183

I have a list consisting of like 20000 lists. I use each list's 3rd element as a flag. I want to do some operations on this list as long as at least one element's flag is 0, it's like:

my_list = [["a", "b", 0], ["c", "d", 0], ["e", "f", 0], .....]

In the beginning, all flags are 0. I use a while loop to check if at least one element's flag is 0:

def check(list_):
    for item in list_:
        if item[2] == 0:
            return True
    return False

If check(my_list) returns True, then I continue working on my list:

while check(my_list):
    for item in my_list:
        if condition:
            item[2] = 1
        else:
            do_sth()

Actually, I wanted to remove an element in my_list as I iterated over it, but I'm not allowed to remove items as I iterate over it.

Original my_list didn't have flags:

my_list = [["a", "b"], ["c", "d"], ["e", "f"], .....]

Since I couldn't remove elements as I iterated over it, I invented these flags. But the my_list contains many items, and while loop reads all of them at each for loop, and it consumes lots of time! Do you have any suggestions?

  • 2
    Looks like your data structure is not ideal for your problem. If you explained the context a little more maybe we could suggest something more appropriate. – uselpa May 19 '12 at 14:50
  • Maybe you could replace the items with None or [] as you iterate over the list instead of removing them. Checking the whole list with 'check()` iterating over all the items before each pass on the inner loop is a very slow approach. – martineau May 19 '12 at 20:08
357

The best answer here is to use all(), which is the builtin for this situation. We combine this with a generator expression to produce the result you want cleanly and efficiently. For example:

>>> items = [[1, 2, 0], [1, 2, 0], [1, 2, 0]]
>>> all(item[2] == 0 for item in items)
True
>>> items = [[1, 2, 0], [1, 2, 1], [1, 2, 0]]
>>> all(item[2] == 0 for item in items)
False

And, for his filter example, a list comprehension:

>>> [x for x in items if x[2] == 0]
[[1, 2, 0], [1, 2, 0]]

If you want to check at least one element is 0, the better option is to use any() which is more readable:

>>> any(item[2] == 0 for item in items)
True
  • My fault on the use of lambda, Python's all does not accept a function as the first argument like Haskell et. al., I changed my answer to a list comprehension as well. :) – Hampus Nilsson May 19 '12 at 15:11
  • 3
    @HampusNilsson A list comprehension is not the same as a generator expression. As all() and any() short circuit, if, for example, the first value on mine evaluates to False, all() will fail and not check any more values, returning False. Your example will do the same, except it will generate the entire list of comparisons first, meaning a lot of processing for nothing. – Gareth Latty May 19 '12 at 15:18
7

You could use itertools's takewhile like this, it will stop once a condition is met that fails your statement. The opposite method would be dropwhile

for x in itertools.takewhile(lambda x: x[2] == 0, list)
    print x
7

If you want to check if any item in the list violates a condition use all:

if all([x[2] == 0 for x in lista]):
    # Will run if all elements in the list has x[2] = 0 (use not to invert if necessary)

To remove all elements not matching, use filter

# Will remove all elements where x[2] is 0
listb = filter(lambda x: x[2] != 0, listb)
  • 1
    You can remove [...] in all(...) since it can then create a generator instead of a list, which not only saves you two characters but also saves memory and time. By using generators, only one item will be calculated at a time (former results will be dropped since no longer used) and if any of them turns out False, the generator will stop calculating the rest. – no1xsyzy May 22 '18 at 12:29
0

Another way to use itertools.ifilter. This checks truthiness and process (using lambda)

Sample-

for x in itertools.ifilter(lambda x: x[2] == 0, my_list):
    print x
0

this way is a bit more flexible than using all():

my_list = [[1, 2, 0], [1, 2, 0], [1, 2, 0]]
all_zeros = False if False in [x[2] == 0 for x in my_list] else True
any_zeros = True if True in [x[2] == 0 for x in my_list] else False

or more succinctly:

all_zeros = not False in [x[2] == 0 for x in my_list]
any_zeros = 0 in [x[2] for x in my_list]
  • Couldn't you simply say all_zeros = False in [x[2] == 0 for x in my_list] or even 0 in [x[2] for x in my_list] and correspondingly for any_zeros? I don't really see any remarkable improvement over all(). – tripleee Jul 2 at 10:59
  • no, your version - all_zeros = False in [x[2] == 0 for x in my_list] evaluates to False, while mine evaluates to True. If you change it to all_zeros = not (False in [x[2] == 0 for x in my_list]) then it is equivalent to mine. And 0 in [x[2] for x in my_list] is obviously only going to work for any_zeros. But I do like the succinctness of your idea, so I will update my answer – mulllhausen Jul 4 at 7:41

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