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I have a text file that consists of million of vectors like this:-

V1
V1
V1
V3
V4
V1
V1

Note:- ORDER is important. In the above output file, i counted the first vector 3 times. The same pattern is repeated twice after 5th line. There count should be different.

I want to count how many times each vector line is repeated and add it in the output text file like this:-

In above 7 vectors, first 3 lines are same and rest 2 are different and then last lines are same. So the output should look like this:-

V1 count 3
V3
V4
V1 count 2

Although, first and last patterns are same but they are counted differently because they are in different order.

I can use python or perl.I know the maximum length of rows (vectors) but how do I compare each row (vector) with other. Please help

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closed as not constructive by David, Florent, Chathuranga Chandrasekara, kapa, Aleks G Oct 17 '12 at 8:34

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1  
what have you tried? –  1_CR Oct 16 '12 at 18:14
    
Doesn't the software which comes with your ATE equipment do that for you? –  toolic Oct 16 '12 at 18:15
    
I used SAS coding language but it is not best way. it is time consuming and long code. I need some simple way. –  Sudha Verma Oct 16 '12 at 18:15
    
This is not generated from ATE. –  Sudha Verma Oct 16 '12 at 18:16
    
Do you want that exact output format? My answer is the only one that gives it. –  ikegami Oct 16 '12 at 18:26

7 Answers 7

up vote 1 down vote accepted

If order doesn't matter

If you really want to do this in python (as opposed to the sort filepath | uniq -c as Jean suggests), then I would do this:

import collections
with open('path/to/file') as f:
    counts = collections.Counter(f)
    outfile = open('path/to/outfile', 'w')
    for line,occ in counts.iteritems():
        outfile.write("%s repeat %d\n" %(line.strip(), occ))
    outfile.close()

If order matters

If order matters (if entry i appears before entry j in the input file, then entry i must appear before entry j in the output file), then what you need is a modified run-length encoder. Note however, if you have the following input file:

v1
v1
v1
v2
v2
v3
v1

then, your output file will look like this:

v1 repeat 3
v2 repeat 2
v3
v1

with open('infilepath') as infile:
    outfile = open('outfilepath', 'w')
    curr = infile.readline().strip()
    count = 1
    for line in infile:
        if line.strip() == curr:
            count += 1
        else:
            outfile.write(curr)
            if count-1:
                outfile.write(" repeat %d\n" %count)
            else:
                outfile.write("\n")
            curr = line.strip()
            count = 1
    outfile.write(curr)
    if count-1:
        outfile.write(" repeat %d\n" %count)
    outfile.close()

Of course, uniq -c infilepath > outfilepath will do the same

Hope this helps

share|improve this answer
    
I'm getting an error- File not open for writing. I also added "import collections" at the top to run it. –  Sudha Verma Oct 16 '12 at 18:28
    
@SudhaVerma: Sorry about the error. I fixed the typo that caused it. Yes, you would have to import collections (reflected in the changes) –  inspectorG4dget Oct 16 '12 at 18:30
    
also this will only work on py27 or higher ... (which I assume is fine... since you can run it, but none the less is something to be aware of) –  Joran Beasley Oct 16 '12 at 18:32
    
The OP mentioned in the comments to the question that order is important, so I think Counter-based approaches may not work. –  DSM Oct 16 '12 at 18:33
    
Edited to include order-preserving mechanism –  inspectorG4dget Oct 16 '12 at 18:42
perl -nle'
   if ($c && $_ ne $last) {
      print $c > 1 ? "$last repeat$c;" : "$last;";
      $c = 0;
   }

   $last = $_;
   ++$c;

   END {
      if ($c) {
         print $c > 1 ? "$last repeat$c;" : "$last;";
      }
   }
' file

(You can put that all on one line, or leave it as is.)

