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Using python 2.6 is there a way to check if all the items of a sequence equals a given value, in one statement?

[pseudocode]
my_sequence = (2,5,7,82,35)

if all the values in (type(i) for i in my_sequence) == int:
     do()

instead of, say:

my_sequence = (2,5,7,82,35)
all_int = True
for i in my_sequence:
    if type(i) is not int:
        all_int = False
        break

if all_int:
    do()
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Can somebody edit this so that "my_squence" is spelled consistently throughout? my_squence != my_sequence Thanks. –  Sean Jan 1 '09 at 23:55

4 Answers 4

up vote 20 down vote accepted

Use:

all( type(i) is int for i in lst )

Example:

In [1]: lst = range(10)
In [2]: all( type(i) is int for i in lst )
Out[2]: True
In [3]: lst.append('steve')
In [4]: all( type(i) is int for i in lst )
Out[4]: False

[Edit]. Made cleaner as per comments.

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4  
you can leave out the list comprehension! a simple generator expression will be sufficient (and more efficient). –  hop Jan 1 '09 at 22:00
    
@hop: can comments be voted up? like yours. :) –  JV. Jan 1 '09 at 22:07
    
When comparing types, always use "is"! –  Benjamin Peterson Jan 1 '09 at 23:44

Do you mean

all( type(i) is int for i in my_list )

?

Edit: Changed to is. Slightly faster.

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@ S.Lott: thinking negation, will any( type(i) != int for i in my_lst ) be more efficient? or the same over an average number of cases? –  JV. Jan 1 '09 at 22:05
    
Both any and all are efficient, meaning the stop iterating once they find a True or False value respectively. –  tzot Jan 1 '09 at 23:08
    
@JV: all == and any != are the same over an average number of cases. –  S.Lott Jan 1 '09 at 23:30

I would suggest:

if all(isinstance(i, int) for i in my_list):

all and any first appeared in Python 2.5. If you're using an older version of Python, the links provide sample implementations.

I also suggest using isinstance since it will also catch subclasses of int.

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For the sake of completeness I thought I would add the fact that numpy's 'all' is different from the built-in 'all'. If for example running Python through Python(x,y), numpy is loaded automatically (and cannot be unloaded afaik), so when trying to run the above code it produces rather unexpected results:

>>> if (all(v == 0 for v in [0,1])):
...     print 'this should not happen'
... this should not happen

More info on this here: numpy all differing from builtin all. As a solution you can either surround the generator with brackets to produce a list:

all( [v == 0 for v in [0,1]] )
False

Or call the built-in function explicitly:

>>> __builtins__.all(v == 0 for v in [0,1,'2'])
False

Edit: Found a way to stop Spyder from importing numpy per default: Spyder default module import list

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