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I have a file f1:

line1
line2
line3
line4
..
..

I want to delete all the lines which are in another file f2:

line2
line8
..
..

I tried something with cat and sed, which wasn't even close to what I intended. How can I do this?

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3  
possible duplicate of Remove Lines from File which appear in another File – Sven Hohenstein Mar 15 '13 at 11:15
    
If you are looking to remove lines from a file that "even contain" strings from another file (for instance partial matches) see unix.stackexchange.com/questions/145079/… – rogerdpack Oct 16 '15 at 17:30
up vote 74 down vote accepted

grep -v -x -f f2 f1 should do the trick.

Explanation:

  • -v to select non-matching lines
  • -x to match whole lines only
  • -f f2 to get patterns from f2

One can instead use -F f2 to match fixed strings from f2 rather than patterns (in case you want remove the lines in a "what you see if what you get" manner rather than treating the lines in f2 as regex patterns).

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16  
This has O(n²) complexity and will start to take hours to complete once the files contain more than a few K lines. – arnaud576875 Jan 24 '11 at 10:59
3  
Figuring out which SO suggested algorythms have O(n^2) complexity only has O(n) complexity, but can still take hours to compete. – HDave Jul 18 '12 at 13:45
1  
I just tried this on 2 files of ~2k lines each, and it got killed by the OS (granted, this is a not-so-powerful VM, but still). – Trebor Rude Feb 18 '14 at 1:45
    
I love the elegance of this; I prefer the speed of Jona Christopher Sahnwal's answer. – Alex Hall Nov 8 '15 at 21:15
    
This method will remove the new-line characters between lines – sdgfsdh Mar 2 at 10:23

If the order of the lines in the output doesn't matter, this works:

sort file_a file_b|uniq -u

This sorts both files, then uniq can easily find duplicates and remove them.

The -u switch on the uniq command means remove duplicates.

This has a O(n.log(n)) complexity for the sorting (assuming sort is using quicksort) and O(n) for removing duplicates on the sorted lines, so this will be faster than the grep version (O(n²)) if the files are large. Grep's version looks like this:

for each line l1 in f1
    for each line l2 in f2
        if l1 == l2
            break
        end if
    end for
    output l1 if no l2 == l1
endfor

Here is a quick benchmark with 15K entries in f1 and 7.5K in f2:

# add lines with number from 1 to 15000; randomly sorted; to f1
for i in $(seq 1 15000); do echo "$i"; done|sort -R > f1
# add lines with number from 1 to 15000 (with step 2); randomly sorted; to f2
for i in $(seq 1 2 15000); do echo "$i"; done|sort -R > f2

# sort|uniq -u method:
$ time sort f1 f2|uniq -u > /dev/null
real    0m0.067s
user    0m0.064s
sys     0m0.004s

# comm method (requires to sort both files separately first):
time (sort f1 > f1.sorted; sort f2 > f2.sorted; comm -2 -3 f1.sorted f2.sorted) > /dev/null
real    0m0.070s
user    0m0.068s
sys     0m0.000s


# grep method:
time grep -v -x -f f2 f1 > /dev/null
real    0m16.528s
user    0m16.457s
sys     0m0.048s

So the sort|uniq version takes only 0.07s while the grep version takes more than 16s, and this time will grow exponentially with the files' size.

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1  
Yup grep is probably not the most efficient think to use if you have to perform the task many times on large files. Your method has only one flaw: if f2 contains lines not in f1 then the result will contains those lines. – gabuzo Jan 24 '11 at 13:25
2  
This would remove duplicates that may exist within each file which may need to be kept. – Dennis Williamson Jan 24 '11 at 16:32
1  
finding lines that only occur in f1 OR f2 but not in both is not the same as removing lines from f1 that are in f2. The above solution will include lines that appear in f2 that aren't in f1. – gregjor Sep 28 '12 at 17:45
2  
@gregjor A simple modification can be made to do what you're looking for: sort file_a file_b file_b | uniq -u Where file_a is the file where you want to remove lines that match in file_b. Since file_b is being included twice, it guarantees that there are duplicates and removes them when we run uniq -u. – JZC Feb 5 '14 at 3:25
1  
"this time will grow exponentially with the files' size" -- I think you mean quadratically. – Paul Draper Feb 19 '15 at 6:11

Try comm instead (assuming f1 and f2 are "already sorted")

comm -2 -3 f1 f2
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5  
I'm not sure comm is the solution has the question does not indicates that the lines in f1 are sorted which is a prerequisite to use comm – gabuzo Jan 24 '11 at 9:54
    
This worked for me, as my files were sorted and had 250,000+ lines in one of them, only 28,000 in the other. Thanks! – Winter May 26 '14 at 22:22
    
When this works (input files are sorted), this is extremely fast! – Mike Jarvis Sep 4 '15 at 22:09
    
As in arnaud576875's solution, for me using cygwin, this eliminated duplicate lines in the second file which may want to be kept. – Alex Hall Nov 8 '15 at 21:04
1  
You can use process substitution to sort the files first, of course: comm -2 -3 <(sort f1) <(sort f2) – davemyron Mar 25 at 16:01

For exclude files that aren't too huge, you can use AWK's associative arrays.

awk 'NR == FNR { list[tolower($0)]=1; next } { if (! list[tolower($0)]) print }' exclude-these.txt from-this.txt 

The output will be in the same order as the "from-this.txt" file. The tolower() function makes it case-insensitive, if you need that.

