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Suppose you have a file that contains IP addresses, one address in each line:

10.0.10.1
10.0.10.1
10.0.10.3
10.0.10.2
10.0.10.1

You need a shell script that counts for each IP address how many times it appears in the file. For the previous input you need the following output:

10.0.10.1 3
10.0.10.2 1
10.0.10.3 1

One way to do this is:

cat ip_addresses |uniq |while read ip
do
    echo -n $ip" "
    grep -c $ip ip_addresses
done

However it is really far from being efficient.

How would you solve this problem more efficiently using bash?

(One thing to add: I know it can be solved from perl or awk, I'm interested in a better solution in bash, not in those languages.)

ADDITIONAL INFO:

Suppose that the source file is 5GB and the machine running the algorithm has 4GB. So sort is not an efficient solution, neither is reading the file more than once.

I liked the hashtable-like solution - anybody can provide improvements to that solution?

ADDITIONAL INFO #2:

Some people asked why would I bother doing it in bash when it is way easier in e.g. perl. The reason is that on the machine I had to do this perl wasn't available for me. It was a custom built linux machine without most of the tools I'm used to. And I think it was an interesting problem.

So please, don't blame the question, just ignore it if you don't like it. :-)

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why should i think even a second about a solution in bash when i can solve this problem in one line of perl or awk? next time, why not ask to do it on a keyboard that has no vowels? –  hop Dec 19 '08 at 15:29
    
I think bash is the wrong tool for the job. Perl will probably be a better solution. –  Francois Wolmarans Dec 19 '08 at 16:23
    
Could you provide some data on your performance measurements if you are claiming that sort ip_addresses | uniq -c is less efficient compared to presented hashtable-like solutions? –  J.F. Sebastian Dec 21 '08 at 15:37

12 Answers 12

up vote 115 down vote accepted
sort ip_addresses | uniq -c

This will print the count first, but other than that it should be exactly what you want.

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13  
which you can then pipe to "sort -nr" to have sorted in descending order, from highest to lowest count. ie sort ip_addresses | uniq -c | sort -nr –  Brad Parks Mar 11 at 11:45

The quick and dirty method is as follows:

cat ip_addresses | sort -n | uniq -c

If you need to use the values in bash you can assign the whole command to a bash variable and then loop through the results.

PS

If the sort command is omitted, you will not get the correct results as uniq only looks at successive identical lines.

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It's very similar efficiency-wise, you still have quadratic behavior –  Vinko Vrsalovic Dec 19 '08 at 12:22
    
Quadratic meaning O(n^2)?? That would depend on the sort algorithm surely, it's unlikely to use such a bogo-sort as that. –  paxdiablo Dec 19 '08 at 13:08
    
Well, in the best case it'd be O(n log(n)), which is worse than two passes (which is what you get with a trivial hash based implementation). I should have said 'superlinear' instead of quadratic. –  Vinko Vrsalovic Dec 19 '08 at 13:23
    
And it's still in the same bound that what the OP asked to improve efficiency wise... –  Vinko Vrsalovic Dec 19 '08 at 13:24
3  
uuoc, useless use of cat –  hop Dec 19 '08 at 15:30

The canonical solution is the one mentioned by another respondent:

sort | uniq -c

It is shorter and more concise than what can be written in Perl or awk.

You write that you don't want to use sort, because the data's size is larger than the machine's main memory size. Don't underestimate the implementation quality of the Unix sort command. Sort was used to handle very large volumes of data (think the original AT&T's billing data) on machines with 128k (that's 131,072 bytes) of memory (PDP-11). When sort encounters more data than a preset limit (often tuned close to the size of the machine's main memory) it sorts the data it has read in main memory and writes it into a temporary file. It then repeats the action with the next chunks of data. Finally, it performs a merge sort on those intermediate files. This allows sort to work on data many times larger than the machine's main memory.

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Well, it's still worse than a hash count, no? Do you know what sorting algorithm does sort use if the data fits in memory? Does it vary in the numeric data case (-n option)? –  Vinko Vrsalovic Dec 21 '08 at 17:32
    
It depends on how sort(1) is implemented. Both GNU sort (used on Linux distributions) and the BSD sort go to large lengths to use the most appropriate algorithm. –  Diomidis Spinellis Dec 23 '08 at 14:59

It seems that you have to either use a big amount of code to simulate hashes in bash to get linear behavior or stick to the quadratic superlinear versions.

Among those versions, saua's solution is the best (and simplest):

sort -n ip_addresses.txt | uniq -c

I found http://unix.derkeiler.com/Newsgroups/comp.unix.shell/2005-11/0118.html. But it's ugly as hell...

