86

I need to write a function to convert big endian to little endian in C. I can not use any library function.

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13 Answers 13

152

Assuming what you need is a simple byte swap, try something like

Unsigned 16 bit conversion:

swapped = (num>>8) | (num<<8);

Unsigned 32-bit conversion:

swapped = ((num>>24)&0xff) | // move byte 3 to byte 0
                    ((num<<8)&0xff0000) | // move byte 1 to byte 2
                    ((num>>8)&0xff00) | // move byte 2 to byte 1
                    ((num<<24)&0xff000000); // byte 0 to byte 3

This swaps the byte orders from positions 1234 to 4321. If your input was 0xdeadbeef, a 32-bit endian swap might have output of 0xefbeadde.

The code above should be cleaned up with macros or at least constants instead of magic numbers, but hopefully it helps as is

EDIT: as another answer pointed out, there are platform, OS, and instruction set specific alternatives which can be MUCH faster than the above. In the Linux kernel there are macros (cpu_to_be32 for example) which handle endianness pretty nicely. But these alternatives are specific to their environments. In practice endianness is best dealt with using a blend of available approaches

  • 4
    +1 for mentioning platform/hardware-specific methods. Programs are always run on some hardware, and hardware features are always fastest. – Eonil Jul 31 '12 at 6:47
  • 18
    if the 16 bit conversion is done as ((num & 0xff) >> 8) | (num << 8), gcc 4.8.3 generates a single rol instruction. And if 32 bit conversion is written as ((num & 0xff000000) >> 24) | ((num & 0x00ff0000) >> 8) | ((num & 0x0000ff00) << 8) | (num << 24), same compiler generates a single bswap instruction. – user666412 Apr 30 '15 at 16:51
  • I dont know how efficient this is but Ive swapped the byte order with bitfields like this: struct byte_t reverse(struct byte_t b) { struct byte_t rev; rev.ba = b.bh; rev.bb = b.bg; rev.bc = b.bf; rev.bd = b.be; rev.be = b.bd; rev.bf = b.bc; rev.bg = b.bb; rev.bh = b.ba; return rev;} where this is a bitfield with 8 fields 1 bit each. But I am not sure if thats as fast as the other suggestions. For ints use the union { int i; byte_t[sizeof(int)]; } to reverse byte by byte in the integer. – Ilian Zapryanov Sep 26 '16 at 22:47
  • I think the expression must be: (num >> 8) | (num << 8) to reverse the byte order and NOT: ((num & 0xff) >> 8) | (num << 8), The wrong example gets zero in the low-byte. – j.s.com Feb 24 '17 at 17:14
91

By including:

#include <byteswap.h>

you can get an optimized version of machine-dependent byte-swapping functions. Then, you can easily use the following functions:

__bswap_32 (uint32_t input)

or

__bswap_16 (uint16_t input)
  • 3
    Thanks for your answer, but I can not use any library function – Mark Ransom Aug 5 '11 at 19:03
  • 3
    Should read #include <byteswap.h>, see comment in the .h file itself. This post contains helpful information so I up-voted despite the author ignoring the OP requirement to not use a lib function. – Eli Rosencruft May 20 '12 at 12:48
  • 28
    In fact, the __bswap_32/__bswap_16 functions are in fact macros and not library functions, another reason to up-vote. – Eli Rosencruft May 20 '12 at 13:56
  • 7
    My understanding is that this header is not guaranteed to exist for all operating systems on all architectures. I have yet to find a portable way to deal with endian issues. – Edward Falk Feb 18 '13 at 23:04
  • 1
    doesn't exist on windows - at least not when cross compiling from linux with mingw 32 or 64 bit – bph Jan 20 '16 at 12:44
52
#include <stdint.h>


//! Byte swap unsigned short
uint16_t swap_uint16( uint16_t val ) 
{
    return (val << 8) | (val >> 8 );
}

//! Byte swap short
int16_t swap_int16( int16_t val ) 
{
    return (val << 8) | ((val >> 8) & 0xFF);
}

//! Byte swap unsigned int
uint32_t swap_uint32( uint32_t val )
{
    val = ((val << 8) & 0xFF00FF00 ) | ((val >> 8) & 0xFF00FF ); 
    return (val << 16) | (val >> 16);
}

//! Byte swap int
int32_t swap_int32( int32_t val )
{
    val = ((val << 8) & 0xFF00FF00) | ((val >> 8) & 0xFF00FF ); 
    return (val << 16) | ((val >> 16) & 0xFFFF);
}