The algorithmic complexity will probably be O(n) (exclude-these.txt size) + O(n) (from-this.txt size)

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Why do you say files that aren't too huge? The fear here is (I assume) awk running the system out of system memory to create the hash, or is there some other limitation? – rogerdpack Oct 16 '15 at 16:58
    
for followers, there are even other more aggressive option to "sanitize" the lines (since the comparison has to be exact to use the associative array), ex unix.stackexchange.com/a/145132/8337 – rogerdpack Oct 16 '15 at 17:36
    
@rogerdpack: A large exclude file will require a large hash array (and a long processing time). A large "from-this.txt" will only require a long processing time. – Dennis Williamson Oct 16 '15 at 17:51

if you have Ruby (1.9+)

#!/usr/bin/env ruby 
b=File.read("file2").split
open("file1").each do |x|
  x.chomp!
  puts x if !b.include?(x)
end

Which has O(N^2) complexity. If you want to care about performance, here's another version

b=File.read("file2").split
a=File.read("file1").split
(a-b).each {|x| puts x}

which uses a hash to effect the subtraction, so is complexity O(n) (size of a) + O(n) (size of b)

here's a little benchmark, courtesy of user576875, but with 100K lines, of the above:

$ for i in $(seq 1 100000); do echo "$i"; done|sort --random-sort > file1
$ for i in $(seq 1 2 100000); do echo "$i"; done|sort --random-sort > file2
$ time ruby test.rb > ruby.test

real    0m0.639s
user    0m0.554s
sys     0m0.021s

$time sort file1 file2|uniq -u  > sort.test

real    0m2.311s
user    0m1.959s
sys     0m0.040s

$ diff <(sort -n ruby.test) <(sort -n sort.test)
$

diff was used to show there are no differences between the 2 files generated.

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1  
This has O(n²) complexity and will start to take hours to complete once the files contain more than a few K lines. – arnaud576875 Jan 24 '11 at 11:00
    
i don't really care at this juncture, because he did not mention any big files. – kurumi Jan 24 '11 at 11:18
3  
There's no need to be so defensive, it's not as if @user576875 downvoted your answer or anything. :-) – middaparka Jan 24 '11 at 11:33
    
very nice second version, ruby wins :) – arnaud576875 Jan 24 '11 at 12:27

Similar to Dennis Williamson's answer (mostly syntactic changes, e.g. setting the file number explicitly instead of the NR == FNR trick):

awk '{if (f==1) { r[$0] } else if (! ($0 in r)) { print $0 } } ' f=1 exclude-these.txt f=2 from-this.txt

Accessing r[$0] creates the entry for that line, no need to set a value.

Assuming awk uses a hash table with constant lookup and (on average) constant update time, the time complexity of this will be O(n + m), where n and m are the lengths of the files. In my case, n was ~25 million and m ~14000. The awk solution was much faster than sort, and I also preferred keeping the original order.

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How does this differ from the Dennis Williamson answer? Is the only difference that it doesn't do an assignment into the hash, so slightly faster than this? Algorithmic complexity is the same as his? – rogerdpack Oct 16 '15 at 16:48
    
The difference is mostly syntactic. I find the variable f clearer than NR == FNR, but that's a matter of taste. Assignment into the hash should be so fast that there's no measurable speed difference between the two versions. I think I was wrong about complexity - if lookup is constant, update should be constant as well (on average). I don't know why I thought update would be logarithmic. I'll edit my answer. – Jona Christopher Sahnwaldt Oct 17 '15 at 11:05

Seems to be a job suitable for the SQLite shell:

create table file1(line text);
create index if1 on file1(line ASC);
create table file2(line text);
create index if2 on file2(line ASC);
-- comment: if you have | in your files then specify “ .separator ××any_improbable_string×× ”
.import 'file1.txt' file1
.import 'file2.txt' file2
.output result.txt
select * from file2 where line not in (select line from file1);
.q
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Did you try this with sed?

sed 's#^#sed -i '"'"'s%#g' f2 > f2.sh

sed -i 's#$#%%g'"'"' f1#g' f2.sh

sed -i '1i#!/bin/bash' f2.sh

sh f2.sh
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Some timing comparisons between various other answers:

$ for n in {1..10000}; do echo $RANDOM; done > f1
$ for n in {1..10000}; do echo $RANDOM; done > f2
$ time comm -23 <(sort f1) <(sort f2) > /dev/null

real    0m0.019s
user    0m0.023s
sys     0m0.012s
$ time ruby -e 'puts File.readlines("f1") - File.readlines("f2")' > /dev/null

real    0m0.026s
user    0m0.018s
sys     0m0.007s
$ time grep -xvf f2 f1 > /dev/null

real    0m43.197s
user    0m43.155s
sys     0m0.040s

sort f1 f2 | uniq -u isn't even a symmetrical difference, because it removes lines that appear multiple times in either file.

comm can also be used with stdin and here strings:

echo $'a\nb' | comm -23 <(sort) <(sort <<< $'c\nb') # a
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