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Consider I have an array of elements out of which I want to create a new 'iterable' which on every next applies a custom 'transformation'. What's the proper way of doing it under python 2.x?

For people familiar with Java, the equivalent is Iterables#transform from google's collections framework.

Ok as for a dummy example (coming from Java)

Iterable<Foo> foos = Iterables.transform(strings, new Function<String, Foo>()
    {
        public Foo apply(String string) {
        return new Foo(string);
        }
    });


//use foos below
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Some concrete examples would be useful. –  Max Shawabkeh Mar 16 '10 at 22:32

3 Answers 3

up vote 5 down vote accepted

A generator expression:

(foobar(x) for x in S)
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+1 for idiomatic way to indicate lazily-evaluated transformation of a sequence in Python. –  Derrick Turk Mar 16 '10 at 22:42

Another way of doing it:

from itertools import imap
my_generator = imap(my_function, my_iterable)

That's the way I'd do it myself, but I'm kind of weird in that I actually like map.

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Don't feel bad for the guilty pleasure of using the functional side of Python! –  tzot Apr 15 '10 at 19:53

Or by using map():

def foo(x):
   return x**x   

for y in map(foo,S):
   bar(y)

# for simple functions, lambda's are applicable as well
for y in map(lambda x: x**x,S):
   bar(y)
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2  
Note that the question is asking for lazy evaluation; a genexp is more appropriate. Not downvoting because this is a valid (but eager-evaluated) alternative. That said, even for eager evaluation a list comprehension would probably be more idiomatic. –  Derrick Turk Mar 16 '10 at 22:41
    
You're right, I missed the original intent. I'm leaving it here for completeness. –  Alexander Gessler Mar 16 '10 at 22:45

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