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I would like to remove all of the empty lines from a file, but only when they are at the end/start of a file (that is, if there are no non-empty lines before them, at the start; and if there are no non-empty lines after them, at the end.)

Is this possible outside of a fully-featured scripting language like Perl or Ruby? I’d prefer to do this with sed or awk if possible. Basically, any light-weight and widely available UNIX-y tool would be fine, especially one I can learn more about quickly (Perl, thus, not included.)

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11 Answers 11

up vote 19 down vote accepted

From Useful one-line scripts for sed:

# Delete all leading blank lines at top of file (only).
sed '/./,$!d' file

# Delete all trailing blank lines at end of file (only).
sed -e :a -e '/^\n*$/{$d;N;};/\n$/ba' file

Therefore, to remove both leading and trailing blank lines from a file, you can combine the above commands into:

sed -e :a -e '/./,$!d;/^\n*$/{$d;N;};/\n$/ba' file
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According to the note at that site, the trailing-blank-line script won't work for gsed 3.02.*. This one will work: sed -e :a -e '/^\n*$/{$d;N;ba' -e '}' –  BryanH Dec 11 '12 at 22:36

So I'm going to borrow part of @dogbane's answer for this, since that sed line for removing the leading blank lines is so short...

tac is part of coreutils, and reverses a file. So do it twice:

tac file | sed -e '/./,$!d' | tac | sed -e '/./,$!d'

It's certainly not the most efficient, but unless you need efficiency, I find it more readable than everything else so far.

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I'm leaving the original one accepted; but this is certainly elegant. Also, happy to have learned about tac. What a cute name. :D –  ELLIOTTCABLE Jun 17 '14 at 10:07
1  
There's an edge case worth mentioning: if the file doesn't have a trailing \n, the last line won't be handled correctly: try tac <(printf 'a\nb'). Arguably, this behavior is flawed; also affects tac's OSX equivalent, tail -r. –  mklement0 Nov 7 '14 at 18:54

using awk:

awk '{a[NR]=$0;if($0 && !s)s=NR;}
    END{e=NR;
        for(i=NR;i>1;i--) 
            if(a[i]){ e=i; break; } 
        for(i=s;i<=e;i++)
            print a[i];}' yourFile
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I wonder if there’s a way to reduce/refactor that to handle it in one pass? (I’m not massively familiar with awk; I can read what you wrote, but I’m not sure how to refactor it.) –  ELLIOTTCABLE Sep 9 '11 at 9:49
    
basically this is an one-line command, the only dynamic part is 'yourFile', which is the filename you want to process. why you need reduce/refactor? –  Kent Sep 9 '11 at 9:58
1  
Because it’s long and complex, even if it doesn’t need any newlines? Several for loops, multiple statements; unnecessary complexity. (= –  ELLIOTTCABLE Sep 9 '11 at 10:07

here's a one-pass solution in awk: it does not start printing until it sees a non-empty line and when it sees an empty line, it remembers it until the next non-empty line

awk '
    /[[:graph:]]/ {
        # a non-empty line
        # set the flag to begin printing lines
        p=1      
        # print the accumulated "interior" empty lines 
        for (i=1; i<=n; i++) print ""
        n=0
        # then print this line
        print
    }
    p && /^[[:space:]]*$/ {
        # a potentially "interior" empty line. remember it.
        n++
    }
' filename

Note, due to the mechanism I'm using to consider empty/non-empty lines (with [[:graph:]] and /^[[:space:]]*$/), interior lines with only whitespace will be truncated to become truly empty.

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+1 for a single-pass, single-utility solution that is also memory-efficient (though, as noted, its behavior differs slightly from what was asked for). –  mklement0 Jul 7 '14 at 14:07

In bash, using cat, wc, grep, sed, tail and head:

# number of first line that contains non-empty character
i=`grep -n "^[^\B*]" <your_file> | sed -e 's/:.*//' | head -1`
# number of hte last one
j=`grep -n "^[^\B*]" <your_file> | sed -e 's/:.*//' | tail -1`
# overall number of lines:
k=`cat <your_file> | wc -l`
# how much empty lines at the end of file we have?
m=$(($k-$j))
# let strip last m lines!
cat <your_file> | head -n-$m
# now we have to strip first i lines and we are done 8-)
cat <your_file> | tail -n+$i

Man, it's definitely worth to learn "real" programming language to avoid that ugliness!

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Well that part is easy enough with sed! Let me play with it, and try to get back here with a completed command. Thanks! –  ELLIOTTCABLE Sep 9 '11 at 9:43
    
Actually, that won’t work for the last lines, because it removes all newlines in the grep stage, thus throwing off the count at the end. /= –  ELLIOTTCABLE Sep 9 '11 at 9:45
    
Nope: after executing these commands you still have your original file. Second command prints all non-blanks preppenging with their line numbers. Thus you'll have number of last non-blank. –  Alexander Poluektov Sep 9 '11 at 9:49
    
Ah! I misunderstood the operation of grep -n it seems. Yes! –  ELLIOTTCABLE Sep 9 '11 at 9:55
    
(Accepted, though I used a one-line variant without any shell-variables, instead expressing a bit more with the sed commands.) –  ELLIOTTCABLE Sep 9 '11 at 10:05

As mentioned in another answer, tac is part of coreutils, and reverses a file. Combining the idea of doing it twice with the fact that command substitution will strip trailing new lines, we get

echo "$(echo "$(tac "$filename")" | tac)"

which doesn't depend on sed. You can use echo -n to strip the remaining trailing newline off.

