Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I need to work with a binary number.

I tried writing:

const x = 00010000 ;

But it didn't work.

I know that I can use an hexadecimal number that has the same value as 00010000 but I want to know if there is a type in C++ for binary numbers & if there isn't, is there another solution for my problem?

share|improve this question
25  
You know that 00010000 is octal, right? (And your declaration is missing a type.) –  Keith Thompson Sep 28 '11 at 2:32
    
Here modern way using C++ literals. –  Lol4t0 May 14 '13 at 16:11
    
I would consider using hex. As you see below, it's just a more compressed form of binary, and you're far less likely to swap a 0 and 1. –  Joel May 20 '13 at 21:15
1  
C++14 added a feature for this. See my new answer for more details at the bottom. Of course, it does require a compiler that implements it. –  lpapp Dec 24 '13 at 3:20

15 Answers 15

up vote 46 down vote accepted

You can use BOOST_BINARY while waiting for C++0x. :) BOOST_BINARY arguably has an advantage over template implementation insofar as it can be used in C programs as well (it is 100% preprocessor-driven.)

UPDATE

To do the converse (i.e. print out a number in binary form), you can use the non-portable itoa function, or implement your own.

Unfortunately you cannot do base 2 formatting with STL streams (since setbase will only honour bases 8, 10 and 16), but you can use either a std::string version of itoa, or (the more concise, yet marginally less efficient) std::bitset.

(Thank you Roger for the bitset tip!)

#include <boost/utility/binary.hpp>
#include <stdio.h>
#include <stdlib.h>
#include <bitset>
#include <iostream>
#include <iomanip>

using namespace std;

int main() {
  unsigned short b = BOOST_BINARY( 10010 );
  char buf[sizeof(b)*8+1];
  printf("hex: %04x, dec: %u, oct: %06o, bin: %16s\n", b, b, b, itoa(b, buf, 2));
  cout << setfill('0') <<
    "hex: " << hex << setw(4) << b << ", " <<
    "dec: " << dec << b << ", " <<
    "oct: " << oct << setw(6) << b << ", " <<
    "bin: " << bitset< 16 >(b) << endl;
  return 0;
}

produces:

hex: 0012, dec: 18, oct: 000022, bin:            10010
hex: 0012, dec: 18, oct: 000022, bin: 0000000000010010

Also read Herb Sutter's The String Formatters of Manor Farm for an interesting discussion.

share|improve this answer
2  
I think this is the best answer –  Ray Hidayat Apr 10 '10 at 1:35
2  
As the very page to which you link says, you may only use 8, 10, or 16 with setbase. However: int main() { cout << bitset<8>(42); } –  Roger Pate Apr 10 '10 at 2:40
    
@Roger thanks for the bitset tip, I already corrected the bit about setbase before I saw your comment though. –  vladr Apr 10 '10 at 2:50
4  
setw only affects the next value to be printed (no need to reset). –  UncleBens Apr 10 '10 at 10:02
    
@UncleBens quite true. Updated accordingly, thanks! –  vladr Apr 10 '10 at 16:47

If you are using GCC then you can use GCC extension for this:

int x = 0b00010000;
share|improve this answer
1  
Several other compilers have this or other similar ways of expressing numbers in base 2. –  nategoose Apr 12 '10 at 21:20
2  
Would be nice to have this standardized, but clang supports the same notation. –  polemon Apr 11 '11 at 12:37
9  
It works in Clang, GCC, and TCC. It doesn't work in PCC. I doesn't have any other compiler to test with. –  Michas Jun 20 '11 at 16:05
1  
I've seen a number of embedded-systems compilers that support it. I don't know any particular reason it shouldn't be a standard language feature. –  supercat Aug 1 '11 at 21:34
4  
@polemon open-std.org/jtc1/sc22/wg21/docs/papers/2012/n3472.pdf (C++14.) –  Jonathan Baldwin Jan 17 '14 at 11:21
template<unsigned long N>
struct bin {
    enum { value = (N%10)+2*bin<N/10>::value };
} ;

template<>
struct bin<0> {
    enum { value = 0 };
} ;

// ...
    std::cout << bin<1000>::value << '\n';

