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I have this list of dictionaries:

cust = [
        {"id": 1, "name": u"name 1", "bill_amount": 1000},
        {"id": 2, "name": u"name 2", "bill_amount": 5000},
        {"id": 3, "name": u"name 3", "bill_amount": 7600},
        {"id": 4, "name": u"name 4", "bill_amount": 30}
       ]

And I want to get a list of just the names.

Trying this:

def getName(x): x["name"]
print map(getName, cust)

Returns this:

[None, None, None, None]

Why? Am I missing something obvious?

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3 Answers 3

up vote 3 down vote accepted
def getName(x):
    return x["name"]

In python, a function which returns nothing returns None. Do not confuse this with lambda-syntax (useful but not "pythonic"), which would have been: getName = lambda x: x["name"]

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Oh ok, I thought it was like ruby that the last expression is returned. Thanks –  emzero Mar 15 '12 at 0:49
2  
Btw, why lambdas are not considered "pythonic" ? –  emzero Mar 15 '12 at 0:50
    
according to Guido: "I've never liked lambda – crippled (only one expression) – confusing (no argument list parentheses) – can use a local function instead" –  wim Mar 15 '12 at 0:54
1  
@emzero: "pythonic" means "the normal way to do things in python". The main author of python doesn't like what code which abuses lambdas, so he made it hard to code with them. You cannot have multi-line lambdas, and there almost always a cleaner way to do things in python without using lambdas. Usually you'd just do def myFunction(...): and as many indented lines of code as you want. You can do this anywhere, even inside other functions. The only downside is it is sometimes a bit verbose, and forces you to give a name to a function you don't need to name. –  ninjagecko Mar 15 '12 at 0:56
2  
For the record, there are some of us who like lambdas -- even Python's lambdas -- a lot and think they're about the right size, and will almost always write a lambda rather than importing itemgetter from operator. While this is probably the minority view, there are enough who feel this way that the pushback against removing them ensured that lambdas survive to this day.. (which makes me happy, not least because I was on the losing side of the @ vote.) –  DSM Mar 15 '12 at 1:05

You could also use operator.itemgetter() instead of defining your own function for this:

>>> import operator
>>> map(operator.itemgetter("name"), cust)
[u'name 1', u'name 2', u'name 3', u'name 4']
share|improve this answer
    
+1 Very clean way of achieving this without the need to write additional code. –  Tadeck Mar 15 '12 at 1:00

As already pointed out, your function is not returning anything.

For the record, the pythonic way to do this is not to use map, but to use a list comprehension.

[d['name'] for d in cust]
share|improve this answer
    
I believe this is arguable (the usage of map() vs. list comprehensions) and it depends whether the function you want to apply is already defined or not. Anyway +1 for another option. –  Tadeck Mar 15 '12 at 1:02
    
I don't have any problem with map() personally, but Guido says "list comprehensions do the same thing better". source: slide 4 of python regrets –  wim Mar 15 '12 at 1:06
    
I believe some things have changed since 2002 and even if reduce() has been removed from builtins in 3.x, map() stays and is sometimes even more efficient (and cleaner, but this is rather subjective). –  Tadeck Mar 15 '12 at 1:19

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