i am trying to select a column with its missing value
here is my input file separated by tab
1 2 3
4 5
6
7 8
9
i am trying to select the first column in which output will look like
1
4
7
and the length of my column would be 5 in this case
I have tried
awk '$1!=""{print $1}' ./demo.txt
but it returns
1
4
6
7
9
can anybody help with this I am new in AWK
You can use cut:
$ cut -f 1 file # the default delimiter is a tab
Or with sed:
$ sed 's/[[:blank:]].*$//' file
Or awk:
$ awk '{sub(/[[:blank:]].*$/,"")}1' file
Or:
$ awk 'BEGIN{FS=OFS="\t"} {print $1}' file
All those print the first column and all five lines (blank or not)
Prints:
1
4
7
Tell awk to use a tab (\t) as the input field delimiter (-F):
$ awk -F'\t' '{ print $1 }' demo.txt
1
4
7
If you want to print multiple columns, maintaining the same delimiter for output, another approach using the FS and OFS variables:
$ awk 'BEGIN { FS=OFS="\t" } { print $1,$3 }' demo.txt
1 3
4 5
7
9
With sed something like:
sed 's/^\([^[:blank:]]*\).*/\1/' demo.txt
Using FIELDWIDTHS in gnu-awk you can do this for fixed width separated data:
awk 'BEGIN {FIELDWIDTHS = "4 4 *"} {print $1}' file
1
4
7
For demo purpose:
awk 'BEGIN {FIELDWIDTHS = "4 4 *"} {print NR ":", $1}' file
1: 1
2: 4
3:
4: 7
5:
if they're all single digits in 1st column :
echo \
'1 2 3
4 5
6
7 8
9' |
mawk NF=1 FS=
gcat -n
1 1
2 4
3
4 7
5
that's literally all you need. To play it safe, then do
nawk NF=1 FS='[[:space:]]' # overly-verbose so-called
# "proper" posix form
gawk NF=1 FS='[ \t]' # suffices unless the input
# happens to have uncommon bytes
# like \013 \v or \014 \f
or a very fringe way of fudging NF :
mawk 'NF ^= FS="[ \t]"'
I have a tab separated file:
samplename1/filename1 anotherthing/anotherfile asdfgh/hjklñ
2 3 4
5 6 7
I am trying to remove everything after the / just in the header of the file using sed:
sed 's/[/].*//' samplenames.txt
How can I do this for each column of the file? because right now I am removing everything after the first /, but I want to remove just the part of each column after the /.
Actual output:
samplename1
2 3 4
5 6 7
Desired output:
samplename1 anotherthing asdfgh
2 3 4
5 6 7
With GNU sed, you may use
sed -i '1 s,/[^[:space:]]*,,g' samplenames.txt
With FreeBSD sed, you need to add '' after -i.
See the online demo
The -i option will make sed change the file inline. The 1 means only the first line will be modified in the file.
The s,/[^[:space:]]*,,g command means that all occurrences of / followed with 0 or more non-whitespace chars after it will be removed.
Given:
printf "samplename1/filename1\tanotherthing/anotherfile\tasdfgh/hjklñ
2\t3\t4
5\t6\t7" >file # ie, note only one tab between fields...
Here is an POSIX awk to do this:
awk -F $"\t" 'NR==1{gsub("/[^\t]*",""); print; next} 1' file
Prints:
samplename1 anotherthing asdfgh
2 3 4
5 6 7
You can get those to line up with the column command:
awk -F $"\t" 'NR==1{gsub("/[^\t]*",""); print; next} 1' file | column -t
samplename1 anotherthing asdfgh
2 3 4
5 6 7
Requirement: I need to use only grep/cut/join.
I have data like:
3 abcd
23 xyz
1234 abc
I want to pipe this data to cut and then extract columns. But, when I am using cut -d' ' -f 1,2 it treats each space as its own column divider. I would prefer the first two rows be trimmed prior to cut. Is there a way?
