2

I have dicts of two types representing same data. These are consumed by two different channels hence their keys are different.

for example: Type A

{ 
  "key1": "value1",
  "key2": "value2",
  "nestedKey1" : {
      "key3" : "value3",
      "key4" : "value4"
   } 
}

Type B

{ 
  "equiKey1": "value1",
  "equiKey2": "value2",
  "equinestedKey1.key3" : "value3",
  "equinestedKey1.key4" : "value4"
}

I want to map data from Type B to type A. currently i am creating it as below

{
  "key1": typeBObj.get("equiKey1"),
   .....
}

Is there a better and faster way to do that in Python

  • So you want to strip the leading "equi" from the keys and deposit them at the same relative positions in Type A? – holdenweb Dec 12 '18 at 10:42
  • 1
    key names are just for demonstration. These could be anything. I have used "equi" in short for equivalent key – Abhishek Jha Dec 12 '18 at 10:56
  • I'd personally do it in a recursive function, and keep track of the nested path, and check B with that. May be some faster ways, but if you have like <10000 keys for example, the simple way won't really hurt speed. Also for the record, the equi bit only makes your question less clear. – Peter Dec 12 '18 at 11:09
  • I think the question needs to be less ambiguous before anyone can give a useful answer. Perhaps the complete output you require would clarify things? – holdenweb Dec 12 '18 at 11:17
1

First, you need a dictionary mapping keys in B to keys (or rather lists of keys) in A. (If the keys follow the pattern from your question, or a similar pattern, this dict might also be generated.)

B_to_A = { 
  "equiKey1": ["key1"],
  "equiKey2": ["key2"],
  "equinestedKey1.key3" : ["nestedKey1", "key3"],
  "equinestedKey1.key4" : ["nestedKey1", "key4"]
}

Then you can define a function for translating those keys.

def map_B_to_A(d):
    res = {}
    for key, val in B.items():
        r = res
        *head, last = B_to_A[key]
        for k in head:
            r = res.setdefault(k, {})
        r[last] = val
    return res

print(map_B_to_A(B) == A) # True

Or a bit shorter, but probably less clear, using reduce:

def map_B_to_A(d):
    res = {}
    for key, val in B.items():
        *head, last = B_to_A[key]
        reduce(lambda d, k: d.setdefault(k, {}), head, res)[last] = val
    return res

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.