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I wrote the following program which gave me output 0 1 but i didn't understand how

main()
{
  int i = 1, m = 2;
  m= - - i--;
  printf("%d %d", i, m);
}
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closed as too localized by Jim Balter, Yasir Arsanukaev, Soner Gönül, Doorknob, p.s.w.g Mar 30 '13 at 14:11

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4  
Don't write code like that. It is being intentionally confusing. – Raymond Chen Mar 29 '13 at 14:35
up vote 10 down vote accepted

Let's consider:

m = - - i--;

Here, - - applies the unary minus twice. This is effectively a no-op. Thus the above can be simplified to

m = i--;

This is equivalent to:

m = i;
i = i - 1;

Thus the correct output is 0 1.

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-- and - - are different: - - is equal to -(-()) operator, when you call

m= - - i--; 

you are decreasing i by 1 and then you are multiplying the new value by -1 two times which does not change the result.

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The post-increment operator (--) yields the value of i (afterwards it's negated twice), and then decrements it. So m will be 1, and i will be 0.

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- -x-- can be write like - (- (x--)).

x-- substract 1 from x, but return x before the substraction. So y will take the value of x. And x is now equals to x - 1.

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