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How can I do the following, but have the new_key appear in the same spot as the old_key was before? So the solution would look like:

{ 'ONE: 'one', 2:'two', 3:'three' }   

Example:

dict[new_key] = dict[old_key]
    del dict[old_key]

Or in 1 step:

dict[new_key] = dict.pop(old_key)

which will raise KeyError if dict[old_key] is undefined. Note that this will delete dict[old_key].

>>> dict = { 1: 'one', 2:'two', 3:'three' }
>>> dict['ONE'] = dict.pop(1)
>>> dict
{2: 'two', 3: 'three', 'ONE': 'one'}
>>> dict['ONE'] = dict.pop(1)
Traceback (most recent call last):
  File "<input>", line 1, in <module>
KeyError: 1
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Remember that python dics are unordered groups of pairs <key,value> –  Ruben Bermudez Mar 6 at 19:16
    
Perhaps you want a named tuple, rather than a dictionary. Or you can sort your dictionary by key as you iterate over it. What are you really trying to do? –  Edward Mar 6 at 19:17
    
collections has "OrderedDict" you may want that ----otherwise, you may get change in order just by adding new keys, even without deleting –  vish Mar 6 at 19:17
1  
which will raise KeyError if dict[old_key] is undefined. In that case it doesn't make sense to replace the non-existing key anyway. What is the problem with your proposed solution? (Besides missing order in Python dicts if you actually meant that) –  Nabla Mar 6 at 19:17

2 Answers 2

Dictionaries are unordered; don't ever rely on the ordering of keys. Therefore, replacing a key "to preserve order" doesn't make sense.

It's possible to do this with an OrderedDict, but it requires inserting all keys into a new ordered dictionary (because you cannot insert into the middle of an OrderedDict).

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I would replace the key using the method you described, but keep in mind that Python dicts are semantically unordered:

my_dict[new_key] = my_dict.pop(old_key)
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