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I have the following code in Python:

for i in range(4):
  if self.start == self.corners[i]:
    self.visitedCorners += (1 << i)

I'm working with co-ordinates. self.start and self.corners are co-ordinates.

So with the code on the top I want to check whether the start is a corner. If the start is the same of a corner, I do that shift. But, how does that shift work?

I don't want any other code; I just want to understand this code.

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It is equivalent to a power of 2 (2 to the power of i+1). Welcome to binary. You'll see lots of binary stuff in software development. 1,2,4,8,16,32... –  Warren P Oct 18 '11 at 16:31
    
How does the shift “1<<i” work in Python?: The same as in other languages.... (sorry, couldn't resist ;)). –  Felix Kling Oct 18 '11 at 16:34
    
@FelixKling: You mean like in C++ in cout << "Hello World!"? :P –  back2dos Oct 18 '11 at 16:37
2  
Just as a side note, the += will give you problems if you visit any corner more than once. You probably want |=. –  Karl Bielefeldt Oct 18 '11 at 16:40

1 Answer 1

up vote 4 down vote accepted

All that 1 << i does is produce the number with the i-th least significant bit set to 1 and all other bits set to 0:

>>> for i in range(4): print bin(1 << i)
... 
0b1
0b10
0b100
0b1000

In the code, self.visitedCorners is a bit mask, where the four least significant bits correspond to the four corners. Each iteration of the for i loop sets the corresponding bit in self.visitedCorners to 1 (provided the if condition holds).

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+1. Although without context the last line would have to be self.visitedCorners |= (1 << i) to ensure a correctly working bit-mask. –  back2dos Oct 18 '11 at 16:44
    
Another way to say it is that 1<<i is the same as 2**i. And in general, x<<i is the same as x*(2**i). The shift operator is just way more efficient (and special cased to handle negatives in a bitwise manner) –  Eli Collins Oct 18 '11 at 17:33

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