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I am told to

Write a function, square(a), that takes an array, a, of numbers and returns an array containing each of the values of a squared.

At first, I had

def square(a):
    for i in a: print i**2

But this does not work since I'm printing, and not returning like I was asked. So I tried

    def square(a):
        for i in a: return i**2

But this only squares the last number of my array. How can I get it to square the whole list?

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1  
Is this homework? Seems like it is. –  Damian Schenkelman Sep 23 '12 at 19:20
    
yes it is, I said "I am told to ..." so I thought it was obvious. I took a few attempts on the problem also and could not come up with the format that was asked for so I came here. –  user1692517 Sep 23 '12 at 19:25
1  
Please be careful with your use of list and array; those are two different data structures. –  Akavall Sep 23 '12 at 19:41
1  
@Akavall: note that the homework tag is now deprecated and should not be added to questions –  David Robinson Sep 23 '12 at 21:37
    
@DavidRobinson, Thanks for letting me know. –  Akavall Sep 23 '12 at 21:45

5 Answers 5

up vote 10 down vote accepted

You could use a list comprehension:

def square(list):
    return [i ** 2 for i in list]

Or you could map it:

def square(list):
    return map(lambda x: x ** 2, list)

Or you could use a generator. It won't return a list, but you can still iterate through it, and since you don't have to allocate an entire new list, it is possibly more space-efficient than the other options:

def square(list):
    for i in list:
        yield i ** 2

Or you can do the boring old for-loop, though this is not as idiomatic as some Python programmers would prefer:

def square(list):
    ret = []
    for i in list:
        ret.append(i ** 2)
    return ret
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Good that you point out a lot of methods. However, most established solutions are based on list comprehension or numpy. For performance of map in combination with lambda, have a look at stackoverflow.com/questions/1247486/… –  Jan-Philip Gehrcke Sep 23 '12 at 19:27
    
Thank you! I used the comprehension method. Will be looking more into that method. –  user1692517 Sep 23 '12 at 19:28
    
"This is not as idiomatic as some Python programmers would prefer" - I completely agree, but it's worth pointing out that there are situations in which the only practical option is to append to a list. The best example I can think of is if the generator needs to 'remember' the numbers it has previously returned so as not to return duplicates or get into a cycle. –  Benjamin Hodgson Sep 23 '12 at 22:14

Use a list comprehension (this is the way to go in pure Python):

>>> l = [1, 2, 3, 4]
>>> [i**2 for i in l]
[1, 4, 9, 16]

Or numpy (a well-established module):

>>> numpy.array([1, 2, 3, 4])**2
array([ 1,  4,  9, 16])

In numpy, math operations on arrays are, by default, executed element-wise. That's why you can **2 an entire array there.

Other possible solutions would be map-based, but in this case I'd really go for the list comprehension. It's Pythonic :) and a map-based solution that requires lambdas is slower than LC.

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def square(a):
    squares = []
    for i in a:
        squares.append(i**2)
    return squares
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Use numpy.

import numpy as np
b = list(np.array(a)**2)
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1  
Numpy for such a trivial problem seems like overkill. –  Waleed Khan Sep 23 '12 at 19:24
1  
Fair point, but where you have the need to square lists, you soon need to start doing other operations with them and there is no reason re-invent the wheel. –  tcaswell Sep 23 '12 at 19:27

One more map solution:

def square(a):
    return map(pow, a, [2]*len(a))
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