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Is there a programmatic way to detect whether or not you are on a big-endian or little-endian architecture? I need to be able to write code that will execute on an Intel or PPC system and use exactly the same code (i.e. no conditional compilation).

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3  
For the sake of completeness, here is a link to someone else's question about trying to gauge endianness (at compile time): stackoverflow.com/questions/280162/… –  Faisal Vali Jun 16 '09 at 13:52
5  
Why not determine endianness at compile-time? It can't possibly change at runtime. –  ephemient Jun 20 '09 at 20:31
1  
AFAIK, there's no reliable and universal way to do that. gcc.gnu.org/ml/gcc-help/2007-07/msg00342.html –  user48956 Aug 13 '10 at 21:35

23 Answers 23

I don't like the method based on type punning - it will often be warned against by compiler. That's exactly what unions are for !

int is_big_endian(void)
{
    union {
        uint32_t i;
        char c[4];
    } bint = {0x01020304};

    return bint.c[0] == 1; 
}

The principle is equivalent to the type case as suggested by others, but this is clearer - and according to C99, is guaranteed to be correct. gcc prefers this compared to the direct pointer cast.

This is also much better than fixing the endianness at compile time - for OS which support multi-architecture (fat binary on Mac os x for example), this will work for both ppc/i386, whereas it is very easy to mess things up otherwise.

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17  
I don't recommend naming a variable "bint" :) –  mkb Jun 16 '09 at 13:22
8  
are you sure this is well defined? In C++ only one member of the union can be active at one time - i.e you can not assign using one member-name and read using another (although there is an exception for layout compatible structs) –  Faisal Vali Jun 16 '09 at 13:46
7  
@Matt: I looked into Google, and bint seems to have a meaning in English that I was not aware of :) –  David Cournapeau Jun 16 '09 at 14:34
10  
I've tested this, and in both gcc 4.0.1 and gcc 4.4.1 the result of this function can be determined at compile time and treated as a constant. This means that the compiler will drop if branches that depend solely on the result of this function and will never be taken on the platform in question. This is likely not true of many implementations of htonl. –  Omnifarious Sep 10 '09 at 5:25
17  
God Bless GCC™. –  LiraNuna Oct 19 '09 at 3:15

You can do it by setting an int and masking off bits, but probably the easiest way is just to use the built in network byte conversion ops (since network byte order is always big endian).

if ( htonl(47) == 47 ) {
  // Big endian
} else {
  // Little endian.
}

Bit fiddling could be faster, but this way is simple, straightforward and pretty impossible to mess up.

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The network conversion ops can also be used to convert everything to big endian, thus solving other problems Jay may be encountering. –  Brian Jun 16 '09 at 13:15
3  
@sharptooth - slow is a relative term, but yes, if speed is really an issue, use it once at the start of the program and set a global variable with the endianness. –  Eric Petroelje Jun 16 '09 at 13:23
1  
htonl has another problem: on some platforms (windows ?), it does not reside in the C runtime library proper, but in additional, network related libraries (socket, etc...). This is quite an hindrance for just one function if you don't need the library otherwise. –  David Cournapeau Jul 7 '09 at 5:00
4  
Note that on Linux (gcc), htonl is subject to constant folding at compile time, so an expression of this form has no runtime overhead at all (ie it is constant-folded to 1 or 0, and then dead-code elimination removes the other branch of the if) –  bdonlan Dec 6 '11 at 20:16
1  
Also, on x86 htonl can be (and is, on Linux/gcc) implemented very efficiently using inline assembler, particularly if you target a micro-architecture with support for the BSWAP operation. –  bdonlan Dec 6 '11 at 20:18

Please see this article:

Here is some code to determine what is the type of your machine

int num = 1;
if(*(char *)&num == 1)
{
    printf("\nLittle-Endian\n");
}
else
{
    printf("Big-Endian\n");
}
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its easier than htonl stuff..we dont need any library ..cool –  Warrior Jun 16 '09 at 13:38
6  
Bear in mind that it depends on int and char being different lengths, which is almost always the case but not guaranteed. –  David Thornley Jun 16 '09 at 13:45
    
