11

What is the best way to test if the complete contents of a file matches a regex, such as

^[0-9]{9}$

i.e., just 9 numbers and nothing else, no line breaks, and not multiple sets of numbers.

Here is one variant I have that I do not really like:

cat -vt curloutput.txt | tr "\n" " " | egrep "^[0-9]{9}$"

Edit

I use the accepted solution like this:

grep --perl-regex "(?m)(?<!.)^\d{9}$(?!.)"

using GNU grep.

  • Do you mean each line of the file having this format or being all the file just this? – fedorqui 'SO stop harming' Jun 5 '13 at 9:58
  • All of the file should be just this. – tomsv Jun 5 '13 at 9:59
  • Do you want to print the number, filename iff it matches, y/n, or no printing but by exit value? – Kevin Jun 5 '13 at 14:55
  • I just need the exit value. – tomsv Jun 6 '13 at 13:31
6

This regex matches "comprised of 9 digits" and the (?m) makes caret and dollar match after/before newlines so it works to prevent multiple lines:

(?m)(?<!.)^\d{9}$(?!.)

The look arounds wrapping the main match ensure the line matched is the only line in the file - ie that there's exactly one line in the file.

See this demonstrated on rubular, see how adding any other characters to the 9-digit input text, even a single newline, will result in a non match

  • @Bohemian +1 Very nice. Thought there might be a pure regex solution. – brice Jun 6 '13 at 23:45
6

Test that the linecount is 1 then test that the line matches the regex:

test $(wc -l file.txt | cut -f 1 -d ' ') = 1 \
    && grep -Eq '^[0-9]{9}$' file.txt && echo "match"

Breaking down the command, this is what is happening:

#get the linecount
wc -l file.txt | cut -f 1 -d ' '

# Check if there is a match in the file
# result will be return value of the program so it can be used 
# directly with the AND operator
grep -Eq '^[0-9]{9}$' file.txt

You can be even more restrictive by counting the bytes with wc:

test $(wc -c file.txt | cut -f 1 -d ' ') -eq 9 

Which would catch the trailing newline, if needed. (-m will count characters instead, in case you're using multi-byte characters)

  • after submitting a quickly whipped (and wrong) answer, I deleted it and I'm upvotting yours : checking that there is 1 line and that lines matches the input takes care of both caveats: no repetitions of the regexp, and that it's actually present (my "solution" deleted the regexp on 1st line only, using a sed -e '1s/regexp//' and checked a 0 byte result, but a 0 byte input file would have also matched those conditions...) – Olivier Dulac Jun 5 '13 at 11:42
  • 1
    Instead of test -n "$MATCH", you should just use the grep return value directly: ... && grep -q .... – Kevin Jun 5 '13 at 16:35
  • 1
    wc -l counts only newlines. Imagine a file with no newlines / only one line and then EOF. echo -n "123456789" >test ; cat test | wc -l will print 0 – bartimar Jun 6 '13 at 20:31
  • @bartimar good point although I made sure to mention the options for wc -c and wc -m that count bytes and characters respectively. – brice Jun 6 '13 at 23:47
1

Assuming you want no newlines in the file, first check the file size then check the contents:

[[ $(stat -c %s $f) -eq 9 && $(<$f) =~ ^[0-9]{9}$ ]] && echo y || echo n    

testing:

$ f=/etc/passwd
$ [[ $(stat -c %s $f) -eq 9 && $(<$f) =~ ^[0-9]{9}$ ]] && echo y || echo n
n

$ f=$(mktemp)
$ printf "123456789" >| $f
$ [[ $(stat -c %s $f) -eq 9 && $(<$f) =~ ^[0-9]{9}$ ]] && echo y || echo n
y
  • It can be handy, although bash filename expansion patterns are quite powerful too. One thing about bash regexes: do not quote them or else they are treated as plain strings. Can get pretty messy when you're combining variables and regex metachars. – glenn jackman Jun 5 '13 at 13:21
1
awk 'END{if(NR == 1 && /^[0-9]{9}$/)print}' test.in

This prints the number if and only if there is precisely one line and it matches the pattern.

If you just want the return value like grep -q, you can use this:

awk 'END{exit !(NR == 1 && /^[0-9]{9}$/)}' test.in
  • Awk seems like the right tool, but I've just tried your two commands and neither seem to work. – brice Jun 5 '13 at 16:08
  • What awk version do you have? – Kevin Jun 5 '13 at 16:08
  • I have GNU Awk 3.1.7. tried it both with and without newlines – brice Jun 5 '13 at 16:15
  • OK. I have gawk 4. 3.1.7 is 4 years old, you may want to look into upgrading. – Kevin Jun 5 '13 at 16:27
  • And it's working for me even with the -P (POSIX) flag, so I'm not sure what would make an old version not work. – Kevin Jun 5 '13 at 16:32
1

You can use pure test oneliner

[[ `cat $file` =~ ^[0-9]{9}$ ]] && exit 0 || exit 1

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