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>>> d = {'a':'b'}
>>> d['a']
'b'
>>> d['c']
KeyError: 'c'
>>> d.get('c', 'fail')
'fail'

>>> l = [1]
>>> l[10]
IndexError: list index out of range
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1  
Yes, thanks, I didn't know that lists are not dictionaries... Is there any reason for not having such method? Perfomance? Memory usage? Something other? –  CSZ Feb 26 '11 at 7:22
1  
Lists are used for different purposes than dictionaries. The get() is not needed for typical use cases of list. However, for dictionary the get() is quite often useful. –  mgronber Feb 26 '11 at 7:35
10  
You can always get an empty sublist out of a list without raising IndexError if you ask for a slice instead: l[10:11] instead of l[10], for example. ()Th sublist will have the desired element if it exists) –  jsbueno Feb 26 '11 at 14:01
7  
Contrary to some here, I support the idea of a safe .get. It would be the equivalent of l[i] if i < len(l) else default, but more readable, more concise, and allowing for i to be an expression without having to recalculate it –  Paul Draper Oct 29 '13 at 9:22
1  
Today I wished this existed. I use a expensive function that returns a list, but I only wanted the first item, or None if one didn't exist. It would have been nice to say x = expensive().get(0, None) so I wouldn't have to put the useless return of expensive into a temporary variable. –  Ryan Hiebert Jan 2 at 1:32

9 Answers 9

up vote 17 down vote accepted

Ultimately it probably doesn't have a safe .get method because a dict is an associative collection (values are associated with names) where it is inefficient to check if a key is present (and return its value) without throwing an exception, while it is super trivial to avoid exceptions accessing list elements (as the len method is very fast). The .get method allows you to query the value associated with a name, not directly access the 37th item in the dictionary (which would be more like what you're asking of your list).

Of course, you can easily implement this yourself:

def safe_list_get (l, idx, default):
  try:
    return l[idx]
  except IndexError:
    return default

You could even monkeypatch it onto the __builtins__.list constructor in __main__, but that would be a less pervasive change since most code doesn't use it. If you just wanted to use this with lists created by your own code you could simply subclass list and add the get method.

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Actually the reason that dict is associative collection of data and list is a plain collection doesn't seem good enough reason for me =). Maybe there is something with "explict is better than implict"? –  CSZ Feb 26 '11 at 7:31
7  
Python doesn't allow monkeypatching builtin types like list –  Imran Feb 26 '11 at 7:32
2  
@CSZ: .get solves a problem that lists don't have - an efficient way to avoid exceptions when getting data that may not exist. It is super trivial and very efficient to know what a valid list index is, but there's no particularly good way to do this for key values in a dictionary. –  Nick Bastin Feb 26 '11 at 7:35
2  
I don't think this is about efficiency at at all - checking if a key is present in a dictionary and / or returning an item are O(1). It won't be quite as fast in raw terms as checking len, but from a complexity point of view they're all O(1). The right answer is the typical usage / semantics one... –  Mark Longair Feb 26 '11 at 8:15
1  
@Mark: Not all O(1) are created equal. Also, dict is only best-case O(1), not all cases. –  Nick Bastin Feb 26 '11 at 18:56

Dictionaries are for look ups. It makes sense to ask if an entry exists or not. Lists are usually iterated. It isn't common to ask if L[10] exists but rather if the length of L is 11.

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Yes, agree with you. But I just parsed relative url of page "/group/Page_name". Split it by '/' and wanted to check if PageName is equal to certain page. It would be comfortable to write something like [url.split('/').get_from_index(2, None) == "lalala"] instead of making extra check for length or catch exception or write own function. Probably you are right it is simply considered unusual. Anyway I still disagree with this =) –  CSZ Feb 26 '11 at 7:48
    
@CSZ: What's wrong with getting an exception? –  Nick Bastin Feb 26 '11 at 7:55
    
@Nick Bastin: Nothing wrong. It is all about simplicity and speed of coding. –  CSZ Feb 26 '11 at 8:03
    
