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How do use the python type in List Comprehension?? Can I?

>>> ll
[1, 2, 5, 'foo', 'baz', 'wert']

>>> [x for x in ll ]
[1, 2, 5, 'foo', 'baz', 'wert']

>>> [x for x in ll if type(x) == 'int']
[]

>>> [x*20.0 for x in ll if type(x) == 'int']
[]
>>> type(ll[0])
<type 'int'>

Looking for :[20, 40, 100, 'foo', 'baz', 'wert']

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1  
'int' is just a string. You want int (without quotes). isinstance is usually more robust than using type –  John La Rooy - AKA gnibbler Jul 2 '13 at 2:09
    
type(1) is a 'type' type ,not 'string' type, type(type(1))==type –  liuzhijun Jul 2 '13 at 3:10

6 Answers 6

up vote 1 down vote accepted

Generally, in Python, best practice is to use "Duck Typing". One way to do that is to use exception handling, which in this case would need a helper function:

def safe_multiply(x, y):
    try:
        return x * y
    except TypeError:
        return x

[safe_multiply(x, 20) for x in ll]

The alternative duck-typing answer is to see if the object has a method for multiply:

[x * 20 if hasattr(x, "__mul__") else x for x in ll]

But both of the above have a quirk: in Python it is legal to use * with a string, and the result repeats the string:

print("foo" * 3)  # prints "foofoofoo"

So the best way to go is to use the answer by Ignacio Vazquez-Abrams. He didn't actually give you the code, so here it is:

[x * 20 if isinstance(x, int) else x for x in ll]
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You generally don't. Use isinstance() instead.

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how would use, I was thinking if and else to get the correct output –  Merlin Jul 2 '13 at 2:13
    
Why would you use an else? Your original doesn't. –  Ignacio Vazquez-Abrams Jul 2 '13 at 2:14
    
[x*20.0 for x in ll if type(x) == int]....[20.0, 40.0, 100.0] –  Merlin Jul 2 '13 at 2:15

Try that:

In [6]: [x * 20.0 if type(x) is int else x for x in ll]
Out[6]: [20.0, 40.0, 100.0, 'foo', 'baz', 'wert']

Here you're checking type with type(x) is int, and if it so - multiply, else you just append x to your resulting list (else x), exactly as you wanted to.

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Elaborate on your answer. –  Omar Jul 2 '13 at 8:39
    
Is it any better now? Sorry, I'm a newbie here. –  utter_step Jul 2 '13 at 8:46
    
Yup, looks good :) –  Omar Jul 2 '13 at 8:47

You should use "is int" instead of "== 'int'"

[20*x if type(x) is int else x for x in ll]

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does not give correct output...the str are missing –  Merlin Jul 2 '13 at 2:17
    
aha, I see your purpose now. Modified my answer accordingly. –  James Gan Jul 2 '13 at 2:42
>>> ll = [1, 2, 5, 'foo', 'baz', 'wert']
>>> [ x*20.0 if isinstance(x, int) else x for x in ll]
[20.0, 40.0, 100.0, 'foo', 'baz', 'wert']
share|improve this answer
    
If you look at the bottom of the question, there is an example of the desired output. The strings should be passed unchanged, not filtered out. –  steveha Jul 2 '13 at 4:53
    
you'r right. Edited. –  Friedmannn Jul 2 '13 at 12:18

Don't use == ,use 'is' you need to write the code like this:

[x for x in ll if type(x) is 'int']
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