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Just wondering how could I less the latest log file in a directory in Linux? I'm after a oneliner, possibly considering an alias!

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2 Answers 2

up vote 3 down vote accepted

Something like this?

ls -1dtr /your/dir/{*,.*} | tail -1 | xargs less

Note that for the first block of ls I am using an answer of Unix ls command: show full path when using options

As it requires a parameter, we create a function instead of an alias. Store the following in ~/.bashrc:

my_less_func ()
{
        ls -1dtr "$1"/{*,.*} | tail -1 | xargs less
}

Source it (it is enough doing . ~/.bashrc) and call it with:

my_less_func your/path
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that will first less the output of /yourdir 230304: No such file or directory -rw-r--r--: No such file or directory ...and so on... an alias might be tricky then –  case Oct 1 '13 at 11:12
    
@sponger sure, I just updated my answer. Try it, should work properly now for any directory. –  fedorqui Oct 1 '13 at 11:28
    
Yes!! this works too ls -atr ./ | tail -1 | xargs less –  case Oct 1 '13 at 11:39
    
Nice to read it worked to you! For completeness I added the alias part. –  fedorqui Oct 1 '13 at 11:44
    
Technically, this is a function, not an alias. –  dogbane Oct 1 '13 at 11:53

In zsh: less dir/*(.om[1])

dir/* is a regular glob.

The . qualifier restricts to regular files.

om means order by modification time, newest first.

[1] means just expand the first filename.

It's probably better without the [1] - just pass all the filenames to less in the om order. If the first one satisfies you, you can hit q and be done with it. If not, the next one is just a :n away, or you can search them all with /*something. If there are too many, om[1,10] will get you 10 newest files.

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