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How to join only those substrings of a string array which contain a character whose positions were entered by user through command line?

For example: if $string is "MALWCMRALPLCLALALCAWGPDPACAFVN" and @array contains substrings of every cut at 'A' in $string. Then how could two substrings which contains 'L' at positions 3 and 9 (entered by user through command line) in the original string be joined?

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closed as too localized by lc., pilcrow, flem, Uwe Keim, Horcrux7 Oct 15 '12 at 19:00

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1 Answer 1

I'm not sure what you precisely intend to do, but to join two strings you use the concatenation operator

$string3 = $string1 . $string2 ;

to join an array of strings, you can do

$string3 = join( "", @stringarr ) ;

You can search the array for strings containing L using grep:

@selstrings = grep( /L/, @strarray ) ;

and join it:

$string3 = join( "", @selstrings ) ;

Using the pattern in grep, you can define at which positions you want the L's to be:

 @selstrings = grep( /^(.{2}|.{8})L/, @starray ) ;

Naturally, you can construct the regex using variables from command line first:

 $regex = "^(.{" . $ARGV[0] . "}|.{" . $ARGV[1] . "})L" ;
 @selstrings = grep( /$regex/, @starray ) ;
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Your third solution is kind of what i'm looking for but with slight modifications. I just need to search for those two substrings which contain 'L' at user defined positions (entered through Perl command line) say 3 and 9 and then want to concatenate them. –  user1746090 Oct 15 '12 at 5:47
    
Then modify the grep pattern accordingly; see example above. Of course, you can construct your regex first using variables from command line. –  January Oct 15 '12 at 5:51
    
I tried your code. But i think I'm going wrong in taking the arguments ARGV[0] and ARGV[1]. Take a look codepad.org/pRlC9eKT –  user1746090 Oct 15 '12 at 6:12
    
however your above code meant for the positions of 'L' in the substrings. I required a help in which user can enter positions of 'L' of the original string $string, and then substrings corresponding to them get joined. –  user1746090 Oct 15 '12 at 7:04

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