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.

I needed to flatten a dictionary today. Meaning I wanted:

{'_id': 0, 'sub': {'a': 1, 'b':2}}

to become:

{'_id': 0, 'a':1, 'b':2}

So I thought I could be clever and pull off the following one-liner.

One-liner:

x = dict(_id=0, sub=dict(a=1, b=2))
y = x.pop('sub').update(x)  # incorrect result

This results in y = None.

So I obviously resorted to:

Multi-Step:

x = dict(_id=0, sub=dict(a=1, b=2))
y = x.pop('sub')
y.update(x)   # correct result

Setting "good expressive coding practices" asside for a moment, I would like to understand why the One-liner approach above yields None. I would have thought that x.pop('sub') would have resulted in a temporary dict on a stack somewhere and the original x dict would be immediately updated. Then the stack object would receive the next method in the chain which is the update. This obviously does not seem to be the case.

For the communities better understanding (and clearly mine) - how does python resolve the one-liner and result in None?

share|improve this question
    
Thanks Martijn and sr2222. Very obvious after I get past the very bad habit of forgetting that update ONLY works in place. For some reason I feel like it should also return the ref to the object for chaining purposes. Likely there was a dict somewhere in memory that would have held the correct result but obviously not accessible by any reference once the line completed. –  Rocketman Nov 26 '12 at 20:38

3 Answers 3

up vote 10 down vote accepted

The .update() method returns None, because it alters the affected dictionary in-place. .pop() does return the popped value, the nested dictionary.

You are updating the contained dict, why not update the parent dict instead?

x.update(x.pop('sub'))

Result:

>>> x = dict(_id=0, sub=dict(a=1, b=2))
>>> x.update(x.pop('sub'))
>>> x
{'a': 1, '_id': 0, 'b': 2}

Or you could do this recursively:

def inplace_flatten(d):
    keys = list(d.keys())
    for k in keys:
        if isinstance(d[k], dict):
            inplace_flatten(d[k])
            d.update(d.pop(k))
share|improve this answer
    
Yes. Of course. Very obvious now that I look at it :-) –  Rocketman Nov 26 '12 at 20:07
    
... and yes. Inverting the steps as you suggest is a very slick way to go. –  Rocketman Nov 26 '12 at 20:40

Because y gets the result of dict.update(), which is None.

share|improve this answer

This should do the trick

def flatten(d, answer=None):
    if answer == None:
        answer = {}
    if not d:
        return answer
    else:
        for k in d:
            if isinstance(d[k], dict):
                flatten(d[k], answer)
            else:
                answer[k] = d[k]
        return answer
share|improve this answer

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.