Is it possible to do this on one line in Python?

if <condition>:
    myList.append('myString')

I have tried the ternary operator:

myList.append('myString' if <condition>)

but my IDE (MyEclipse) didn't like it, without an else.

up vote 60 down vote accepted

Yes, you can do this:

<condition> and myList.append('myString')

If <condition> is false, then short-circuiting will kick in and the right-hand side won't be evaluated. If <condition> is true, then the right-hand side will be evaluated and the element will be appended.

I'll just point out that doing the above is quite non-pythonic, and it would probably be best to write this, regardless:

if <condition>: myList.append('myString')

Demonstration:

>>> myList = []
>>> False and myList.append('myString')
False
>>> myList
[]
>>> True and myList.append('myString')
>>> myList
['myString']
  • 3
    While this answer is technically correct, it's not a good programming practice. Since Python aims to be a language that's easily readable, this code would be considered non-Pythonic. – L S Oct 15 '13 at 9:44
  • 4
    @LS: I agree, that's why I said it would probably be best to just use an if statement. But I modified the answer a bit to make that clearer. – Claudiu Oct 15 '13 at 15:54
  • 1
    fyi the second example will fail pep8 checks: E701 multiple statements on one line so also non-pythonic... ;) – Cas Feb 18 '17 at 17:59
  • Note that this and-shortcircuiting doesn't seem to work for assignments: <condition> and (strng = 'myString') – oulenz Mar 24 at 10:45

The reason the language doesn't allow you to use the syntax

variable = "something" if a_condition

without else is that, in the case where a_condition == False, variable is suddenly unknown. Maybe it could default to None, but Python requires that all variable assignments actually result in explicit assignments. This also applies to cases such as your function call, as the value passed to the function is evaluated just as the RHS of an assignment statement would be.

Similarly, all returns must actually return, even if they are conditional returns. Eg:

return variable if a_condition

is not allowed, but

return variable if a_condition else None

is allowed, since the second example is guaranteed to explicitly return something.

  • It's ironic how Python doesn't allow us to use this so that variable is never none yet variable=None is perfectly legal. :D – Guy Feb 15 '14 at 15:51
  • But I wanted to use it like this: continue if i == 0 in a for loop. – karantan Sep 29 '15 at 12:53
  • Are you allowed to do else pass? – OldBunny2800 Jan 11 '17 at 0:51
  • 3
    else pass doesn't work because the ternary expression should return a value that can be passed to return. pass is not a valid return value. – Emmett J. Butler Feb 9 '17 at 23:25
  • 1
    I don't agree that this motivation is the real reason, given that if a_condition: variable = "something" and if a_condition: return variable are legal. So it is essentially an arbitrary syntactic choice of python. – oulenz Mar 24 at 10:40
if <condition>: myList.append('myString')

Otherwise, no. Why the need to put it on one line?

Note that the "ternary operator" is an operator. Like any operator, it must return something, so how can you have a ternary operator without the else clause? What is it supposed to return if the condition isn't true-like?

myList.extend(['myString'] if condition else []) would also work, though it's more work than the other solutions.

You are basically asking for do_thing() if <condition> else pass construct (which will throw SyntaxError, if ran). As I have discovered during research for (somewhat) similar question do_thing() if condition else None is as close as you can get (which is just another way to do <condition> and do_thing()). So, to summarize this idea and other answers, here are your options:

  • if <condition>: myList.append('myString') — seems to be the least 'hacky' (and thus preferred) way
  • <condition> and myList.append('myString')
  • myList.append('myString') if <condition> else None

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