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I am working on below code:

#include<iostream>
#include<stdio.h>

using namespace std;

main() {
    unsigned char a;
    a=1;
    printf("%d", a);
    cout<<a;
}

It is printing 1 and some garbage.

Why cout is behaving so?

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1  
An unsigned char is not an int. Why are you telling printf it is? –  chris Mar 23 '13 at 9:39
    
What would you expect from sending a binary 1 to stout? –  Udo Klein Mar 23 '13 at 9:40
1  
@chris unsigned char will be promoted to unsigned in a printf call, so the code is acceptable. –  john Mar 23 '13 at 10:14
    
@john, Ah, silly me. I thought there was one for unsigned char because of the char one, but that just ends up making no sense really. Thanks for clearing it up. –  chris Mar 23 '13 at 10:22
    
the 32 first character codes are control codes and are non-printable –  Lưu Vĩnh Phúc Jun 24 at 4:27

2 Answers 2

cout << a is printing a value which appears to be garbage to you. It is not garbage actually. It is justa a non-printable ASCII character which is getting printed anyway. Note that ascii character corresponding to 1 is non-printable. You can check whether a is printable or not using, std::isprint as:

std::cout << std::isprint(a) << std::endl;

It will print 0 (or false) indicating the character is non-printable

--

Anyway, if you want your cout to print 1 also, then cast a to this:

cout << static_cast<unsigned>(a) << std::endl;
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You need to typecast a as integer as cout<< (int)(a);. With this you will observe 1 on the output. With cout << a;, the print will be SOH (Start of Heading) corresponding to ascii value of 1 which can't be printed and hence, some special character is observed.

EDIT:

To be more accurate, the cout statement should be cout << static_cast<unsigned>(a) as Nawaz has mentioned.

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