@David - very true but I would be surprised to learn of any architecture that would have ints and chars be the same size. Still, it is an important point to never make assumptions about stuff like this. –  Andrew Hare Jun 16 '09 at 13:51
    
Does this method rely on the fact that the code is always compiled on the same architecture? –  Janusz Jun 16 '09 at 15:11
4  
I've worked on embedded systems where short int and char were the same size... I can't remember if regular int was also that size (2 bytes) or not. –  rmeador Jun 16 '09 at 15:14

Ehm... It surprises me that noone has realized that the compiler will simply optimize the test out, and will put a fixed result as return value. This renders all code examples above, effectively useless. The only thing that would be returned is the endianness at compile-time! And yes, I tested all of the above examples. Here's an example with MSVC 9.0 (Visual Studio 2008).

Pure C code

int32 DNA_GetEndianness(void)
{
    union 
    {
        uint8  c[4];
        uint32 i;
    } u;

    u.i = 0x01020304;

    if (0x04 == u.c[0])
        return DNA_ENDIAN_LITTLE;
    else if (0x01 == u.c[0])
        return DNA_ENDIAN_BIG;
    else
        return DNA_ENDIAN_UNKNOWN;
}

Disassembly

PUBLIC  _DNA_GetEndianness
; Function compile flags: /Ogtpy
; File c:\development\dna\source\libraries\dna\endian.c
;   COMDAT _DNA_GetEndianness
_TEXT   SEGMENT
_DNA_GetEndianness PROC                 ; COMDAT

; 11   :     union 
; 12   :     {
; 13   :         uint8  c[4];
; 14   :         uint32 i;
; 15   :     } u;
; 16   : 
; 17   :     u.i = 1;
; 18   : 
; 19   :     if (1 == u.c[0])
; 20   :         return DNA_ENDIAN_LITTLE;

    mov eax, 1

; 21   :     else if (1 == u.c[3])
; 22   :         return DNA_ENDIAN_BIG;
; 23   :     else
; 24   :        return DNA_ENDIAN_UNKNOWN;
; 25   : }

    ret
_DNA_GetEndianness ENDP
END

Perhaps it is possible to turn off ANY compile-time optimization for just this function, but I don't know. Otherwise it's maybe possible to hardcode it in assembly, although that's not portable. And even then even that might get optimized out. It makes me think I need some really crappy assembler, implement the same code for all existing CPUs/instruction sets, and well.... never mind.

Also, someone here said that endianness does not change during run-time. WRONG. There are bi-endian machines out there. Their endianness can vary durng execution. ALSO, there's not only Little Endian and Big Endian, but also other endiannesses (what a word).

I hate and love coding at the same time...

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3  
Don't you have to recompile to run on a different platform anyway? –  bobobobo Aug 30 '11 at 18:56
2  
Although it works well for MSVC, it doesn't for all GCC version in all circumstances. Hence, a "run-time check" inside a critical loop may be correctly un-branched at compile-time, or not. There's no 100% guarantee. –  Cyan Jan 28 '12 at 10:53
    
@bobobobo Not necessarily, I could compile on a weird version of Ubuntu for a big-endian x86 processor and then put the program on Ubuntu for a little-endian x86 processor. Them both being x86 means the byte code is the same to the processor and as such, integers will be interpereted differently. –  Cole Johnson Nov 17 '12 at 3:35
10  
There is no such thing as a big-endian x86 processor. Even if you run Ubuntu on a biendian processor (like ARM or MIPS) the ELF executables are always either big (MSB) or little (LSB) endian. No biendian executables can be created so no runtime checks are needed. –  Fabel Nov 25 '12 at 15:18

Declare an int variable:

int variable = 0xFF;

Now use char* pointers to various parts of it and check what is in those parts.

char* startPart = reinterpret_cast<char*>( &variable );
char* endPart = reinterpret_cast<char*>( &variable ) + sizeof( int ) - 1;

Depending on which one points to 0xFF byte now you can detect endianness. This requires sizeof( int ) > sizeof( char ), but it's definitely true for the discussed platforms.

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I surprised no-one has mentioned the macros which the pre-processor defines by default. While these will vary depending on your platform; they are much cleaner than having to write your own endian-check.

