2

I have data in below format in a file.

name,path:A:B
loc:D
name,for:B:C

I need to add " ," (space + comma ) at start of all those lines which doesn't have , in it in the file to get the output like below.

name,path:A:B
 ,loc:D
name,for:B:C

grep "[^,]" file .. This gives me list of lines which doesnt contain , but I am not able to add at start .

2
  • Have you tried anything at all? Dec 31, 2020 at 11:43
  • 1
    grep "[^,]" file .. This gives me list of lines which doesnt contain , but I am not able to add at start . Dec 31, 2020 at 11:46

7 Answers 7

4

Could you please try following, written and tested with shown samples in GNU awk.

awk '!/,/{print OFS","$0;next} 1' Input_file

Explanation: Adding detailed explanation for above.

awk '               ##Starting awk program from here.
!/,/{               ##Checking condition if line is NOT having comma then do following.
  print OFS","$0    ##Printing OFS comma and current line here.
  next              ##next will skip all further statements from here.
}
1                   ##1 will print current line here.
' Input_file        ##Mentioning Input_file name here.
3

grep is not the tool here, I'd use awk or sed. Using awk:

$ awk '
BEGIN {
    FS=OFS=","  # set delimiters to ,
}
NF==1 {         # if there is only one field (consider NF<=1 for ampty records)
    $1=OFS $1   # add a delimiter in front of it
}
1' file         # output

Output:

name,path:A:B
,loc:D
name,for:B:C
0
1

Using sed:

sed -r '/\,/!s/(^.*$)/ ,\1/' file

Search for lines without a comma by using ! and then substitute the whole line for a space, comma and the existing line.

2
  • can be simplified to sed '/\,/!s/^/ ,/' (also, -E is more commonly used these days across implementations instead of -r)
    – Sundeep
    Dec 31, 2020 at 12:24
  • Or just sed '/,/!s/^/ ,/' file; no need for EREs or capture groups.
    – Shawn
    Dec 31, 2020 at 13:57
1

I would use GNU AWK for this task following way, let file.txt content be

name,path:A:B
loc:D
name,for:B:C

then

awk '{print /,/?$0:" ,"$0}' file.txt

output

name,path:A:B
 ,loc:D
name,for:B:C

Explanation: for every line if there is , just print that line ($0) otherwise print concatenation of space-comma (" ,") and that line ($0).

(tested in gawk 4.2.1)

1

You could use index to check for a comma.

awk '{print index($0, ",") ? $0 : " ," $0}' file

Output

name,path:A:B
 ,loc:D
name,for:B:C
0

There is lots of good answers using sed or awk here, which are perfectly fine to do that (even better than the following one). But just for fun, here is a bash only solution (without needing to invoke external programs like grep or whatever) which also do the trick:

$ while read -r; do p=""; [[ ! $REPLY =~ [^,]*\,[^,]* ]] && p=" ,"; echo "${p}${REPLY}"; done < test.txt 
name,path:A:B
 ,loc:D
name,for:B:C

The explained version:

#!/bin/bash

while read -r; do # looping over a file the right way in bash
  p="" # initializing a prefix
  [[ ! $REPLY =~ [^,]*\,[^,]* ]] && p=" ," # if the line doesn't contain a comma, the prefix will contain a comma
  echo "${p}${REPLY}"; # print the line with the prefix which can be blank or not
done < test.txt 
0

To edit the file itself, use ed:

printf "%s\n" "v/,/s/^/ ,/" w | ed -s file

inserts a space and comma at the start of every line that doesn't already have a comma, and then saves the modified file.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.