Argument list too long when zipping large list of certain files in a folder
I'm trying to zip a certain large number of files by creating an array of them. Then I tried to run the zip command but met with "Argument list too long" error.
declare -a arr=()
fixed=5
for i in `seq 10 1 200`; do
for j in `seq $((i+fixed)) 1 200`; do
arr+=("${i}_${j}.xxx")
done
done
new_arr=$(printf ",%s" "${arr[@]}")
new_arr=${new_arr:1}
zip all_data.zip {$new_arr}
bash
New contributor
add a comment |
I'm trying to zip a certain large number of files by creating an array of them. Then I tried to run the zip command but met with "Argument list too long" error.
declare -a arr=()
fixed=5
for i in `seq 10 1 200`; do
for j in `seq $((i+fixed)) 1 200`; do
arr+=("${i}_${j}.xxx")
done
done
new_arr=$(printf ",%s" "${arr[@]}")
new_arr=${new_arr:1}
zip all_data.zip {$new_arr}
bash
New contributor
add a comment |
I'm trying to zip a certain large number of files by creating an array of them. Then I tried to run the zip command but met with "Argument list too long" error.
declare -a arr=()
fixed=5
for i in `seq 10 1 200`; do
for j in `seq $((i+fixed)) 1 200`; do
arr+=("${i}_${j}.xxx")
done
done
new_arr=$(printf ",%s" "${arr[@]}")
new_arr=${new_arr:1}
zip all_data.zip {$new_arr}
bash
New contributor
I'm trying to zip a certain large number of files by creating an array of them. Then I tried to run the zip command but met with "Argument list too long" error.
declare -a arr=()
fixed=5
for i in `seq 10 1 200`; do
for j in `seq $((i+fixed)) 1 200`; do
arr+=("${i}_${j}.xxx")
done
done
new_arr=$(printf ",%s" "${arr[@]}")
new_arr=${new_arr:1}
zip all_data.zip {$new_arr}
bash
bash
New contributor
New contributor
edited 46 mins ago
Zack
New contributor
asked 50 mins ago
ZackZack
63
63
New contributor
New contributor
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1 Answer
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extract from man zip
( linux version )
zip -@ foo
will store the files listed one per line on stdin in foo.zip.
example from the same man page
find . -name "*.[ch]" -print | zip source -@
So steps will be :
build a list off all files to be archive , format must one file name by line
run
zip
command
cat BIG_FILENAME_LIST.txt | zip thebigziparchive -@
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1 Answer
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1 Answer
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active
oldest
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active
oldest
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active
oldest
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extract from man zip
( linux version )
zip -@ foo
will store the files listed one per line on stdin in foo.zip.
example from the same man page
find . -name "*.[ch]" -print | zip source -@
So steps will be :
build a list off all files to be archive , format must one file name by line
run
zip
command
cat BIG_FILENAME_LIST.txt | zip thebigziparchive -@
add a comment |
extract from man zip
( linux version )
zip -@ foo
will store the files listed one per line on stdin in foo.zip.
example from the same man page
find . -name "*.[ch]" -print | zip source -@
So steps will be :
build a list off all files to be archive , format must one file name by line
run
zip
command
cat BIG_FILENAME_LIST.txt | zip thebigziparchive -@
add a comment |
extract from man zip
( linux version )
zip -@ foo
will store the files listed one per line on stdin in foo.zip.
example from the same man page
find . -name "*.[ch]" -print | zip source -@
So steps will be :
build a list off all files to be archive , format must one file name by line
run
zip
command
cat BIG_FILENAME_LIST.txt | zip thebigziparchive -@
extract from man zip
( linux version )
zip -@ foo
will store the files listed one per line on stdin in foo.zip.
example from the same man page
find . -name "*.[ch]" -print | zip source -@
So steps will be :
build a list off all files to be archive , format must one file name by line
run
zip
command
cat BIG_FILENAME_LIST.txt | zip thebigziparchive -@
answered 29 mins ago
EchoMike444EchoMike444
9525
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Zack is a new contributor. Be nice, and check out our Code of Conduct.
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