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The original list project_keys = sorted(projects.keys()) is [101, 102, 103, 104, 105, 106, 107, 108, 109, 110] where the following projects were deemed invalid this year: 108, 109, 110.

Thus:

for project in projects.itervalues():
# The projects dictionary is mapped to the Project class
    if project.invalid:
    # Where invalid is a Bool parameter in the Project class
     project_keys.remove(project.proj_id)  

print project_keys

This will return a list of integers (which are project id's) as such:

[101, 102, 103, 104, 105, 106, 107]

Sweet.

Now, I wanted it try the same thing using a list comprehension.

project_keys = [project_keys.remove(project.proj_id) for project in projects.itervalues() if project.invalid  

print project_keys

This returns:

[None, None, None]

So I'm populating a list with the same number as the removed elements but they're Nones?

Can someone point out what I'm doing wrong?

Additionally, why would I use a list comprehension over the for-if block at the top? Conciseness? Looks nicer?

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2  
Well, the comprehension clearly works, but clearly not as expected. Title updated. –  Matchu May 30 '10 at 19:54
    
@Az, as well as those who feel I should not have included an answer amounting to RTFM: The reason I suggested consulting the docs more is that I see you have been pounding SO pretty hard lately. There's nothing wrong with that, but while some of your questions are genuine "how do I solve this problem?" (good), others seem to me more like "I don't feel like looking this up; can you guys tell me instead?" (less good, in my opinion). I meant no ill will; despite what some may think, I'm not anti-newbie, just pro-docs. –  John Y May 30 '10 at 20:44
    
@John Y: I am a bit pressured by time. In addition, the Python docs - while useful for portions I understand well or have used extensively - are still a quite obtuse to me as a beginner. I'm aware of the building blocks I need to move on to a solution but sometimes I find that the docs obscure the path for me. Do you get what I mean? I understand your concern, all the same. Additionally, the stackoverflow.com members have shown me some very interesting ways to deal with problems which has been a learning experience. I'm pro-learning ;) –  PizzAzzra May 30 '10 at 20:55
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2 Answers

up vote 6 down vote accepted

Your list comprehension works using side-effects. Just executing it should update project_keys to give the result you want.

[project_keys.remove(project.proj_id)
 for project in projects.itervalues()
 if project.invalid]

The return value from remove is None. Assigning the result of the list comprehension to project_keys is where you are going wrong.

A simple loop is probably clearer here though. A list comprehension that uses side-effects can be confusing.

However you can solve your problem in a slightly different way:

project_keys = sorted(project.proj_id
                      for project in projects.itervalues()
                      if not project.invalid)

This keeps the projects you are interested in, instead of removing those that you're not interested in. The example I gave above uses a generator expression instead of a list comprehension, but it would work with either.

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It appears you beat Dirk by 12 seconds, but his is an actual list comprehension, while yours is (as I write this, maybe you'll edit it later) strictly speaking a generator expression and not a list comprehension. –  John Y May 30 '10 at 20:09
    
@John Y: True. :) I'll think about the best way to fix it. Thanks. –  Mark Byers May 30 '10 at 20:11
    
Nice edit. Evidently Dirk decided your fuller explanation makes his superfluous, and my own was both less informative and too snarky, so mine will soon be gone as well. –  John Y May 30 '10 at 20:27
1  
Marks' second solution--to make a copy of the list--is much better than to use remove() while you iterate over the list. It is risky to modify a collection inside a loop that iterates over its members. It may work as expected or fail catastrophically, depending on the implementation of the list and iterator classes. Even if in-place modification works on list s, what happens if someone feeds your code a different kind of collection? Or Python's list implementation changes in the next version? Whereas The copy strategy always works, even on immutable collections, like tuples –  Dan Menes May 30 '10 at 21:44
1  
@Dan He iterates over projects.itervalues() while removing from project_keys, so no, he's not modifying what he's iterating on. –  badp May 30 '10 at 22:32
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You, sir, have misunderstood list comprehensions.

What you probably wanted (in words)

I want to remove all project ids that are invalid.

What you wrote

project_keys = [project_keys.remove(project.proj_id)
                for project in projects.itervalues() if project.invalid]

What is actually going on

dummy = []
for project in projects.itervalues():
  if project.invalid:
    dummy.append(project_keys.remove(project.proj_id)) #what are you
project_keys = dummy                                   #removing items from?
del dummy                                            

What is actually going on (now with more "functional")

mapped-fun = lambda project: project_keys.remove(project.proj_id)
filtering-fun = lambda project: project.invalid
project_keys = map(mapped-fun, filter(filtering-fun, projects.itervalues()))

As you can see, list comprehensions are not syntactical sugar around for loops. Rather, list comprehensions are syntactical sugar around map() and filter(): apply a function to all items in a sequence that match a condition and get a list of results in return.

Here, by function it is actually meant a side-effect-free transformation of input into output. This means that you "cannot" use methods that change the input itself, like list.sort(); you'll have to use their functional equivalents, like sorted().

By "cannot", however, I don't mean you'll get error messages or nasal demons; I mean you are abusing the language. In your case, the evaluation of the list comprehension that happens as you assign it to a variable does indeed produce the intended side-effects -- but does it produce them on the intended variables?

See, the only reason why this can execute without an error is that before this list comprehension, there was another list called project_keys and it's that list you are actually changing!

Lists comprehensions are a result of functional programming, which rejects side effects. Keep that in mind when using lists comprehensions.


So here's a thought process you can use to actually get the list comprehension you wanted.

What you actually wanted (in words)

I want all project ids that are valid (= not invalid.)

What you actually wanted

dummy = []
for project in projects.itervalues():
  if not project.invalid:
    dummy.append(project.proj_id)
project_keys = dummy
del dummy

What you actually wanted (now with more functional)

mapped-fun = lambda project: project.proj_id
filtering-fun = lambda project: not project.invalid
project_keys = map(mapped-fun, filter(filtering-fun, projects.itervalues()))

What you actually wanted (now as a list comprehension)

project_keys = [project.proj_id for project in projects.itervalues()
                if not project.invalid]
share|improve this answer
    
Dude, that's pretty damn awesome :)! Mark Bayers' one worked so I checked that as a viable answer (and it was pretty good and it was there earlier). Can't thank you enough for taking the time to spell out the whole thing. –  PizzAzzra May 30 '10 at 21:44
    
It's okay. Related: meta.stackexchange.com/questions/9731/… –  badp May 30 '10 at 22:11
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