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Given the following code:

L1     db    "word", 0

       mov   al, [L1]
       mov   eax, L1

What do the brackets ([L1]) represent?

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8 Answers 8

up vote 14 down vote accepted

[L1] means the memory contents at address L1. After running mov al, [L1] here, The al register will receive the byte at address L1 (the letter 'w').

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1  
Thanks for your reply, I am starting to learn asm. If I understand this correctly, "mov al, [L1]" would move 'w' into al, and "mov eax, L1" would move the address of L1 into eax. Is that correct? –  joek1975 Jan 8 '10 at 20:35
1  
yes. and if you did mov ebx,L1 -- mov al,[ebx] then al would be 'w' in that case too. –  Earlz Jan 8 '10 at 21:35
    
The exception to this is LEA. –  Natan Yellin Nov 4 '11 at 13:56

Simply means to get the memory at the address marked by the label L1.

If you like C, then think of it like this: [L1] is the same as *L1

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this can be confusing since in C *p means that dereference p and stop retrieving chars when you'll reach \0 and not just dereference the first char in the sequence/string pointed by p –  user2485710 Sep 13 at 14:40

Indexed Indirect Addressing. al will be loaded with the value located @ memory address L1

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The brackets mean to de-reference an address. For example

mov eax, [1234]

means, mov the contents of address 1234 to EAX. So:

1234 00001

EAX will contain 00001.

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As with many assembler languages, this means indirection. In other words, the first mov loads al with the contents of L1 (the byte 'w' in other words), not the address.

Your second mov actually loads eax with the address L1 and you can later dereference that to get or set its content.

In both those cases, L1 is conceptually considered to be the address.

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They mean that instead of moving the value of the register or numeric value L1 into the register al, treat the register value or numeric value L1 as a pointer into memory, fetch the contents of that memory address, and move that contents into al.

In this instance, L1 is a memory location, but the same logic would apply if a register name was in the brackets:

mov al, [ebx]

Also known as a load.

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It indicates that the register should be used as a pointer for the actual location, instead of acting upon the register itself.

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All the answers here are good, but I see that none tells about the caveat in following this as a rigid rule - if brackets, then dereference, except when it's the lea instruction.

lea is an exception to the above rule. Say we've

mov eax, [ebp - 4]

The value of ebp is subtracted by 4 and the brackets indicate that the resulting value is taken as an address and the value residing at that address is stored in eax. However, in lea's case, the brackets wouldn't mean that:

lea eax, [ebp - 4]

The value of ebp is subtracted by 4 and the resulting value is stored in eax. This instruction would just calculate the address and store the calculated value in the destination register. See this post for further details.


Aside: Operands of this type, such as [aex], are called memory operands.

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