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I have a struct that is defined as:

struct record
{
   int age;
   char name[12];
   int department;
};

I am confused on how to approach this problem if im reading data from a binary file and the data contains structs how can I reverse the order of the bits from big endian to little endian in that struct?

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6  
What about ntohs and friends? –  Michael Foukarakis Feb 11 '14 at 21:58
3  
@user2671024 Sure, but you would end up duplicating the functions almost word for word. Whats the point? –  Quirliom Feb 11 '14 at 22:00
4  
Converting between big endian and little endian pertains to byte ordering, not bit ordering. Within each byte the bit ordering is not changed. –  Gavin H Feb 11 '14 at 22:00
1  
Note that you just need to byte swap age and department - name will not be affected by endianness –  Paul R Feb 11 '14 at 22:01
5  
Note the machines might have different sizes for integers as well, and the compilers might add a different amount of padding to the structures, so endianness might not be your only problem. –  Guntram Blohm Feb 11 '14 at 22:01

1 Answer 1

Here is a simple implementation to convert endianness:

// Convert from big to little or vice versa
void convert_record (struct record *bigLittle) {
    int x, temp;

    temp = bigLittle->age;

    for (x = 0; x < sizeof (int); x++) {
        ((char *)&(bigLittle->age))[x] = ((char *)&temp)[sizeof (int) - x]
    }

    temp = bigLittle->department;

    for (x = 0; x < sizeof (int); x++) {
        ((char *)&(bigLittle->department))[x] = ((char *)&temp)[sizeof (int) - x]
    }

    return;
}

However, as Michael Foukarakis has pointed out above, you really ought to use ntohs and friends.

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