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So I have file that with multiple line that look like this (space delimiter file):

A1BG      P04217     VAR_018369  p.His52Arg     Polymorphism  rs893184    -
A1BG      P04217     VAR_018370  p.His395Arg    Polymorphism  rs2241788   -
AAAS      Q9NRG9     VAR_012804  p.Gln15Lys     Disease       -           Achalasia

How do I make dictionary to look for id in second column and store the number (between words) on fourth column.

I tried this but it give me index of out range

lookup = defaultdict(list)
with open ('humsavar.txt', 'r') as humsavarTxt:
    for line in csv.reader(humsavarTxt):
        code = re.match('[a-z](\d+)[a-z]', line[1], re.I)
        if code: 
            lookup[line[-2]].append(code.group(1))

print lookup['P04217']
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3 Answers 3

up vote 3 down vote accepted

Here's a variant of the original code:

import csv, re
from collections import defaultdict

lookup = defaultdict(list)
with open('humsavar.txt', 'rb') as humsavarTxt:
    reader = csv.reader(humsavarTxt, delimiter=" ", skipinitialspace=True)
    for line in reader:
        code = re.search(r'(\d+)', line[3])
        lookup[line[1]].append(int(code.group(1)))

which produces

>>> lookup
defaultdict(<type 'list'>, {'P04217': [52, 395], 'Q9NRG9': [15]})
>>> lookup['P04217']
[52, 395]
share|improve this answer
    
thanks.. if i make this into a method do i just add def method_lookup(id) and add return in front of lookup? –  Chad D Aug 23 '12 at 21:21
    
Yes, add return lookup[id] after the last line, outside the for-loop of course. (Although there is a more efficient way to do this if you just want one id: search for the correct line, and only process that line. But for small files making a dict is much simpler, so you should probably stick to that!) –  BrtH Aug 23 '12 at 21:24
    
@BrtH what other way do you suggest i have a large file –  Chad D Aug 23 '12 at 21:30
    
@ChadD: If large means much more than 100.000 lines, than I would get into the effort of coming up with a more efficient way, but I doubt that your file is that large. –  BrtH Aug 23 '12 at 21:33

If you want a pure dictionary, this works:

d={}
with open(your_file,'rb') as f:
    for line in f:
        l=line.split()
        num=int(re.search(r'(\d+)',l[3]).group(1))
        d.setdefault(l[1],[]).append(num)

Prints:

{'P04217': [52, 395], 'Q9NRG9': [15]}

For a non regex solution, you can also do this:

d={}
with open(your_file,'rb') as f:
    for line in f:
        els=line.split()
        num=int(''.join(c for c in els[3] if c.isdigit()))
        d.setdefault(els[1],[]).append(num)
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thanks could you please tell me what is (\d+) means? –  Chad D Aug 23 '12 at 23:55
    
It is the regex for 1 or more digits –  the wolf Aug 23 '12 at 23:56

If the id and the number is always in the second and fourth column, and it's always space delimited you don't need to use regular expresion. You can split on the spaces instead:

lookup = defaultdict(list)
with open ('humsavar.txt', 'r') as humsavarTxt:
    for line in humsavarTxt:
         lookup[line.split(' ')[1]].append(line.split(' ')[3])
share|improve this answer
    
IT doesn't work when i try to print lookup['P04217'] –  Chad D Aug 23 '12 at 20:42
    
line.split(' ') will turn "a[space][space]b" into ['a', '', 'b']. Simply use line.split(). –  DSM Aug 23 '12 at 20:45
    
@DSM thanks.. do you know why it only yield 1 result since id P04217 has two line and it should return 2 results –  Chad D Aug 23 '12 at 20:51
    
@ChadD: your code uses a defaultdict and appends, so you get a list. This code simply reassigns to the dictionary, so the second line of your file will replace the first line's data. –  DSM Aug 23 '12 at 20:54
    
@ChadD: What DSM says, I edited this answer a bit to show it with the defaultdict. –  BrtH Aug 23 '12 at 20:58

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