For example; if we look at the built-in macros which GCC defines (on an X86-64 machine):

:| gcc -dM -E -x c - |grep -i endian
#define __LITTLE_ENDIAN__ 1

On a PPC machine I get:

:| gcc -dM -E -x c - |grep -i endian
#define __BIG_ENDIAN__ 1
#define _BIG_ENDIAN 1

(The :| gcc -dM -E -x c - magic prints out all built-in macros).

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2  
These macros do not show up consistently at all. For example, in gcc 4.4.5 from the Redhat 6 repo, running echo "\n" | gcc -x c -E -dM - |& grep -i 'endian' returns nothing, whereas gcc 3.4.3 (from /usr/sfw/bin anyway) in Solaris has a definition along these lines. I've seen similar issues on VxWorks Tornado (gcc 2.95) -vs- VxWorks Workbench (gcc 3.4.4). –  Brian Vandenberg Sep 30 '11 at 18:21

For further details, you may want to check out this codeproject article Basic concepts on Endianness:

How to dynamically test for the Endian type at run time?

As explained in Computer Animation FAQ, you can use the following function to see if your code is running on a Little- or Big-Endian system: Collapse

#define BIG_ENDIAN      0
#define LITTLE_ENDIAN   1
int TestByteOrder()
{
   short int word = 0x0001;
   char *byte = (char *) &word;
   return(byte[0] ? LITTLE_ENDIAN : BIG_ENDIAN);
}

This code assigns the value 0001h to a 16-bit integer. A char pointer is then assigned to point at the first (least-significant) byte of the integer value. If the first byte of the integer is 0x01h, then the system is Little-Endian (the 0x01h is in the lowest, or least-significant, address). If it is 0x00h then the system is Big-Endian.

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union {
    int i;
    char c[sizeof(int)];
} x;
x.i = 1;
if(x.c[0] == 1)
    printf("little-endian\n");
else    printf("big-endian\n");

This is another solution. Similar to Andrew Hare's solution.

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Unless you're using a framework that has been ported to PPC and Intel processors, you will have to do conditional compiles, since PPC and Intel platforms have completely different hardware architectures, pipelines, busses, etc. This renders the assembly code completely different between the two.

As for finding endianness, do the following:

short temp = 0x1234;
char* tempChar = (char*)&temp;

You will either get tempChar to be 0x12 or 0x34, from which you will know the endianness.

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1  
This relies on short being exactly 2 bytes which is not guaranteed. –  sharptooth Jun 16 '09 at 13:06
3  
It'd be a pretty safe bet though based on the two architectures given in the question though. –  Daemin Jun 16 '09 at 13:15

This is normally done at compile time (specially for performance reason) by using the header files available from the compiler or create your own. On linux you have the header file "/usr/include/endian.h"

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I would do something like this:

bool isBigEndian() {
    static unsigned long x(1);
    static bool result(reinterpret_cast<unsigned char*>(&x)[0] == 0);
    return result;
}

Along these lines, you would get a time efficient function that only does the calculation once.

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can you inline it? not sure if inline cause multiple memory blocks of the static variables –  aah134 Aug 2 '13 at 15:58
bool isBigEndian()
{
    static const uint16_t m_endianCheck(0x00ff);
    return ( *((uint8_t*)&m_endianCheck) == 0x0); 
}
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Would this be equivalent? #define IS_BIGENDIAN() (*((char*) &((int){ 0x00ff })) == (0x00)) –  Emanuel Feb 9 '13 at 16:45
int i=1;
char *c=(char*)&i;
bool littleendian=c;
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How about this?

#include <cstdio>

int main()
{
    unsigned int n = 1;
    char *p = 0;

    p = (char*)&n;
    if (*p == 1)
    	std::printf("Little Endian\n");
    else 
    	if (*(p + sizeof(int) - 1) == 1)
    		std::printf("Big Endian\n");
    	else
    		std::printf("What the crap?\n");
    return 0;
}
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As stated above, use union tricks.

There are few problems with the ones advised above though, most notably that unaligned memory access is notoriously slow for most architectures, and some compilers won't even recognize such constant predicates at all, unless word aligned.

