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I understand slightly what the definition of memset() is. I don't understand what the point of it is for.

definition: Sets the first num bytes of the block of memory pointed by ptr to the specified value (interpreted as an unsigned char).

so does this hard code a value in a memory address?

memset(&serv_addr,0,sizeof(serv_addr) is the example I'm trying to understand.

Can someone please explain in a VERY simplified way, please?

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It is mostly used to initialize structs and arrays. –  imreal Nov 10 '12 at 23:37
    
so it's like saying array[value]? why not just do it that way though, what's the point of using memset then? –  Brandon Ling Nov 10 '12 at 23:38
    
You can do it like array[value] only if you know the value of value during compile time (this is C/C++). –  irrelephant Nov 10 '12 at 23:39
2  
Because you can set all the bytes on the struct/array at the same time. You could do it with a for loop, but memset will perform a lot better. –  imreal Nov 10 '12 at 23:40

5 Answers 5

up vote 6 down vote accepted

memset() is a very fast version of a relatively simple operation:

void* memset(void* b, int c, size_t len) {
    char* p = (char*)b;
    for (size_t i = 0; i != len; ++i) {
        p[i] = c;
    }
    return b;
}

That is, memset(b, c, l) set the l bytes starting at address b to the value c. It just does it much faster than in the above implementation.

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Weird, you've got a C++ initialiser but a C cast... –  Neil Nov 10 '12 at 23:48
    
@Neil: good point - I'm a C++ person and I realized I rely on the conversion. I'll change the code to be both C and C++. –  Dietmar Kühl Nov 10 '12 at 23:56

memset() is usually used to initialise values. For example consider the following struct:

struct Size {
    int width;
    int height;
}

If you create one of these on the stack like so:

struct Size someSize;

Then the values in that struct are going to be undefined. They might be zero, they might be whatever values happened to be there from when that portion of the stack was last used. So usually you would follow that line with:

memset(&someSize, 0, sizeof(someSize));

Of course it can be used for other scenarios, this is just one of them. Just think of it as a way to simply set a portion of memory to a certain value.

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I guess that serv_addr is some local or global variable of some struct type -perhaps struct sockaddr- (or maybe a class).

&serv_addr is taking the address of that variable. It is a valid address, given as first argument to memset. The second argument to memset is the byte to be used for filling (zero byte). The last argument to memset is the size, in bytes, of that memory zone to fill, which is the size of that serv_addr variable in your example.

So this call to memset clears a global or local variable serv_addr containing some struct.

In practice, the GCC compiler, when it is optimizing, will generate clever code for that, usually unrolling and inlining it (actually, it is often a builtin, so GCC can generate very clever code for it).

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memset is a common way to set a memory region to 0 regardless of the data type. One can say that memset doesn't care about the data type and just sets all bytes to zero.

IMHO in C++ one should avoid doing memset when possible since it circumvents the type safety that C++ provides, instead one should use constructor or initialization as means of initializing. memset done on a class instance may also destroy something unintentionally:

e.g.

class A
{
public:
  shared_ptr<char*> _p;
};

a memset on an instance of the above would not do a reference counter decrement properly.

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It is nothing but setting the memory to particular value.

Here is example code.

Memset(const *p,unit8_t V,unit8_t L) , Here the P is the pointer to target memory, V is the value to the target buffer which will be set to a value V and l is the length of the data.

while(L --> 0)
{
    *p++ = V;
}
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