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This question already has an answer here:

I have a list l:

l = [22, 13, 45, 50, 98, 69, 43, 44, 1]

For numbers above 45 inclusive, I would like to add 1; and for numbers less than it, 5.

I tried

[x+1 for x in l if x >= 45 else x+5]

But it gives me a syntax error. How can I achieve an ifelse like this in a list comprehension?

marked as duplicate by Dan D. python Apr 4 '17 at 6:42

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

417
>>> l = [22, 13, 45, 50, 98, 69, 43, 44, 1]
>>> [x+1 if x >= 45 else x+5 for x in l]
[27, 18, 46, 51, 99, 70, 48, 49, 6]

Do-something if <condition>, else do-something else.

  • 2
    Probably should use a different variable than x as the condition in the explanation at the bottom, since x is used in the example not as the condition. – tscizzle Apr 17 '15 at 20:03
  • 2
    what about only including variable in the list if a condition is met? would the else just be pass? – Charlie Parker Jul 25 '16 at 16:38
  • 8
    it seems that the conditional can also go at the end for example extracting objects with a specific condition (name in this example) var_list = [v for v in tf.all_variables() if v.name == 'C:0'] – Charlie Parker Jul 25 '16 at 16:50
  • 5
    I found that if putting the condition in the beginning, then it requires both if and else (it must yield an element) - but putting it at the end, requires the if only (you can't put an else there). – Jeppe Dec 9 '18 at 13:07
220

The reason you're getting this error has to do with how the list comprehension is performed.

Keep in mind the following:

[ expression for item in list if conditional ]

Is equivalent to:

for item in list:
    if conditional:
        expression

Where the expression is in a slightly different format (think switching the subject and verb order in a sentence).

Therefore, your code [x+1 for x in l if x >= 45] does this:

for x in l:
    if x >= 45:
        x+1

However, this code [x+1 if x >= 45 else x+5 for x in l] does this (after rearranging the expression):

for x in l:
    if x>=45: x+1
    else: x+5
  • 1
    My code user_albums = [{'albums': links['link']} for links in _details['albums']['data'] if 'link' in links.keys() else pass] getting error for pass in else condition – Shashank Oct 13 '13 at 15:05
  • @shihon No need for the else pass in a list comprehension; it's implied that you don't want the {'albums': links['link']} item included in the list when the condition if 'link' in links.keys() is met. Correct format: user_albums = [{'albums': links['link']} for links in _details['albums']['data'] if 'link' in links.keys()] – arboc7 Oct 18 '13 at 2:30
  • that means, if data isn't exist or null it handle this exception from its ownself?? – Shashank Oct 18 '13 at 6:31
  • @shihon When 'link' in links.keys() is False, a Python list comprehension skips over the expression to add {'albums': links['link']} to the list. Your code expanded would behave the same way as [x+1 for x in l if x >= 45] in my answer above. – arboc7 Oct 19 '13 at 18:44
186
[x+1 if x >= 45 else x+5 for x in l]

And for a reward, here is the comment, I wrote to remember this the first time I did this error:

Python's conditional expression is a if C else b and can't be used as:

[a for i in items if C else b]

The right form is:

[a if C else b for i in items]

Even though there is a valid form:

[a for i in items if C]

But that isn't the same as that is how you filter by C, but they can be combined:

[a if tC else b for i in items if fC]
  • @Dan D. What about muliple ifs? ie [x+1 if x >= 45 x-1 if x<10 else x+5 for x in l] ? I have a similiar kind of problem with the if statement – 3kstc Jun 2 '16 at 5:02
  • @3kstc: For that: [x+1 if x >= 45 else (x-1 if x < 10 else x+5) for x in l]. I'll look at your question. – Dan D. Jun 2 '16 at 5:33
  • @Dan D. Thanks The right form is: [a if C else b for i in items] this work for me. – Mushir Sep 29 '16 at 7:10
  • Not OP but thanks for your answer. For your last line of code, could you explain a bit for me what for i in items if fC does please? Does it mean that you are only using the a if tC else b conditional on the elements in items that can make fC true? Thanks. – Bowen Liu Nov 28 '18 at 20:24
  • @BowenLiu Yes. The point was to show the difference between the if in the ternary A if C else B and the conditional if in i for i in items if p(i). Every comprehension can be written as statements if you name the result. v = [A if q(i) else B for i in L if p(i)] becomes v = [], for i in L: if p(i): v.append(A if q(i) else B). – Dan D. Nov 30 '18 at 3:04
96

You must put the expression at the beginning of the list comprehension, an if statement at the end filters elements!

[x+1 if x >= 45 else x+5 for x in l]
  • 21
    +1 for explicitly distinguishing the role of conditionals at the beginning of the comprehension vs. at the end. You can do both at the same time, too; e.g. ['upper' if item.isupper() else 'lower' for item in 'Omg! paNCAkEs!!!' if item.isalpha()] – Air Oct 14 '13 at 21:55
16

You can also put the conditional expression in brackets inside the list comprehension:

    l = [22, 13, 45, 50, 98, 69, 43, 44, 1]
    print [[x+5,x+1][x >= 45] for x in l]

[false,true][condition] is the syntax

16

Like in [a if condition1 else b for i in list1 if condition2], the two ifs with condition1 and condition2 doing two different things. The part (a if condition1 else b) is from a lambda expression:

lambda x: a if condition1 else b

while the other condition2 is another lambda:

lambda x: condition2

Whole list comprehension can be regard as combination of map and filter:

map(lambda x: a if condition1 else b, filter(lambda x: condition2, list1))
8

I just had a similar problem, and found this question and the answers really useful. Here's the part I was confused about. I'm writing it explicitly because no one actually stated it simply in English:

The iteration goes at the end.

Normally, a loop goes

for this many times:
    if conditional: 
        do this thing
    else:
        do something else  

Everyone states the list comprehension part simply as the first answer did,

[ expression for item in list if conditional ] 

but that's actually not what you do in this case. (I was trying to do it that way)

In this case, it's more like this:

[ expression if conditional else other thing for this many times ] 
6

You could move the conditional to:

v = [22, 13, 45, 50, 98, 69, 43, 44, 1]
[ (x+1 if x >=45 else x+5)  for x in v ]

But it's starting to look a little ugly, so you might be better off using a normal loop. Note that I used v instead of l for the list variable to reduce confusion with the number 1 (I think l and O should be avoided as variable names under any circumstances, even in quick-and-dirty example code).

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