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I am attempting to sort a Python list of ints and then use the .pop() function to return the highest one. I have tried a writing the method in different ways:

def LongestPath(T):    
    paths = [Ancestors(T,x) for x in OrdLeaves(T)]
    #^ Creating a lists of lists of ints, this part works
    result =[len(y) for y in paths ]
    #^ Creating a list of ints where each int is a length of the a list in paths
    result = result.sort()
    #^meant to sort the result
    return result.pop()
    #^meant to return the largest int in the list (the last one)

I have also tried

def LongestPath(T):
    return[len(y) for y in [Ancestors(T,x) for x in OrdLeaves(T)] ].sort().pop()

In both cases .sort() causes the list to be None (which has no .pop() function and returns an error). When I remove the .sort() it works fine but does not return the largest int since the list is not sorted.

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Any reason you're not using max()? –  hc_ Mar 19 '12 at 20:12
    
hc_, When I do i get AttributeError: 'list' object has no attribute 'max' –  Btuman Mar 19 '12 at 20:17
2  
That's because max() is a function, not a list method. –  kindall Mar 19 '12 at 20:18

8 Answers 8

up vote 8 down vote accepted

Simply remove the assignment from

result = result.sort()

leaving just

result.sort()

The sort method works in-place (it modifies the existing list), so no assignment is necessary, and it returns None. When you assign its result to the name of the list, you're assigning None.

It can easily (and more efficiently) be written as a one-liner:

max(len(Ancestors(T,x)) for x in OrdLeaves(T))

max operates in linear time, O(n), while sorting is O(nlogn). You also don't need nested list comprehensions, a single generator expression will do.

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Ok, So why would the second method not work? Why would returning a the list with .sort() cause it to return None –  Btuman Mar 19 '12 at 20:15
1  
@Btuman because you're still accessing the return value of .sort() when you try to .pop() -- so you're trying to do None.pop(), not sortedlist.pop(), in both versions. If you really want to use a one-liner and a sort instead of max, you should use sorted(len(Ancestors(T,x)) for x in OrdLeaves(T))[-1]. .pop() does two things -- it removes and returns the last value. Since you only need to return it, not remove it, just use [-1]. –  agf Mar 19 '12 at 20:18
2  
@Btuman To be clear, .sort() doesn't "cause the list to be None", it just returns None. However, when you assign that None to the name result, you lose access to the sorted list -- result no longer points to it. The same thing is happening in the one liner -- you're losing access to the list when you do .sort(), as you only have access to the result of the inner expression, and the result of .sort() is None not the list it modifies. –  agf Mar 19 '12 at 20:23

This

result = result.sort()

should be this

result.sort()

It is a convention in Python that methods that mutate sequences return None.

Consider:

>>> a_list = [3, 2, 1]
>>> print a_list.sort()
None
>>> a_list
[1, 2, 3]

>>> a_dict = {}
>>> print a_dict.__setitem__('a', 1)
None
>>> a_dict
{'a': 1}

>>> a_set = set()
>>> print a_set.add(1)
None
>>> a_set
set([1])

Python's Design and History FAQ gives the reasoning behind this design decision (with respect to lists):

Why doesn’t list.sort() return the sorted list?

In situations where performance matters, making a copy of the list just to sort it would be wasteful. Therefore, list.sort() sorts the list in place. In order to remind you of that fact, it does not return the sorted list. This way, you won’t be fooled into accidentally overwriting a list when you need a sorted copy but also need to keep the unsorted version around.

In Python 2.4 a new built-in function – sorted() – has been added. This function creates a new list from a provided iterable, sorts it and returns it.

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.sort() returns None and sorts the list in place.

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This has already been correctly answered: list.sort() returns None. The reason why is "Command-Query Separation":

http://en.wikipedia.org/wiki/Command-query_separation

Python returns None because every function must return something, and the convention is that a function that doesn't produce any useful value should return None.

I have never before seen your convention of putting a comment after the line it references, but starting the comment with a carat to point at the line. Please put comments before the lines they reference.

While you can use the .pop() method, you can also just index the list. The last value in the list can always be indexed with -1, because in Python negative indices "wrap around" and index backward from the end.

But we can simplify even further. The only reason you are sorting the list is so you can find its max value. There is a built-in function in Python for this: max()

Using list.sort() requires building a whole list. You will then pull one value from the list and discard it. max() will consume an iterator without needing to allocate a potentially-large amount of memory to store the list.

Also, in Python, the community prefers the use of a coding standard called PEP 8. In PEP 8, you should use lower-case for function names, and an underscore to separate words, rather than CamelCase.

http://www.python.org/dev/peps/pep-0008/

With the above comments in mind, here is my rewrite of your function:

def longest_path(T):
    paths = [Ancestors(T,x) for x in OrdLeaves(T)]
    return max(len(path) for path in paths)

Inside the call to max() we have a "generator expression" that computes a length for each value in the list paths. max() will pull values out of this, keeping the biggest, until all values are exhausted.

But now it's clear that we don't even really need the paths list. Here's the final version:

def longest_path(T):
    return max(len(Ancestors(T, x)) for x in OrdLeaves(T))

I actually think the version with the explicit paths variable is a bit more readable, but this isn't horrible, and if there might be a large number of paths, you might notice a performance improvement due to not building and destroying the paths list.

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In Python sort() is an inplace operation. So result.sort() returns None, but changes result to be sorted. So to avoid your issue, don't overwrite result when you call sort().

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list.sort() does not return a list - it destructively modifies the list you are sorting:

In [177]: range(10)
Out[177]: [0, 1, 2, 3, 4, 5, 6, 7, 8, 9]

In [178]: range(10).sort()

In [179]:

That said, max finds the largest element in a list, and will be more efficient than your method.

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Is there any reason not to use the sorted function? sort() is only defined on lists, but sorted() works with any iterable, and functions the way you are expecting. See this article for sorting details.

Also, because internally it uses timsort, it is very efficient if you need to sort on key 1, then sort on key 2.

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You don't need a custom function for what you want to achieve, you first need to understand the methods you are using!

sort()ing a list in python does it in place, that is, the return from sort() is None. The list itself is modified, a new list is not returned.

>>>results = ['list','of','items']
>>>results

['list','of','items']

>>>results.sort()
>>>type(results)

<type 'list'>

>>>results

['items','list','of']

>>>results = results.sort()
>>>results
>>>
>>>type(results)

<type 'NoneType'>

As you can see, when you try to assign the sort() , you no longer have the list type.

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