Output:

V1 repeat3
V3
V4
V1 repeat2

This solution is avg case O(N) CPU and O(1) memory. It and inspectorG4dget's are the only two of the seven existing answers that give the output in the format and order you requested.

share|improve this answer
    
Changed solution so it preserves order. –  ikegami Oct 16 '12 at 18:36
    
Updated to the new specs (only combine consecutive repeating lines). –  ikegami Oct 16 '12 at 18:54
    
The last if (which you have repeated btw), is redundant, as $c can never be 0 there. –  TLP Oct 16 '12 at 19:01
    
That's true, but you still have two ifs. One regular, one post-script. –  TLP Oct 16 '12 at 19:19
1  
Not quite sure I follow. if ($c) { print if $c } if $c is false, the block is never called, if $c is true, the post-script if can never be false. ETA: I'm only talking about the ifs in the END block. –  TLP Oct 16 '12 at 19:45

Just run this on command prompt

sort text.txt | uniq -c > output.txt

Remove sort if you want to preserve ordering(Will only count consecutive unique lines)

uniq -c text.txt > output.txt

Or this will give the required precise output(Solution suggested by ikegami)

uniq -c text.txt \
| perl -ple's/^\s*(\d+) //; $_ .= " repeat$1" if $1 > 1; \
> output.txt
share|improve this answer
    
nice and short :) ... –  Joran Beasley Oct 16 '12 at 18:19
    
Fixed to give requested output. –  ikegami Oct 16 '12 at 19:40

If it all fits into memory, then you could do:

from collections import Counter

with open('vectors') as fin:
    counts = Counter(fin)

Or, if large, then you can use sqlite3:

import sqlite3

db = sqlite3.conncet('/some/path/some/file.db')
db.execute('create table vector (vector)')
with open('vectors.txt') as fin:
    db.executemany('insert into vector values(?)', fin)
    db.commit()

for row in db.execute('select vector, count(*) as freq from vector group by vector'):
    print row # do something suitable here

If the vectors are always contiguous:

from itertools import groupby
with open('vector') as fin:
    for vector, vals in groupby(fin):
        print '{} {}repeat'.format(vector, sum(1 for _ in vals))
share|improve this answer

Assuming python 2.7, a less memory-intensive solution

from collections import Counter
with open("some_file.txt") as f:
    cnt = Counter(f)
    print cnt
share|improve this answer
    
I think this still ends up O(N^2) ... im pretty sure it always will be ... counter is N^2 complexity afaik (since I dont have py2.7 im not positive ... but I cant see any way it would not be n^2) –  Joran Beasley Oct 16 '12 at 18:28
1  
@JoranBeasley: why would Counter be O(N^2)? You're just looping over each line (O(N)), checking to see if you've seen it already (O(1), basically, because of the hash), and incrementing/setting to 0 the current value (also ~O(1)). –  DSM Oct 16 '12 at 18:35
    
@JoranBeasley, a Counter is a dictionary under the hood, which should imply time complexity is amortized O(1), no? –  1_CR Oct 16 '12 at 18:36
    
oh thanks DSM .. that actually makes good sense ... –  Joran Beasley Oct 16 '12 at 18:43
    
@cravoori, "dictionary" is not a data structure. It's just another way of saying "associative array". The complexity depends on the actual data structure. –  ikegami Oct 16 '12 at 18:46
vectors = {}
for vector in open("vect.txt").readlines():
    vectors[vector] = vectors.setdefault(vector, 0) + 1
print vectors
share|improve this answer
    
Please add some explanation, not just code. –  John Saunders Oct 16 '12 at 18:29

I dont htink you can do this in less than O(n^2) ... (I could be wrong)

one way would be (in python)

with open("some_file_with_vectors") as f:
          data = f.read()

counts  = dict([(line,data.count(line)) for line in data.splitlines()])
print counts
#if you want to save to a file
with open("output.txt") as f:
   for key in counts:
       print >> f, key ,"=",counts[key]
share|improve this answer
    
no ... data.count(elem) is O(N) ... so therefor it is O(n^2) ... unless im mistaken ... (but thanks for the faith in me bein a super coder :P) –  Joran Beasley Oct 16 '12 at 18:21
    
It doesn't print anything. Can we store the output in text file? –  Sudha Verma Oct 16 '12 at 18:21
    
Ok, I don't know Python. Didn't know that data.count is O(N). See my answer for an O(N) version. –  ikegami Oct 16 '12 at 18:23
    
it does print for me with your example set ... I get {'10000000000000000000XXXXXXXXXXXX000XXXXXXXXXXXXX1XXXXXXXXXXXXXXX': 1, '00000000000000000000XXXXXXXXXXXX000XXXXXXXXXXXXX1XXXXXXXXXXXXXXX': 3, '01000000000000000000XXXXXXXXXXXX000XXXXXXXXXXXXX1XXXXXXXXXXXXXXX': 1} –  Joran Beasley Oct 16 '12 at 18:24
    
edited to output to file ... –  Joran Beasley Oct 16 '12 at 18:27

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