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I have list of several milions of dictionaries produced from json in form like this:

{
  "_id":XXX,
  "some_other":"fields",
  ...
}

List needs to be safe-sorted by _id key however there are disctionaries with duplicated _id. There's really few duplicates comparing to size of list (around 10-100 at most). I want to take only first (or last, doesn't matter as long as it's deterministic) dictionary for each duplicated _id. In JavaScript I'd use following:

list.sort((a,b)=>a._id>b._id?1:(a._id<b._id?-1:0))
    .filter((ent,i,arr)=>i==0||ent!=arr[i-1])

However I guess python variant of filter doesn't allow accessing index of item? Is there any similarly short way to accomplish such thing in Python? I found sorted(...) function that allows me to sort this list the way I want, however I still don't know how to filter out following duplicates (without obvious, brute for loop).

1
  • have you looked at sorted and filter? Python has map, filter, and reduce constructs, and you could write an equivalent expression with Python's (a bit unwieldy) anonymous function syntax, using lambda args: <expression with args>... Although, for filtering/mapping, frequently list-comprehensions (and related constructs, e.g. dict comprehensions, set comprehensions, or even generator expressions) are considered more idiomatic. – juanpa.arrivillaga Dec 27 '17 at 19:42
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Use a dictionary to remove duplicates (this will always keep the last occurrence for each _id):

d = {i['_id']: i for i in your_list}

Then sort its values by _id:

list(sorted(d.values(), key=lambda i: i['_id']))
2

An idiomatic way, in python, would be:

import itertools
import operator

get_id = operator.itemgetter('_id') #factory function: lambda x:x['_id']
grouped = itertools.groupby(sorted(json_data, key=get_id), get_id)

result = [next(g) for k,g in grouped]

Note, the built-in python sorted is an stable-sort, using an adaptive merge-sort called timsort.

itertools is a very useful module, implementing various lazy-iterators efficiently. groupby is a grouping iterator:

# [k for k, g in groupby('AAAABBBCCDAABBB')] --> A B C D A B
# [list(g) for k, g in groupby('AAAABBBCCD')] --> AAAA BBB CC D                 

You can create a transliteration of your javascript, using python anonymous functions and a ternary operator (in Python, a "conditional expression"). Note, Python's sorted function doesn't use a comparator function, it uses a key-based function:

key specifies a function of one argument that is used to extract a comparison key from each list element: key=str.lower. The default value is None (compare the elements directly).

In Python 2, a cmp argument that works similarly to the Javascript version still is available (e.g. a function that returns -1, 1, or 0)

cmp was deprecated and finally removed in Python 3 in favor of key.

1

Using sorted, filter, and map:

d = [
    {
        "_id": 3,
        "some_other": "a"
    },
    {
      "_id": 1,
      "some_other": "b"
    },
    {
        "_id": 2,
        "some_other": "c"
    },
    {
        "_id": 2,
        "some_other": "d"
    }
]

sorted_d = sorted(d, key=lambda x: x['_id'])
map(
    lambda y: y[1],
    filter(
        lambda x: True if x[0]==0 else sorted_d[x[0]]["_id"] != sorted_d[x[0]-1]["_id"],
        enumerate(sorted_d)
    )
)

Output:

[{'_id': 1, 'some_other': 'b'},
 {'_id': 2, 'some_other': 'c'},
 {'_id': 3, 'some_other': 'a'}]

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