Update : Added 64bit byte swapping

int64_t swap_int64( int64_t val )
{
    val = ((val << 8) & 0xFF00FF00FF00FF00ULL ) | ((val >> 8) & 0x00FF00FF00FF00FFULL );
    val = ((val << 16) & 0xFFFF0000FFFF0000ULL ) | ((val >> 16) & 0x0000FFFF0000FFFFULL );
    return (val << 32) | ((val >> 32) & 0xFFFFFFFFULL);
}

uint64_t swap_uint64( uint64_t val )
{
    val = ((val << 8) & 0xFF00FF00FF00FF00ULL ) | ((val >> 8) & 0x00FF00FF00FF00FFULL );
    val = ((val << 16) & 0xFFFF0000FFFF0000ULL ) | ((val >> 16) & 0x0000FFFF0000FFFFULL );
    return (val << 32) | (val >> 32);
}
  • For the int32_t and int64_t variants, what is the reasoning behind the masking of ... & 0xFFFF and ... & 0xFFFFFFFFULL? Is there something going on with sign-extension here I'm not seeing? Also, why is swap_int64 returning uint64_t? Shouldn't that be int64_t? – bgoodr Nov 2 '12 at 14:57
  • 1
    The swap_int64 returning a uint64 is indeed an error. The masking with signed int values is indeed to remove the sign. Shifting right injects the sign bit on the left. We could avoid this by simply calling the unsigned int swapping operation. – chmike Nov 3 '12 at 15:37
  • Thanks. You might want to change the type of the return value for swap_int64 in your answer. +1 for the helpful answer, BTW! – bgoodr Nov 4 '12 at 17:18
  • Is the bitwise and value endian dependent? – MarcusJ May 4 '15 at 21:57
  • The LL are unnecessary in (u)swap_uint64() much like an L is not needed in (u)swap_uint32(). The U is not needed in uswap_uint64() much like the U is not needed in uswap_uint32() – chux Apr 2 '18 at 13:10
11

Here's a fairly generic version; I haven't compiled it, so there are probably typos, but you should get the idea,

void SwapBytes(void *pv, size_t n)
{
    assert(n > 0);

    char *p = pv;
    size_t lo, hi;
    for(lo=0, hi=n-1; hi>lo; lo++, hi--)
    {
        char tmp=p[lo];
        p[lo] = p[hi];
        p[hi] = tmp;
    }
}
#define SWAP(x) SwapBytes(&x, sizeof(x));

NB: This is not optimised for speed or space. It is intended to be clear (easy to debug) and portable.

Update 2018-04-04 Added the assert() to trap the invalid case of n == 0, as spotted by commenter @chux.

  • 1
    you can use xorSwap for better performance. Prefer this generic version above all the size specific ones... – user1115652 Jun 27 '10 at 2:14
  • I tested it, it turns out this is faster than xorSwap... on x86. stackoverflow.com/questions/3128095/… – user1115652 Aug 16 '10 at 13:39
  • 1
    @nus -- One of the advantages of very simple code is that the compiler optimiser can sometimes make it very fast. – Michael J Dec 24 '13 at 6:31
  • @MichaelJ OTOH, the 32 bit version above in chmike's answer gets compiled to a single bswap instruction by a decent X86 compiler with optimisation enabled. This version with a parameter for the size couldn't do that. – Alnitak Apr 21 '17 at 13:37
  • @Alnitak - As I said, I made no effort tp optimise my code. When user nus found that the code ran very fast (in one case) I just mentioned the general idea that simple code can often be highly optimised by a compiler. My code works for a wide variety of cases and it is pretty easy to understand and thus easy to debug. That met my objectives. – Michael J Apr 22 '17 at 13:21
8

If you need macros (e.g. embedded system):

#define SWAP_UINT16(x) (((x) >> 8) | ((x) << 8))
#define SWAP_UINT32(x) (((x) >> 24) | (((x) & 0x00FF0000) >> 8) | (((x) & 0x0000FF00) << 8) | ((x) << 24))
  • These macros are fine, but ((x) >> 24) will fail when a signed integer is between 0x80000000 and 0xffffffff. It's a good idea to use bitwise AND here. Note: ((x) << 24) is perfectly safe. (x) >> 8) will also fail if high 16 bits are nonzero (or a signed 16-bit value is provided). – user1985657 Nov 19 '14 at 14:59
  • 2
    @PacMan-- These macros are intended to be used to swap unsigned integers only. That's why there is the UINT in their name. – kol Nov 19 '14 at 19:06
  • Yes, true, sorry for the noise. Wouldn't it be best to embed a typecast ? – user1985657 Nov 19 '14 at 20:34
7

Edit: These are library functions. Following them is the manual way to do it.

