Delete multiple columns using awk or sed
I have a database with 6037 space-separated columns and 450 rows like the one below:
1807 1452 1598 1 6.655713 A B A B ... 0
1808 1452 1763 1 9.362033 0 0 A B ... A
1809 1452 1527 2 6.728534 A B A A ... B
1810 1452 1367 2 9.4055 A B A A B ... A
... ... ... ... ... ... ... ... ... ...
1812 1452 1258 1 6.363032 0 0 A B ... B
I want to get a new database with only the first 676 columns.
Preferably, some form that uses awk or sed command.
text-processing sed awk
edited Mar 21 at 23:36
dessert
25.3k673107
asked Mar 21 at 21:51
andrecandrec
161
add a comment |
I have a database with 6037 space-separated columns and 450 rows like the one below:
1807 1452 1598 1 6.655713 A B A B ... 0
1808 1452 1763 1 9.362033 0 0 A B ... A
1809 1452 1527 2 6.728534 A B A A ... B
1810 1452 1367 2 9.4055 A B A A B ... A
... ... ... ... ... ... ... ... ... ...
1812 1452 1258 1 6.363032 0 0 A B ... B
I want to get a new database with only the first 676 columns.
Preferably, some form that uses awk or sed command.
text-processing sed awk
edited Mar 21 at 23:36
dessert
25.3k673107
asked Mar 21 at 21:51
andrecandrec
161
add a comment |
I have a database with 6037 space-separated columns and 450 rows like the one below:
1807 1452 1598 1 6.655713 A B A B ... 0
1808 1452 1763 1 9.362033 0 0 A B ... A
1809 1452 1527 2 6.728534 A B A A ... B
1810 1452 1367 2 9.4055 A B A A B ... A
... ... ... ... ... ... ... ... ... ...
1812 1452 1258 1 6.363032 0 0 A B ... B
I want to get a new database with only the first 676 columns.
Preferably, some form that uses awk or sed command.
text-processing sed awk
edited Mar 21 at 23:36
dessert
25.3k673107
asked Mar 21 at 21:51
andrecandrec
161
I have a database with 6037 space-separated columns and 450 rows like the one below:
1807 1452 1598 1 6.655713 A B A B ... 0
1808 1452 1763 1 9.362033 0 0 A B ... A
1809 1452 1527 2 6.728534 A B A A ... B
1810 1452 1367 2 9.4055 A B A A B ... A
... ... ... ... ... ... ... ... ... ...
1812 1452 1258 1 6.363032 0 0 A B ... B
I want to get a new database with only the first 676 columns.
Preferably, some form that uses awk or sed command.
text-processing sed awk
text-processing sed awk
edited Mar 21 at 23:36
dessert
25.3k673107
asked Mar 21 at 21:51
andrecandrec
161
edited Mar 21 at 23:36
dessert
25.3k673107
asked Mar 21 at 21:51
andrecandrec
161
edited Mar 21 at 23:36
dessert
25.3k673107
edited Mar 21 at 23:36
dessert
25.3k673107
edited Mar 21 at 23:36
dessert
25.3k673107
25.3k673107
asked Mar 21 at 21:51
andrecandrec
161
asked Mar 21 at 21:51
andrecandrec
161
asked Mar 21 at 21:51
andrecandrec
161
161
add a comment |
add a comment |
3 Answers
3
active
oldest
votes
If the column delimiter in your file is a single character, e.g. a space, cut can do that easily:
cut -d' ' -f-676 <in >out
This prints only the space-separated columns from the first to the 676th.
If you need e.g. every whitespace character to count as a delimiter, a sed solution is:
sed -r 's/s+S+//677g' <in >out
This replaces every column (= at least one whitespace character followed by at least one non-whitespace character) beginning with the 677th with nothing. Using character groups you can specify any set of delimiters you need, e.g. for “4”, “#” and “K”:
sed -r 's/[4#K]+[^4#K]+//677g' <in >out
For a reasonable awk approach kindly refer to steeldriver’s answer, but here is another one looping over the columns and only printing them (separated by FS) if their number is <= 676:
awk '{for (i=1;i<=676;i++) {printf (i==1?"":FS)$i}; print ""}' <in >out
For a character group you have to specify the output field separator for the output, e.g. for [4#K] and "sep":
awk -F'[4#K]' '{for (i=1;i<=676;i++) {printf (i==1?"":"sep")$i}; print ""}' <in >outanswered Mar 21 at 22:04
dessertdessert
25.3k673107
add a comment |
For a single-character delimiter (such as space or comma) I would recommend using the cut command over either awk or sed.
