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I have a weird problem about working with integers in c++.

I wrote a simple program that set a value to a variable and then print that , but that is not working as expected.

My program is only two lines of code:

uint8_t aa=5;

cout<<"value is "<<aa<<endl;

The output of this program is value is

i.e. it prints blank for aa.

when i change uint8_t to uint16_t the above code works like a charm.

I use Ubuntu 12.04 (64 bit) and my compiler version is :gcc version 4.6.3 (Ubuntu/Linaro 4.6.3-1ubuntu5)

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6 Answers 6

up vote 37 down vote accepted

It doesn't really print a blank, but most probably the ASCII character with value 5, which is invisible. There's a number of invisible ASCII character codes, most of them below value 32, which is the blank actually.

You have to convert aa to unsigned int to output the numeric value, since ostream& operator<<(ostream&, unsigned char) tries to output the visible character value.

uint8_t aa=5;

cout << "value is " << unsigned(aa) << endl;
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11  
Since C style casts are frowned upon, wouldn't it be better to do a static_cast? –  Tim Seguine Oct 24 '13 at 12:09
6  
It should be converted to int. A cast is one way to do that, but not the only way. +aa also works. –  Pete Becker Oct 24 '13 at 14:07
2  
That, too; it's a function-style cast. –  Pete Becker Oct 24 '13 at 14:53
22  
The static_cast will tell everyone reading the code: "hey, look how ridiculous C++ can be"... and that is a good thing. –  rubenvb Oct 24 '13 at 15:02
4  
See the linked question using type(var) is the same as (type)var its the same as the C cast - try it out with const etc, it removes it! –  paulm Feb 17 '14 at 23:27

uint8_t will most likely be a typedef for unsigned char. The ostream class has a special overload for unsigned char, i.e. it prints the character with the number 5, which is non-printable, hence the empty space.

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2  
char and unsigned char are different types –  BЈовић Oct 24 '13 at 12:18
    
Thanks for spotting this. I updated the answer. –  arne Oct 24 '13 at 12:19

It's because the output operator treats the uint8_t like a char (uint8_t is usually just an alias for unsigned char), so it prints the character with the ASCII code (which is the most common character encoding system) 5.

See e.g. this reference.

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cout is treating aa as char of ASCII value 5 which is an unprintable character, try typecasting to int before printing.

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Making use of ADL (Argument-dependent name lookup):

#include <iostream>
#include <typeinfo>
#include <cinttypes>

namespace numerical_chars {
inline std::ostream &operator<<(std::ostream &os, char c) {
    return os << (std::is_signed<char>::value ? static_cast<int>(c)
                                              : static_cast<unsigned int>(c));
}

inline std::ostream &operator<<(std::ostream &os, signed char c) {
    return os << static_cast<int>(c);
}

inline std::ostream &operator<<(std::ostream &os, unsigned char c) {
    return os << static_cast<unsigned int>(c);
}
}

int main() {
    using namespace std;

    uint8_t i = 42;

    {
        cout << i << endl;
    }

    {
        using namespace numerical_chars;
        cout << i << endl;
    }
}

output:

*
42

A custom stream manipulator would also be possible.

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2  
Isn't KISS still a valid paradigm?? –  πάντα ῥεῖ Jan 30 '14 at 0:58
    
@πάνταῥεῖ of course, but don't forget: Everything Should Be Made as Simple as Possible, But Not Simpler –  pepper_chico Jan 30 '14 at 1:22
    
@πάνταῥεῖ anyway, this is here just to provide an option, one can choose to just include a header for that and then add a using statement once, or opt to cast all over the place where it's needed. –  pepper_chico Jan 30 '14 at 1:26
2  
@πάνταῥεῖ ok, keep doing tons of c style casts in c++ code then, anyone is free to be productive the way it is, in the environment that he/she fits the most. –  pepper_chico Jan 30 '14 at 2:13
3  
@πάνταῥεῖ seriously? functional style cast, also, is just c style casting. changing one from the other doesn't help in anything in leaving the realm of C, check: stackoverflow.com/a/4775807/1000282. pete-becker commented this on your answer too, but you seem to have missed his last comment. –  pepper_chico Jan 30 '14 at 2:58

As others said before the problem occurs because standard stream treats signed char and unsigned char as single characters and not as numbers.

Here is my solution with minimal code changes:

uint8_t aa = 5;

cout << "value is " << aa + 0 << endl;

Adding "+0" is safe with any number including floating point.

For integer types it will change type of result to int if sizeof(aa) < sizeof(int). And it will not change type if sizeof(aa) >= sizeof(int).

This solution is also good for preparing int8_t to be printed to stream while some other solutions are not so good:

int8_t aa = -120;

cout << "value is " << aa + 0 << endl;
cout << "bad value is " << unsigned(aa) << endl;

Output:

value is -120
bad value is 4294967176

P.S. Solution with ADL given by pepper_chico and πάντα ῥεῖ is really beautiful.

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