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How to resolve a Java Rounding Double issue

Please Help, I programm some calculator in JAVA. I use double type. Double has 15 digits after the decimal point. I have problem with the following:

1/3 * 3 = 0.9999999999999999

I need 1/3 * 3 = 1

How can I solve this problem. Could anyone help me. I keep result in Double. The same problem I have with other mathematical operations, for example

sqrt(6) = 2.449489742783, and next I square the result and I get: 5.999999999999999

Thanks for any suggestion or solving my problem.

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marked as duplicate by Jason S, Tomasz Nurkiewicz, Jonathon Faust, David Gelhar, Andrew Thompson Dec 6 '11 at 18:18

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

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...and many others –  Jason S Dec 6 '11 at 18:08

3 Answers 3

You're dealing with inherent limitations of floating-point arithmetic.

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Certain numbers cannot be represented exactly in binary floating point. 1/3 is one of them. See http://en.wikipedia.org/wiki/Floating_point For that matter, 1/3 cannot be represented exactly in decimal either.

Your calculator should use a java.text.NumberFormat to present the numbers.

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The reason why you are seeing this is due to the computers inability to understand infinity.

A computer has limitations, so it does not understand the fact that 1/3 is never-ending. This causes it to round. This can be solved as Jason S posted above. Using these special class, people have started to program ways to computer whether or not something goes to infinity, then attempt to deal with it.

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