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I'm trying to find the counts of binary 5-mers in a long binary string. That is, Given a String of say: seq='000111100101101' , I want to count how many times each 5-mer appears. I generated a list of all 32 iterations easily enough :

import re
from itertools import product  
combo = [ ''.join(x) for x in product('01', repeat=5) ]

My problem now is counting the occurences of each combination in overlaps. (That is, I want to check in overlapping windows of length 5: 0:4, 1:5, 2:6, 3:7... (Total of Sequence Length-4 windows). I'm unsure how to do so in a way that counts the overlapping windows. (combo[i] = seq.count(i) Doesn't seem to work).

Thanks!

Example Desired ouput for a given seq:

seq: '11111101'
Combos: (11111 :2 ,  11101 :1 , 11110 :1)
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1 Answer 1

up vote 1 down vote accepted

Simple python implementation with defaultdict:

from collections import defaultdict
def C(s):
  d = defaultdict(int)
  for i in xrange(len(s)-4):
    d[s[i:i+5]] += 1
  return d

 C('010100101010101001111010000000001')
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What does 'code' d[s[i:i+5]] do exactly? (I want to understand why it can catch in overlaps. will d hold the various iterations as keys? (Not just their counts/Value?) THANKS! –  GrimSqueaker Sep 6 '12 at 14:50
    
s[i:i+5] is substring of string s of length 5 from position i. d is a defaultdict object, which is same as dictionary with a default value (0) if key is not mapped. So, d counts number of occurrences of each different substring of length 5. –  Ante Sep 6 '12 at 15:29

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