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Can you tell by looking at them which of these addresses is word aligned?

0x000AE430
0X00014432
0X000B0737
0X0E0D8844

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Is this homework? What's your machine's word size? Yes, I can. –  JoshD Oct 13 '10 at 10:16
    
divisible by machine word size? –  Mitch Wheat Oct 13 '10 at 10:16
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For a word size of N the address needs to be a multiple of N. Hint: for most common values of N you just need to look at the last digit of the address. –  Paul R Oct 13 '10 at 10:19
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1 Answer

The short answer is, yes. But you have to define the number of bytes per word. Some architectures call two bytes a word, and four bytes a double word. In any case, you simply mentally calculate addr%word_size or addr&(word_size - 1), and see if it is zero. When the address is hexadecimal, it is trivial: just look at the rightmost digit, and see if it is divisible by word size.

For a word size of 4 bytes, second and third addresses of your examples are unaligned. Second has 2 and third one has a 7, neither of which are divisible by 4. For a word size of 2 bytes, only third address is unaligned.

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