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While using scalar values in perl, I am not able to accomplish the desired results. Need your help in figuring where I am going wrong..

Say I want to loop 9 times and print 0.1 to 0.9

I declared variable $i and using it in for loop as well as inside the loop.

for($i = 1; $i < 10; $i++) 
{
    $b = $ie-01; # (This where I go wrong, I am not sure If I am following correct
                 # syntax here, Because I see -1 getting printed instead of $i value
                 # which is incremented on each loop)
    print "The value now is: $b\n";
}

I do know of different ways to get the desired result but I wanna know how to use exponent to get the desired output. . . . .

Why $i is treated as 0 when used in conjunction with e?

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You shouldn't use C-Style for loops in perl unless you have to use them. Try for my $i (1..9) { instead. Also, you should mark Howard's answer as the correct answer. –  gpojd Aug 8 '11 at 21:59

2 Answers 2

up vote 12 down vote accepted

I think you only forgot to include the multiplication operator *:

$i * 1e-01

The string $ie-01 will be interpreted as $ie - 01 which is an unititialized variable (i.e. zero) minus one which will give you -1. (You can use the e-notation only with constant numbers but not with variables.)

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Absolutely right .. I tried with the multiplication operator and it works !!! Thank you Howard. –  jb04 Aug 8 '11 at 21:05
    
One More Question though !! Why do I get an error when include a () ...like $i(e-01) Because I knew I was doing something wrong there but I tried to bring in the braces to signify its different but I received errors on this line –  jb04 Aug 8 '11 at 21:06
    
@Jey Bela The multiplication operator * is not optional in perl. You also have to write $i * (1e-01). As mentioned in my answer e-01 only works with constant prefix. –  Howard Aug 8 '11 at 21:07
    
Yep, Got you.. Thank you again :) Have a good day... –  jb04 Aug 8 '11 at 21:14
3  
If you had added the two lines use strict; use warnings; to the top of your script, Perl would have warned you that $ie was uninitialized. –  Keith Thompson Aug 8 '11 at 21:55

Your first mistake was not including:

use strict;
use warnings;

This would have told you about the variable $ie not being declared.

There is no reasonable way to make ${i}e-01 work; you would have to eval it, which is not reasonable. The standard way to write it would be:

$b = $i * 0.1;
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