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I have millions of files in a folder (nested). I need to scan a value from those files and print lines containing this value (say LINE_TXT). Earlier I used to sed each file but it used to take 45mins to do this. My earlier solution was something like this:

FILES=$(find $1 -type f -name 'filename.txt')
for f in $FILES
do
    if [[ "$LINE" == *LINE_TXT* ]]; then
        echo $LINE
    fi
done

I figured out that pipemill is best way to achieve this. My primary solution is something like this:

makefifo mypipe
find $1 -type f -name 'filename.txt' | xargs cat > my pipe &
while read -r LINE
do
    if [[ "$LINE" == *LINE_TXT* ]]; then
        echo $LINE
    fi
done << mypipe

Run time is 1min around. Can I improve on this further ?

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2 Answers 2

up vote 6 down vote accepted

Seems to me that less script overhead would make things faster.

fgrep -r -h 'LINE_TXT' $1

Just let grep do its own recursion through your directories with -r. And if you don't want its output to include the filename in its output, include the -h option. You can pipe its output through whatever you need for post-processing.

If you want to search only for specific filenames, grep's -r option has options of its own: --include and --exclude, mentioned on its man page. For example:

fgrep -h -r --include '*/filename.txt' 'LINE_TXT' $1

While the find command is excellent, and invaluable in certain situations, if you can use options built in to a single tool like grep, you will incur less overhead. The find command doesn't look inside files, so it would still have to launch grep for each one of them. If you DID want to use find, it might look something like this:

find $1 -name 'filename.txt' -exec fgrep 'LINE_EXT' {} \;

This has the benefit of giving you access to find's directory searching capabilities, but if all you want to do is look for a particularly named file in your directory tree, grep's -r --include is probably sufficient and is sure to run faster.

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This works if you want to search all files; if you want a more specific search (to make it run faster) the find option is better. –  Anders Johansson Dec 2 '12 at 14:21
    
Yes, there are files with different names inside each folder and I want to search specific file with file name: filename.txt –  useratuniv Dec 2 '12 at 14:24
2  
@AndersJohansson - Updated to include --include –  ghoti Dec 2 '12 at 14:27
    
@ghoti, interesting - didn't know about --include. Personally I still prefer find because it has more options, like find by permission, follow symlinks or not, etc. For this question though, your answer probably runs faster. –  Anders Johansson Dec 2 '12 at 14:35
1  
Also note that the last example, find ... -exec fgrep ... \; will launch a new fgrep instance for each match; this is very inefficient. If you instead pipe to xargs it will collect as many filenames as will fit on your commandline (usually hundreds or thousands), and execute a single fgrep searching all those files in one go, then repeat the process until all files have been searched. –  Anders Johansson Dec 2 '12 at 14:39

Yes, find $1 -type f -name 'filename.txt' | xargs fgrep LINE_TXT, if all you want is to locate all matches of "LINE_TXT" in any of those files.

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Sadly I need to process those lines further to extract more information. –  useratuniv Dec 2 '12 at 14:11
    
Process how? If e.g. by a script/other command, you can just pipe that through: find ... | xargs fgrep ... | process –  Anders Johansson Dec 2 '12 at 14:12
1  
In that case you should use find $1 -type f -name 'filename.txt' | xargs fgrep -H LINE_TXT so that way it will print the filename as well and process that afterwards. –  Zsolt Botykai Dec 2 '12 at 14:14
    
@AndersJohansson thank you. –  useratuniv Dec 2 '12 at 14:14
2  
@ZsoltBotykai - no, you shouldn't do that. Read mywiki.wooledge.org/ParsingLs . If you want to execute things on files found by find, you really need to figure out how to do it using -exec. –  ghoti Dec 2 '12 at 14:15

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