Example (I have used tr for demonstration purposes of where the spaces are here; it is not allowed in the solution):
$ echo ' 3 abcd
23 xyz
1234 abc' | cut -d' ' -f 1,2 | tr ' ' '_'
_
_23
1234_abc
Expected output:
$3 abcd
23 xyz
1234 abc
Using just grep, you can accomplish this with the following pipe:
grep -oe "[^ ][^ ]* *[^ ][^ ]*$"
grep # a tool for matching text
-o # only prints out matching text
-e # uses a regex
[^ ] # match anything that isn't a space
* # match zero or more of the previous element
$ # the end of the line
Note: This does not account for trailing whitespace.
Demonstration:
$ echo ' 3 abcd
23 xyz
1234 abc' | grep -oe "[^ ][^ ]* *[^ ][^ ]*$"
3 abcd
23 xyz
1234 abc
I have a file with many lines
http://example.com/part-1 this number 1 one
http://example.com/part--2 this is number 21 two
http://example.com/part10 this is an number 12 ten
http://example.com/part-num-11 this is an axample number 212 eleven
How can I remove all character after "number x" + between first columd and "number x"...I wanna my output like this
http://example.com/part-1 1
http://example.com/part--2 21
http://example.com/part10 12
http://example.com/part-num-11 212
Another case :
Input:
http://server1.example.com/00/part-1 this number 1 one
http://server2.example.com/1a/part--2 this is section 21 two two
http://server3.example.com/2014/5/part10 this is an Part 12 ten ten ten
http://server5.example.com/2014/7/part-num-11 this is an PARt number 212 eleven
I wanna the same output....And the number is always in last numeric field
Here is one way:
awk -F"number" '{split($1,a," ");split($2,b," ");print a[1],b[1]}' file
http://example.com/part-1 1
http://example.com/part--2 21
http://example.com/part10 12
http://example.com/part-num-11 212
If the number you like to have is always on the second last field, this should do too:
awk '{print $1,$(NF-1)}' file
http://example.com/part-1 1
http://example.com/part--2 21
http://example.com/part10 12
http://example.com/part-num-11 212
sed -r 's/^([^0-9]*[0-9]+)[^0-9]*([0-9]+).*/\1 \2/' file
Output:
http://example.com/part-1 1
http://example.com/part--2 21
http://example.com/part10 12
http://example.com/part-num-11 212
Try this:
sed 's/ .*number \([0-9]+\).*/ \1/' myfile.txt
Thank everyone...From your comments, I have my own solution :
sed -re 's/([0-9]*[0-9]+)/#\1#/g' | sed -re 's/(^.*#).*/\1/g' | sed 's/#//g' | awk '{print $1" "$NF}'
My idea : Replace all numeric group with #[numbers]# , then select all character from start of line to "#" (sed will select last # ) and remove all rest character. Next is awk
Thank everyone (y)
Too cumbersome:
awk '{print " "$4" "$5" "$6" "$7" "$8" "$9" "$10" "$11" "$12" "$13}' things
awk '{for(i=1;i<4;i++) $i="";print}' file
use cut
$ cut -f4-13 file
or if you insist on awk and $13 is the last field
$ awk '{$1=$2=$3="";print}' file
else
$ awk '{for(i=4;i<=13;i++)printf "%s ",$i;printf "\n"}' file
A solution that does not add extra leading or trailing whitespace:
awk '{ for(i=4; i<NF; i++) printf "%s",$i OFS; if(NF) printf "%s",$NF; printf ORS}'
### Example ###
$ echo '1 2 3 4 5 6 7' |
awk '{for(i=4;i<NF;i++)printf"%s",$i OFS;if(NF)printf"%s",$NF;printf ORS}' |
tr ' ' '-'
4-5-6-7
Sudo_O proposes an elegant improvement using the ternary operator NF?ORS:OFS
$ echo '1 2 3 4 5 6 7' |
awk '{ for(i=4; i<=NF; i++) printf "%s",$i (i==NF?ORS:OFS) }' |
tr ' ' '-'
4-5-6-7
EdMorton gives a solution preserving original whitespaces between fields:
$ echo '1 2 3 4 5 6 7' |
awk '{ sub(/([^ ]+ +){3}/,"") }1' |
tr ' ' '-'
4---5----6-7
BinaryZebra also provides two awesome solutions:
(these solutions even preserve trailing spaces from original string)
$ echo -e ' 1 2\t \t3 4 5 6 7 \t 8\t ' |
awk -v n=3 '{ for ( i=1; i<=n; i++) { sub("^["FS"]*[^"FS"]+["FS"]+","",$0);} } 1 ' |
sed 's/ /./g;s/\t/->/g;s/^/"/;s/$/"/'
"4...5...6.7.->.8->."
