4

I'm looking for ways to count the number of trailing newlines from possibly binary data either:

  • read from standard input
  • or already in a shell variable (then of course the "binary" excludes at least 0x0) using POSIX or coreutils utilities or maybe Perl.

This should work without temporary files or FIFOs.

When the input is in a shell variable, I already have the following (possibly ugly but) working solution:

original_string=$'abc\n\n\def\n\n\n'
string_without_trailing_newlines="$( printf '%s' "${original_string}" )"
printf '%s' $(( ${#original_string}-${#string_without_trailing_newlines} ))

which gives 3 in the above example.

The idea above is simply to subtract the string lengths and use the "feature" of command substitution that it discards any trailing newlines.

Test-Cases:

printf ''             |  function   results in: 0
printf '\n'           |  function   results in: 1
printf '\n\n'         |  function   results in: 2
printf '\n\n\n'       |  function   results in: 3
printf 'a'            |  function   results in: 0
printf 'a\n'          |  function   results in: 1
printf 'a\n\n'        |  function   results in: 2
printf '\na\n\n'      |  function   results in: 2
printf 'a\n\nb\n'     |  function   results in: 1

For the special cases when NUL is part of the string (which anyway just works when reading from stdin, not when giving the string in the shell via avariable), the results are undefined but should typically be either:

printf '\n\x00\n\n'   |  function   results in: 1
printf 'a\n\n\x00\n'  |  function   results in: 2

that is counting the new lines up to the NUL

or:

printf '\n\x00\n\n'   |  function   results in: 2
printf 'a\n\n\x00\n'  |  function   results in: 1

that is counting the newlines from the NUL

or:

printf '\n\x00\n\n'   |  function   results in: 3
printf 'a\n\n\x00\n'  |  function   results in: 3

that is ignoring any "trailing" NUL, as long as these are right before, within or right after the trailing NULs

or:
giving an error

7
  • I tried something with sed, like deleting all lines that are not trailing newlines and counting the remaining ones, but couldn't get that to work.
    – calestyo
    Jan 7 at 1:17
  • 2
    If the data is "possibly binary" how will you distinguish between legitimate 0x0A and newlines? Jan 7 at 1:55
  • @JimGarrison In what way do you think they can be distinguished?
    – chepner
    Jan 7 at 2:15
  • There wouldn't be any difference. Any \n would be considered a newline.
    – calestyo
    Jan 7 at 5:11
  • 1
    @EdMorton Was a typo during copy&pasting. Corrected.
    – calestyo
    Jan 20 at 15:09

4 Answers 4

3

Using GNU awk for RT and without reading all of the input into memory at once:

$ printf 'abc\n\n\def\n\n\n' | awk '/./{n=NR} END{print NR-n+(n && (RT==RS))}'
3

$ printf 'a\n' | awk '/./{n=NR} END{print NR-n+(n && (RT==RS))}'
1

$ printf 'a' | awk '/./{n=NR} END{print NR-n+(n && (RT==RS))}'
0

$ printf '' | awk '/./{n=NR} END{print NR-n+(n && (RT==RS))}'
0

$ printf '\n' | awk '/./{n=NR} END{print NR-n+(n && (RT==RS))}'
1

$ printf '\n\n' | awk '/./{n=NR} END{print NR-n+(n && (RT==RS))}'
2
6
  • @calestyo you should add the test cases in my answer to your question and test the solutions using all of them as some of the answers will fail for some of those test cases. You may also want to consider the difference between answers that have to read all of the input into memory and so may fail for large input vs those that just read 1 line at a time.
    – Ed Morton
    Jan 18 at 13:33
  • Added the test cases,... checked all current solutions for them, and all seem to produce the same results.
    – calestyo
    Jan 19 at 3:09
  • Bad news... it seems your solution works only with gawk - mawk and original-awk give different results. See pastebin.com/9VdXcL6H
    – calestyo
    Jan 19 at 3:44
  • @calestyo Not all posted solutions will produce the same results, you must've missed some, e.g. the first sed command in stackoverflow.com/a/70617379/1745001 given printf '' | sed -Ezn '${s/.*[^\n]//;s/.*/wc -l <<!\n&!/ep}' will produce no output instead of 0 and the last perl command in stackoverflow.com/a/70616543/1745001 given that same input will print an empty line. I haven't tried the rest of the answers with each of the inputs.
    – Ed Morton
    Jan 19 at 12:24
  • @calestyo that's not bad news at all since I specifically said in my answer that it requires GNU awk (gawk) for RT.
    – Ed Morton
    Jan 19 at 12:28
3

Some perl based solutions:

#!/usr/bin/env bash

original_string=$'abc\n\n\ndef\n\n\n'

# From a shell variable. Look ma, no pipes!
input="$original_string" perl -E '$ENV{input} =~ /(\n*)\z/; say length $1'

# From standard input (Note: The herestring adds an extra newline)
perl -0777 -nE '/(\n*)\z/; say length($1) - 1' <<<"$original_string"

