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I only know what I know through my experience through Computer Architecture course. Little-endian stores the LSB on the right and MSB on the left and on Big-endian it's vice versa.

That would mean a byte representation of 18 is 0001 0010 and on Big-endian it would be 0100 1000.

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You seem to have forgotten to ask a question. – ikegami Apr 1 '11 at 22:05
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The B in MSB and LSB means byte, not bit. Further discussion on this can be found in this recent question: How bit endianness affects bitwise shifts and file IO in C? – Greg Hewgill Apr 1 '11 at 22:07
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No, it is not like that, say you have 3,168,415,017 as 32 bit unsigned number here is the Little Endian binary representation of it:

10111100 11011010 00101101 00101001

While the Big Endian representation would flip the BYTES but not the BITS inside the bytes.

00101001 00101101 11011010 10111100

Note that the bytes are flipped but the order of bits inside of each remains the same.

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Any links for understanding the big-endian architecture for handling integer data? – Nocturnal Apr 1 '11 at 22:30
    
Digits within a number are traditionally written in big-endian format, but there are times when digits may be written LSB-first, most notably when the written form is supposed to represent, left-to-right, the chronological sequence in which data will be sent on an LSB-first communications link. – supercat May 31 '12 at 20:21
    
@Argote I found an article that states that bits are usually differently inside bytes between big and and little endian architectures (linuxjournal.com/article/6788). Is this article wrong? If it is wrong, could you provide a reference for your answer? From what I have read on other articles on Stackoverflow concerning bit endianness (see: stackoverflow.com/a/5493700/1911431), bytes are a sort of indivisible unit of memory whose contents cannot are not addressable (with the implication that bit endianness only matters in communication protocols between devices). – Preetpal 19 hours ago

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