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.

could soemone help me with the following condition, please? I'm trying to compare $price and $lsec.

if( (sprintf("%.2f", ($price*100+0.5)/100)*1 != $lsec*1) )
{
                print Dumper($price,$lsec)
}

Sometimes the dumper prints same numbers(as strings) and jumps in. Thought, that multiplying with 1 makes floats from them...

Here dumper output:

$VAR1 = '8.5';
$VAR2 = '8.5';

What am I doing wrong?

Thank you,

Greetings and happy easter.

share|improve this question
1  
$price*100+0.5 will probably not do what you expect, if you expect rounding to occur. With $price = 8.5 that part of the equation will yield 850.5. –  TLP Apr 5 '12 at 15:54
1  
Run perl -e 'printf "%.2f",8.505' to see what you are doing wrong. –  mob Apr 5 '12 at 16:06
    
You're dumping $price and $lsec, but those aren't the numbers you are comparing. –  brian d foy Apr 5 '12 at 21:18
add comment

4 Answers 4

up vote 3 down vote accepted

You are correct to say that multiplying a string by 1 will force it to be evaluated as a number, but the numeric != comparator will do the same thing. This is presumably a technique you have acquired from other languages as Perl will generally do the right thing and there is no need to force a cast of either operand.

Lets take a look at the values you're comparing:

use strict;
use warnings;

use Data::Dumper;

my $price = '8.5';
my $lsec = '8.5';

my $rounded_price = sprintf("%.2f", ($price * 100 + 0.5) / 100);
print "$rounded_price <=> $lsec\n";

if ( $rounded_price != $lsec ) {
  print Dumper($price,$lsec);
}

output

8.51 <=> 8.5
$VAR1 = '8.5';
$VAR2 = '8.5';

So Perl is correctly saying that 8.51 is unequal to 8.5.

I suspect that your

($price * 100 + 0.5) / 100

is intended to round $price to two decimal places, but all it does in fact is to increase $price by 0.005. I think you meant to write

int($price * 100 + 0.5) / 100

but you also put the value through sprintf which is another way to do the same thing.

Either

$price = int($price * 100 + 0.5) / 100

or

$price = sprintf ".2f", $price

but both is overkill!

share|improve this answer
    
When you have complication code inside a conditional, it's hard to see what's going on. The best part of Borodin's answer is the clean code that elucidates the problem. –  brian d foy Apr 5 '12 at 21:14
add comment

You're doing nothing wrong. Perl converts it to a string before dumping it. For comparisons, use == and != for numeric comparisons and eq and ne for a string comparisons. Perl converts to strings and numbers as needed.

Example:

$ perl -MData::Dumper -e "my $a=3.1415; print Dumper($a);"

$VAR1 = '3.1415';

share|improve this answer
    
You haven't explained the problem - that 8.5 is apparently unequal to 8.5 –  Borodin Apr 5 '12 at 17:56
    
Well, the wrong part is not realizing that floating point math using limited precision is often a bit fuzzy. –  brian d foy Apr 5 '12 at 21:16
add comment

This part:

($price*100+0.5)/100)

If you put in 8.5, you get back 8.505. Which naturally is not equal to 8.5. Since you do not change $price, you do not notice any difference.

Perl handles conversion automatically, so you do not need to worry about that.

my $x = "8.5";
my $y = 8.5;
print "Equal" if $x == $y; # Succeeds

The nature of the comparison, == or in your case != converts the arguments to numeric, whether they are numeric or not.

share|improve this answer
add comment

There is a difference between what is stored in a Perl variable and how it is used. You are correct that multiplying by 1 forces a variable to be used as a number. It also causes the number to be stored in the SV data structure that represents the variable to the interpreter. You can use the Devel::Peek module to see what Perl has stored in each variable:

use Devel::Peek;
my $num = "8.5";
Dump $num;

outputs:

SV = PV(0xa0a46d8) at 0xa0c3f08
  REFCNT = 1
  FLAGS = (POK,pPOK)
  PV = 0xa0be8c8 "8.5"\0
  CUR = 3
  LEN = 4

continuing...

my $newnum = $num * 1;
Dump $num;
Dump $newnum;

outputs:

SV = PVNV(0xa0a46d8) at 0xa0c3f08
  REFCNT = 1
  FLAGS = (PADMY,NOK,POK,pIOK,pNOK,pPOK)
  IV = 8
  NV = 8.5
  PV = 0xa0be8c8 "8.5"\0
  CUR = 3
  LEN = 4
SV = NV(0x9523660) at 0x950df20
  REFCNT = 1
  FLAGS = (PADMY,NOK,pNOK)
  NV = 8.5

The attributes we are concerned with are PV (string pointer), NV (floating-point number), and IV (integer). Initially, $num only has the string value, but using it as a number (e.g. in multiplication) causes it to store the numeric values. However, $num still "remembers" that it is a string, which is why Data::Dumper treats it like one.

For most purposes, there is no need to explicitly force the use of a string as a number, since operators and functions can use them in the most appropriate form. The == and != operators, for example, coerce their operands into numeric form to do numeric comparison. Using eq or ne instead forces a string comparison. This is one more reason to always use warnings in your Perl scripts, since trying to compare a non-numeric string with == will garner this warning:

Argument "asdf" isn't numeric in numeric eq (==) at -e line 1.
share|improve this answer
1  
Add this to Borodin's answer and you pretty much have the whole story. :) –  brian d foy Apr 5 '12 at 21:15
add comment

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.