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i am trying to execute the following perl script .

$var = "\$53:\$\?\$\?\$\?  \$\=BAbc \$\? \$53: \$ hjk"
$var =~ s/(\$\=B)/FLAGB/;
$var =~ s/(?<=\$53:).*?(?=.[^\$\?\s])//
$var =~ s/(FLAGB)/\$\=B/;
print "\n$var";

the output which i am getting is

$53: $=BAbc $? $53: $ hjkb

what i am trying to do is to remove all $ and/or ? and/or spaces after $53: until the first character(other than $ or ? or space) is encountered and preserve if $=B (i am replacing it with FLAGB before the substitute operation)

Now i am not able to find why an extra space is appearing in the output after $53:

$53: $=BAbc $? $53: $ hjkb

forgive my ignorance if the issue is something silly, i am new to perl.

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1  
Side note; have fun in future maintenance of that piece of code. :) –  Сухой27 Dec 17 '13 at 10:24

2 Answers 2

up vote 3 down vote accepted

I think

s/(?<=\$53:).*?(?=.[^\$\?\s])//

should be without dot:

s/(?<=\$53:).*?(?=[^\$\?\s])//

That one kept the space before the h as look-ahead.

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Yes it works!!! :) Your answer is superb!! –  anurag Dec 17 '13 at 12:17

The pragmatic thing to do would be to get rid of the spaces.

$var =~ s/(?<=:)\s//g;
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yes that can be done. But i am still not sure why an extra space is appearing at the start of $53: –  anurag Dec 17 '13 at 11:33

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