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int buff[1000] 
memset(buff, 0, 1000 * sizeof(int));

will initialize buff with o's

But the following will not initialize buff with 5's. So what is the way to achieve this using memset in C (not in C++)? I want to use memset for this purpose.

int buff[1000] 
memset(buff, 5, 1000 * sizeof(int));
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marked as duplicate by Wimmel, Barmar, Jens Gustedt, Dan Fego, Donal Fellows Jan 7 at 11:59

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
What is the type of buff? –  Barmar Jan 6 at 13:49
    
what is buff datatype, is it integer? –  Ishmeet Jan 6 at 13:49
3  
memset sets each byte to the specified value. If you're operating on a multi-byte datatype, you can't use memset to set them to arbitrary values. –  Barmar Jan 6 at 13:51
1  
This isn’t quite a dup of the linked question, as that question is for C++ (where the correct thing to do is to use std::fill_n). This question is for C, and the answer is different. –  Stephen Canon Jan 6 at 14:06

4 Answers 4

memset initializes bytes, not data types, to a value. So for your example…

int buff[1000] 
memset(buff, 5, 1000 * sizeof(int));

… if an int is four bytes, all four bytes will be initialized to 5. Each integer will actually have a value of 0x05050505 == 84215045, not 5 as you're expecting.

If you would like to initialize each integer in your array to 5, you'll have to do it like this:

int i;
for(i = 0; i < 1000; i++)
    buff[i] = 5;
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1  
When targeting platforms that have an optimized fill implementation (a la memset_pattern4 from Paul R’s answer), the compiler may even choose to optimize this loop into a call to that function. –  Stephen Canon Jan 6 at 13:57
    
@StephenCanon That's interesting. I've never heard of that before. –  Fiddling Bits Jan 6 at 14:00
1  
Compilers definitely perform the optimization when a simple loop can be transformed into e.g. memcpy or memset. Matching platform-specific functions is less common, but some compilers do implement it. Even if your compiler doesn’t do that, this loop is an excellent candidate for autovectorization. –  Stephen Canon Jan 6 at 14:01

Depending on what OS you are using you may be able to use memset_pattern4 et al, otherwise you'll just need to do it with a loop.

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I personally don't recommend memset for general initialization. There are too many things you have to be sure of to be able to correctly and portably use it. It's basically only good for char arrays or microcontroller code.

The way to initialize an array in C is the following (assume size N):

for (i = 0; i < N; ++i)
    buff[i] = init_value;

With C99, you can do more interesting stuff. For example, imagine the buffer is an array of the following struct:

struct something
{
    size_t id;
    int other_value;
};

Then you can initialize like this:

for (i = 0; i < N; ++i)
    buff[i] = (struct something){
        .id = i
    };

This is called designated initializer. Like all other cases of initializers, if you don't mention a specific field of the struct, it will be automatically zero initialized.

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If buff isn't an array of bytes, you can only initialise it to values which consist of repetitive hex values using memset (e.g. -1, 0x01010101, etc)

One way to do this is to use memcpy, thus:

buff[0] = 5;
memcpy(buff + 1, buff, sizeof(buff) - sizeof(*buff))

HOWEVER this relies on undefined behaviour and might or might not work on your system.

A decent compiler should produce an efficient enough loop from

for (i = 0; i < 1000; i++) buff[i] = 5;
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1  
I’m not aware of any modern system on which the suggested memcpy trick does “work”. –  Stephen Canon Jan 6 at 13:55
3  
I don't think it's ok to knowingly advise undefined behavior –  Shahbaz Jan 6 at 13:55
    
@Shahbaz Depends how his system works and how desparate he is for optimisation. I wouldn't advise memset for filling arrays either, as it's not clear –  Tom Tanner Jan 6 at 13:57
    
@TomTanner, a simple for loop that sets the elements can be as optimized as memcpy. Note that memcpy expects restrict pointers to source and destination. That means (roughly speaking) the optimizer can assume they don't overlap and optimize accordingly. If you give it memory regions that overlap, even if your answer is "more optimized", it's simply incorrect. –  Shahbaz Jan 6 at 14:01
    
I realise that a decent compiler can produce code as optimised at memset. But believe me I've come across plenty of code like the memcpy, in various places. If the OP is unlucky, they will to. Suppose I should have put this the other way round. –  Tom Tanner Jan 6 at 14:04

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