However since you asked about awk specifically, I think a reasonable way to do it would be to decrement the field count:
awk -v last=676 '{while(NF>last) NF--} 1' datafile
Tested in GNU Awk (gawk) and mawk.
answered Mar 21 at 22:45
steeldriversteeldriver
70.6k11114187
1
Why not just{ NF = last; print }instead of the loop?
– wchargin
Mar 22 at 4:36
1
@wchargin Doh! yes that's much better - wanna post it as an answer?
– steeldriver
Mar 22 at 4:49
add a comment |
You could use
mlr --nidx --fs ' ' --repifs cat inputFile.csv | cut -d ' ' -f-2
In this way with mlr (https://github.com/johnkerl/miller/releases/tag/5.4.0) you manage field separators (if you have more than one spaces, they become one per field), and with cut you extract (in my example) the first two fields.
From
1807 1452 1598 1 6.655713 A B A B
1808 1452 1763 1 9.362033 0 0 A B
1809 1452 1527 2 6.728534 A B A A
1810 1452 1367 2 9.4055 A B A A B
to
1807 1452
1808 1452
1809 1452
1810 1452
Some notes about Miller options:
--nidxis to set the format; this is a generic index-numbered table (the first field is 1, the second is 2, ecc..);
--fsto set the separator (here is a space);
--repifsmeans that multiple successive occurrences of the field separator count as one
catpasses input records directly to output.
answered Mar 22 at 7:13
aborrusoaborruso
20115
add a comment |
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3 Answers
3
active
oldest
votes
3 Answers
3
active
oldest
votes
active
oldest
votes
active
oldest
votes
If the column delimiter in your file is a single character, e.g. a space, cut can do that easily:
cut -d' ' -f-676 <in >out
This prints only the space-separated columns from the first to the 676th.
If you need e.g. every whitespace character to count as a delimiter, a sed solution is:
sed -r 's/s+S+//677g' <in >out
This replaces every column (= at least one whitespace character followed by at least one non-whitespace character) beginning with the 677th with nothing. Using character groups you can specify any set of delimiters you need, e.g. for “4”, “#” and “K”:
sed -r 's/[4#K]+[^4#K]+//677g' <in >out
For a reasonable awk approach kindly refer to steeldriver’s answer, but here is another one looping over the columns and only printing them (separated by FS) if their number is <= 676:
awk '{for (i=1;i<=676;i++) {printf (i==1?"":FS)$i}; print ""}' <in >out
For a character group you have to specify the output field separator for the output, e.g. for [4#K] and "sep":
awk -F'[4#K]' '{for (i=1;i<=676;i++) {printf (i==1?"":"sep")$i}; print ""}' <in >outanswered Mar 21 at 22:04
dessertdessert
25.3k673107
add a comment |
If the column delimiter in your file is a single character, e.g. a space, cut can do that easily:
cut -d' ' -f-676 <in >out
This prints only the space-separated columns from the first to the 676th.
If you need e.g. every whitespace character to count as a delimiter, a sed solution is:
sed -r 's/s+S+//677g' <in >out
This replaces every column (= at least one whitespace character followed by at least one non-whitespace character) beginning with the 677th with nothing. Using character groups you can specify any set of delimiters you need, e.g. for “4”, “#” and “K”:
sed -r 's/[4#K]+[^4#K]+//677g' <in >out
For a reasonable awk approach kindly refer to steeldriver’s answer, but here is another one looping over the columns and only printing them (separated by FS) if their number is <= 676:
awk '{for (i=1;i<=676;i++) {printf (i==1?"":FS)$i}; print ""}' <in >out
For a character group you have to specify the output field separator for the output, e.g. for [4#K] and "sep":
awk -F'[4#K]' '{for (i=1;i<=676;i++) {printf (i==1?"":"sep")$i}; print ""}' <in >outanswered Mar 21 at 22:04
dessertdessert
25.3k673107
add a comment |
If the column delimiter in your file is a single character, e.g. a space, cut can do that easily:
cut -d' ' -f-676 <in >out
This prints only the space-separated columns from the first to the 676th.