I am absolutely stunned by the number of people unaware of __byteswap_ushort, __byteswap_ulong, and __byteswap_uint64. Sure they are Visual C++ specific, but they compile down to some delicious code on x86/IA-64 architectures. :)

Here's an explicit usage of the bswap instruction, pulled from this page. Note that the intrinsic form above will always be faster than this, I only added it to give an answer without a library routine.

uint32 cq_ntohl(uint32 a) {
    __asm{
        mov eax, a;
        bswap eax; 
    }
}
  • 20
    For a C question, you're suggesting something that's specific to Visual C++? – Alok Singhal Feb 2 '10 at 6:29
  • 3
    @Alok: Visual C++ is a product by Microsoft. It works just fine for compiling C code. :) – Sam Harwell Feb 2 '10 at 6:30
  • 19
    Why does it stun you that many people aren't aware of Microsoft-specific implementations of byteswapping? – dreamlax Feb 2 '10 at 6:32
  • 32
    Cool, that's good info for anyone developing a closed source product which doesn't need to be portable or standards compliant. – Sam Post Feb 2 '10 at 6:38
  • 5
    @Alok, OP did not mention the compiler|OS. A person is allowed to give answers according to his experience with a particular set of tools. – Aniket Inge Nov 5 '12 at 9:04
5

As a joke:


#include <stdio.h>

int main (int argc, char *argv[])
{
    size_t sizeofInt = sizeof (int);
    int i;

    union
    {
        int x;
        char c[sizeof (int)];
    } original, swapped;

    original.x = 0x12345678;

    for (i = 0; i < sizeofInt; i++)
        swapped.c[sizeofInt - i - 1] = original.c[i];

    fprintf (stderr, "%x\n", swapped.x);

    return 0;
}
  • 7
    HAHAHAHAHA. Hahaha. Ha. Ha? (What joke?) – user3139831 Jan 8 '15 at 13:58
  • 3
    did you pull this from some Windows source repository? :) – hochl Nov 30 '16 at 14:24
  • Nodejs uses this technique! github.com/nodejs/node/blob/… – Justin Moser Mar 25 '17 at 22:39
  • Curious to use int i, size_t sizeofInt and not the same type for both. – chux Apr 2 '18 at 13:21
3

Will this work / be faster?

 uint32_t swapped, result;

((byte*)&swapped)[0] = ((byte*)&result)[3];
((byte*)&swapped)[1] = ((byte*)&result)[2];
((byte*)&swapped)[2] = ((byte*)&result)[1];
((byte*)&swapped)[3] = ((byte*)&result)[0];
  • 2
    I think you mean char, not byte. – dreamlax Aug 4 '10 at 21:42
  • Using this strategy, the solution with most votes compared to yours is equivalent and the most efficient and portable. However the solution I propose (second most votes) needs less operations and should be more efficient. – chmike Dec 5 '12 at 9:07
3

here's a way using the SSSE3 instruction pshufb using its Intel intrinsic, assuming you have a multiple of 4 ints:

unsigned int *bswap(unsigned int *destination, unsigned int *source, int length) {
    int i;
    __m128i mask = _mm_set_epi8(12, 13, 14, 15, 8, 9, 10, 11, 4, 5, 6, 7, 0, 1, 2, 3);
    for (i = 0; i < length; i += 4) {
        _mm_storeu_si128((__m128i *)&destination[i],
        _mm_shuffle_epi8(_mm_loadu_si128((__m128i *)&source[i]), mask));
    }
    return destination;
}
1

Here's a function I have been using - tested and works on any basic data type:

