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I have table structure:

ous.txt 1452 1793

out.txt 36796 14997

ouw.txt 478 4247

3 columns & lots of rows.

I want to trim ".txt" - last 4 characters from the #1 column (with awk, sed).

I know that chopping the end of line was covered times here, but i don't know how to access the end of n-th collumn.

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2 Answers

up vote 3 down vote accepted

Based on your sample input, this would do it:

sed 's/\.txt//' filename

If I only wanted to operate on the 1st whitespace-delimted column, I'd use awk or just the shell:

while read -r col1 col2 col3; do
    printf "%s %s %s\n" "${col1%.txt}" "$col2" "$col3"
done < filename
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Or in the general case of "last four non-tab characters before the first tab", s/[^\t][^\t][^\t][^\t]\t/\t/ (where you would substitute a literal tab for \t if your sed doesn't understand this convenient representation). Creful, though; if you have lines where the first field is less than four characters, you will get unexpected results. (Maybe anchor the expression then; s/^\([^\t]*\)[^\t][^\t][^\t][^\t]\t/\t/.) –  tripleee Apr 2 '12 at 16:19
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If you want to remove the last 4 characters of column 1:

awk '{sub(/....$/, "", $1)} 1' filename

If the columns are separated by spaces, but not tabs:

sed 's/.... / /' filename
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