It would also be useful if you wanted to use lists as a more space efficient dictionary in cases where the keys are consecutive ints. Of course the existence of negative indexing already stops that. –  Antimony Jun 19 '12 at 0:56

Probably because it just didn't make much sense for list semantics. However, you can easily create your own by subclassing.

class safelist(list):
    def get(self, index, default=None):
        try:
            return self.__getitem__(index)
        except IndexError:
            return default

def _test():
    l = safelist(range(10))
    print l.get(20, "oops")

if __name__ == "__main__":
    _test()
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Instead of using .get, using like this should be ok for lists. Just a usage difference.

>>> l = [1]
>>> l[10] if 10 < len(l) else 'fail'
'fail'
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Your usecase is basically only relevant for when doing arrays and matrixes of a fixed length, so that you know how long they are before hand. In that case you typically also create them before hand filling them up with None or 0, so that in fact any index you will use already exists.

You could say this: I need .get() on dictionaries quite often. After ten years as a full time programmer I don't think I have ever needed it on a list. :)

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How about my example in comments? What is more simple and readable? (url.split('/').getFromIndex(2) == "lalala") OR (result = url.split(); len(result) > 2 and result[2] == "lalala"). And yes, I know I can write such function myself =) but I was surprised such function is not builtin. –  CSZ Feb 26 '11 at 8:40
    
Id' say in your case you are doing it wrong. URL handling should be done either by routes (pattern matching) or object traversal. But, to answer your specific case: 'lalala' in url.split('/')[2:]. But the problem with your solution here is that you only look at the second element. What if the URL is '/monkeybonkey/lalala'? You'll get a True even though the URL is invalid. –  Lennart Regebro Feb 26 '11 at 9:58
    
I took only second element because i needed only second element. But yes, slices seem good working alternative –  CSZ Feb 26 '11 at 16:02
    
@CSZ: But then the first element is ignored, and in that case you could skip it. :) See what I mean, the example doesn't work that well in real life. –  Lennart Regebro Feb 26 '11 at 16:34

This works if you want the first element, like my_list.get(0)

>>> my_list = [1,2,3]
>>> next(iter(my_list), 'fail')
1
>>> my_list = []
>>> next(iter(my_list), 'fail')
'fail'

I know it's not exactly what you asked for but it might help others.

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So I did some more research into this and it turns out there isn't anything specific for this. I got excited when I found list.index(value), it returns the index of a specified item, but there isn't anything for getting the value at a specific index. So if you don't want to use the safe_list_get solution which I think is pretty good. Here are some 1 liner if statements that can get the job done for you depending on the scenario:

>>> x = [1,2,3]
>>> el = x[4] if len(x) == 4 else 'No'
>>> el
'No'

You can also use None instead of 'No', which makes more sense.:

>>> x = [1,2,3]
>>> i=2
>>> el_i = x[i] if len(x) == i+1 else None

Also if you want to just get the first or last item in the list, this works

end_el = x[-1] if x else None

You can also make these into functions but I still liked the IndexError exception solution. I experimented with a dummied down version of the safe_list_get solution and made it a bit simpler (no default):

def list_get(l, i):
    try:
        return l[i]
    except IndexError:
        return None
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The best thing you can do is to convert the list into a dict and then access it with the get method:

>>> my_list = ['a', 'b', 'c', 'd', 'e']
>>> my_dict = dict(zip(range(len(my_list)), my_list))
>>> print my_dict
{0: 'a', 1: 'b', 2: 'c', 3: 'd', 4: 'e'}
>>> my_dict.get(2)
'c'
>>> my_dict.get(10, 'N/A')
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A reasonable workaround, but hardly "the best thing you can do". –  tripleee Nov 19 at 14:48

Try this:

>>> i = 3
>>> a = [1, 2, 3, 4]
>>> next(iter(a[i:]), 'fail')
4
>>> next(iter(a[i + 1:]), 'fail')
'fail'
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