//  SwapBytes.h
//
//  Function to perform in-place endian conversion of basic types
//
//  Usage:
//
//    double d;
//    SwapBytes(&d, sizeof(d));
//

inline void SwapBytes(void *source, int size)
{
    typedef unsigned char TwoBytes[2];
    typedef unsigned char FourBytes[4];
    typedef unsigned char EightBytes[8];

    unsigned char temp;

    if(size == 2)
    {
        TwoBytes *src = (TwoBytes *)source;
        temp = (*src)[0];
        (*src)[0] = (*src)[1];
        (*src)[1] = temp;

        return;
    }

    if(size == 4)
    {
        FourBytes *src = (FourBytes *)source;
        temp = (*src)[0];
        (*src)[0] = (*src)[3];
        (*src)[3] = temp;

        temp = (*src)[1];
        (*src)[1] = (*src)[2];
        (*src)[2] = temp;

        return;
    }

    if(size == 8)
    {
        EightBytes *src = (EightBytes *)source;
        temp = (*src)[0];
        (*src)[0] = (*src)[7];
        (*src)[7] = temp;

        temp = (*src)[1];
        (*src)[1] = (*src)[6];
        (*src)[6] = temp;

        temp = (*src)[2];
        (*src)[2] = (*src)[5];
        (*src)[5] = temp;

        temp = (*src)[3];
        (*src)[3] = (*src)[4];
        (*src)[4] = temp;

        return;
    }

}
  • 1
    Code relies on a very reasonable assumption: source is aligned as needed - yet if that assumption does not hold, the code is UB. – chux Apr 2 '18 at 13:34
1

EDIT: This function only swaps the endianness of aligned 16 bit words. A function often necessary for UTF-16/UCS-2 encodings. EDIT END.

If you want to change the endianess of a memory block you can use my blazingly fast approach. Your memory array should have a size that is a multiple of 8.

#include <stddef.h>
#include <limits.h>
#include <stdint.h>

void ChangeMemEndianness(uint64_t *mem, size_t size) 
{
uint64_t m1 = 0xFF00FF00FF00FF00ULL, m2 = m1 >> CHAR_BIT;

size = (size + (sizeof (uint64_t) - 1)) / sizeof (uint64_t);
for(; size; size--, mem++)
  *mem = ((*mem & m1) >> CHAR_BIT) | ((*mem & m2) << CHAR_BIT);
}

This kind of function is useful for changing the endianess of Unicode UCS-2/UTF-16 files.

  • CHAR_BIT #define is missing to make code complete. – Tõnu Samuel Nov 2 '13 at 4:57
  • Ok, I added the missing includes. – Patrick Schlüter Nov 3 '13 at 13:21
  • here is a link to a swap in C++ , I dont know if its as fast as the suggestions but it wokrs: github.com/heatblazer/helpers/blob/master/utils.h – Ilian Zapryanov Sep 27 '16 at 11:50
  • CHAR_BIT instead of 8 is curious as 0xFF00FF00FF00FF00ULL is dependent on CHAR_BIT == 8. Note that LL not needed in the constant. – chux Apr 2 '18 at 13:29
  • You're right chux. Only wrote with CHAR_BIT to augment the exposure of that macro. As for the LL, it's more an annotation than anything else. It's also a habit I catched from a long time ago with buggy compilers (pre standard) which would not do the right thing. – Patrick Schlüter Apr 25 '18 at 15:54
1

This code snippet can convert 32bit little Endian number to Big Endian number.

#include <stdio.h>
main(){    
    unsigned int i = 0xfafbfcfd;
    unsigned int j;    
    j= ((i&0xff000000)>>24)| ((i&0xff0000)>>8) | ((i&0xff00)<<8) | ((i&0xff)<<24);    
    printf("unsigned int j = %x\n ", j);    
}
  • Thanks @YuHao I am new here, don't know how to format the Text. – Kaushal Billore Jul 2 '13 at 11:21
  • Using ((i>>24)&0xff) | ((i>>8)&0xff00) | ((i&0xff00)<<8) | (i<<24); might be faster on some platforms (eg. recycling the AND mask constants). Most compilers would do this, though, but some simple compilers are not able to optimize it for you. – user1985657 Nov 19 '14 at 15:10
-4

If you are running on a x86 or x86_64 processor, the big endian is native. so

for 16 bit values

unsigned short wBigE = value;
unsigned short wLittleE = ((wBigE & 0xFF) << 8) | (wBigE >> 8);

for 32 bit values

unsigned int   iBigE = value;
unsigned int   iLittleE = ((iBigE & 0xFF) << 24)
                        | ((iBigE & 0xFF00) << 8)
                        | ((iBigE >> 8) & 0xFF00)
                        | (iBigE >> 24);

This isn't the most efficient solution unless the compiler recognises that this is byte level manipulation and generates byte swapping code. But it doesn't depend on any memory layout tricks and can be turned into a macro pretty easily.

  • 22
    On x86 and x86_64 architectures the little endian scheme is the native one. – M.K. aka Grisu Feb 5 '14 at 11:42

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