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I cannot understand the unusual behavior of this code output. It prints:

 hellooo
monusonuka

Code is here:

#include <iostream>
#include <cstdio>
using namespace std;

int main()
{
printf(" hellooo \n");
char name[7]="sonuka";
char name1[4]={'m','o','n','u'};
printf("%s",name1);
system("pause");
return 0;
}
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3  
It just so happened that for you, the array containing {'m', 'o', 'n', 'u'} was in memory before sonuka (which ends with a \0 and terminates a string). Using the %s modifier will make printf read until it encounters the null terminator (which name1 doesn't have as it's not a C-style string. –  birryree Aug 24 '12 at 19:46
2  
5 answers in 4 seconds... that's goota be a record. –  Luchian Grigore Aug 24 '12 at 19:46
1  
@LuchianGrigore where is yours? :) –  ouah Aug 24 '12 at 19:52
    
*gotta......... –  Luchian Grigore Aug 24 '12 at 20:00
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5 Answers

up vote 3 down vote accepted

name1 must be NULL-terminated, otherwise printf will print as many bytes, as it find, till hitting the \0.

It must be

char name1[5]={'m','o','n','u', '\0'};

What you have is undefined behaviour : printf prints memory after the memory, allocated for name1.

In this case, it seems like your compiler has placed the memory for name after name1, that's why they are both printed (name is correctly NULL-terminated, as all literals are).

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Your name1 array is not terminated with a zero character ('\0'). The printf function prints characters until it finds a zero. In your case it goes past the end of the array. What happens is undefined behaviour. A likely outcome is that other variables or garbage is printed to the screen until eventually a \0 somewhere else in memory is hit, but anything could happen including your program crashing.

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name1 is not null-terminated, so printf just keeps printing chars until a \0 is reached.

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 printf("%s",name1);

s conversion specifier requires the argument to be a pointer to a C string.

char name1[4]={'m','o','n','u'}; 

is not a C string in because the array is not null terminated. Violating the requirement of the conversion speicier invokes undefined behavior and this is why you get this unexpected result.

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Why is this answer downvoted, thanks to explain. –  ouah Aug 24 '12 at 19:50
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You're trying to print a char array as a string with printf. Try this code:

int pointer=0;
while(pointer < 4){
     printf("%c",name1[pointer]);
     pointer++;
}
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