$ echo -e ' 1 2\t \t3 4 5 6 7 \t 8\t ' |
awk -v n=3 '{ print gensub("["FS"]*([^"FS"]+["FS"]+){"n"}","",1); }' |
sed 's/ /./g;s/\t/->/g;s/^/"/;s/$/"/'
"4...5...6.7.->.8->."
The solution given by larsr in the comments is almost correct:
$ echo '1 2 3 4 5 6 7' |
awk '{for (i=3;i<=NF;i++) $(i-2)=$i; NF=NF-2; print $0}' | tr ' ' '-'
3-4-5-6-7
This is the fixed and parametrized version of larsr solution:
$ echo '1 2 3 4 5 6 7' |
awk '{for(i=n;i<=NF;i++)$(i-(n-1))=$i;NF=NF-(n-1);print $0}' n=4 | tr ' ' '-'
4-5-6-7
All other answers before Sep-2013 are nice but add extra spaces:
Example of answer adding extra leading spaces:
$ echo '1 2 3 4 5 6 7' |
awk '{$1=$2=$3=""}1' |
tr ' ' '-'
---4-5-6-7
Example of answer adding extra trailing space
$ echo '1 2 3 4 5 6 7' |
awk '{for(i=4;i<=13;i++)printf "%s ",$i;printf "\n"}' |
tr ' ' '-'
4-5-6-7-------
Try this:
awk '{ $1=""; $2=""; $3=""; print $0 }'
The correct way to do this is with an RE interval because it lets you simply state how many fields to skip, and retains inter-field spacing for the remaining fields.
e.g. to skip the first 3 fields without affecting spacing between remaining fields given the format of input we seem to be discussing in this question is simply:
$ echo '1 2 3 4 5 6' |
awk '{sub(/([^ ]+ +){3}/,"")}1'
4 5 6
If you want to accommodate leading spaces and non-blank spaces, but again with the default FS, then it's:
$ echo ' 1 2 3 4 5 6' |
awk '{sub(/[[:space:]]*([^[:space:]]+[[:space:]]+){3}/,"")}1'
4 5 6
If you have an FS that's an RE you can't negate in a character set, you can convert it to a single char first (RS is ideal if it's a single char since an RS CANNOT appear within a field, otherwise consider SUBSEP), then apply the RE interval subsitution, then convert to the OFS. e.g. if chains of "."s separated the fields:
$ echo '1...2.3.4...5....6' |
awk -F'[.]+' '{gsub(FS,RS);sub("([^"RS"]+["RS"]+){3}","");gsub(RS,OFS)}1'
4 5 6
Obviously if OFS is a single char AND it can't appear in the input fields you can reduce that to:
$ echo '1...2.3.4...5....6' |
awk -F'[.]+' '{gsub(FS,OFS); sub("([^"OFS"]+["OFS"]+){3}","")}1'
4 5 6
Then you have the same issue as with all the loop-based solutions that reassign the fields - the FSs are converted to OFSs. If that's an issue, you need to look into GNU awks' patsplit() function.
