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Detecting endianness programmatically in a C++ program

Is there any library function available to find the endian-ness of my PC?

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marked as duplicate by Cody Gray, COD3BOY, Mysticial, mu is too short, Jonathan Leffler Dec 20 '11 at 5:32

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4 Answers 4

up vote 26 down vote accepted

Why you need a library if you can find it like this? :)

int num = 1;
if(*(char *)&num == 1)
{
printf("\nLittle-Endian\n");
}
else
{
printf("Big-Endian\n");
}
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maybe explain why this works like @Eric J. does below –  bjackfly Aug 9 '13 at 4:00
1  
int num=1 will stored as 000.0001 or 100.000 depending on endianness. (char*)&num will be pointing to first byte of that int. now if that byte reads 1, then its little endian otherwise big endian. –  hasanatkazmi Apr 17 '14 at 2:25

I'm not aware of a library function.

You can get the address of an integer, then treat that address as a character pointer and write data into the bytes that comprise the integer. Then, read out what is actually in the integer and see if you get a result consistent with a big endian or little endian architecture.

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use this code:

union 
{
    uint8  c[4];
    uint32 i;
} u;

u.i = 0x01020304;

if (0x04 == u.c[0])
    printf("Little endian\n");
else if (0x01 == u.c[0])
    printf("Big endian\n");
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There isn't a standard function to do so (as in C standard, or POSIX standard).

If your PC is a (Windows-style) PC running Intel, it is little-endian.

If you wish to find the byte-order on your machine, you can use the not wholly defined behaviour (but it usually works - I've not heard of anywhere that it doesn't work) of this technique:

enum { BigEndian, LittleEndian };

int endianness(void)
{
    union
    {
        int  i;
        char b[sizeof(int)];
    } u;
    u.i = 0x01020304;
    return (u.b[0] == 0x01) ? BigEndian : LittleEndian;
}

This code does assume a 32-bit int type (rather than 64-bit or 16-bit).

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