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char a [] = "EFG\r\n" ;

How many elements will be in the array created by the declaration above?

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up vote 20 down vote accepted

6 characters: E F G \r \n \0

You can see this for yourself by running:

char a [] = "EFG\r\n" ;
printf("%d\n", sizeof(a));
// 6

The following code shows you the value for each byte:

char a [] = "EFG\r\n" ;
int length = sizeof(a), i;
for(i = 0; i < length; i++)
{
    printf("0x%02x ", a[i]);
}
// 0x45 0x46 0x47 0x0d 0x0a 0x00 
share|improve this answer
    
D'oh, I spent too long in my little TMP world. :) – Xeo May 4 '11 at 20:50
    
N.B: You don't need parentheses with sizeof. – Johnsyweb Jun 5 '11 at 3:03

6, with proof by Ideone (look at the errors).


Edit: Actually, the example looked like this at first:

#include <iostream>

template<class T, int N>
int length_of(T (&arr)[N]){
  return N;
}

int main(){
  char a [] = "EFG\r\n" ;
  std::cout << length_of(a) << std::endl;
}

But I wanted to keep it short and avoid includes. :)

share|improve this answer
8  
haha wow that's an amazing way to show the answer... wish could double-upvote – Claudiu May 4 '11 at 20:55
1  
very neat way to show off!! ;) – Nim May 4 '11 at 21:19

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