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var quantity = $(this).find('td:eq(2) input').val()*1;
var unitprice = $(this).find('td:eq(3) input').val()*1;
var totaltax = 0;
$(this).find('td:eq(4) input[name^=taxamount]').each(function(){
    totaltax = (totaltax*1)+($(this).val()*1);
});
var subtotal = (unitprice+totaltax);
alert(subtotal+' is unit subtotal, to mulitply by '+quantity);
var total = subtotal*quantity;
$(this).find('td:last').html('$'+total);

In this case, based on my DOM, the results are all integers (especially because I'm making sure I apply the *1 modifier to values to ensure they are numbers, not strings).

In this case, these are teh values returned within the first 7 lines of the above code (and verified through alert command) quantity: 10 unitprice: 29 totaltax: 3.48 subtotal = 32.48

When I multiply subtotal*quantity for the total variable, total returns: total: 324.79999999999995

So at the end, I get the td:last filled with $324.79999999999995 rather than $324.80 which would be more correct.

Bizarre, I know. I tried all sorts of alerts at different points to ensure there were no errors etc.

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5  
no, it isn't bizarre. simple floating-point arithemtic. –  Karoly Horvath Aug 9 '11 at 22:17
1  
Welcome to the world of floating point arithmetic. –  zzzzBov Aug 9 '11 at 22:17
    
floating point arithmetic: download.oracle.com/docs/cd/E19957-01/806-3568/… –  BrokenGlass Aug 9 '11 at 22:17
1  
See here –  bfavaretto Aug 9 '11 at 22:17
    
Should not rely on floating point numbers for money calculations. @Sparky - I think the title is wrong - it should be 32.48 * 10. –  Anurag Aug 9 '11 at 22:22

7 Answers 7

up vote 4 down vote accepted

You're coming up against a familiar issue with floating point values: certain values can't be precisely represented in a finite binary floating point number.

See here:

Elegant workaround for JavaScript floating point number problem

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Thank you for an actually "practical" solution. Some of these guys on this site like to sound smart with ambiguous & condescending answers that don't really help me in completing my task & learning further... –  jeffkee Aug 9 '11 at 22:46

This has been asked one bizillion times.

Please read: What Every Computer Scientist Should Know About Floating-Point Arithmetic

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Here's a simplified version: floating-point-gui.de –  BalusC Aug 9 '11 at 22:35
    
Do you collect all your rep points searching for this question lol –  Will03uk Aug 9 '11 at 22:44
    
@Will03uk No but that would be possible! This is asked at least 5 times a day :P –  hexa Aug 9 '11 at 22:45
    
Lengthy article, but I get the idea of it. Thanks. However doesn't help in answering the "how". I already found something of this sort, wasn't sure of the best solution for javascript. –  jeffkee Aug 9 '11 at 22:45

This is the way floating point numbers work. There's nothing bizarre going on here.

I'd recommend that you round the value appropriately for display.

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That's the joy of floating point arithmetic -- some base 10 decimals cannot be represented in binary.

http://en.wikipedia.org/wiki/Floating_point#Accuracy_problems

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Computers can't handle decimals very well in binary since in real mathematics there are literally an infinite number of values between 0.01 and 0.02 for example. So they need to store approximations, and when you do arithmetic on those approximations the results can get a little away from the true result.

You can fix it with (Math.round(total*100)/100).toFixed(2);

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As others have mentioned, this is the way its meant to work. A suggested workaround can be found below:

var v = "324.32999999999995";

function roundFloat(n, d) {             
    var a= Math.pow(10, d);             
    var b= Math.round(n * a) / a;
    return b;         
}

$("body").append(roundFloat(v,3));

Where v would be replaced with the desired value.

You can view the working example at: http://jsfiddle.net/QZXhc/

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Awesome, this is an amazing function to add to my framework! Thanks a million. I wonder if jQuery already has something like this built in? –  jeffkee Aug 9 '11 at 22:47

You could try rounding to 2 decimal digits as workaround

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