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@xyVal = (4,4,6,6,10,12,18,22,24,28,30);
@yVal = (176,178,180,184,192,202,210,218,224,232,238);

@xxVal = (9,9,9,9,9 ,11,13,15,17,19,19);
@xVal = (168,166,164,162,158,150,142,134,122,116,110);

for ($i = 0; $i <  scalar(@xVal); $i++){
    for ($i = 0; @xyVal[$i] < @xxVal[$i]; $i++){
        @yNewVal = @yVal[$i-1] + (@yVal[$i] - @yVal[$i-1])*(@xxVal[$i] - @xyVal[$i-1])/(@xyVal[$i] - @xyVal[$i-1]);
    }
}
print @yNewVal;

I understand why its giving me the error Illegal division by zero about line 9 (the @yNewVal = ...)

I want the array to have 0 in it if there is a division between zeros. What am I doing wrong? So, how can I avoid that my application crashes when there is a division by zero?

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4  
A small note: using the @ sigil when accessing a single element works, but it isn't doing exactly what you think it is. When you use @, you're taking a slice: i.e., returning an array of one element. If you only want to access a single element in the array, usually you should use the $ sigil. If you enable strict and warnings, you'll see warnings like Scalar value @xyVal[$i] better written as $xyVal[$i] at - line 8. that let you know this. :) –  Robert P Oct 24 '11 at 21:05
7  
just add use strict; use warnings; at the top of your script to get these helpful hints in the future! :) –  Robert P Oct 24 '11 at 21:06

4 Answers 4

up vote 4 down vote accepted

Your divisor on that line is @xyVal[$i] - @xyVal[$i-1], so any case where you have two identical adjacent values in @xyVAl (e.g. 4,4) will result in a 0, and thus a divide-by-zero error.

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oh is that right.. interesting. even thought its i and i-1... how am i to subtract it then? –  John Riselvato Oct 24 '11 at 20:59
1  
Um, in this case it's a matter of program logic: you're dividing by zero because you're putting zero in the denominator. I think you meant something other than xyVal[] - xyVal[] .... perhaps xyval - xxVal? –  Robert P Oct 24 '11 at 21:02
1  
$i is your indexer, so in plain English you're taking one value in the array and subtracting from it the previous value. If both values are the same (e.g. 4, 4) the result is 0, and hence the divide-by-zero error. sharpner's answer is probably what you need to use. –  MusiGenesis Oct 24 '11 at 21:03
    
Oh i see what your saying. Alright. –  John Riselvato Oct 24 '11 at 21:05
1  
Awesome - I don't think I've ever answered a Perl question before. :) –  MusiGenesis Oct 24 '11 at 21:17

You could say:

@yNewVal = ($_ = @xyVal[$i] - @xyVal[$i-1]) == 0 ? 0 : @yVal[$i-1] + (@yVal[$i] - @yVal[$i-1])*(@xxVal[$i] - @xyVal[$i-1])/$_;
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well if i understand you correctly:

if (@xyVal[$i] == @xyVal[$i-1]) 
@yNewVal = 0; 
else 
@yNewVal = @yVal[$i-1] + (@yVal[$i] - @yVal[$i-1])*(@xxVal[$i] - @xyVal[$i-1])/(@xyVal[$i] - @xyVal[$i-1]);
share|improve this answer
    
this causes my program to give me non-stop print of 0 –  John Riselvato Oct 24 '11 at 21:06

You can perform a try/catch using eval and conditional operators.

eval {
    @yNewVal = @yVal[$i-1] + (@yVal[$i] - @yVal[$i-1])*(@xxVal[$i] - @xyVal[$i-1])/(@xyVal[$i] - @xyVal[$i-1]);
    1;
} or do {
    @yNewVal = (0);
}; 
print @yNewVal;

Though, your phrase is returning a scalar value and putting it into an array variable. So you may want to re-factor that.

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this gives me 183 repeated the entire time. :/ –  John Riselvato Oct 24 '11 at 21:08

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