Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have an array of hash references:

my @price = (
    {
        id    => '1',
        label => 5.00
    },
    {
        id    => '2',
        label => 7.50
    },
);

I also have 2 variable integers, $diff and $last. when I try to iterate over the array to multiply the "label" by $diff/$last:

foreach (@price) {
    print "(($diff/$last)*$_->{label})\t";
}

i get the following output:

((12/30)*5.00)
((12/30)*7.50)

I assume it is not multiplying because I have two integers and a hash reference. If this is correct, how can I make the hash reference an integer? How can I force Perl to actually do the math and print the resulting product?

share|improve this question
1  
Lesson to be learned: interpolation is not evaluation. –  Jim Dennis Nov 19 '11 at 13:46

4 Answers 4

up vote 7 down vote accepted

It's not multiplying because all of that is inside the double quotes. You need to do:

print( (($diff/$last)*$_->{label}) . "\t" );

The way you're doing it perl is simply interpolating the variables and printing their values because they are enclosed within the quotes. The * is simply treated as a character to print. The above does the math then the . causes a concatenation to "\t" (which converts the result to a string).

$a = 5;
$b = 6;
print "$a + $b\n";
print $a + $b . "\n";

Outputs:

5 + 6
11

share|improve this answer
    
awesome, what a simple answer. thanks a lot. –  rick Nov 19 '11 at 4:30
1  
Your code didn't quite work. The tab was never printed. Changed print(...) . "\t" to print((...) . "\t"). –  ikegami Nov 19 '11 at 4:41
6  
Don't use $a and $b as var names. You'll notice that the lack of a my variable escapes strict and warnings because $a and $b are supposed to be used inside sort blocks –  Zaid Nov 19 '11 at 7:04

Have you tried:

foreach (@price) {
  $res = ($diff/$last)*$_->{label};
  print "$res\t";
}

i.e., compute it outside of the quotes so it isn't interpreted as a string.

share|improve this answer

I don't recommend evaluating a complex expression like this inside interpolating strings, but you can do it two ways. Before I show you that, let me tell you how interpolation works. It's mainly meant to allow you to string variables in with literals without much fuss.

(( $diff / $last ) * $_->{label} )

is not a variable, it's an expression. However, the hash index $_->{label} is also an expression, although a simpler one, mainly concerned with indexing a variable to find a value stored within. The difference is that the whole thing is several operations and it not an attempt to display already stored data.

However, because the interpolation logic had to parse sometimes complicated expressions, you can interpolate almost any expression--if it is "phrased" as an indexing or dereference.

You can do the expression dereference:

print "${\(($diff/$last)*$_->{label})}\t";

Here, you 1) resolve the expression and 2) take a reference to its location in memory, and then 3) dereference that section of memory. So it's like dereferencing, only with computation.

There is also the literal array interpolation:

print "@{[ \(($diff/$last)*$_->{label}) ]}\t";

Here, you create a literal array with one member whose value is the expression and you deference that to have array interpolation take over.

Again, these are in no sense valid as part of a code base that will have to live over several years. However, they are cheap and dirty tricks that Perl's expressive power allows.

share|improve this answer

It doesn't do the math for the same reason

print "Now at 1/2 price, buy 5!\n";

does not output

Now at .5 price, buy 120

(if only perl would use '!' to mean 'factorial' :-)

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.