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Here is a input list:

['a', 'b', 'b', 'c', 'c', 'd']

The output I expect should be:

[[0, 'a'], [1, 'b'],  [1, 'b'], [2, 'c'], [2, 'c'], [3, 'd']]

I try to use map()

>>> map(lambda (index, word): [index, word], enumerate([['a', 'b', 'b', 'c', 'c', 'd']])
[[0, 'a'], [1, 'b'], [2, 'b'], [3, 'c'], [4, 'c'], [5, 'd']]

How can I get the expected result?

EDIT: This is not a sorted list, the index of each element increase only when meet a new element

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2  
is the list sorted? –  Ashwini Chaudhary Jul 15 '12 at 8:11
    
Thanks a lot, I forgot this key point –  fishiwhj Jul 15 '12 at 8:22

4 Answers 4

up vote 1 down vote accepted

It sounds like you want to rank the terms based on a lexicographical ordering.

input = ['a', 'b', 'b', 'c', 'c', 'd']
mapping = { v:i for (i, v) in enumerate(sorted(set(input))) }
[ [mapping[v], v] for v in input ]

Note that this works for unsorted inputs as well.

If, as your amendment suggests, you want to number items based on order of first appearance, a different approach is in order. The following is short and sweet, albeit offensively hacky:

[ [d.setdefault(v, len(d)), v] for d in [{}] for v in input ]
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nice solution but too much work for long lists; O(n*log(n)), but the obvious solution takes O(n) –  Igor Chubin Jul 15 '12 at 8:17
    
@IgorChubin: You can only do better by assuming sorted input. I intentionally avoided that. –  Marcelo Cantos Jul 15 '12 at 8:18
    
There is no need for sorted input. The O(n) solution is obvious and you need sorted input at all. –  Igor Chubin Jul 15 '12 at 8:21
    
@IgorChubin: Your solution isn't O(n). The expression if k not in d is O(log(n)) and you call it from inside an O(n) loop. Ranking unsorted inputs is equivalent to sorting, for which there is no O(n) solution in the general case. –  Marcelo Cantos Jul 15 '12 at 8:23
    
No, k not in d it is O(1). See stackoverflow.com/questions/1963507/… for example. –  Igor Chubin Jul 15 '12 at 8:27
>>> import itertools
>>> seq = ['a', 'b', 'b', 'c', 'c', 'd']
>>> [[i, c] for i, (k, g) in enumerate(itertools.groupby(seq)) for c in g]
[[0, 'a'], [1, 'b'], [1, 'b'], [2, 'c'], [2, 'c'], [3, 'd']]
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+1 but don't forget sort the list before –  Igor Chubin Jul 15 '12 at 8:12
    
@IgorChubin Depends on what the OP wants, he didn't have a result for an unsorted list so I'm not sure... –  jamylak Jul 15 '12 at 8:14
    
Wow you're fast! –  Karl Knechtel Jul 15 '12 at 8:15
    
That's right. But when you need solution for the unsorted list and want to save its order, this will not work at all. –  Igor Chubin Jul 15 '12 at 8:16
[
    [i, x]
    for i, (value, group) in enumerate(itertools.groupby(['a', 'b', 'b', 'c', 'c', 'd']))
    for x in group
]
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the same as the solution from jamylak; works only for storted lists. –  Igor Chubin Jul 15 '12 at 8:19
    
Really exactly the same, just different names and with the value in-line as in the OP. And figured out marginally slower :) –  Karl Knechtel Jul 15 '12 at 9:02

When list is sorted use groupby (see jamylak answer); when not, just iterate over the list and check if you've seen this letter already:

a = ['a', 'b', 'b', 'c', 'c', 'd']
result = []
d = {}
n = 0
for k in a:
  if k not in d:
     d[k] = n
     n += 1
  result.append([d[k],k])

It is the most effective solution; it takes only O(n) time.

Example of usage for unsorted lists:

[[0, 'a'], [1, 'b'], [1, 'b'], [2, 'c'], [2, 'c'], [3, 'd'], [0, 'a']]

As you can see, you have here the same order of items as in the input list.

When you sort the list first you need O(n*log(n)) additional time.

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