Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

In python if I do the following:

>>> list = [ 3, 2, 1]
>>> sorted_list = k.sort()

Then sorted_list is None and list is sorted:

>>> sorted_list = k.sort()
>>> print list, sorted_list
[1, 2, 3] None

However, if I do the following:

>>> list = [ 3, 2, 1]
>>> sorted_list = sorted(list)

Then list remains unsorted and sorted_list contains a copy of the sorted list:

>>> print list, sorted_list
[3, 2, 1] [1, 2, 3]

I am wondering if there is an equivalent for the update function for dictionaries.

That way I could do something like this:

def foo(a, b, extra={}):
    bar = { 'first': a, 'second': b }
    special_function(**updated(bar, extra))
    normal_function(**bar)

rather than having to do something like this:

def foo(a, b, extra={}):
    bar = { 'first': a, 'second': b }
    special_bar = bar.copy()
    special_bar.update(extra) # [1]
    special_function(**special_bar)
    normal_function(**bar)

[1] Yes I realize I could simply replace these two lines with extra.update(bar) but let's assume I want to retain extra as is for later on in the function.

I realize I could implement this myself thusly:

def updated(old_dict, extra={}):
    new_dict = old_dict.copy()
    new_dict.update(extra)
    return new_dict

Or the following highly unreadable in-place statement:

    special_function(**(dict(bar.items()+extra.items())))

But I was hoping there was something built in that I could already use.

share|improve this question
1  
You should not use dict as a variable name. Also beware of mutable default arguments -- better get into the habit to never use them. –  Sven Marnach Feb 28 '12 at 16:51
1  
Your should not use dict as a variable name, I think @SvenMarnach means :) –  Matt Luongo Feb 28 '12 at 16:53
    
@MattLuongo: Thanks. I indeed said the opposite of what I meant. :) –  Sven Marnach Feb 28 '12 at 16:54
    
@SvenMarnach right you are; example updated –  Jordan Reiter Feb 28 '12 at 22:48

3 Answers 3

up vote 17 down vote accepted

You can simply use the built-in dict():

updated_dict = dict(old_dict, **extra_dict)
share|improve this answer
11  
Note that this will not work if the extra_dict keys are not strings. –  Rik Poggi Feb 28 '12 at 16:58
1  
@RikPoggi: I definitely should have mentioned this. For the use case given in the question this restriction is not relevant. –  Sven Marnach Feb 28 '12 at 17:50
    
Wow. Python never fails to amaze! –  Jordan Reiter Feb 28 '12 at 22:49

If you need non-string keys, you can use a function like that: (It is not as ugly as your "in-place" expression + it works for any number of dictionaries)

from itertools import chain # ← credits go to Niklas B.

def updated(*dicts):
    return dict(chain(*map(dict.items, dicts)))

updated({42: 'the answer'}, {1337: 'elite'}) # {42: 'the answer', 1337: 'elite'}

Otherwise Sven’s suggestion is just fine.

Edit: If you are using Python 2.7 or later, you can also use a dictionary comprehension, as Sven suggested in the comments:

def updated(*dicts):
    return {k: v for d in dicts for k, v in d.items()}
share|improve this answer
1  
+1, I like this :) Although I think sum for list concatenation is quite ugly, maybe itertools.chain would be a bit cleaner. For two dicts it's just dict(d1.items() + d2.items()) by the way, which is a bit more readable, IMO. –  Niklas B. Feb 28 '12 at 17:27
3  
Using sum() for list concatenation is not only ugly, it will make the whole thing O(n^2). How about using something like {k: v for d in dicts for k, v in d.items()}? –  Sven Marnach Feb 28 '12 at 17:43
    
@SvenMarnach Actually this is a really good idea! I am used to Python 2.6, so I do not always use Python 2.7 features... –  Gandaro Feb 28 '12 at 18:09
    
@NiklasB. itertools.chain sounds like a better idea than sum. It is cleaner, but in terms of performance sum and chain are very similar (slow…). I think I prefer Sven’s dictionary comprehension. :) –  Gandaro Feb 28 '12 at 18:11
2  
@Gandaro: chain() (and chain.from_iterable(), for that matter) would both be O(n), while the sum() version is O(n^2). For a larger number of dictionaries, the sum() version will become really slow. –  Sven Marnach Feb 28 '12 at 18:16

I don't really see what's wrong in using two lines, like you do:

new_bar = bar.copy()
new_bar.update(extra)

It's clean and readable.

>>> d = {1:2, 3:4}
>>> e = {3:9, 5:25}
>>> f = d.copy()
>>> f.update(e)
>>> d
{1: 2, 3: 4}
>>> f
{1: 2, 3: 9, 5: 25}
>>> e
{3: 9, 5: 25}

In three words: Zen of Python.

To be more clear: My point is that I wouldn't replace those two lines with an updated() function that's not coming from the standard library.

If I was to stumble in a line of code like:

new_bar = updated(bar, extra)

I'd have to track that function down to see what it does. I couldn't trust that it doesn't something strange.

The OP also compared that with sorted(), but sorted() has it's reason to exist, it acts on everything that's iterable and does that with the amazing timsort. Instead what should be the behaviour of an hypothetical updated()? Should that maybe be a dict class method? It's really not clear IMHO.

Said so one could choose the OP two lines, or Sven's solution, or a dict comprehension/generator-expression, I think it's really just a matter of taste.

share|improve this answer
    
Hm, it's procedural style, as opposed to a functional approach like Sven's or like merge in Ruby: {1=>3, 2=>4}.merge({4=>5}), which does not mutate anything. –  Niklas B. Feb 28 '12 at 17:25
    
@Niklas: I get that, but it seems that the OP is trying to implement an updated() function, my point was that I wouldn't do that. I explained that better in my "updated" answer. –  Rik Poggi Feb 28 '12 at 20:09
1  
+1. Do the obvious thing and get on with life. –  DSM Feb 28 '12 at 22:58

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.