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If I have an array declared like this:

int a[3][2];

stored at address A.

Then a+1 is equal to A+2*4, this is clear to me, but why is &a+1 equal to A+6*4?

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3 Answers 3

up vote 7 down vote accepted

a is an array of int[2]. Which has size 2 * sizeof(int). That's why a + 1 = A + 2*4. (since sizeof(int) = 4 in your case)

However, &a is a pointer to int[3][2]. Since sizeof(int[3][2]) = 6 * sizeof(int), therefore: &a + 1 = A + 6*4

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Then a+1 is equal to A+2*4

This is because a decays to int (*)[2], and +1 results in 2 * sizeof(int).

but why is &a+1 equal to A+6*4?

In this case, &a returns int (*)[3][2], and +1 results in 2 * 3 * sizeof(int).

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Because operator & take precedence over operator +.

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