6

I want to insert a key behind a given key in a OrdedDict.

Example:

my_orderded_dict=OrderedDict([('one', 1), ('three', 3)])

I want 'two' --> 2 to get into the right place.

In my case I need to update the OrdedDict in-place.

Background

SortedDict of Django (which has an insert()) gets removed: https://code.djangoproject.com/wiki/SortedDict

7
from collections import OrderedDict # SortedDict of Django gets removed: https://code.djangoproject.com/wiki/SortedDict

my_orderded_dict=OrderedDict([('one', 1), ('three', 3)])

new_orderded_dict=my_orderded_dict.__class__()
for key, value in my_orderded_dict.items():
    new_orderded_dict[key]=value
    if key=='one':
        new_orderded_dict['two']=2
my_orderded_dict.clear()
my_orderded_dict.update(new_orderded_dict)
print my_orderded_dict
  • this example code does successfully allow inserting new items in-place, however the code is prohibitively slow (as noted by @AshwiniChaudhary's answer) because the code creates a new collections.OrderedDict and then does a clear on the old dictionary then an update on the old OrderedDict (clearing the old dictionary and updating is expensive because clearing involves iterating and deleting all items. updating is expensive because it involves iterating over both the old/new and inserting.). – Trevor Boyd Smith Jun 7 '17 at 14:04
  • @TrevorBoydSmith feel free to update my code to a increase performance. If you are unsure, write me your idea first. I will look at it. – guettli Jun 7 '17 at 15:40
  • I upvoted your solution :). I was only warning unsuspecting future persons who might not be aware of the the performance implications. (The "prohibitively slow" part isn't your implementation. Your implementation is good enough given the requirements and the ordered dictionary's API... so again nothing wrong with your limitation.) – Trevor Boyd Smith Jun 7 '17 at 19:12

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