If you need e.g. every whitespace character to count as a delimiter, a sed solution is:
sed -r 's/s+S+//677g' <in >out
This replaces every column (= at least one whitespace character followed by at least one non-whitespace character) beginning with the 677th with nothing. Using character groups you can specify any set of delimiters you need, e.g. for “4”, “#” and “K”:
sed -r 's/[4#K]+[^4#K]+//677g' <in >out
For a reasonable awk approach kindly refer to steeldriver’s answer, but here is another one looping over the columns and only printing them (separated by FS) if their number is <= 676:
awk '{for (i=1;i<=676;i++) {printf (i==1?"":FS)$i}; print ""}' <in >out
For a character group you have to specify the output field separator for the output, e.g. for [4#K] and "sep":
awk -F'[4#K]' '{for (i=1;i<=676;i++) {printf (i==1?"":"sep")$i}; print ""}' <in >outanswered Mar 21 at 22:04
dessertdessert
25.3k673107
If the column delimiter in your file is a single character, e.g. a space, cut can do that easily:
cut -d' ' -f-676 <in >out
This prints only the space-separated columns from the first to the 676th.
If you need e.g. every whitespace character to count as a delimiter, a sed solution is:
sed -r 's/s+S+//677g' <in >out
This replaces every column (= at least one whitespace character followed by at least one non-whitespace character) beginning with the 677th with nothing. Using character groups you can specify any set of delimiters you need, e.g. for “4”, “#” and “K”:
sed -r 's/[4#K]+[^4#K]+//677g' <in >out
For a reasonable awk approach kindly refer to steeldriver’s answer, but here is another one looping over the columns and only printing them (separated by FS) if their number is <= 676:
awk '{for (i=1;i<=676;i++) {printf (i==1?"":FS)$i}; print ""}' <in >out
For a character group you have to specify the output field separator for the output, e.g. for [4#K] and "sep":
awk -F'[4#K]' '{for (i=1;i<=676;i++) {printf (i==1?"":"sep")$i}; print ""}' <in >outanswered Mar 21 at 22:04
dessertdessert
25.3k673107
edited Mar 21 at 22:54
answered Mar 21 at 22:04
dessertdessert
25.3k673107
answered Mar 21 at 22:04
dessertdessert
25.3k673107
answered Mar 21 at 22:04
dessertdessert
25.3k673107
25.3k673107
add a comment |
add a comment |
For a single-character delimiter (such as space or comma) I would recommend using the cut command over either awk or sed.
However since you asked about awk specifically, I think a reasonable way to do it would be to decrement the field count:
awk -v last=676 '{while(NF>last) NF--} 1' datafile
Tested in GNU Awk (gawk) and mawk.
answered Mar 21 at 22:45
steeldriversteeldriver
70.6k11114187
1
Why not just{ NF = last; print }instead of the loop?
– wchargin
Mar 22 at 4:36
1
@wchargin Doh! yes that's much better - wanna post it as an answer?
– steeldriver
Mar 22 at 4:49
add a comment |
For a single-character delimiter (such as space or comma) I would recommend using the cut command over either awk or sed.
However since you asked about awk specifically, I think a reasonable way to do it would be to decrement the field count:
awk -v last=676 '{while(NF>last) NF--} 1' datafile
Tested in GNU Awk (gawk) and mawk.
answered Mar 21 at 22:45
steeldriversteeldriver
70.6k11114187
1
Why not just{ NF = last; print }instead of the loop?
– wchargin
Mar 22 at 4:36
1
@wchargin Doh! yes that's much better - wanna post it as an answer?
– steeldriver
Mar 22 at 4:49
add a comment |
For a single-character delimiter (such as space or comma) I would recommend using the cut command over either awk or sed.
However since you asked about awk specifically, I think a reasonable way to do it would be to decrement the field count:
awk -v last=676 '{while(NF>last) NF--} 1' datafile
Tested in GNU Awk (gawk) and mawk.
answered Mar 21 at 22:45
steeldriversteeldriver
70.6k11114187
For a single-character delimiter (such as space or comma) I would recommend using the cut command over either awk or sed.
However since you asked about awk specifically, I think a reasonable way to do it would be to decrement the field count:
awk -v last=676 '{while(NF>last) NF--} 1' datafile
Tested in GNU Awk (gawk) and mawk.
answered Mar 21 at 22:45
steeldriversteeldriver
70.6k11114187
edited Mar 21 at 23:19
answered Mar 21 at 22:45
steeldriversteeldriver
70.6k11114187
answered Mar 21 at 22:45
steeldriversteeldriver
70.6k11114187
answered Mar 21 at 22:45
steeldriversteeldriver
70.6k11114187
70.6k11114187
1
Why not just{ NF = last; print }instead of the loop?
– wchargin
Mar 22 at 4:36
1
@wchargin Doh! yes that's much better - wanna post it as an answer?
– steeldriver
Mar 22 at 4:49
add a comment |
1
Why not just{ NF = last; print }instead of the loop?
– wchargin
Mar 22 at 4:36
1
@wchargin Doh! yes that's much better - wanna post it as an answer?
