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I know how to use both for loops and if statements on separate lines, such as:

>>> a = [2,3,4,5,6,7,8,9,0]
... xyz = [0,12,4,6,242,7,9]
... for x in xyz:
...     if x in a:
...         print(x)
0,4,6,7,9

And I know I can use a list comprehension to combine these when the statements are simple, such as:

print([x for x in xyz if x in a])

But what I can't find is a good example anywhere (to copy and learn from) demonstrating a complex set of commands (not just "print x") that occur following a combination of a for loop and some if statements. Something that I would expect looks like:

for x in xyz if x not in a:
    print(x...)

Is this just not the way python is supposed to work?

share|improve this question
16  
That's how it is... don't overcomplicate things by trying to simplify them. Pythonic does not mean to avoid every explicit for loop and if statement. – Felix Kling Aug 8 '11 at 11:57
2  
You can use the list generated in your list comprehension in a for loop. That would somewhat look like your last example. – Jacob Aug 8 '11 at 12:01
    
So getting down to processing, what's the fastest way to combine a for loop with an if statement, if the if statement is excluding values that have already been matched and the list is continually growing during the for loop's iteration? – ChewyChunks Aug 8 '11 at 12:06
2  
@Chewy, proper data structures will make the code faster, not syntactic sugar. For example, x in a is slow if a is a list. – Nick Dandoulakis Aug 8 '11 at 12:10
1  
This is Python, an interpreted language; why is anyone discussing how fast code is at all? – ArtOfWarfare Oct 8 '13 at 19:57
up vote 81 down vote accepted

You can use generator expressions like this:

gen = (x for x in xyz if x not in a)

for x in gen:
    print x
share|improve this answer
1  
I fixed the code for you. +1 this is a neat solution. – Johnsyweb Aug 8 '11 at 12:20
1  
gen = (y for (x,y) in enumerate(xyz) if x not in a) returns >>> 12 when I type for x in gen: print x -- so why the unexpected behavior with enumerate? – ChewyChunks Aug 8 '11 at 12:40
3  
Possible, but not nicer than the original for and if blocks. – Mike Graham Aug 8 '11 at 14:34
1  
@ChewyChunks. That would work but the call to enumerate is redundant. – Johnsyweb Aug 8 '11 at 20:40
10  
I really miss in python being able to say for x in xyz if x: – bgusach Sep 10 '14 at 8:06

As per The Zen of Python (if you are wondering whether your code is "Pythonic", that's the place to go):

  • Beautiful is better than ugly.
  • Explicit is better than implicit.
  • Simple is better than complex.
  • Flat is better than nested.
  • Readability counts.

The Pythonic way of getting the sorted intersection of two sets is:

>>> sorted(set(a).intersection(xyz))
[0, 4, 6, 7, 9]

Or those elements that are xyz but not in a:

>>> sorted(set(xyz).difference(a))
[12, 242]

But for a more complicated loop you may want to flatten it by iterating over a well-named generator expression and/or calling out to a well-named function. Trying to fit everything on one line is rarely "Pythonic".


Update following additional comments on your question and the accepted answer

I'm not sure what you are trying to do with enumerate, but if a is a dictionary, you probably want to use the keys, like this:

>>> a = {
...     2: 'Turtle Doves',
...     3: 'French Hens',
...     4: 'Colly Birds',
...     5: 'Gold Rings',
...     6: 'Geese-a-Laying',
...     7: 'Swans-a-Swimming',
...     8: 'Maids-a-Milking',
...     9: 'Ladies Dancing',
...     0: 'Camel Books',
... }
>>>
>>> xyz = [0, 12, 4, 6, 242, 7, 9]
>>>
>>> known_things = sorted(set(a.iterkeys()).intersection(xyz))
>>> unknown_things = sorted(set(xyz).difference(a.iterkeys()))
>>>
>>> for thing in known_things:
...     print 'I know about', a[thing]
...
I know about Camel Books
I know about Colly Birds
I know about Geese-a-Laying
I know about Swans-a-Swimming
I know about Ladies Dancing
>>> print '...but...'
...but...
>>>
>>> for thing in unknown_things:
...     print "I don't know what happened on the {0}th day of Christmas".format(thing)
...
I don't know what happened on the 12th day of Christmas
I don't know what happened on the 242th day of Christmas
share|improve this answer
    
