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I am unfortunately having to use python with version before 2.4 So I don't have the sorted built-in function. I need to sort a list; I found it is not possibly to go with

for aName in mylist.sort(lambda x,y:cmp(x.getName,y.getName)):

because then I would get an error saying

TypeError: iteration over non-sequence

I want to do the following:

for aName in sorted(mylist,key=lambda x:x.getName):

Can anybody help me with this? Many thanks.

share|improve this question
up vote 0 down vote accepted

You said that you wanted to do for aName in sorted(mylist,key=lambda x:x.getName): but accepted an answer that did something else ...

It's quite possible to write code that will run on multiple versions of Python 2.x. Here's how to retrofit sorted() functionality to Python 2.1 to 2.3. It uses the DSU (decorate-sort-undecorate) aka "Schwartzian Transform" method ... see this section of the Sorting HOWTO but do read the whole HOWTO; it's very informative.

try:
    sorted
    def mysorted(iterable, key, reverse=0):
        return sorted(iterable, key=key, reverse=reverse)
except NameError: # doesn't have "sorted"
    def mysorted(iterable, key, reverse=0):
        temp = [(key(x), x) for x in iterable]
        temp.sort()
        if reverse:
            return [temp[i][1] for i in xrange(len(temp) - 1, -1, -1)]
        return [t[1] for t in temp]

mylist = 'tom dick harriet alfred zechariah'.split()
mykey = lambda x: x[2:] # ignore 1st 2 characters
print mylist
print mysorted(mylist, mykey)
print mysorted(mylist, mykey, reverse=1)

Running the above script with Python 2.7.1 and 2.1.3 produces the same output:

['tom', 'dick', 'harriet', 'alfred', 'zechariah']
['zechariah', 'dick', 'alfred', 'tom', 'harriet']
['harriet', 'tom', 'alfred', 'dick', 'zechariah']
share|improve this answer
mylist.sort(lambda x,y:cmp(x.getName,y.getName))
for aName in mylist:
  ...

list.sort sorts in-place and doesn't have return value.

share|improve this answer
    
I think the OP needs to review the "mutable" section of Python. – orlp Apr 15 '11 at 20:03
    
-1 Provides neither sorted nor key -- i.e. functionality restricted to slow cmp method. – John Machin Apr 15 '11 at 23:32
def sorted(iter, **rest):
    temp = list(iter)
    temp.sort(**rest)
    return temp

I think that should work.

share|improve this answer
    
-1 The OP wants it to run on Pythons before 2.4, whose sort() doesn't accept keyword args, and doesn't have a key arg. Don't think; instead, read the manual and test your code. – John Machin Apr 15 '11 at 23:36

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