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Whenever we use memset we set it with zero.

Why? Why not with 1 or 2 or something else.

Also, setting a struct to 0 seems to work but setting to 1 doesn't:

typedef struct abc{
    int a;
} abc;

int main()
{
    abc* ab;
    memset(ab, 0, sizeof(abc));// it sets abc->a = 0; correct
}

But instead of 0 if I use 1 like:

memset(ab, 1, sizeof(abc));

then the value of abc->a = garbage or not equals to 1

Why?

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1  
Because memset sets all the bytes to the specified value, not the integer as a whole. –  sgarizvi Feb 22 '13 at 6:57
1  
Your program never allocates the destination of pointer ab. The program is undefined behavior (but this does not have to be the reason why ab->a is not one). –  Pascal Cuoq Feb 22 '13 at 6:57
    
because 0 is initial value. –  Sergey Feb 22 '13 at 7:00
    
@sgar91: Could you please elaborate a little more? –  Rasmi Ranjan Nayak Feb 22 '13 at 7:07
1  
Pick a language. then either allocate data for your pointer to address or declare a variable of proper type (abc) and use that address. As written abc* ab; declares a pointer with an indeterminate value (means you have no idea what it is). Using this as the target for writing in a memset() call is undefined behavior. Also, your main() program implies an int return value if it is C, and fails to compile if it is standard C++. Declare it as int main() and return a value (EXIT_SUCCESS or EXIT_FAILURE). –  WhozCraig Feb 22 '13 at 7:08

5 Answers 5

up vote 9 down vote accepted

You don't always need to memset to 0, this is just the most common (and useful) thing to do.

memset sets each byte to some given value. An int consists of 4 bytes, so, when memseting to 1, you'd set each of those 4 to 1, then you'd have 00000001 | 00000001 | 00000001 | 000000012 = 1684300910 (the first numbers are in binary, the last in decimal).

Also - note that you're never allocating memory for ab. Even though you're code may work now, it's not safe. This would be:

abc ab;
memset(&ab, 0, sizeof(abc));
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The value you use with memset() to set memory to depends on your needs. That's all. No one keeps you from using any other value to initialise memory.

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As others have mentioned, 0 is largely arbitrary. However, if we had to pick reasons, it's for convenience (at the cost of safety - you should prefer to explicitly initialise variables if you ever depend on them):

  • 0 is mostly understood as an initial value for integers, signed or unsigned, as it represents 0 no matter the width or endianness
  • 0 is an end-of-string for char*s
  • 0 is often 0.0 for floating point numbers
  • 0 is often NULL in C, guaranteed to be NULL in C++
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How is 0 guaranteed to set a floating point variable to 0.0? What part of the language standard guarantees that? –  Alexey Frunze Feb 22 '13 at 7:19
1  
@AlexeyFrunze: There are other standards besides the language standard, and some of them are more ubiquitous. –  Benjamin Lindley Feb 22 '13 at 7:24
    
@BenjaminLindley So, you agree that the language standard does not guarantee that 0.0 is represented with all zero bits? –  Alexey Frunze Feb 22 '13 at 7:31
    
@AlexeyFrunze: I don't know if it does or not. But I do believe it is a real guarantee(even if not specified by the language standard) that is stronger than some things that are in fact specified by the language standard. –  Benjamin Lindley Feb 22 '13 at 7:36
1  
@BenjaminLindley It does not make such a guarantee. It only describes conformant models but not their bit representations. –  Alexey Frunze Feb 22 '13 at 7:43

As shown in your program When variable is defined, by default it will point to any location and any junk data can be previously available there.

we generally memset to (0)zero to make sure that variable is initialized to zero, so that later on in the program we can trust that the value assigned to the variable is genuinely assigned value and not any garbage.

hope it helps.....

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Why only with 0? Why not with any other value? –  Rasmi Ranjan Nayak Feb 22 '13 at 7:05
    
Cuz "0" is the most common value to set anything. Now suppose, you set the values to "3". Now the same struct is read by any other application written by some other guy. Now he will think that ab->a = 3 is a valid value and will use it for further processing of data. But if you will send ab->a = 0, he will know that your struct is not carrying any valid data and will stop the execution at that point. –  Abhineet Feb 22 '13 at 7:13
    
because we all know that zero represent nothing(empty). Thats why. You can try with 1,2 up to 255 any value also in case you want to use it for comparison. but you should know that memset applies to all bytes. For example in your case the struct has int as member and assuming int as 4 bytes it will assign 1 to all 4 bytes so when you print the value you will not get 1 but decimal 4369 or 0x1111. So be careful. –  Kinjal Patel Feb 22 '13 at 7:15
    
Now again, suppose you have another member in your struct "char b[20]". Now you gave some random value to it like ab->b = "nayak" ( mind that you forgot to put a "\0" <NULL> char at end. Now when reading your "ab->b" as string, I will never encounter NULL and hence would try to read past the buffer or worst any undefined consequence can happen. In this case, memset'ing your struct to 0 will come very handy as the next byte after "Nayak" will be "0". So even when you make a blunder like forgetting NULL, your code would not crash. –  Abhineet Feb 22 '13 at 7:18

Firstly your program got an undefined behavior the reaosn is memory for abc* ab; is never allocated!

Secondly it is required that string should be terminated with "null", which mean it is the end, so inspired by this we use null in memset. But you can use any value you want...

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Talking about zero instead of null would be less ambigious. –  alk Feb 22 '13 at 7:10

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