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I understand that in the following line we are attempting to write to an invalid memory location. But this is actually a misaligned pointer also. Can someone explain what is a misaligned pointer and how is the following misaligned pointer ?

*(int*)0xffffffff = 0xbad;
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Pointers in some architectures must fall on certain boundaries, e.g., a 32-bit word boundary, so in that case the lower 2 bits of the pointer would need to be zero. –  lurker Nov 25 '13 at 0:44

1 Answer 1

Many architectures have a concept called alignment where the hardware is designed to operate on addresses that are multiples of the word size. For example, on a 32-bit processor, objects might be aligned to 32-bit boundaries (4 bytes), and on a 64-bit processor, objects might be aligned to 64-bit boundaries (8 bytes). An aligned pointer is one that points to an address that's a multiple of the word size, and an unaligned pointer is one that's not pointing to an address that's a multiple of the word size.

On most architectures, reading or writing unaligned pointers suffers some sort of penalty. On some processors, doing this causes a bus error, which usually terminates the program immediately. On others, such as x86, unaligned reads and writes are legal but suffer a performance penalty due to how the hardware is structured.

In your code, 0xBAD = 2989 is probably not aligned, since it's not a multiple of most common word sizes, and the pointer you write to is also probably not aligned.

Hope this helps!

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