– steeldriver
Mar 22 at 4:49
1
1
Why not just
{ NF = last; print } instead of the loop?– wchargin
Mar 22 at 4:36
Why not just
{ NF = last; print } instead of the loop?– wchargin
Mar 22 at 4:36
1
1
@wchargin Doh! yes that's much better - wanna post it as an answer?
– steeldriver
Mar 22 at 4:49
@wchargin Doh! yes that's much better - wanna post it as an answer?
– steeldriver
Mar 22 at 4:49
add a comment |
You could use
mlr --nidx --fs ' ' --repifs cat inputFile.csv | cut -d ' ' -f-2
In this way with mlr (https://github.com/johnkerl/miller/releases/tag/5.4.0) you manage field separators (if you have more than one spaces, they become one per field), and with cut you extract (in my example) the first two fields.
From
1807 1452 1598 1 6.655713 A B A B
1808 1452 1763 1 9.362033 0 0 A B
1809 1452 1527 2 6.728534 A B A A
1810 1452 1367 2 9.4055 A B A A B
to
1807 1452
1808 1452
1809 1452
1810 1452
Some notes about Miller options:
--nidxis to set the format; this is a generic index-numbered table (the first field is 1, the second is 2, ecc..);
--fsto set the separator (here is a space);
--repifsmeans that multiple successive occurrences of the field separator count as one
catpasses input records directly to output.
answered Mar 22 at 7:13
aborrusoaborruso
20115
add a comment |
You could use
mlr --nidx --fs ' ' --repifs cat inputFile.csv | cut -d ' ' -f-2
In this way with mlr (https://github.com/johnkerl/miller/releases/tag/5.4.0) you manage field separators (if you have more than one spaces, they become one per field), and with cut you extract (in my example) the first two fields.
From
1807 1452 1598 1 6.655713 A B A B
1808 1452 1763 1 9.362033 0 0 A B
1809 1452 1527 2 6.728534 A B A A
1810 1452 1367 2 9.4055 A B A A B
to
1807 1452
1808 1452
1809 1452
1810 1452
Some notes about Miller options:
--nidxis to set the format; this is a generic index-numbered table (the first field is 1, the second is 2, ecc..);
--fsto set the separator (here is a space);
--repifsmeans that multiple successive occurrences of the field separator count as one
catpasses input records directly to output.
answered Mar 22 at 7:13
aborrusoaborruso
20115
add a comment |
You could use
mlr --nidx --fs ' ' --repifs cat inputFile.csv | cut -d ' ' -f-2
In this way with mlr (https://github.com/johnkerl/miller/releases/tag/5.4.0) you manage field separators (if you have more than one spaces, they become one per field), and with cut you extract (in my example) the first two fields.
From
1807 1452 1598 1 6.655713 A B A B
1808 1452 1763 1 9.362033 0 0 A B
1809 1452 1527 2 6.728534 A B A A
1810 1452 1367 2 9.4055 A B A A B
to
1807 1452
1808 1452
1809 1452
1810 1452
Some notes about Miller options:
--nidxis to set the format; this is a generic index-numbered table (the first field is 1, the second is 2, ecc..);
--fsto set the separator (here is a space);
--repifsmeans that multiple successive occurrences of the field separator count as one
catpasses input records directly to output.
answered Mar 22 at 7:13
aborrusoaborruso
20115
You could use
mlr --nidx --fs ' ' --repifs cat inputFile.csv | cut -d ' ' -f-2
In this way with mlr (https://github.com/johnkerl/miller/releases/tag/5.4.0) you manage field separators (if you have more than one spaces, they become one per field), and with cut you extract (in my example) the first two fields.
From
1807 1452 1598 1 6.655713 A B A B
1808 1452 1763 1 9.362033 0 0 A B
1809 1452 1527 2 6.728534 A B A A
1810 1452 1367 2 9.4055 A B A A B
to
1807 1452
1808 1452
1809 1452
1810 1452
Some notes about Miller options:
--nidxis to set the format; this is a generic index-numbered table (the first field is 1, the second is 2, ecc..);
--fsto set the separator (here is a space);
--repifsmeans that multiple successive occurrences of the field separator count as one
catpasses input records directly to output.
answered Mar 22 at 7:13
aborrusoaborruso
20115
edited Mar 22 at 9:04
answered Mar 22 at 7:13
aborrusoaborruso
20115
answered Mar 22 at 7:13
aborrusoaborruso
20115
answered Mar 22 at 7:13
aborrusoaborruso
20115
20115
add a comment |
add a comment |
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