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<> =~ m/([\+-][0-9]*)x|([\+-][0-9]*)y/;
print "$1, $2";

Outputs for various inputs are :

3x+1y    ----->, +1
10x-2y   -----> ,  -2
-5x+2y   -----> -5, 
-10x+5y  -----> -10, 

It's basically behaving randomly, sometimes printing out the co-efficient of x, sometimes y. What is going wrong?

share|improve this question
    
BTW, what about simply using (.*)x(.*)y :) –  Enissay Sep 9 '13 at 11:39
    
@Enissay, nice Idea but it won't match altogether if there is no x or y term(i.e. co-effiecient is zero). :/ –  udiboy1209 Sep 9 '13 at 15:53
    
I tougth of that case, but since you didnt mention it, most of the answers I saw here arent considering it... You must add it to you question... edi_allen's solution seems to be working in this case... –  Enissay Sep 9 '13 at 17:26
    
That's why I was using the | operator in my regex. –  udiboy1209 Sep 10 '13 at 13:01

3 Answers 3

up vote 0 down vote accepted
use strict;
use warnings;
my ($x, $y);

($x, $y) = <> =~ m/([+-]?[0-9]+(?=[xy]))/g; #assuming x is always the first term

print "$x, $y\n";

for more complex expression you can also use this.

use strict;
use warnings;

my (%number); #use a hash to store coeficcient and variables

my $expression = <>;

while ($expression =~ m/([+-]?[0-9]+)([a-z]+)/ig){
    $number{ $2 } += $1;
}

for my $variable (sort keys %number){
    print "$variable  has coeficcient $number{ $variable }\n";
share|improve this answer

You have an alternation in your pattern: /(...)x|(...)y/. Therefore, your pattern matches either something like -2x or +5y.

Another error is that you require a sign (+ or -) on the x coordinate. You probably want a regex like:

/^\s* ([+-]?[0-9]+)x ([+-][0-9]+)y \s*$/x
share|improve this answer

I would suggest using lookaheads so that you don't consume characters and get a cleaner match:

^(?=.*?([+-]?[0-9]*)x)(?=.*?([+-]?[0-9]*)y)

Compare your corrected regex (you forgot the ? to indicate optional sign) with my suggested regex.

The captured groups are 'all over the place' in the first regex.

It also allows any order of x and y variables, if you want this as bonus :)

share|improve this answer
    
what does ?=.*? do? –  udiboy1209 Sep 8 '13 at 19:27
    
@udiboy (?= ... ) is a positive lookahead and will look 'ahead' (quite literally) for what's inside the brackets. a(?=b) will match an a which is followed by b, thus a in ab will match. If the part inside brackets are not matched, the whole regex will fail to match. Using (?=.* ... ) is a simple way to check characters than can be far ahead, with many characters in between. E.g. a(?=.*z) will match a in az, acz, a bcde z. You can get more info here. Last .*? is a lazy version of .* (it matches as little as possible) –  Jerry Sep 8 '13 at 19:35
    
@udiboy Do you have any questions on this matter? –  Jerry Sep 8 '13 at 20:37
    
I'm solving a code golf challenge, so this is too long. I am new to these kinds of regexes so I don't know about performance. But edi_allen's version is shorter than mine and works. –  udiboy1209 Sep 9 '13 at 10:13
    
@udiboy Shorter doesn't always mean better =P –  Jerry Sep 9 '13 at 10:18

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