1

What is efficient way of removing empty values from dictionary which is saved inside the list.

list1 = [{'l1k1': 'l1v1', 'l1k2': 'l1v2'}, {'l2k1': 'l2v1', 'l2k2': ''}]
list2 = []
for l in list1:
  d = {}
  for k, v in l.items():
    if v.strip() is not None or v.strip() != '':
      d[k] = v
  list2.append(d)
print(list2)

Actual Output:

[{'l1k1': 'l1v1', 'l1k2': 'l1v2'}, {'l2k1': 'l2v1', 'l2k2': ''}]

Expected Output:

[{'l1k1': 'l1v1', 'l1k2': 'l1v2'}, {'l2k1': 'l2v1'}]
  • picky, but in your example you actually do not remove the key/value pairs, you just don't copy them – ezdazuzena Feb 25 at 13:12
  • 1
    Suppose v is an empty string. In that case (v.strip() is not None) will be True, so the empty string is added to the dict d anyway due to the 'or' condition. Reasoning about combining negatives (is not and !=) is hard and I'd recommend avoiding it. – Simon Hibbs Feb 25 at 13:15
7

Try this:

list1 = [{'l1k1': 'l1v1', 'l1k2': 'l1v2'}, {'l2k1': 'l2v1', 'l2k2': ''}]
list2 = [{ k: v for k, v in d.items() if v and v.strip() } for d in list1]

Notice that the correct check to do here is v and v.strip(), that ensures that the string is not None and is not all spaces. It works as expected:

list2
=> [{'l1k1': 'l1v1', 'l1k2': 'l1v2'}, {'l2k1': 'l2v1'}]

It's efficient because it uses list comprehensions and dictionary comprehensions, which are faster than doing explicit loops. Also, it's quite compact and idiomatic :)

  • I do not know, I am getting same result, list1 = [{'l1k1': 'l1v1', 'l1k2': 'l1v2'}, {'l2k1': 'l2v1', 'l2k2': ''}] list2 = [ { k: v for k, v in d.items() } for d in list1] print(list2) print(list1) – Palla veera Feb 25 at 13:15
  • @Pallaveera copy the code again, I updated it – Óscar López Feb 25 at 13:16
  • Sometimes i get this error: AttributeError: 'dict' object has no attribute 'strip' – Palla veera Feb 25 at 13:34
  • @Pallaveera that means that some of your dicts have values that are dicts themselves! Check your input data, it doesn't look like the one in the question. – Óscar López Feb 25 at 13:36
7

Try this :

list2 = [{k:v for k,v in i.items() if v!= '' or v.strip() != ''} for i in list1]

We can use dict-comprehension as well as list-comprehension simultaneously. We loop for every element (which is a dictionary) of list1, and just take those key-value pairs where the value or value.strip() for the corresponding key in the dictionary is not a vacant string.

A shorter version for cancelling the values with None type also:

list2 = [{k:v for k,v in i.items() if v} for i in list1]
  • 1
    this is good but you should probably explain a little what it does, comprehensions aren't the most obvious things to new comers – Nullman Feb 25 at 13:15
  • This is too verbose (not to mention mistaken, because of the or), and also it's not handling the None case. Check my answer for a simpler solution. – Óscar López Feb 25 at 13:17
  • 1
    The strip() part in this code is useless, because you're using or. If v=' ' then v!='' or v.strip()!='' is true. – khelwood Feb 25 at 13:18
0

Here is a simple alternative, not using list comprehension that may be easier for you to follow:

for d in list1:
  for k in d.keys():
      if d[k] != '':
          list2.append({k:d[k]})
0

making a copy of your list is not very efficient, unless you WANT to keep the original as well. you can just remove the entries that are "empty" like so:

list1 = [{'l1k1': 'l1v1', 'l1k2': 'l1v2'}, {'l2k1': 'l2v1', 'l2k2': ''}]
for item in list1:
    for key in list(item.keys()):
        if not item[key].strip():
            del item[key]

this part list(item.keys()) is important. why list? because python doesnt like it when you change the size the dict during iteration, if we pre-get the keys, we will be iterating on a list instead of a generator.

not item[key].strip() is also a good to note, empty strings evaluate to False while non-empty string evaluate to True

*note: strictly speaking the .keys() isnt necessary, but it does help readability if youre new to python

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.