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Is it not possible to use memset on an array of integers? I tried the following memset call and didn't get the correct integer values in the int array.

int arr[5];
memset (arr, -1, sizeof(arr)/sizeof(int));

Vaules I got are:

arr[0] = -1
arr[1] = 255
arr[2] = 0
arr[3] = 0
arr[4] = 0
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1  
might be easier to do this: int arr[5] = {-1}; –  Tom Dignan Aug 26 '11 at 9:17
12  
@Tom Dignan: Except that only initialises the first element to -1 and all the rest to 0. –  tinman Aug 26 '11 at 9:46

5 Answers 5

up vote 27 down vote accepted

Just change to memset (arr, -1, sizeof(arr));

Note that for other values than 0 and -1 this would not work since memset sets the byte values for the block of memory that starts at the variable indicated by *ptr for the following num bytes.

void * memset ( void * ptr, int value, size_t num );

And since int is represented on more than one byte, you will not get the desired value for the integers in your array.

Exceptions:

  • 0 is an exception since, if you set all the bytes to 0, the value will be zero
  • -1 is another exception since, as Patrick highlighted -1 is 0xff (=255) in int8_t and 0xffffffff in int32_t

The reason you got:

arr[0] = -1
arr[1] = 255
arr[2] = 0
arr[3] = 0
arr[4] = 0

Is because, in your case, the length of an int is 4 bytes (32 bit representation), the length of your array in bytes being 20 (=5*4), and you only set 5 bytes to -1 (=255) instead of 20.

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5  
Well, in this particular case (for -1 as a value) memset actually works. Because -1 is 0xff in int8_t and 0xffffffff in int32_t and so on. IOW: memset works fine for 0 and -1 but is not very useful for all other cases. –  Patrick B. Aug 26 '11 at 9:16
    
You are right Patrick, Thank you.. I changed my answer accordingly –  Ioan Paul Pirau Aug 26 '11 at 9:22
3  
@Patrick B. : it will work fine on many platforms, but not all. Not all platforms use two's complement, and you might also trigger trap representations by using memset to initialize an int. –  Sander De Dycker Aug 26 '11 at 9:44
    
every int whose all four bytes have the same value can use memset, not only 0 and -1 –  Lưu Vĩnh Phúc Dec 27 '13 at 1:31

Don't use memset to initialize anything else than single-byte data types.

At first sight, it might appear that it should work for initializing an int to 0 or -1 (and on many systems it will work), but then you're not taking into account the possibility that you might generate a trap representation, causing undefined behavior, or the fact that the integer representation is not necessarily two's complement.

The correct way to initialize an array of int to -1, is to loop over the array, and set each value explicitly.

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4  
I think this answer should be pondered by a clause such as "Don't use memset() ... if you want to write absolutely portable code". Most people neither write nor intend to write portable code. Most people call code "portable" when it works for two architectures. The word "correct" in "The correct way ..." could also be changed to "portable". If you're not trying to write absolutely portable code, it's neither more nor less correct. –  Pascal Cuoq Aug 26 '11 at 16:38
    
+1 @Complicatedseebio couldn't agree more, far too many programmers jump down peoples throats with things like 'correct', and 'stl this'. Far too often they over look what's needed by the specific problem. –  Adam Naylor Feb 15 '12 at 21:22
4  
@Complicated see bio @Adam : The thing is though, that initializing an array of int using a loop is guaranteed to work in all cases, whereas using memset might fail to do it properly (or worse might appear to work). I won't say you can't use memset if you have intimate knowledge of the platforms the code will run on, and know it won't cause an issue. But I don't have such knowledge about the platforms of everyone who might read this answer, so I prefer to play it safe. I hope that balances out some of the "extremes" (for argument sake) I used in my answer. –  Sander De Dycker Feb 16 '12 at 8:23
    
Upvote for Sander, I didn't understand why the -1 wasn't working for me until I realized the machine I was working with wasn't 2-complement. –  capitano666 Nov 16 '13 at 14:08

Why the division?

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

Your version, sizeof(arr)/sizeof(int), gives you the number of elements in the array.

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3  
Note that memset() sets the value of the bytes at the addressed location, not how many "items." You'd want to set the 5 ints worth of bytes to -1. Doing so will just happen to set the int values to -1 as a coincidence of the format. –  Jeff Mercado Aug 26 '11 at 9:18
1  
@Jeff: indeed, coincidence, because an int of -1 is usually $FFFFFFFF (assuming 32 bit int and two's complement) and a byte of -1 is $FF. Had he chosen -2 ($FE), it would have become $FEFEFEFE, which is an int of -16843010. –  Rudy Velthuis Aug 26 '11 at 11:03

You can save yourself some typing by initializing the array directly:

int arr[5] = {-1, -1, -1, -1, -1}; 

That line is shorter than the memset, and it also works.

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+1 for array initializer, although it's useful just for few values. –  Martin Konicek Oct 21 '12 at 17:12

gcc provides a good array initialization shortcut

int arr[32] = {[0 ... 10] = 3, [11 ... 31] = 4}

mind the space before and after '...'

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