The leftmost digit of the literal still has to be 1, but nonetheless.

share|improve this answer
13  
+1, bravo. I don't think you quite answered the question, but bravo. –  Stephen Apr 10 '10 at 1:35
    
</3 :::::::::::: –  wilhelmtell Apr 10 '10 at 1:42
2  
+1 for nifty template –  Till Apr 10 '10 at 2:05
3  
Better version: bitbucket.org/kniht/scraps/src/tip/cpp/binary.hpp (binary<10>::value == binary<010>::value and some error checking) –  Roger Pate Apr 10 '10 at 2:30
2  
A better version of this template idea: code.google.com/p/cpp-binary-constants –  Valentin Galea Feb 13 '12 at 21:00

This thread may help.

/* Helper macros */
#define HEX__(n) 0x##n##LU
#define B8__(x) ((x&0x0000000FLU)?1:0) \
+((x&0x000000F0LU)?2:0) \
+((x&0x00000F00LU)?4:0) \
+((x&0x0000F000LU)?8:0) \
+((x&0x000F0000LU)?16:0) \
+((x&0x00F00000LU)?32:0) \
+((x&0x0F000000LU)?64:0) \
+((x&0xF0000000LU)?128:0)

/* User macros */
#define B8(d) ((unsigned char)B8__(HEX__(d)))
#define B16(dmsb,dlsb) (((unsigned short)B8(dmsb)<<8) \
+ B8(dlsb))
#define B32(dmsb,db2,db3,dlsb) (((unsigned long)B8(dmsb)<<24) \
+ ((unsigned long)B8(db2)<<16) \
+ ((unsigned long)B8(db3)<<8) \
+ B8(dlsb))


#include <stdio.h>

int main(void)
{
    // 261, evaluated at compile-time
    unsigned const number = B16(00000001,00000101);

    printf("%d \n", number);
    return 0;
}

It works! (All the credits go to Tom Torfs.)

share|improve this answer
    
i did not really understand ( i m a beginner in programming & specially in C++) but it seems interesting so i will try to understand it after some more C++ studies , thanks –  hamza Apr 10 '10 at 0:57
3  
The B8 macro works by converting the "binary" literal to a hex literal and extracting every 4th bit. –  dan04 Apr 10 '10 at 1:04
    
I wonder what 0x##n##LU means? Never encountered such syntax. –  Federico A. Ramponi Apr 10 '10 at 1:07
    
@hamza: it is indeed rather intricate. But what you need to understand is just from #include<stdio> onwards. –  Federico A. Ramponi Apr 10 '10 at 1:10
7  
@Federico: The ## preprocessor operator pastes tokens together. So, in this case, if you call HEX__(10), it expands to 0x10LU. –  James McNellis Apr 10 '10 at 1:13

A few compilers (usually Microcontroller's ones) has a special feature implemented within recognizing literal binary numbers by prefix "0b..." preceding the number, although most compilers (C/C++ standards) don't have such feature and if it is the case, here it is my alternative solution:

#define B_0000  0
#define B_0001  1
#define B_0010  2
#define B_0011  3
#define B_0100  4
#define B_0101  5
#define B_0110  6
#define B_0111  7
#define B_1000  8
#define B_1001  9
#define B_1010  a
#define B_1011  b
#define B_1100  c
#define B_1101  d
#define B_1110  e
#define B_1111  f

#define _B2H(bits)  B_##bits
#define B2H(bits)   _B2H(bits)
#define _HEX(n)     0x##n
#define HEX(n)      _HEX(n)
#define _CCAT(a,b)  a##b
#define CCAT(a,b)   _CCAT(a,b)

#define BYTE(a,b)       HEX( CCAT(B2H(a),B2H(b)) )
#define WORD(a,b,c,d)   HEX( CCAT(CCAT(B2H(a),B2H(b)),CCAT(B2H(c),B2H(d))) )
#define DWORD(a,b,c,d,e,f,g,h)  HEX( CCAT(CCAT(CCAT(B2H(a),B2H(b)),CCAT(B2H(c),B2H(d))),CCAT(CCAT(B2H(e),B2H(f)),CCAT(B2H(g),B2H(h)))) )

