75

I have a log file (application.log) which might contain the following string of normal & special characters on multiple lines:

*^%Q&$*&^@$&*!^@$*&^&^*&^&

I want to search for the line number(s) which contains this special character string.

grep '*^%Q&$*&^@$&*!^@$*&^&^*&^&' application.log

The above command doesn't return any results.

What would be the correct syntax to get the line numbers?

139

Tell grep to treat your input as fixed string using -F option.

grep -F '*^%Q&$*&^@$&*!^@$*&^&^*&^&' application.log

Option -n is required to get the line number,

grep -Fn '*^%Q&$*&^@$&*!^@$*&^&^*&^&' application.log
  • 7
    Depending your version of grep you only need to escape (with a backslash) ^, $, ., * and \ . or you can try fgrep, too. – Nahuel Fouilleul Sep 13 '12 at 7:33
  • 2
    @NahuelFouilleul: +1. btw, fgrep is same as grep -F. – Prince John Wesley Sep 13 '12 at 8:18
  • @PrinceJohnWesley: it's the same but on some systems there are many versions of grep so using fgrep may find the version which support -F – Nahuel Fouilleul Sep 13 '12 at 9:34
  • doesn't work for §. – Chankey Pathak Apr 2 '14 at 6:52
  • What if he use egrep '*^%Q&$*&^@$&*!^@$*&^&^*&^&' application.log ? – inckka Jul 18 '14 at 13:18
74

The one that worked for me is:

grep -e '->'

The -e means that the next argument is the pattern, and won't be interpreted as an argument.

From: http://www.linuxquestions.org/questions/programming-9/how-to-grep-for-string-769460/

  • str='! " # $ % & ( ) * + , - . / : ; < = > ? @ [ \ ] ^ _ ` { | } ~' ; echo "$str" | grep -e "$str" ..... NOT WORKING, what worked for you didn't had enough special characters besides switch sign '-', but win -F instead of -e is WORKING ! – THESorcerer Oct 25 '15 at 8:52
  • The only thing works for me, even '\' or -F or fgrep do not work. Thanks! – user180574 Aug 13 '18 at 19:17
  • 1
    This should be the accepted answer - simple and works for grep – Ishay Peled Dec 12 '18 at 22:26
  • On MacOS, this worked for me – Brooks Jan 3 at 22:16
  • 1
    Tried -F and fgrep doesn't work for me when searching a string include '-' char. This works. – 世界知名伟人 Jan 25 at 6:53
6

A related note

To grep for carriage return, namely the \r character, or 0x0d, we can do this:

grep -F $'\r' application.log

Alternatively, use printf, or echo, for POSIX compatibility

grep -F "$(printf '\r')" application.log

And we can use hexdump, or less to see the result:

$ printf "a\rb" | grep -F $'\r' | hexdump -c
0000000   a  \r   b  \n

Regarding the use of $'\r' and other supported characters, see Bash Manual > ANSI-C Quoting:

Words of the form $'string' are treated specially. The word expands to string, with backslash-escaped characters replaced as specified by the ANSI C standard

2
grep -n "\*\^\%\Q\&\$\&\^\@\$\&\!\^\@\$\&\^\&\^\&\^\&" test.log
1:*^%Q&$&^@$&!^@$&^&^&^&
8:*^%Q&$&^@$&!^@$&^&^&^&
14:*^%Q&$&^@$&!^@$&^&^&^&
  • and if string is NOT manually input but generated ? – THESorcerer Oct 25 '15 at 9:28
2

You could try removing any alphanumeric characters and space. And then use -n will give you the line number. Try following:

grep -vn "^[a-zA-Z0-9 ]*$" application.log

  • Thanks.. It's works good for me to find the special characters from a file. – Dipankar Nalui Jun 28 '18 at 4:36
-4

Try vi with the -b option, this will show special end of line characters (I typically use it to see windows line endings in a txt file on a unix OS)

But if you want a scripted solution obviously vi wont work so you can try the -f or -e options with grep and pipe the result into sed or awk. From grep man page:

Matcher Selection -E, --extended-regexp Interpret PATTERN as an extended regular expression (ERE, see below). (-E is specified by POSIX.)

   -F, --fixed-strings
          Interpret PATTERN as a list of fixed strings, separated by newlines, any of which is to be matched.  (-F is specified
          by POSIX.)
  • 2
    In what way this is better than an accepted answer so you added it to almost 5-years old question? – SergGr Mar 2 '17 at 17:13

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