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+1 for (relative) simplicity (albeit at the expense of efficiency); OSX version (where tac is not available by default): echo "$(echo "$(tail -r "$filename")" | tail -r)" I ran tests to compare relative execution speed with a 1-million-lines file for several answers (didn't pay attention to memory use); earlier means faster: OSX 10.10: sed (dogbane) < bash (mklement0) < awk (glenn jackman) < tac (tail -r; you) Ubuntu 14.04: sed (dogbane) < tac (you) < bash (mklement0) < awk (glenn jackman) One interesting difference is that tac is much faster on Ubuntu than on OSX. –  mklement0 Nov 7 '14 at 18:38
    
There's an edge case worth mentioning: if the file doesn't have a trailing \n, the last line won't be handled correctly: try echo "$(echo "$(printf 'a\nb' | tac)" | tac)". This is inherent in the - arguably flawed - behavior of tac (and also tail -r on OSX) with input not ending in \n. –  mklement0 Nov 7 '14 at 18:50

Using bash

$ filecontent=$(<file)
$ echo "${filecontent/$'\n'}"
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This only removes a single blank line from the start, and none from the end. –  me_and Oct 3 '13 at 9:45
2  
@me_and: While you're correct about only removing one empty line from the start, this actually does remove all trailing newlines, because command substitution ($(<file)) does that implicitly. –  mklement0 Jul 7 '14 at 13:00
    
@mklement0: Huh, so it does. Learn a new thing every day! –  me_and Jul 10 '14 at 11:18

A bash solution.

Note: Only useful if the file is small enough to be read into memory at once.

[[ $(<file) =~ ^$'\n'*(.*)$ ]] && echo "${BASH_REMATCH[1]}"
  • $(<file) reads the entire file and trims trailing newlines, because command substitution ($(....)) implicitly does that.
  • =~ is bash's regular-expression matching operator, and =~ ^$'\n'*(.*)$ optionally matches any leading newlines (greedily), and captures whatever comes after. Note the potentially confusing $'\n', which inserts a literal newline using ANSI C quoting, because escape sequence \n is not supported.
  • Note that this particular regex always matches, so the command after && is always executed.
  • Special array variable BASH_REMATCH rematch contains the results of the most recent regex match, and array element [1] contains what the (first and only) parenthesized subexpression (capture group) captured, which is the input string with any leading newlines stripped. The net effect is that ${BASH_REMATCH[1]} contains the input file content with both leading and trailing newlines stripped.
  • Note that printing with echo adds a single trailing newline. If you want to avoid that, use echo -n instead (or use the more portable printf '%s').
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I'd like to introduce another variant for gawk v4.1+

result=($(gawk '
    BEGIN {
        lines_count         = 0;
        empty_lines_in_head = 0;
        empty_lines_in_tail = 0;
    }
    /[^[:space:]]/ {
        found_not_empty_line = 1;
        empty_lines_in_tail  = 0;
    }
    /^[[:space:]]*?$/ {
        if ( found_not_empty_line ) {
            empty_lines_in_tail ++;
        } else {
            empty_lines_in_head ++;
        }
    }
    {
        lines_count ++;
    }
    END {
        print (empty_lines_in_head " " empty_lines_in_tail " " lines_count);
    }
' "$file"))

empty_lines_in_head=${result[0]}
empty_lines_in_tail=${result[1]}
lines_count=${result[2]}

if [ $empty_lines_in_head -gt 0 ] || [ $empty_lines_in_tail -gt 0 ]; then
    echo "Removing whitespace from \"$file\""
    eval "gawk -i inplace '
        {
            if ( NR > $empty_lines_in_head && NR <= $(($lines_count - $empty_lines_in_tail)) ) {
                print
            }
        }
    ' \"$file\""
fi
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@dogbane has a nice simple answer for removing leading empty lines. Here's a simple awk command which removes just the trailing lines. Use this with @dogbane's sed command to remove both leading and trailing blanks.

awk '{ LINES=LINES $0 "\n"; } /./ { printf "%s", LINES; LINES=""; }'

This is pretty simple in operation.

  • Add every line to a buffer as we read it.
  • For every line which contains a character, print the contents of the buffer and then clear it.

So the only things that get buffered and never displayed are any trailing blanks.

I used printf instead of print to avoid the automatic addition of a newline, since I'm using newlines to separate the lines in the buffer already.

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Here's an adapted sed version, which also considers "empty" those lines with just spaces and tabs on it.

sed -e :a -e '/[^[:blank:]]/,$!d; /^[[:space:]]*$/{ $d; N; ba' -e '}'

It's basically the accepted answer version (considering BryanH comment), but the dot . in the first command was changed to [^[:blank:]] (anything not blank) and the \n inside the second command address was changed to [[:space:]] to allow newlines, spaces an tabs.

An alternative version, without using the POSIX classes, but your sed must support inserting \t and \n inside […]. GNU sed does, BSD sed doesn't.

sed -e :a -e '/[^\t ]/,$!d; /^[\n\t ]*$/{ $d; N; ba' -e '}'

Testing:

prompt$ printf '\n \t \n\nfoo\n\nfoo\n\n \t \n\n' 



foo

foo



prompt$ printf '\n \t \n\nfoo\n\nfoo\n\n \t \n\n' | sed -n l
$
 \t $
$
foo$
$
foo$
$
 \t $
$
prompt$ printf '\n \t \n\nfoo\n\nfoo\n\n \t \n\n' | sed -e :a -e '/[^[:blank:]]/,$!d; /^[[:space:]]*$/{ $d; N; ba' -e '}'
foo

foo
prompt$
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