Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm trying to extract the year from this output :

sam@sam-laptop:~/shell$ date
Mon Feb  8 21:57:00 CET 2010

sam@sam-laptop:~/shell$ date | cut -d' ' -f7
2010

sam@sam-laptop:~/shell$ date | awk '{print $6}'
2010

Are there any other ways to get the same result ? using maybe grep, sed etc ? Merci !

share|improve this question

6 Answers 6

up vote 2 down vote accepted

Some sed variations:

date | sed 's/.* //'

date | sed 's/.*\(....\)$/\1/'

date | sed 's/.*\(.\{4\}\)$/\1/'

date | sed -r 's/.*(.{4})$/\1/'

date | sed -r 's/.*([[:digit:]]{4})$/\1/'
share|improve this answer
    
amazing ! thank you Dennis –  Zenet Feb 10 '10 at 19:16

If you're really just looking for the current year from date, you might consider just running this directly.

date +%Y

No post-processing needed. :)


Update: Comments on text processing (since the OP is looking for those)

cut/awk/sed are great for pulling apart lines of text. grep is good for finding the lines you want.

More obscure (and less portable) are the bash-specific regexp-like operators, but they can be quick and fun to use.

$ MYDATE=`date`
$ echo $MYDATE
Mon Feb 8 16:28:04 EST 2010
$ echo ${MYDATE##* }
2010
share|improve this answer
    
I was just typing this exact same answer up when you posted it. Only thing further I would add is to read the man pages for more formatting options. In fact, I'd say nour now has a 'mandate' to read the man pages. –  mmrobins Feb 8 '10 at 21:14
    
Thanks :) i'm just trying to learn various uses of bash commands... –  Zenet Feb 8 '10 at 21:14
2  
$() is easier to use and less error-prone than backticks (consider quotes and escaping). –  Roger Pate Feb 9 '10 at 8:29

Grep is intended to print out an entire line that matches an RE. Getting it to print out only part of a line will be relatively difficult (at best).

With sed, you could use an RE that matched the rest of the line, and replace it with nothing, leaving the part you care about.

share|improve this answer
    
Well, getting GNU grep to print out only part of a line isn't difficult. Try the -o (--only-matching) flag. –  Philip Durbin Feb 9 '10 at 15:04
    
@Philip: Thanks -- I hadn't noticed that flag (though I've probably seen the help text for it a few hundred times...) –  Jerry Coffin Feb 9 '10 at 15:08

You may want to check out Perl. It lifts heavily from sed and awk in terms of syntax, and is a complete programming language, with a huge library (CPAN) to help you integrate with a variety of different systems.

I migrated to Perl when I found that my simple awk/sed solutions had to expand beyond the simplest cases.

share|improve this answer
    
And many other shell scripting languages (which simply means you can use a shebang line) work well for similar reasons. –  Roger Pate Feb 9 '10 at 8:30
    
That's very true. My preference is perl but I'm prepared to accept that's for historical reasons and today I may choose ruby/python etc. –  Brian Agnew Feb 9 '10 at 9:11

grep finds patterns in your files. It will not, however, modify your files. sed finds patterns as well as do modification to your files. cut is a tool to "cut" columns in your files for display/(or to file). Use it if your task is very simple as just getting some columns. awk finds patterns in your file, and you can do modifications to it by creating another file. And awk does what sed, grep, cut does, so you can do almost anything with it with just 1 tool.

For Big sized files, use grep to find the pattern and pipe to awk/sed for manipulation of text.

for your example, if you want to get the YEAR of date command , use date +%Y.

various ways to get the YEAR of date command

$ date +%Y
2010

$ date | awk '{print $NF}'
2010

$ var=$(date)
$ set -- $var
$ eval echo \${${#}}
2010

Lastly, you can use regular expressions like some sed examples, but I find it easiest to just split the fields and get the last field. No complicated regex is needed.

share|improve this answer

With GNU grep you can use -o (--only-matching) to show only the part of a matching line that matches a pattern. Below the pattern is a Perl regular expression (-P, --perl-regexp) for four digits in a row:

$ date | grep -oP '\d{4}'
2010
share|improve this answer
    
Very cool Philip, thanks ! –  Zenet Feb 10 '10 at 19:15

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.