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The following is a diagram of the memory used by an array of 8 8-bit (1-byte) characters. Do a similar diagram for an array of 8 32-bit integers and 8 64-bit doubles.

    Byte (Character)    1   2   3   4   5   6   7   8
    Index               0   1   2   3   4   5   6   7
    Address             n   n+1 n+2 n+3 n+4 n+5 n+6 n+7

Do you guys have any clue what this means?

Would the Byte of a 32-bit integer be 0001? What about its address?

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2 Answers 2

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I think this is an exercise designed to get you to think about the difference between array indices and actual memory addresses. The integer at index 1, that is myarray[1], would be found at address n+4 because a 32-bit integer is 4 bytes wide.

So maybe the 32-bit case would look like this?

32-Bit Integer      1     2     3    4    5    6    7    8
Index               0     1     2    3    4    5    6    7
Address             n   n+4   n+8 n+12 n+16 n+20 n+24 n+28
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I can take a shot at this. I believe that it is only demonstrating two things: index is how you would address the data as an array while address is an arbitrary address in memory.

For the 32 bit case (assuming little endian), you would have

Word      1                |  2  
Index     0                |  1  
Address   n+0 n+1 n+2 n+3  |  n+4 n+5 n+6 n+7

The first 4 address bytes are the little endian 32 bit first word. The second 4 address bytes are the next 32 bit word. Just continue.

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