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I am getting the below error ith my code.What is missing in it? My goal is to print 13.0.5.8 in $version

 #!/bin/ksh

 file="abc_def_APP_13.0.5.8"
  if echo "$file" | grep -E "abc_def_APP"; then
        echo "Version found: $file"

    version1=(echo $file |  awk -F_ '{print $NF}' | cut -d. -f1-3)

    version2=(echo $file | awk -F_ '{print $NF}' | cut -d. -f4-)

    echo $version1

    echo $version2

        version=$version$version2

        echo $version
 else
       echo "Version not found"
  fi

Please find below the error:

 ./version.sh: line 7: syntax error near unexpected token `|'
./version.sh: line 7: ` version1=(echo $file |  awk -F_ '{print $NF}' | cut -d. -f1-3)'
./version.sh: line 9: syntax error near unexpected token `|'
./version.sh: line 9: ` version2=(echo $file | awk -F_ '{print $NF}' | cut -d. -f4-)'



./version.sh: line 18: syntax error near unexpected token `else'
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3 Answers 3

up vote -1 down vote accepted

It can all be done in a single awk command and without additional cut command. Consider following command:

read version1 version2 < <(echo $file|awk -F "[_.]" '{
   printf("%s.%s.%s ", $4, $5, $6); printf("%s", $7);
   for (i=8; i<=NF; i++) printf(".%s", $i); print ""}')

echo "$version1 :: $version2"

OUTPUT

13.0.5 :: 8
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Thanks it worked... –  sravs448 May 8 '13 at 18:36
    
You're welcome, glad that it worked out. –  anubhava May 8 '13 at 18:38
    
I have a line in one more file with different version number. And I would like to replace this version number there. File1: location="/path/13.2.0/9/application1.war" How canI replace the 13.2.0/9 with $version1/$version2 which we obtained from above code. I have a code to get the old version number in file. VERSION=($(grep -r "location=.*war" /path/filename | awk '{print ($1)}'| cut -f8- -d"/"|sed 's/.\{1\}$//')) This give me an output of olde version number 13.2.0/9 –  sravs448 May 8 '13 at 18:44
    
You can use this awk: awk -v v1=$version1 -v v2=$version2 'BEGIN {FS=OFS="/"} {$3=v1; $4=v2;}'1 /path/filename –  anubhava May 8 '13 at 18:50
    
It didnt change anything in the file. Will this awk supposed to replace the old version number with new one? –  sravs448 May 8 '13 at 19:00

There's no need for awk at all. Just trim every character before the last underscore, like so:

file="abc_def_APP_13.0.5.8"
version="${file##*_}"
echo "$version"

See http://mywiki.wooledge.org/BashFAQ/073 for documentation on this technique, or see "parameter expansion" in bash's own docs.

To treat the last segment separately is also straightforward:

file="abc_def_APP_13.0.5.8"
version="${file##*_}"          # result: 13.0.5.8
version_end="${version##*.}"   # result: 8
version_start="${version%.*}"  # result: 13.0.5
echo "${version_start}/${version_end}" # result: 13.0.5/8

Because this happens internally to bash, without executing any external commands (such as awk), it should be considerably faster to execute than other approaches given.

share|improve this answer
    
This worked great, but I am looking to have my version variable with value 13.0.5/8 Apologies as I was not clear in my question at beginning.How can I achieve it? –  sravs448 May 8 '13 at 17:49
    
@sravs448 Updated appropriately. –  Charles Duffy May 8 '13 at 19:00
    
This should be the accepted answer. –  Adrian Frühwirth May 8 '13 at 19:19
1  
@AdrianFrühwirth why should this be the accepted answer? The question was regarding the error the OP was seeing, the answer was the missing $ in the backticks. This is a great alternative way to achieve the same goal but it doesn't actually answer the question. –  iiSeymour May 8 '13 at 19:38
1  
@sudo_O If someone is asking about why they can't carry water in a sieve, the best answer is to tell them how to use a bucket, not to suggest that they plug their sieve with clay. –  Charles Duffy May 8 '13 at 21:37

The problem is your backticks are missing $ you need to fix the following two lines like so:

version1=$(echo $file |  awk -F_ '{print $NF}' | cut -d. -f1-3)

version2=$(echo $file | awk -F_ '{print $NF}' | cut -d. -f4-)

This will fix the syntactical errors. The following line doesn't make much sense as $version hasn't been initialize yet:

version=$version$version2

Did you mean:

version="${version1}.${version2}"

A side note you are using the -E option with grep but you aren't using any extended regexp features, in fact you are doing a fixed string string search so -F is more appropriate. You probably also want to use the -q option to suppress the output from grep.

Personally I would do:

file="abc_def_APP_13.0.5.8"

echo "$file" | awk '/abc_def_APP/{print "Version found: "$0;
                                  print $4,$5,$6;
                                  print $7;
                                  print $4,$5,$6,$7; 
                                  next}
                    {print "Version not found"}' FS='[_.]' OFS=.

If you just want the version number in the variable version then why not simply:

version=$(echo "$file" | grep -o '[0-9].*')
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1  
That seems rather fragile. How do you know abc_def_APP won't be abc_def_foo_APP later? –  Charles Duffy May 8 '13 at 19:03
    
I don't, of course. I only know the information in the question given by the OP. My answer is the only one to point the reason for the scripts failure, my suggested awk solution is just a direct translation of what the OP already had so is only as fragile as his original solution. –  iiSeymour May 8 '13 at 19:07

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