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Can someone explain why I am getting an invalid syntax error from Python's interpretor while formulating this simple if...else statement? I don't add any tabs myself I simply type the text then press enter after typing. When I type an enter after "else:" I get the error. "Else" is highlighted by the interpreter. What's wrong?

Python 3.3.0 (v3.3.0:bd8afb90ebf2, Sep 29 2012, 10:55:48)
[MSC v.1600 32 bit (Intel)] on win32
Type "copyright", "credits" or "license()" for more information.

>>> if 3 > 0:
        print("3 greater than 0")
        else:

SyntaxError: invalid syntax
>>>
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Try removing the indents before else: –  PinnyM Jan 14 '13 at 21:40
    
The else has to be indented the same amount as the if. –  Vaughn Cato Jan 14 '13 at 21:41
1  
@PinnyM Thank you, that fixed it. I had trouble figuring out how to remove the indent in interactive mode. When writing code in the Python shell, you have to press backspace after you press [enter] but BEFORE you write the "else:" statement; you can't use shift+[tab] to fix the indent like you can in other editors. –  blueuser Jan 17 '13 at 23:56
    
@VaughnCato Thank you for clarifying. –  blueuser Jan 17 '13 at 23:57

4 Answers 4

up vote 2 down vote accepted

Python does not allow empty blocks, unlike many other languages (since it doesn't use braces to indicate a block). The pass keyword must be used any time you want to have an empty block (including in if/else statements and methods).

For example,

if 3 > 0:
    print('3 greater then 0')
else:
    pass

Or an empty method:

def doNothing():
    pass
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Please note (for future visitors) that this isn't always an indentation error. I had it once where I forgot a ")" the line before. –  Annonomus Penguin Jan 4 at 23:26

That's because your else part is empty and also not properly indented with the if.

if 3>0:
    print "voila"
else:    
    pass

In python pass is equivalent to {} used in other languages like C.

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The else block needs to be at the same indent level as the if:

if 3 > 0:
    print('3 greater then 0')
else:
    print('3 less than or equal to 0')
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The keyword else has to be indented with respect to the if statement respectively

e.g.

a = 2
if a == 2:
    print "a=%d", % a
else:
    print "mismatched"
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