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I have a list of lists and want to replace all the occurrences of the same word within the entire list/matrix with a dash except the first occurrence. I have created a separate list that has a count of how many of each element is in the original list of lists. I want the first occurrence of the word to be replaced by the item in the count list so the number is there.

table = [['Bacteria', 'Aquificae', 'Persephonella'],
        ['Bacteria', 'Aquificae', 'Thermovibrio'],
        ['Bateria', 'Firmicutes', 'Bacillus']]
countlist = ['Bacteria3', 'Aquificae2', 'Persephonella1', 'Thermovibrio1', 'Firmicutes1', 'Bacillus1']

So I want the list to be like this when I'm done:

table = [['Bacteria3', 'Aquificae2', 'Persephonella1'],
        ['-', '-', 'Thermovibrio1'],
        ['-', 'Firmicutes1', 'Bacillus1']]

I want to put this into a tab delimited table after so it won't look so confusing in the end.

This is what I have currently for replacing the word with the count list version but is not working:

for num in range(1525):
    for n in table[num]:
            for s in count:
                    if n in s:
                            n = s

I'm stuck on this and any help would be greatly appreciated.

EDIT Working in Python 2.6.1

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3  
This looks like a bad idea for a data structure. Why mix the number into the name of the species? Also, in Python you don't usually use for ... in range() loops but rather iterate over the structures directly. –  Tim Pietzcker Jun 14 '12 at 16:56
1  
It is important to use the appropriate tools for this task, for the sake of speed and maintainability. You can store occurances in a dictionary {name: num_of_occurances} and then output your table any way you choose fit. –  dm03514 Jun 14 '12 at 16:58
    
@TimPietzcker, to iterate over structures directly do you mean something like for i in range(len(a)):? @dm03514 With a dictionary would I be able to maintain that the columns are subgroups of the previous columns? ie aquificae and firmicutes are subgroups of bacteria. I thought dictionaries had only associated keys but were otherwise random in order so the relationship would be lost. –  Binnie Jun 14 '12 at 18:48
    
No, you can simply do for item in a. –  Tim Pietzcker Jun 14 '12 at 19:01
    
See edit following your request to work with Python 2.6.1 –  gauden Jun 14 '12 at 19:18

2 Answers 2

up vote 1 down vote accepted

I agree with all that is said in the comments and other answers on the data structure. I only add this answer as it provides a way of getting the table in the format requested by the OP.

EDIT commented out the use of Counter so as to allow this to work on Python 2.6

# from collections import Counter
from pprint import pprint

table = [['Bacteria', 'Aquificae', 'Persephonella'],
        ['Bacteria', 'Aquificae', 'Thermovibrio'],
        ['Bacteria', 'Firmicutes', 'Bacillus']]

# count_dict = Counter( [ item for row in table for item in row   ] )

count_dict = {}
for row in table:
    for item in row:
        count_dict[item] = count_dict.get(item, 0) + 1

for index_row, row in enumerate(table):
    for index_col, element in enumerate(row):
        if element in count_dict:
            table[index_row][index_col] = '%s %s' % (element, count_dict[element])
            del count_dict[element]
        else:
            table[index_row][index_col] = '-'

pprint(table)

which produces:

[['Bacteria 3', 'Aquificae 2', 'Persephonella 1'],
 ['-', '-', 'Thermovibrio 1'],
 ['-', 'Firmicutes 1', 'Bacillus 1']]
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I was writing an edit with almost an identical solution in case they wanted the table like this-- I'll stop now :) –  GP89 Jun 14 '12 at 17:25
    
+1 to you @GP89 as you have already put in the core answer. –  gauden Jun 14 '12 at 17:26
    
I tried this and is probably what I would like but I just discovered I am working in python 2.6.1... Any suggestions? –  Binnie Jun 14 '12 at 18:24
    
This should have removed the parts inaccessible to Python 2.6.1 –  gauden Jun 14 '12 at 18:49
    
Thank you!! this was exactly what I was requesting! –  Binnie Jun 14 '12 at 19:29

I can't tell if your table with dashes in is required, or just a step you think you need to get to the tab delimitated table, this code will get a list with names appended with totals that can be used to make the tab delimitated table

from collections import Counter
count= Counter([item for sublist in table for item in sublist])
totals= ["%s%i"%(e,c) for e,c in count.most_common()]

#can then be tab deliminated
"\t".join(totals)
share|improve this answer
    
I tried this and is probably what I would like but I just discovered I am working in python 2.6.1...So the Counter isn't available. Any suggestions? The dashes are not necessary if the output without them is not confusing. –  Binnie Jun 14 '12 at 18:23

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