Because mere endian test is boring, here goes (template) function which will flip the input/output of arbitrary integer according to your spec, regardless of host architecture.

#include <stdint.h>

#define BIG_ENDIAN 1
#define LITTLE_ENDIAN 0

template <typename T>
T endian(T w, uint32_t endian)
{
    // this gets optimized out into if (endian == host_endian) return w;
    union { uint64_t quad; uint32_t islittle; } t;
    t.quad = 1;
    if (t.islittle ^ endian) return w;
    T r = 0;

    // decent compilers will unroll this (gcc)
    // or even convert straight into single bswap (clang)
    for (int i = 0; i < sizeof(r); i++) {
        r <<= 8;
        r |= w & 0xff;
        w >>= 8;
    }
    return r;
};

Usage:

To convert from given endian to host, use:

host = endian(source, endian_of_source)

To convert from host endian to given endian, use:

output = endian(hostsource, endian_you_want_to_output)

The resulting code is as fast as writing hand assembly on clang, on gcc it's tad slower (unrolled &,<<,>>,| for every byte) but still decent.

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See Endianness - C-Level Code illustration.

// assuming target architecture is 32-bit = 4-Bytes
enum ENDIANESS{ LITTLEENDIAN , BIGENDIAN , UNHANDLE };


ENDIANESS CheckArchEndianalityV1( void )
{
    int Endian = 0x00000001; // assuming target architecture is 32-bit    

    // as Endian = 0x00000001 so MSB (Most Significant Byte) = 0x00 and LSB (Least     Significant Byte) = 0x01
    // casting down to a single byte value LSB discarding higher bytes    

    return (*(char *) &Endian == 0x01) ? LITTLEENDIAN : BIGENDIAN;
}
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You can also do this via the preprocessor using something like boost header file which can be found boost endian

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Here's another C version. It defines a macro called wicked_cast() for inline type punning via C99 union literals and the non-standard __typeof__ operator.

#include <limits.h>

#if UCHAR_MAX == UINT_MAX
#error endianness irrelevant as sizeof(int) == 1
#endif

#define wicked_cast(TYPE, VALUE) \
    (((union { __typeof__(VALUE) src; TYPE dest; }){ .src = VALUE }).dest)

_Bool is_little_endian(void)
{
    return wicked_cast(unsigned char, 1u);
}

If integers are single-byte values, endianness makes no sense and a compile-time error will be generated.

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The way C compilers (at least everyone I know of) work the endianness has to be decided at compile time. Even for biendian processors (like ARM och MIPS) you have to choose endianness at compile time. Further more the endianness is defined in all common file formats for executables (such as ELF). Although it is possible to craft a binary blob of biandian code (for some ARM server exploit maybe?) it probably has to be done in assembly.

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I was going through the textbook:Computer System: a programmer's perspective, and there is a problem to determine which endian is this by C program.

I used the feature of the pointer to do that as following:

#include <stdio.h>

int main(void){
    int i=1;
    unsigned char* ii = &i;

    printf("This computer is %s endian.\n", ((ii[0]==1) ? "little" : "big"));
    return 0;
}

As the int takes up 4 bytes, and char takes up only 1 bytes. We could use a char pointer to point to the int with value 1. Thus if the computer is little endian, the char that char pointer points to is with value 1, otherwise, its value should be 0.

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#include<stdio.h>

int main()

{
    int a=129,b;
    char *ptr;
    ptr = &a ;
    b= *ptr;

    if(b==0)
    {
            printf("It is big endian\n");
            printf("b=%d\n",b);
    }
    else
    {
            printf("It is little endian\n");
            printf("b=%d\n",b);
    }
}

I have taken a = 129 because it fits into 32-bit and 64-bit machine otherwise number greater than 15 will be sufficient .

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compile time, non-macro, C++11 constexpr solution:

union {
  uint16_t s;
  unsigned char c[2];
} constexpr static  d {1};

constexpr bool is_little_endian() {
  return d.c[0] == 1;
}
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bool isLittleEndian (void)
{
    return ((char)1UL?true:false);
}
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lets save memory and cpu instructions :) –  Hemanth Apr 23 at 15:00
    
this always return true. –  mpromonet yesterday

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