Pretty much all the answers currently add either leading spaces, trailing spaces or some other separator issue. To select from the fourth field where the separator is whitespace and the output separator is a single space using awk would be:
awk '{for(i=4;i<=NF;i++)printf "%s",$i (i==NF?ORS:OFS)}' file
To parametrize the starting field you could do:
awk '{for(i=n;i<=NF;i++)printf "%s",$i (i==NF?ORS:OFS)}' n=4 file
And also the ending field:
awk '{for(i=n;i<=m=(m>NF?NF:m);i++)printf "%s",$i (i==m?ORS:OFS)}' n=4 m=10 file
awk '{$1=$2=$3="";$0=$0;$1=$1}1'
Input
1 2 3 4 5 6 7
Output
4 5 6 7
echo 1 2 3 4 5| awk '{ for (i=3; i<=NF; i++) print $i }'
Another way to avoid using the print statement:
$ awk '{$1=$2=$3=""}sub("^"FS"*","")' file
In awk when a condition is true print is the default action.
I can't believe nobody offered plain shell:
while read -r a b c d; do echo "$d"; done < file
Options 1 to 3 have issues with multiple whitespace (but are simple).
That is the reason to develop options 4 and 5, which process multiple white spaces with no problem.
Of course, if options 4 or 5 are used with n=0 both will preserve any leading whitespace as n=0 means no splitting.
Option 1
A simple cut solution (works with single delimiters):
$ echo '1 2 3 4 5 6 7 8' | cut -d' ' -f4-
4 5 6 7 8
Option 2
Forcing an awk re-calc sometimes solve the problem (works with some versions of awk) of added leading spaces:
$ echo '1 2 3 4 5 6 7 8' | awk '{ $1=$2=$3="";$0=$0;} NF=NF'
4 5 6 7 8
Option 3
Printing each field formated with printf will give more control:
$ echo ' 1 2 3 4 5 6 7 8 ' |
awk -v n=3 '{ for (i=n+1; i<=NF; i++){printf("%s%s",$i,i==NF?RS:OFS);} }'
4 5 6 7 8
However, all previous answers change all FS between fields to OFS. Let's build a couple of solutions to that.
Option 4
A loop with sub to remove fields and delimiters is more portable, and doesn't trigger a change of FS to OFS:
$ echo ' 1 2 3 4 5 6 7 8 ' |
awk -v n=3 '{ for(i=1;i<=n;i++) { sub("^["FS"]*[^"FS"]+["FS"]+","",$0);} } 1 '
4 5 6 7 8
NOTE: The "^["FS"]*" is to accept an input with leading spaces.
Option 5
It is quite possible to build a solution that does not add extra leading or trailing whitespace, and preserve existing whitespace using the function gensub from GNU awk, as this:
$ echo ' 1 2 3 4 5 6 7 8 ' |
awk -v n=3 '{ print gensub("["FS"]*([^"FS"]+["FS"]+){"n"}","",1); }'
4 5 6 7 8
It also may be used to swap a field list given a count n:
$ echo ' 1 2 3 4 5 6 7 8 ' |
awk -v n=3 '{ a=gensub("["FS"]*([^"FS"]+["FS"]+){"n"}","",1);
b=gensub("^(.*)("a")","\\1",1);
print "|"a"|","!"b"!";
}'
|4 5 6 7 8 | ! 1 2 3 !
Of course, in such case, the OFS is used to separate both parts of the line, and the trailing white space of the fields is still printed.
Note1: ["FS"]* is used to allow leading spaces in the input line.
Cut has a --complement flag that makes it easy (and fast) to delete columns. The resulting syntax is analogous with what you want to do -- making the solution easier to read/understand. Complement also works for the case where you would like to delete non-contiguous columns.
$ foo='1 2 3 %s 5 6 7'
$ echo "$foo" | cut --complement -d' ' -f1-3
%s 5 6 7
$
Perl solution which does not add leading or trailing whitespace:
perl -lane 'splice #F,0,3; print join " ",#F' file
The perl #F autosplit array starts at index 0 while awk fields start with $1
Perl solution for comma-delimited data:
perl -F, -lane 'splice #F,0,3; print join ",",#F' file
Python solution:
python -c "import sys;[sys.stdout.write(' '.join(line.split()[3:]) + '\n') for line in sys.stdin]" < file
For me the most compact and compliant solution to the request is
$ a='1 2\t \t3 4 5 6 7 \t 8\t ';
$ echo -e "$a" | awk -v n=3 '{while (i<n) {i++; sub($1 FS"*", "")}; print $0}'
And if you have more lines to process as for instance file foo.txt, don't forget to reset i to 0:
$ awk -v n=3 '{i=0; while (i<n) {i++; sub($1 FS"*", "")}; print $0}' foo.txt
Thanks your forum.
