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I can't understand why the code below works like this. (in Python3x)

>>>f = lambda: print('Hello') or print('Hello again')

>>>f()

Hello

Hello again

and also can't understand like this.

>>>f = lambda: print('Hello') and print('Hello again')

>>>f()

Hello

For me, the first lambda function seems to print the word 'Hello' or the word 'Hello again' but it print both 'Hello' and 'Hello again'.

The second function seems to print the word 'Hello' and 'Hello again' but it print only 'Hello'.

Can anybody explain what is going on in this lambda function?

Thank you for your kind help!

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up vote 3 down vote accepted

print returns None (which is Falseish), so python has to evaluate the other operand of or, but not and, to get the answer.

  • return print('Hello') or print('Hello again')
  • Hello is printed, print returns None
  • return None or print('Hello again')
  • or returns True if any of the operands is True. If the first one is True, there's no need to evaluate the second one. This isn't the case
  • Hello again is printed
  • return None or None
  • now we are certain False should be returned.

 

  • return print('Hello') and print('Hello again')
  • Hello is printed, print returns None
  • return None and print('Hello again')
  • and returns True if both operands are True. If the first one is False, there's no need to evaluate the second one.
  • return False
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Thank you for a quick response! I get it. – y4suyuki Jan 19 '13 at 10:04

This is called Lazy evaluation, this means python won't compute more than necessary. in:

Expression1 or Expression2

and

Expression1 and Expression2

if the Expression1 is False, in the case of the or comparison python will need the result of the Expression2 to compute the result, but for the and comparison if Expression1 is False, then non need to compute the second part of the comparison as 0 and x == False no matter if x is True or False the 2sd function print in the and comparison does not need to be evaluated, as python already knows that the comparison will be equal to False

The print function does not return anything I.e. return None

>>> def print2(string):
     print(string)
     return True

>>> r=(lambda: print2('Hello') or print2('Hello again'))()
Hello

However this will only print the first Hello (because it is true) and never the Hello again

>>> r=(lambda: print2('Hello') and print2('Hello again'))()
Hello
Hello again

to understand lazy evaluation, try these commands:

>>> def p():
     print("foo")
     return True



>>> False and p() and p()

False

>>> True and p() and p()

foo
foo
True

>>> True and (not p()) and p()

foo
False
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