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mem32[&100]=&12345678 If big-endian addressing is used what is mem8[&101]?

I am getting the answer 56 and here is my reasoning;

In my understanding; in big endian system, the most significant byte is stored first in memory so i.e.:

0x100 0x101 0x102 0x103
78    56    34    12

But the "correct" answer is 34.

Could someone explain why?/ Tell me that answer is wrong?

EDIT: I realised my mistake. For a moment I forgot the number at the left end is the most significant!

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Why you would tag this arm? –  auselen Jan 8 '13 at 23:22
    
Please add some appropriate tags to this - it certainly doesn't seem to be an ARM question - I'd remove the tag, but since it's not got any other I can't. As for the question, in absence of any clue as to the notation your are using, what does mem32[x] and mem[y] do? –  marko Jan 9 '13 at 1:03
    
I added the tag ARM because I happened to be studying questions for the ARM instruction set. I realised my mistake as soon as I posted but I couldn't find a way to delete the post? –  midnightBlue Jan 11 '13 at 5:46

2 Answers 2

For the 32 bit value 0x12345678, 12 is the most significant byte, and this comes first on a big endian system, followed by 34, 56, 78.

Big endian:

0x100 12
0x101 34
0x102 56
0x103 78

Little endian:

0x100 78
0x101 56
0x102 34
0x103 12
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You got it the wrong way round:

0x100 0x101 0x102 0x103
78    56    34    12

This is 0x78563412 in BIG endian, or 0x12345678 in LITTLE endian.

The 32 Bit value 0x12345678 in BIG endian is 12 34 56 78.

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