# Or in a shell without herestrings (But then you're also not getting the
# above $'' quoting syntax)
printf "%s" "$original_string" | perl -0777 -nE '/(\n*)\z/; say length $1' 

And a more verbose way that doesn't involve reading the input as a single chunk like -0777 does (Unless there are no newlines at all), good for large amounts of data:

printf "abc\n\ndef\n\n\n" | perl -nE '
  if (/^\n\z/) { # Nothing but a newline
    $blank++
  } elsif (/\n\z/) { # Data that ends in a newline; reset counter to 1
    $blank = 1
  } else { # No newline (Last line is missing one?); reset counter to 0
    $blank = 0
  }
  END { say $blank }'
9
  • 1
    perl -sE'$i =~ /(\n*)\z/; say length $1' -- -i "$original_string"
    – ikegami
    Jan 7 at 5:50
  • 1
    Note that -E isn't forward compatible. I recommend against it in all but throwaway code. You can use -M5.010 -e instead
    – ikegami
    Jan 7 at 5:51
  • Won that little bet with myself.
    – Shawn
    Jan 7 at 8:27
  • 1
    @ikegami "Note that -E isn't forward compatible" You mean that sometimes in the future say will not be a feature? According to perldoc perlrun, the option -E enables all optional features. And since the optional features can change in the future, it is uncertain what -E will do in the future? Jan 7 at 9:09
  • 1
    @HåkonHægland I mean a feature could be added that would cause the program to stop working. -E is specifically used to enable stuff that's not backwards compatible
    – ikegami
    Jan 7 at 13:31
3

With GNU sed we can use the -z option, plus the e modifier of the substitute command and pack all this in a single sed script:

$ printf 'abc\n\n\def\n\n\n' | sed -Ezn '${s/.*[^\n]//;s/.*/wc -l <<!\n&!/ep}'
3

Or, if the string is in a variable:

$ printf '%s' "$original_string" | sed -Ezn '${s/.*[^\n]//;s/.*/wc -l <<!\n&!/ep}'
3

Explanations:

  • The -z option tells sed that input lines are terminated by the NUL character instead of newline.

  • The -n option disables the automatic printing.

  • The 2 substitute commands are applied to the last line only (the $ address), that is, everything after the last NUL character or, if there is no NUL character, the complete input string.

  • The first substitute command deletes everything except the trailing newlines.

  • The second substitute command replaces these trailing newlines by:

    wc -l <<!
    
    
    
    !
    

    with as many lines in the here-document as there are trailing newlines in the input. As the e modifier is used, this new pattern space is executed, the pattern space is replaced by the result and printed (thanks to the p modifier).

Edit

As noticed by the OP this produces no output at all when the input is the empty string, instead of the expected 0. A simpler version, that also works with the empty string could be:

$ printf '%s' "$original_string" | sed -zn '${s/.*[^\n]//;p;}' | wc -l
3
  • 1
    Nice. There's just one case where it doesn't work, the empty string. I think one can also write it as sed --zero-terminated -E -n '${s/^.*[^\n]//;p}' | wc -l ... which even works for the empty string.
    – calestyo
    Jan 18 at 4:05
  • 1
    @calestyo Yes, you're right, I forgot to consider this case. Your version with piping to wc -l is better. I'll add an edit about this. Jan 18 at 12:44
  • btw: -E is not necessary, and p should be followed by ; to be more posixly correct (though this uses anyway 1-2 GNU extensions)
    – calestyo
    Jan 19 at 2:19
2

How about another perl solution:

echo -ne 'abc\n\n\def\n\n\n' | perl -0777 -ne '/\n*$/; print length($&), "\n";'
=> 3
echo -ne '\n' | perl -0777 -ne '/\n*$/; print length($&), "\n";'
=> 1
echo -ne '\n\n' | perl -0777 -ne '/\n*$/; print length($&), "\n";'
=> 2
echo -ne 'a\n\n' | perl -0777 -ne '/\n*$/; print length($&), "\n";'
=> 2
echo -ne 'a' | perl -0777 -ne '/\n*$/; print length($&), "\n";'
=> 0
  • The -0777 option tells perl to slurp all input lines at once.
  • The -ne option is similar to that of sed.
  • The regex \n*$ matches trailing newlines of the input string.
  • The perl variable $& is assigned to the matched substring.
2
  • That doesn't seem to work for the case of a single [trailing] newline. printf '\n' => 0 (should be 1), printf '\n\n' => 1 (should be 2). Same when there is some letter ahead of the '\n': printf 'a\n' => 0 (should be 1), printf 'a\n\n' => 1 (should be 2).
    – calestyo
    Jan 18 at 1:47
  • 1
    Thank you for the polite feedback. I may have misunderstood the definition of the trailing newlines. I've updated my answer with the corrected answer. BR.
    – tshiono
    Jan 18 at 2:52

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