Sounds like from the comments below, I should be studying up on generators. I've never used them. Thanks. Is a generator faster than the equivalent combination of FOR and IF statements? I've also used sets, but sometimes redundant elements in a list are information I can't discard. – ChewyChunks Aug 8 '11 at 12:18
    
@ChewyChunks: Generators are not the only way to be Pythonic! – Johnsyweb Aug 8 '11 at 12:34
2  
@Johnsyweb, if you're going to quote the Zen of Python: "There should be one-- and preferably only one --obvious way to do it." – Wooble Aug 8 '11 at 15:11
    
@Wooble: There should. I quoted that section in my answer to another question around the same time! – Johnsyweb Aug 8 '11 at 22:01
a = [2,3,4,5,6,7,8,9,0]
xyz = [0,12,4,6,242,7,9]  
set(a) & set(xyz)  
set([0, 9, 4, 6, 7])
share|improve this answer
    
Very Zen, @lazyr, but would not help me improve a complex code block that depends on iterating through one list and ignoring matching elements in another list. Is it faster to treat the first list as a set and compare union / difference with a second, growing "ignore" list? – ChewyChunks Aug 8 '11 at 12:22
    
Try this import time a = [2,3,4,5,6,7,8,9,0] xyz = [0,12,4,6,242,7,9] start = time.time() print (set(a) & set(xyz)) print time.time() - start – kracekumar Aug 8 '11 at 12:31
    
@ChewyChunks if either of the lists change during the iteration it will probably be faster to check each element against the ignore list -- except you should make it an ignore set. Checking for membership in sets is very fast: if x in ignore: .... – Lauritz V. Thaulow Aug 8 '11 at 12:42
    
@lazyr I just rewrote my code using an ignore set over an ignore list. Appears to process time much slower. (To be fair I was comparing using if set(a) - set(ignore) == set([]): so perhaps that's why it was much slower than checking membership. I'll test this again in the future on a much simpler example than what I'm writing. – ChewyChunks Aug 8 '11 at 15:29

I personally think this is the prettiest version:

a = [2,3,4,5,6,7,8,9,0]
xyz = [0,12,4,6,242,7,9]
for x in filter(lambda w: w in a, xyz):
  print x

Edit

if you are very keen on avoiding to use lambda you can use partial function application and use the operator module (that provides functions of most operators).

https://docs.python.org/2/library/operator.html#module-operator

from operator import contains
from functools import partial
print(list(filter(partial(contains, a), xyz)))
share|improve this answer
    
filter(a.__contains__, xyz). Usually when people use lambda, they really need something much simpler. – Veky Jul 18 '15 at 7:20
    
I think you misunderstood something. __contains__ is a method like any other, only it is a special method, meaning it can be called indirectly by an operator (in in this case). But it can also be called directly, it is a part of the public API. Private names are specifically defined as having at most one trailing underscore, to provide exception for special method names - and they are subject to name mangling when lexically in class scopes. See docs.python.org/3/reference/datamodel.html#specialnames and docs.python.org/3.6/tutorial/classes.html#private-variables . – Veky Jan 6 at 13:29
    
It is certainly ok, but two imports just to be able to refer to a method that's accessible using just an attribute seems weird (operators are usually used when double dispatch is essential, but in is singly dispatched wrt right operand). Besides, note that operator also exports contains method under the name __contains__, so it surely is not a private name. I think you'll just have to learn to live with the fact that not every double underscore means "keep away". :-] – Veky Jan 8 at 14:14

I would probably use:

for x in xyz: 
    if x not in a:
        print x...
share|improve this answer

You can use generators too, if generator expressions become too involved or complex:

def gen():
    for x in xyz:
        if x in a:
            yield x

for x in gen():
    print x
share|improve this answer
    
This is a bit more useful to me. I've never looked at generators. They sound scary (because I saw them in modules that were generally a pain to use). – ChewyChunks Aug 8 '11 at 12:10

Use intersection or intersection_update

  • intersection :

    a = [2,3,4,5,6,7,8,9,0]
    xyz = [0,12,4,6,242,7,9]
    ans = sorted(set(a).intersection(set(xyz)))
    
  • intersection_update:

    a = [2,3,4,5,6,7,8,9,0]
    xyz = [0,12,4,6,242,7,9]
    b = set(a)
    b.intersection_update(xyz)
    

    then b is your answer

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