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I have an input of the following schema

10,0,'string1_string2,_string3','',8,0,0,0.59,'20140101205216','20140128074836',584266915,5934

and I would like to replace all comma "," characters with tabs using sed. The constraint is to not replace "," inside text strings (i.e the comma in 'string1_string2,_string3' should not be replaced with tab). A regex to do this is ,(?!,_).

However the following sed does not work. I've tried all escaping permutations too.

sed s/",\(\?\!,_\)"/"\t"/g 

Is there a way to do this?

share|improve this question
    
I would use a Perl program to read the line in, break it up according to the CSV fields, modify the field in question, then rebuild the line. Dealing with structured data in an unstructured way is a long-term nightmare. – Andy Lester Feb 8 '14 at 17:00
    
Thanks Johanthan, and everyone else below. Yes, you are quite right. I have had many nightmares. I have a solution as you suggested. – Peyman Feb 10 '14 at 14:36
up vote 2 down vote accepted

On Mac OS X 10.9.1, you can use:

sed -E -e "s/('[^']*'|[^,]*),/\1X/g"

except that you'd replace the X with an actual tab. For your input line, that yields:

10X0X'string1_string2,_string3'X''X8X0X0X0.59X'20140101205216'X'20140128074836'X584266915X5934

which has X's where you want tabs. With GNU sed, you can use -r in place of -E (though it also recognizes -E). Mac sed will not expand \t to a tab; GNU sed will. With Bash, you can use the ANSI-C Quoting mechanism to have the shell embed a tab in the string passed to sed:

sed -E -e "s/('[^']*'|[^,]*),/\1"$'\t'"/g"

Without the extended regular expressions (activated by -r or -E), it isn't worth trying in sed; use awk instead.

The regex looks for either a single quote followed by zero or more non-quotes and a single quote or zero or more non-commas, followed by a comma, and replaces it with what was remembered as the either/or string and a 'tab' (using X to represent tab because it is more visible).


devnull points out that the answer above replaces the comma in a string at the end of a line. There's a workaround for that:

sed -E -e "s/('[^']*'|[^,]*)(,|$)/\1"$'\t'"/g; s/"$'\t'"$//"

The s///g before the semicolon adds a tab to the end of each line; the s/// after the semicolon removes the tab that was just added.

share|improve this answer
    
+1; on OSX, splice in $'\t' to create a tab char. (works analogously with other control chars., e.g., $'\n'). It looks awkward (no awk pun intended), but it works: sed -E -e "s/('[^']*'|[^,]*),/\1"$'\t'"/g" – mklement0 Feb 8 '14 at 17:28
1  
Yes, that would certainly work, using Bash and the ANSI-C Quoting mechanism, but it is the shell handling the \t and not sed. (I know you know; I'm making sure others reading later know too.) Using control-V control-I (or tab) also works. With GNU sed, sed itself handles the \t to tab translation. – Jonathan Leffler Feb 8 '14 at 17:32
1  
I'm afraid that this might break if the strings ends with quoted text, e.g. a,'b,c' – devnull Feb 8 '14 at 17:35
    
@JonathanLeffler: Well put - thanks for introducing me to the name of the $'...' feature. – mklement0 Feb 8 '14 at 17:35
1  
Right, this is easier to deal with using perl or awk. – devnull Feb 8 '14 at 17:50

You could use Text::ParseWords:

perl -MText::ParseWords -n -l -e 'print join("\t", parse_line(",", 1, $_));' filename

For your input, it'd result in:

10      0       'string1_string2,_string3'      ''      8       0       0       0.59    '20140101205216'        '20140128074836'        584266915       5934
share|improve this answer

I would suggest take Perl's help if available because of availability of lookarounds:

s="10,0,'string1_string2,_string3','',8,0,0,0.59,'20140101205216','20140128074836',584266915,5934"

perl -pe "s/,(?=(([^']*'){2})*[^']*$)/\t/g" <<< "$s"

10\t0\t'string1_string2,_string3'\t''\t8\t0\t0\t0.59\t'20140101205216'\t'20140128074836'\t584266915\t5934

PS: Showing \t only for readability purpose.

share|improve this answer
    
+1; it works, but my brain is still hurting from trying to understand: - Due to the lookahead assertion (?=...), matching is performed through the end of the line for every , found. - The entire expression in parentheses is the lookahead expression that matches only if the preceding , is NOT inside a single-quoted string. - It does so by looking for pairs of quotes - the implication is that if the remaining quotes on the line, if any, are NOT paired, the , at hand must be inside a quoted string. - Net effect: only , chars. outside of quoted strings are matched and replaced. – mklement0 Feb 8 '14 at 21:17
    
Yes it appears little tricky but what it does is to make sure there are always even number of single quotes (0,2,4,6...) following a comma. The lookahead is doing just that (see {2} part). – anubhava Feb 9 '14 at 4:15

This seems to work if I understand your question correctly:

sed -E 's/,([^_])/\t\1/g'

Output:

10  0   'string1_string2,_string3'  ''  8   0   0   0.59    '20140101205216'    '20140128074836'    584266915   5934
share|improve this answer
1  
This works on the given data because of the coincidence that the comma in the string is followed by an underscore and none of the other commas is followed by an underscore. It doesn't handle variants, such as 'string1, string2, string3',_abc_ all that well. – Jonathan Leffler Feb 8 '14 at 16:36
    
@JonathanLeffler I know, but there’s no requirement to handle all variants in the question. Peyman suggested sed s/",\(\?\!,_\)"/"\t"/g which is about replacing ,_ -> \t. I’m a little confused what he’s really asking for. If it should work for all other variants, then my answer is useless of course. – Jakub Jirutka Feb 8 '14 at 16:43

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