//using example
char b = BYTE(0100,0001); //equivalent to b = 65; or b = 'A'; or b = 0x41;
unsigned int w = WORD(1101,1111,0100,0011); //equivalent to w = 57155; or w = 0xdf43;
unsigned long int dw = DWORD(1101,1111,0100,0011,1111,1101,0010,1000); //equivalent to dw = 3745774888; or dw = 0xdf43fd28;

Disadvantages: (it's not such a big ones)
- The binary numbers have to be grouped 4 by 4;
- The binary literals have to be only unsigned integer numbers;

Advantages:
- Total preprocessor driven, not spending processor time in pointless operations (like "?.. :..", "<<", "+") to the executable program (it may be performed hundred of times in the final application);
- It works "mainly in C" compilers and C++ as well (template+enum solution works only in C++ compilers);
- It has only the limitation of "longness" for expressing "literal constant" values. There would have been earlyish longness limitation (usually 8bits:0-255) if one had expressed constant values by parsing resolve of "enum solution"(usually 255 = reach enum definition limit), differently, "literal constant" limitations, in the compiler allows greater numbers;
- Some other solutions demand exagerated number of constant definitions (too much define's in my opinion) including long or several header files (in most cases not easily readable and understandable, and make the project become unnecessarily confused and extended, like that using "BOOST_BINARY()");
- Simplicity of the solution: easily readable, understandable and adjustable for other cases (could be extended for grouping 8 by 8 too);

I hope it helps, thanks. Renato Chandelier.

share|improve this answer

C does not have native notation for pure binary numbers. Your best bet here would be either octal (e.g. 07777) of hexadecimal (e.g. 0xfff).

share|improve this answer

As already answered, there is no way to directly write binary numbers. However, one popular workaround is to include a header file with helper macros. One easy option is also to generate a file that includes macro definitions for all 8-bit patterns, e.g.:

#define B00000000 0
#define B00000001 1
#define B00000010 2
…

This results in only 256 #defines, and if larger than 8-bit binary constants are needed, these definitions can be combined with shifts and ORs, possibly with helper macros (e.g., BIN16(B00000001,B00001010)).

Of course the downside is that this syntax requires writing all the leading zeroes, but this may also make it clearer for uses like setting bit flags and contents of hardware registers. For a function-like macro resulting in a syntax without this property, see bithacks.h linked above.

share|improve this answer
2  
So, how large a file would the CPP need to read if you had all the macros for a long long int? –  wilhelmtell Apr 10 '10 at 2:03
1  
@wilhelmtell: And what is the relevance of that when I specified “all 8-bit patterns” (= 256 lines), and suggested combining larger quantities from those? Even the BOOST_BINARY of the accepted answer defines all 8-bit patterns in the header… –  Arkku Apr 10 '10 at 14:12
    
(I find it a bit strange that this answer is still getting downvotes two years later, especially when my first suggestion is to include a library header not fundamentally different from the one in the accepted answer, and my second suggestion is to generate 256 macros for 8-bit constants, which is a smaller number of #defines than in the BOOST_BINARY header…) –  Arkku Jun 29 '12 at 15:15

The smallest unit you can work with is a byte (which is of char type). You can work with bits though by using bitwise operators.

As for integer literals, you can only work with decimal (base 10), octal (base 8) or hexadecimal (base 16) numbers. There are no binary (base 2) literals in C nor C++.

Octal numbers are prefixed with 0 and hexadecimal numbers are prefixed with 0x. Decimal numbers have no prefix.

