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I am somewhat new to python and i have a problem. I have a file with 5 results for each unique identifier. Each result has a percent match, and various other pieces of data. My goal is to find the result with the greatest percent match, and then retrieve more information from that original line. For example

Name    Organism    Percent Match     Misc info
1        Human        100              xxx     
1        Goat          95              yyy
1        Pig           90              zzz   

I am attempting to solve this problem by putting each key in a dictionary with the values being each percent match unique to the given name (ie multiple values for every key). The only way I can think to proceed is to convert the values in this dictionary to a list, then sort the list. I then want to retrieve the greatest value in the list (list[0] or list[-1]) and then retrieve more info from the original line. Here is my code thus far

list = []  
if "1" in line: 
    id = line
    bsp = id.split("\t")
    uid = bsp[0]
    per = bsp[2]

    if not dict.has_key(uid):
        dict[uid] = []
    list = dict[uid]
if list[0] in dict:
    print key

This ends up just printing every key, as opposed to only that which has the greatest percent. Any thoughts? Thanks!

share|improve this question
NOTE: The sample file above, each "1" is the name for that item, and 100, 95 and 90 are the percent matches etc. – Vince Feb 15 '12 at 23:01
>.< don't use list as a variable name, or dict for that matter. – Joel Cornett Feb 15 '12 at 23:04
Do you execute the given code inside a loop? In this case, it will print keys before having read the whole file. Moreover, after sort a list, my_list[0] will be the smallest item, not the largest. – Sven Marnach Feb 15 '12 at 23:07

You should be able to do something like this:

lines = []
with open('data.txt') as file:
    for line in file:
        if line.startswith('1'):

best_match = max(lines, key=lambda k: int(k[2]))

After reading the file lines would look something like this:

>>> pprint.pprint(lines)
[['1', 'Human', '100', 'xxx'],
 ['1', 'Goat', '95', 'yyy'],
 ['1', 'Pig', '90', 'zzz']]

And then you want to get the entry from lines where the int value of the third item is the highest, which can be expressed like this:

>>> max(lines, key=lambda k: int(k[2]))
['1', 'Human', '100', 'xxx']

So at the end of this best_match will be a list with the data from the line you are interested in.

Or if you wanted to get really tricky, you could get the line in one (complicated) step:

with open('data.txt') as file:
    best_match = max((s.split() for s in file if s.startswith('1')),
                     key=lambda k: int(k[2]))
share|improve this answer

You could use csv to parse the tab-delineated data file, (though the data you posted looks to be column-spaced data!?)

Since the first line in your data file gives field names, a DictReader is convenient, so you can refer to the columns by human-readable names.

csv.DictReader returns an iterable of rows (dicts). If you take the max of the iterable using the Percent Match column as the key, you can find the row with the highest percent match:

Using this (tab-delimited) data as test.dat:

Name    Organism    Percent Match   Misc    info
1   Human   100 xxx
1   Goat    95  yyy
1   Pig 90  zzz
2   Mouse   95  yyy
2   Moose   90  zzz
2   Manatee 100 xxx

the program

import csv

maxrows = {}
with open('test.dat', 'rb') as f:
    for row in csv.DictReader(f, delimiter = '\t'):
        name = row['Name']
        percent = int(row['Percent Match'])
        if int(maxrows.get(name,row)['Percent Match']) <= percent:
            maxrows[name] = row



{'1': {'info': None, 'Percent Match': '100', 'Misc': 'xxx', 'Organism': 'Human', 'Name': '1'}, '2': {'info': None, 'Percent Match': '100', 'Misc': 'xxx', 'Organism': 'Manatee', 'Name': '2'}}
share|improve this answer
Very interesting, thanks! However, I think mostly due to a mistake in my input file example, this script prints only the max row and not the max rows if there are multiple inputs. That is my mistake for not specifying. Thanks for showing me import csv! – Vince Feb 17 '12 at 1:36
Okay, I changed it around a bit to collect one max row for each name. – unutbu Feb 17 '12 at 2:15
with open('datafile.txt', 'r') as f:
    lines ='\n')

matchDict = {}

for line in lines:
    if line[0] == '1':
        uid, organism, percent, misc = line.split('\t')
        matchDict[int(percent)] = (organism, uid, misc)

highestMatch = max(matchDict.keys())

print('{0} is the highest match at {1} percent'.format(matchDict[highestMatch][0], highestMatch))
share|improve this answer

I think you may be looking for something like:

from collections import defaultdict

results = defaultdict(list)
with open('data.txt') as f:
    #next(f)      # you may need this so skip the header
    for line in f:
        splitted = line.split()

maxs = {}
for uid,data in results.items():
    maxs[uid] =  max(data, key=lambda k: int(k[1]))

I've testif on a file like:

Name    Organism    Percent Match     Misc info
1        Human        100              xxx     
1        Goat          95              yyy
1        Pig           90              zzz   
2        Pig           85              zzz   
2        Goat          70              yyy

And the result was:

{'1': ['Human', '100', 'xxx'], '2': ['Pig', '85', 'zzz']}
share|improve this answer
+1 Beat me to it. – retracile Feb 15 '12 at 23:17
Thanks! This website rocks. – Vince Feb 17 '12 at 1:28
@Vince: You're welcome! Don't forget give something back to the community up-voting the good answers and accepting the most useful one :) – Rik Poggi Feb 17 '12 at 9:56

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