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I am trying to get the max version number from a directory where i have several versions of one program

for example if output of ls is

something01_1.sh
something02_0.1.2.sh
something02_0.1.sh
something02_1.1.sh
something02_1.2.sh
something02_2.0.sh
something02_2.1.sh
something02_2.3.sh
something02_3.1.2.sh
something.sh

I am getting the max version number with the following -

ls somedir | grep some_prefix | cut -d '_' -f2 | sort -t '.' -k1 -r | head -n 1

Now if at the same time i want to check it with the version number which i already have in the system, whats the best way to do it...

in bash i got this working (if 2.5 is the current version)

(ls somedir | grep some_prefix | cut -d '_' -f2; echo 2.5) | sort -t '.' -k1 -r | head -n 1

is there any other correct way to do it?

EDIT: In the above example some_prefix is something02.

EDIT: Actual Problem here is

(ls smthing; echo more) | sort 

is it the best way to merge output of two commands/program for piping into third.

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1  
Did you consider using a real version control system like git ???? –  Basile Starynkevitch Mar 15 '13 at 21:09
    
That decision was not mine to make. –  Prongs Mar 15 '13 at 22:04

3 Answers 3

up vote 2 down vote accepted

I have found the solution. The best way it seems is using process substitution.

cat <(ls smthing) <(echo more) | sort

for my version example

cat <(ls somedir | grep some_prefix | cut -d '_' -f2) <(echo 2.5) | sort -t '.' -k1 -r | head -n 1

for the benefit of future readers, I recommend - please drop the lure of one-liner and use glob as chepner suggested.

Almost similar question is asked on superuser.

more info about process substitution.

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You can try something like this :

#! /bin/bash

lastversion() { # prefix
  local prefix="$1" a=0 b=0 c=0 r f vmax=0

  for f in "$prefix"* ; do
    test -f "$f" || continue
    read a b c r <<< $(echo "${f#$prefix} 0 0 0" | tr -C '[0-9]' ' ')
    v=$(((a*100+b)*100+c))
    if ((v>vmax)); then vmax=$v; fi
  done
  echo $vmax  
}

lastversion "something02"

It will print: 30102

share|improve this answer
    
thanks for the answer. I ended up doing something same in perl. But the question still remains open. How to do ### (ls smthing; echo more) | sort ### with only pipes. –  Prongs Mar 17 '13 at 17:25

Is the following code more suitable to what you're looking for:

#/bin/bash

highest_version=$(ls something* | sort -V | tail -1 | sed "s/something02_\|\.sh//g")
current_version=$(echo $0 | sed "s/something02_\|\.sh//g")

if [ $current_version > $highest_version ]; then
    echo "Uh oh! Looks like we need to update!";
fi
share|improve this answer
    
Does that accomplish what you need? –  Paul Calabro Mar 15 '13 at 20:52
    
are you sure? In every shell I know $0 is the name of the running program, not it's version number. Good luck to all! –  shellter Mar 15 '13 at 20:57
    
@Paul - Sorry. But i think you misunderstood my question. What i meant is i want to get the max version number among the files present in the directory and the one i am running. I am not doing this check in the program in question. as mentioned in the example. I am running version 2.5 of something02, which may or may not be present in the update directory. And i need to figure out if the current running is the latest or not and if i need replacement. replacement is expensive for me. i cant just start the latest without a check first. –  Prongs Mar 15 '13 at 20:57
    
Ahhh.. I see what you mean –  Paul Calabro Mar 15 '13 at 21:02
1  
mywiki.wooledge.org/ParsingLs explains the problems with, and alternatives to, parsing the output of ls. –  chepner Mar 15 '13 at 22:27

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