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I am trying to search for the string "rGEO" in a directory by using the following commands:

find . -name "*" -type f -print | xargs grep "rGEO" 
./home/oper1/AgencyTape/geo/exe/gngeo.cmd:${WEB_DIR}/exe/web_reports.sh -aGN -d${prev_ccyy}${prev_mm} -rGEO -nomail

In this case, I get back the file name which has the matching line, as well as the line which matches the above string.

find . -name "*" -type f -exec grep "rGEO" {} \;

In this case, I get back:

${WEB_DIR}/exe/web_reports.sh -aGN -d${prev_ccyy}${prev_mm} -rGEO -nomail

The file which contains the line isn't printed - and, as you can see, there is a lot of difference between the two outputs.

Using xargs gives more clear and precise output.

My question is: what is the difference between the two commands? To me, they seem to be performing the same logic, but getting different results.

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1 Answer

Adding -print will return the name of the file also, although in all little different way.

find . -name "*" -type f -exec grep "rGEO" {} \; -print

I am not aware of the internal working, here is how it differs. Suppose find commands finds 2 files a.txt and b.txt

-exec will work on them like.

grep "rGEO" a.txt
grep "rGEO" b.txt

however xargs will work like..

grep "rGEO" a.txt b.txt.

Hope it helps

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