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Here is my code:

#include <iostream>
#include <string>
#include <stdio.h>
#include <stdlib.h>
using namespace std;

template <class T1, class T2>
void copy2(const T1 source[], T2 destination[] , int size){
    for (int i=0 ; i < size ; ++i){
        destination[i]=static_cast<T1>(source[i]);
    }
}



int main() {

    const char one[] = "hello";
    char two[5];

    cout << "one: " << one << endl;
    cout << "two: " << two << endl;

    copy2(one, two, 6);

    cout << "one: " << one << endl;
    cout << "two: " << two << endl;


    return 0;
}

but it outputs:

one: hello

two:

one:

two: hello

Moreover, the array "one" is const, and therefore shouldn't be changed.

PS: When I initiate the array "two" in the following way, it works (but WHY??):

 char two[8];

However when I initiate it in both of the following ways, I get weird errors:

 char two[6];

or

 char two[7];
share|improve this question
1  
You have both copy2 and copyStuff. Which is it? –  Marlon Jan 18 '12 at 4:08
    
sorry I just mispelled that. But that isn't the problem. –  inconnu26 Jan 18 '12 at 4:23
    
The array one is const, true, but that doesn't mean it can't be modified. It means trying to do so is undefined behavior. –  Ben Voigt Jan 18 '12 at 4:39

2 Answers 2

up vote 4 down vote accepted

To be able to copy the source buffer to destination you need the destination buffer big enough to hold the source buffer.

char two[5];

does not have enough space to store H,E,L,L,O,\0 ---> size is 6
So, Your destination array two should atleast have an size of 6, Otherwise your program writes beyond the bounds of the array and cause an Undefined Behavior.

Also, You should initialize your source buffer and NULL terminate it. Otherwise it contains junk characters.

char two[6]={0};

With the above mentioned modifications your program works as desired for me.

share|improve this answer
    
I am assuming it is a typo that you call copystuff() and not copy2() in the code given in Q. –  Alok Save Jan 18 '12 at 4:14
    
Thank you very much! But I still have to clarify why does it erase the value of the "one" array, when I do not initialise my source buffer to NULL. Because even if I set the destination buffer size to 6, without initialising my source buffer to NULL I get: one: hello two: one: hello two: hellohello –  inconnu26 Jan 18 '12 at 4:21
    
@user1155340: If your destination buffer has a size(5) less than source(6) then writing 6 bytes to destination buffer results in writing data beyond the bounds of the destination buffer.Probably, the source buffer is placed on stack right after the destination buffer and the extra 1 byte which contains \0 gets written in source buffers location.This makes your source buffer NULL.This is what might be happening but anyways overwriting the bounds of an array results in Undefined Behavior & your program can show any such weird behaviors,which may or may not be explained. –  Alok Save Jan 18 '12 at 6:03
    
@Als Basically everything I said in my answer :) –  Marlon Jan 18 '12 at 8:11
    
@Marlon: Not Really. You missed out on saying that this is Undefined Behavior and actually any behavior could have been seen, While We can only guess at what might happen Theoretically, an UB might result in to anything that need not be even explainable.The behavior post an UB inherently does not warrant any explanation whatsoever.Yes my answers for Q's displaying UB usually do not provide any explanations for that because such behaviors can never be relied upon to base your programs on.Theres only one rule avoid writing any code with UB & if you don't you are doomed with no explanation. –  Alok Save Jan 18 '12 at 8:20

My best guess is that two and one are on the stack next to each other like this:

  t   w   o   -   -   o   n   e   -   -    -
 --------------------------------------------
|   |   |   |   |   | h | e | l | l | o | \0 |
 --------------------------------------------

Since you are overflowing two's buffer by passing size 6 to copy2 when two has size 5, the memory will end up like this:

  t   w   o   -   -   o    n   e   -   -   -
 --------------------------------------------
| h | e | l | l | o | \0 | e | l | l | o | \0 |
 --------------------------------------------

Which is why two appears to hold "hello" and one shows nothing (since two overran its buffer and now the null terminator is the first character in one).

share|improve this answer
    
It is very likely that this is what happens, but it is as much likely that this might not be happening at all.The only definite truth here is it is an Undefined Behavior. –  Alok Save Jan 18 '12 at 8:24

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