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I agree. This is the best solution so far and similar solutions are possible in perl and awk. Can anybody provide a cleaner implementation in bash? –  Zizzencs Dec 19 '08 at 13:38
    
Not that I know of. You can get better implementations in languages supporting hashes, where you do for my $ip (@ips) { $hash{$ip} = $hash{$ip} + 1; } and then just print the keys and values. –  Vinko Vrsalovic Dec 19 '08 at 14:07

for summing up multiple fields, based on a group of existing fields, use the example below : ( replace the $1, $2, $3, $4 according to your requirements )

cat file

US|A|1000|2000
US|B|1000|2000
US|C|1000|2000
UK|1|1000|2000
UK|1|1000|2000
UK|1|1000|2000

awk 'BEGIN { FS=OFS=SUBSEP="|"}{arr[$1,$2]+=$3+$4 }END {for (i in arr) print i,arr[i]}' file

US|A|3000
US|B|3000
US|C|3000
UK|1|9000
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+1 because it shows what to do when not only the count is needed –  user829755 Sep 26 at 14:21

You probably can use the file system itself as a hash table. Pseudo-code as follows:

for every entry in the ip address file; do
  let addr denote the ip address;

  if file "addr" does not exist; then
    create file "addr";
    write a number "0" in the file;
  else 
    read the number from "addr";
    increase the number by 1 and write it back;
  fi
done

In the end, all you need to do is to traverse all the files and print the file names and numbers in them. Alternatively, instead of keeping a count, you could append a space or a newline each time to the file, and in the end just look at the file size in bytes.

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I understand you are looking for something in Bash, but in case someone else might be looking for something in Python, you might want to consider this:

mySet = set()
for line in open("ip_address_file.txt"):
     line = line.rstrip()
     mySet.add(line)

As values in the set are unique by default and Python is pretty good at this stuff, you might win something here. I haven't tested the code, so it might be bugged, but this might get you there. And if you want to count occurrences, using a dict instead of a set is easy to implement.

Edit: I'm a lousy reader, so I answered wrong. Here's a snippet with a dict that would count occurences.

mydict = {}
for line in open("ip_address_file.txt"):
    line = line.rstrip()
    if line in mydict:
        mydict[line] += 1
    else:
        mydict[line] = 1

The dictionary mydict now holds a list of unique IP's as keys and the amount of times they occurred as their values.

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this doesn't count anything. you need a dict that keeps score. –  hop Dec 20 '08 at 16:48
    
Doh. Bad reading of the question, sorry. I originally had a little something about using a dict to store the amount of times each IP address occured, but removed it, because, well, I didn't read the question very well. * tries to wake up properly –  wzzrd Dec 20 '08 at 16:59
1  
There is a itertools.groupby() which combined with sorted() does exactly what OP asks. –  J.F. Sebastian Dec 21 '08 at 15:28
    
It is a great solution in python, which was not available for this :-) –  Zizzencs Dec 23 '08 at 12:08

I feel awk associative array is also handy in this case

$ awk '{count[$1]++}END{for(j in count) print j,count[j]}' ips.txt

A group by post here

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Yepp, great awk solution, but awk was just not avaialable on the machine I was doing this on. –  Zizzencs Dec 23 '08 at 12:09

I'd have done it like this:

perl -e 'while (<>) {chop; $h{$_}++;} for $k (keys %h) {print "$k $h{$k}\n";}' ip_addresses

but uniq might work for you.

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As I told in the original post perl is not an option. I know it is easy in perl, no problem with that :-) –  Zizzencs Dec 23 '08 at 12:06

Solution ( group by like mysql)

grep -ioh "facebook\|xing\|linkedin\|googleplus" access-log.txt | sort | uniq -c | sort -n

Result

3249  googleplus
4211 linkedin
5212 xing
7928 facebook
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cat ip_addresses | sort | uniq -c | sort -nr | awk '{print $2 " " $1}'

this command would give you desired output

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Sort may be omitted if order is not significant

uniq -c <source_file>

or

echo "$list" | uniq -c

if the source list is a variable

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uniq requires the input sorted to really 'uniquify' –  Vinko Vrsalovic Dec 19 '08 at 12:33
    
To further clarify, from the uniq man page: Note: ’uniq’ does not detect repeated lines unless they are adjacent. You may want to sort the input first, or use ‘sort -u’ without ‘uniq’. –  converter42 Dec 19 '08 at 15:28

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