As I was annoyed by the first highly upvoted but wrong answer I found enough to write a reply there, and here the wrong answers are marked as such, here is my bit. I do not like proposed solutions as I can see no reason to make answer so complex.
I have a log where after $5 with an IP address can be more text or no text. I need everything from the IP address to the end of the line should there be anything after $5. In my case, this is actualy withn an awk program, not an awk oneliner so awk must solve the problem. When I try to remove the first 4 fields using the old nice looking and most upvoted but completely wrong answer:
echo " 7 27.10.16. Thu 11:57:18 37.244.182.218 one two three" | awk '{$1=$2=$3=$4=""; printf "[%s]\n", $0}'
it spits out wrong and useless response (I added [] to demonstrate):
[ 37.244.182.218 one two three]
Instead, if columns are fixed width until the cut point and awk is needed, the correct and quite simple answer is:
echo " 7 27.10.16. Thu 11:57:18 37.244.182.218 one two three" | awk '{printf "[%s]\n", substr($0,28)}'
which produces the desired output:
[37.244.182.218 one two three]
I've found this other possibility, maybe it could be useful also...
awk 'BEGIN {OFS=ORS="\t" }; {for(i=1; i<14; i++) print $i " "; print $NF "\n" }' your_file
Note: 1. For tabular data and from column $1 to $14
Use cut:
cut -d <The character between characters> -f <number of first column>,<number of last column> <file name>
e.g.: If you have file1 containing : car.is.nice.equal.bmw
Run : cut -d . -f1,3 file1 will print car.is.nice
This isn't very far from some of the previous answers, but does solve a couple of issues:
cols.sh:
#!/bin/bash
awk -v s=$1 '{for(i=s; i<=NF;i++) printf "%-5s", $i; print "" }'
Which you can now call with an argument that will be the starting column:
$ echo "1 2 3 4 5 6 7 8 9 10 11 12 13 14" | ./cols.sh 3
3 4 5 6 7 8 9 10 11 12 13 14
Or:
$ echo "1 2 3 4 5 6 7 8 9 10 11 12 13 14" | ./cols.sh 7
7 8 9 10 11 12 13 14
This is 1-indexed; if you prefer zero indexed, use i=s + 1 instead.
Moreover, if you would like to have to arguments for the starting index and end index, change the file to:
#!/bin/bash
awk -v s=$1 -v e=$2 '{for(i=s; i<=e;i++) printf "%-5s", $i; print "" }'
For example:
$ echo "1 2 3 4 5 6 7 8 9 10 11 12 13 14" | ./cols.sh 7 9
7 8 9
The %-5s aligns the result as 5-character-wide columns; if this isn't enough, increase the number, or use %s (with a space) instead if you don't care about alignment.
AWK printf-based solution that avoids % problem, and is unique in that it returns nothing (no return character) if there are less than 4 columns to print:
awk 'NF > 3 { for(i=4; i<NF; i++) printf("%s ", $(i)); print $(i) }'
Testing:
$ x='1 2 3 %s 4 5 6'
$ echo "$x" | awk 'NF > 3 { for(i=4; i<NF; i++) printf("%s ", $(i)); print $(i) }'
%s 4 5 6
$ x='1 2 3'
$ echo "$x" | awk 'NF > 3 { for(i=4; i<NF; i++) printf("%s ", $(i)); print $(i) }'
$ x='1 2 3 '
$ echo "$x" | awk 'NF > 3 { for(i=4; i<NF; i++) printf("%s ", $(i)); print $(i) }'
$