In C++0x you'll be able to do what you want by the way via user defined literals.

share|improve this answer
    
can i at least show the Binary value of an hexadecimal in a print or a cout function ? –  hamza Apr 10 '10 at 1:48
    
Yes you can <shameless_plug> stackoverflow.com/questions/2611764#2611883 </shameless_plug> –  vladr Apr 10 '10 at 2:05
3  
Some C compilers support 0b100101 for binary literals, but it is a nonstandard extension, unfortunately. –  Joey Adams Apr 10 '10 at 3:10
1  
Note that, while it's not defined in the standard, some compilers (notably ones for microcontrollers and embedded systems) add the syntax for binary in the form 0b00101010 as a convenience. SDCC is one, and I'm sure there are others that do, too. (Edit: Hah, beat me to it, @Joey!) –  Matt B. Apr 10 '10 at 3:13
2  
And GCC, too, since 4.3: gcc.gnu.org/gcc-4.3/changes.html –  Matt B. Apr 10 '10 at 3:20

You can use the function found in this question to get up to 22 bits in C++. Here's the code from the link, suitably edited:

template< unsigned long long N >
struct binary
{
  enum { value = (N % 8) + 2 * binary< N / 8 > :: value } ;
};

template<>
struct binary< 0 >
{
  enum { value = 0 } ;
};

So you can do something like binary<0101011011>::value.

share|improve this answer
1  
+1 i prefer your answer over @wilhelmtell's one, because leading 0s aren't significant whereas 1s are –  BlackBear Sep 27 '11 at 13:54

The C++ over-engineering mindset is already well accounted for in the other answers here. Here's my attempt at doing it with a C, keep-it-simple-ffs mindset:

unsigned char x = 0xF; // binary: 00001111
share|improve this answer

Based on some other answers, but this one will reject programs with illegal binary literals. Leading zeroes are optional.

template<bool> struct BinaryLiteralDigit;

template<> struct BinaryLiteralDigit<true> {
    static bool const value = true;
};

template<unsigned long long int OCT, unsigned long long int HEX>
struct BinaryLiteral {
    enum {
        value = (BinaryLiteralDigit<(OCT%8 < 2)>::value && BinaryLiteralDigit<(HEX >= 0)>::value
            ? (OCT%8) + (BinaryLiteral<OCT/8, 0>::value << 1)
            : -1)
    };
};

template<>
struct BinaryLiteral<0, 0> {
    enum {
        value = 0
    };
};

#define BINARY_LITERAL(n) BinaryLiteral<0##n##LU, 0x##n##LU>::value

Example:

#define B BINARY_LITERAL

#define COMPILE_ERRORS 0

int main (int argc, char ** argv) {
    int _0s[] = { 0, B(0), B(00), B(000) };
    int _1s[] = { 1, B(1), B(01), B(001) };
    int _2s[] = { 2, B(10), B(010), B(0010) };
    int _3s[] = { 3, B(11), B(011), B(0011) };
    int _4s[] = { 4, B(100), B(0100), B(00100) };

    int neg8s[] = { -8, -B(1000) };

#if COMPILE_ERRORS
    int errors[] = { B(-1), B(2), B(9), B(1234567) };
#endif

    return 0;
}
share|improve this answer
    
+1 There are some drawbacks, but overall this is a good solution. The interesting part to me is that it fails to reject not only things that are clearly invalid (such as B(/2)) or reasonable but not binary (such as B(+2)), but also B(-001000000000000000000000) (when unsigned long long is 64-bits) even though all other negative binary numbers are rejected. Furthermore, it is equal to B(001000000000000000000000), not -B(001000000000000000000000) and larger binary numbers can be defined, such as -B(001111111111111111111111). –  jerry May 20 '13 at 20:13
    
@jerry: Thanks for pointing out those flaws. I updated the code to deal with at least some of those problems. A flaw that still exists is something like this B(1+0). I'm not sure how to deal with that, nor am I sure if C++ can deal with it. In any case, I believe one has to try to do something dumb now. –  Thomas Eding May 20 '13 at 21:07

The "type" of a binary number is the same as any decimal, hex or octal number: int (or even char, short, long long).

When you assign a constant, you can't assign it with 11011011 (curiously and unfortunately), but you can use hex. Hex is a little easier to mentally translate. Chunk in nibbles (4 bits) and translate to a character in [0-9a-f].

share|improve this answer

I would prefer:

bitset<8> b(string("00010000"));
share|improve this answer

You can also use inline assembly like this:

int i;

__asm {
    mov eax, 00000000000000000000000000000000b
    mov i,   eax
}

std::cout << i;

Okay, it might be somewhat overkill, but it works :)

share|improve this answer

C++ provide a standard template named bitset. Try it if you like.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.