset(a,0,sizeof(a));

or you can use it to set a char array,since a char is exactly a byte:

char a[100];
memset(a,'*',sizeof(a));

what's more,an int array can also be set to -1 by memset:

memset(a,-1,sizeof(a));

This is because -1 is 0xffffffff in int,and is 0xff in char(a byte).

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-1 Doesn't address the question directly. –  muntoo Aug 18 '11 at 2:26

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