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I want to search a list for the occurence of a value (x) and return that value and a number, say 2, of the values above and below x in the index. Value x might appear in the list multiple time.

Input

in = ['a','b','c','d','x','e','f','g','h','i','x','j','k','l']

Output

out = ['c','d','x','e','f','h','i','x','j','k']

Thanks for any help or suggestions

3 Answers 3

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In [8]: lis = ['a','b','c','d','x','e','f','g','h','i','x','j','k','l']

#create a new list containing all the index positions of 'x'

In [9]: ind=[i for i,x in enumerate(lis) if x=='x']

In [10]: out=[]

# loop over ind list, and for every index i:
# here lis[i-2:i] are the elements left to the 'x' and similarly lis[i:i+3]
# are the ones to its right.
# which is  simply  lis[i-2:i+3] as suggested by @volatility

In [11]: for i in ind:
    out.extend(lis[i-2:i+3])

   ....:     


In [12]: out
Out[12]: ['c', 'd', 'x', 'e', 'f', 'h', 'i', 'x', 'j', 'k']

A one-liner using itertools.chain():

In [19]: from itertools import *

In [20]: list(chain(*[lis[i-2:i+3] for i in ind]))
Out[20]: ['c', 'd', 'x', 'e', 'f', 'h', 'i', 'x', 'j', 'k']
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  • +1: My interpretation was wrong. Also consider the boundary conditions ('x' at either end of the list).
    – Abhijit
    Jan 19, 2013 at 11:18
  • 1
    You can just do out.extend(lis[i-2:i+3]) in the for loop.
    – Volatility
    Jan 19, 2013 at 11:19
  • @Abhijit I am not sure what would be the expected output in those cases. Jan 19, 2013 at 11:22
  • Thanks all. @AshwiniChaudhary the boundary condition would be to include x if found at the boundary. Your solution has been very helpful.
    – bradj
    Jan 19, 2013 at 11:35
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l = ['a','b','c','d','x','e','f','g','h','i','x','j','k','l']


def search_w(mylist,item,before=1,after=1):
    newl=[]
    l = mylist[:]
    while item in l:
        i = l.index(item)
        newl+= l[i-before:i+after+1]
        l = l[i+after:]
    return newl


>>> print search_w(l,'x',2,2)

['c', 'd', 'x', 'e', 'f', 'h', 'i', 'x', 'j', 'k']
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An alternate solution using difflib.SequenceMatcher

>>> from itertools import chain
>>> from difflib import SequenceMatcher
>>> in_data = ['a','b','c','d','x','e','f','g','h','i','x','j','k','l']
>>> sm = SequenceMatcher(None, in_data, 'x'*len(in_data)).get_matching_blocks()
>>> list(chain(*(in_data[m.a -2 : m.a + 3] for m in sm[:-1])))
['c', 'd', 'x', 'e', 'f', 'h', 'i', 'x', 'j', 'k']
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  • @AshwiniChaudhary: Changed my solution to utilize difflib.SequenceMatcher
    – Abhijit
    Jan 19, 2013 at 11:43
  • @AshwiniChaudhary: Your solution is faster, but this should be the choice, when needle is a multi-character string.
    – Abhijit
    Jan 19, 2013 at 11:52

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