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I have a question about a string in C++. As per below code, I would like to know where will the loops stop at. Will it take the null in index 3 or index 4?

#include <cstdio>

int main ( ) {

  char name [20] = "Foo";

  name [4] = '\0';

  for (int i = 0; name[i] != '\0'; i++) {

       printf("This is the value of i so far in the loop : %d \n",i);
  }

  printf("This is the value of i : %d \n",i);

 return 0;

}

the reason I am asking this is,I don't understand why in my homework they gave us something like this. Is there any reason to make '\0' in index 4?

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2  
why dont you run it and see? –  nakiya Apr 8 '12 at 6:03
1  
I just don't understand why in my homework they gave us something like this. Is there any reason to make '\0' in index 4? –  Jack Apr 8 '12 at 6:06
1  
I know that. but shouldn't it end but at index 3? why 4? –  Jack Apr 8 '12 at 6:09
1  
Thank you for all of your comments... I got it now :) –  Jack Apr 8 '12 at 6:15
1  
no, I just check and this what he said. '\0' –  Jack Apr 8 '12 at 7:09
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3 Answers 3

up vote 2 down vote accepted

"Foo" is actually {'F','o','o','\0'}, and fits index 0,1,2,3. Index 4 up to 19 are default initialized (hence 0-ed). And index 4 is assigned later with '\0'.

The loop ends when the first '\0' is matched, so that value 0,1,2 are printed. Out of the loop i shold ... ahem .. be undefined! (it is declared inside the loop scope), but if your compiler didn't clean up you most likely will print 3.

A typycal example of C++ (note #include<cstdio>, but no std never referenced...) taught by a C instructed teacher. Give my congrats to him!

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1  
"Index 4 up to 19 are uninitialized". I disagree. C++2003, 8.5.1/7 says: "If there are fewer initializers in the list than there are members in the aggregate, then each member not explicitly initialized shall be value-initialized." –  Robᵩ Apr 8 '12 at 6:45
    
+1 for snide comment about bad C++ teachers. To be clear, this program is "ill-formed" as that term is defined in C++ 2003, due to the lack of std::. –  Robᵩ Apr 8 '12 at 6:50
    
@Rob: you're right: the char::char() should be used to produce the value, hence they should be all 0. Unfortunately I saw many compiler not doing that, so I usually don't rely on it. –  Emilio Garavaglia Apr 8 '12 at 6:54
    
And +1 for noticing that i is undefined after the loop. It shouldn't even compile! –  Mr Lister Apr 8 '12 at 6:55
    
@MrLister: yes, g++ says "use -permissve", in fact relaxing the ISO compliancy –  Emilio Garavaglia Apr 8 '12 at 6:58
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Is there any reason to make '\0' in index 4?

Absolutely none.

This line:

char name [20] = "Foo";

Initializes the array as follows:

name[0] <-- 'F'    First char of "Foo"
name[1] <-- 'o'    Second char of "Foo"
name[2] <-- 'o'    Third char of "Foo"
name[3] <-- '\0'   Fourth char of "Foo"
name[4..19] <-- 0  Extra spaces in array get zero-filled

So, this line:

  name [4] = '\0';

writes a zero to a location already guaranteed to be zero.

So, there is a zero at index 3 (it is the final char in "Foo"). There is a zero in all of the locations 4-19 (since the initializer is smaller than the array). And, redundantly, there is a zero written to index 4.

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I think it should be 3:

name[0]='F' name[1]='o' name[2]='o' name[3]='\0' name[4]='\0'
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You might want to edit this for clarity. –  Tim Post Apr 9 '12 at 6:06
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