99

If the value is None, I'd like to change it to "" (empty string).

I start off like this, but I forget:

for k, v in mydict.items():
    if v is None:
... right?
0

3 Answers 3

171
for k, v in mydict.iteritems():
    if v is None:
        mydict[k] = ''

In a more general case, e.g. if you were adding or removing keys, it might not be safe to change the structure of the container you're looping on -- so using items to loop on an independent list copy thereof might be prudent -- but assigning a different value at a given existing index does not incur any problem, so, in Python 2.any, it's better to use iteritems.

In Python3 however the code gives AttributeError: 'dict' object has no attribute 'iteritems' error. Use items() instead of iteritems() here.

Refer to this post.

4
  • 1
    @John, it applies to any built-in container -- just as much to a list as to a dict -- and I think "index" is a more generic term than "key". Feb 23, 2010 at 2:10
  • 2
    mydict[k] = '' -- your example updates k index to an immutable object, ''. So after this, k would point to an entirely different object than v. Would this mutate the k index in some way that might cause problems with .iteritems()?
    – CivFan
    Apr 14, 2015 at 18:28
  • 4
    @CivFan, nope, altering or re-assigning a value (as opposed to a key) does not give problems with dict.iteritems. Apr 17, 2015 at 10:46
  • 1
    Hmm ... I wonder if the advice to use .items to loop if you're adding/removing keys is prudent. I don't know the implementation details of dict_items objects, but it seems that you might still have issues iterating over them in python3.x if you're adding/deleting keys. In that case, it's probably safest to iterate over a list of the keys: for k in list(mydict): v = mydict[k]; ...
    – mgilson
    May 7, 2015 at 19:04
16

You could create a dict comprehension of just the elements whose values are None, and then update back into the original:

tmp = dict((k,"") for k,v in mydict.iteritems() if v is None)
mydict.update(tmp)

Update - did some performance tests

Well, after trying dicts of from 100 to 10,000 items, with varying percentage of None values, the performance of Alex's solution is across-the-board about twice as fast as this solution.

2
  • Hmm, for Python 2.7 I see about the same performance ( though the Alex's method is still always faster ) ; I have tried dicts with 1000 .. 100000 values and None percentage from 2 to 50 %% ; for comparison, the method from buckley ( with s/items/iteritems/ ) was about 4 times slower. I think this is kind of interesting, since your form allows one to alter the dictionary on iteration. Jul 3, 2014 at 10:52
  • list comprehensions make a new dict, that's why it is slower as compared to the accepted answer. Jul 8 at 5:30
12

Comprehensions are usually faster, and this has the advantage of not editing mydict during the iteration:

mydict = dict((k, v if v else '') for k, v in mydict.items())
3
  • 1
    If you are using .items() it doesn't matter (for python2) if you modify mydict as the list that .items() returns will not change even if you add/remove keys of mydict Feb 23, 2010 at 1:30
  • 4
    Changing only values in a dict is never a problem; grief is caused by adding/deleting KEYS while iterating over the dict. Comprehensions are faster than WHAT? Really fast: copying the whole dict when there's one or two Nones to change. Speaking of Nones, you should have if v is not None instead of if v (re-read the question). Overall summary: -1 Feb 23, 2010 at 2:06
  • Your solution replaces 0, empty list and everything that is False in a boolean context by ''. I would suggest replacing if v by if v is None, this is also more PEP 8 compliant : python.org/dev/peps/pep-0008/#programming-recommendations Jan 11, 2019 at 9:33

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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