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I have a char array of size 512 i.e

char buffer [512];

This variable after some point is modified to this

buffer [40] = '\0';

What does this assignment does to the variable? Does it initialize the first 40 char in the array to null?

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3 Answers

up vote 3 down vote accepted

It assigns only the 41st char in the array to \0. Thus now the string consists of what the chars represent in the first 40 elements of the array i.e 0 to 39th indices (assuming there were no other NUL characters in any of the previous elements -Thanks Kerrek SB!!) .
Hope this helps!

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Well, "at most" in the first 40 characters. There might be another zero earlier on. –  Kerrek SB Nov 18 '11 at 3:19
    
@KerrekSB: Thanks for the catch! Updated response –  another.anon.coward Nov 18 '11 at 3:21
    
Thanks KerrekSB and @another.anon.coward - very helpful answer, so nowthe buffer values is restricted to first 40 char(assuming no other null char in between). –  vampirus87 Nov 18 '11 at 3:25
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No. It stores the value NUL at the 41st position in the array.

To init the first 40 characters to NUL

memset(buffer, '\0', 40);

To init the entire buffer to NUL at compile time, try

char buffer[512] = {0}; 

or

char buffer[512] = "";

To init it at run time, try

memset(buffer, '\0', sizeof (buffer));
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Mac is right; Position 41. –  EvilTeach Nov 18 '11 at 3:24
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It assigns the character '\0' (i.e. the NUL character) to the 41st array element.

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