15

I have a love/hate relationship with list comprehension. On the one hand I think they are neat and elegant. On the other hand I hate reading them. (especially ones I didn't write) I generally follow the rule of, make it readable until speed is required. So my question is really academic at this point.

I want a list of stations from a table who's strings often have extra spaces. I need those spaces stripped out. Sometimes those stations are blank and should not be included.

stations = []
for row in data:
    if row.strip():
        stations.append(row.strip())

Which translates to this list comprehension:

stations = [row.strip() for row in data if row.strip()]

This works well enough, but it occurs to me that I'm doing strip twice. I guessed that .strip() was not really needed twice and is generally slower than just assigning a variable.

stations = []
for row in data:
    blah = row.strip()
    if blah:
        stations.append(blah)

Turns out I was correct.

> Striptwice list comp 14.5714301669     
> Striptwice loop 17.9919670399
> Striponce loop 13.0950567955

Timeit shows between the two loop segments, the 2nd (strip once) is faster. No real surprise here. I am surprised that list comprehension is only marginally slower even though it's doing a strip twice.

My question: Is there a way to write a list comprehension that only does the strip once?



Results:

Here are the timing results of the suggestions

# @JonClements & @ErikAllik
> Striptonce list comp 10.7998494348
# @adhie
> Mapmethod loop 14.4501044569
  • 1
    I'm curious as to how the suggested answers compare time-wise to your tests – Izkata Oct 4 '13 at 18:25
  • Are you going to accept any of the answers? – Erik Kaplun Oct 5 '13 at 8:57
  • I will. I just got back to my post this morning and hadn't looked at anything all weekend. – Marcel Wilson Oct 7 '13 at 13:35
  • Can't accept two answers. I'm all for the underdog, so the credit goes to @ErikAllik even though JonClements was just as correct. – Marcel Wilson Oct 7 '13 at 14:15
13

Nested comprehensions can be tricky to read, so my first preference would be:

stripped = (x.strip() for x in data)
stations = [x for x in stripped if x]

Or, if you inline stripped, you get a single (nested) list comprehension:

stations = [x for x in (x.strip() for x in data) if x]

Note that the first/inner comprehension is a actually generator expression, which, in other words is a lazy list comprehension; this is to avoid iterating twice.

  • Similarly, def stripped(iter): return (x.strip() for x in iter), then you can write stations = list(x for x in stripped(data) if x). – Steve Jessop Oct 4 '13 at 16:24
  • Yeah, that makes sense if stripped will be used again later. – Erik Kaplun Oct 4 '13 at 16:25
  • @SteveJessop Although naming the parameter iterable is more conventional and more importantly avoids shadowing the builtin iter in the function... – Jon Clements Oct 4 '13 at 16:49
  • @JonClements: agreed. In my defence, I'm not well. It's probably for the best that I'm not working. – Steve Jessop Oct 4 '13 at 16:51
29

There is - create a generator of the stripped strings first, then use that:

stations = [row for row in (row.strip() for row in data) if row]

You could also write it without a comp, eg (swap to imap and remove list for Python 2.x):

stations = list(filter(None, map(str.strip, data)))
  • So None stands for the ID function (lambda x: x) basically? Wasn't aware of such shortcut; thanks! – Erik Kaplun Oct 4 '13 at 15:39
  • 1
    Btw that list(...) call is not necessary. – Erik Kaplun Oct 4 '13 at 15:49
  • 1
    @ErikAllik for Python 3.x it is... I've noted it should be removed for Python 2.x as well as the map being swapped to imap :) – Jon Clements Oct 4 '13 at 15:51
  • I'm kicking myself just a little. I should have seen @JonClements first example. Essentially Looping over the list twice. Very good sir. – Marcel Wilson Oct 7 '13 at 13:44
  • @JonClements - I am having trouble getting your second example to work in 2.7 (which is what I primarily use). – Marcel Wilson Oct 7 '13 at 13:48
1

Apply strip to all the elements using map() and filter after that.

[item for item in map(lambda x: x.strip(), list) if item]
  • that map() is not needed nor encouraged by the Python conventions/community; also, your code does 2 iterations. – Erik Kaplun Oct 4 '13 at 15:38
  • Then transform it to the list comprehension form. In some functional languages, map is more lazy. – adhie Oct 4 '13 at 15:40
  • map is not lazy in Python but itertools.imap is. – Erik Kaplun Oct 4 '13 at 15:41
  • @ErikAllik I'll just add that it is lazy in Python 3.x. However, it can also be lazy in 2.6+ with a from future_builtins import map – Jon Clements Oct 4 '13 at 15:50

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