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Possible Duplicate:
Why is floating point arithmetic in C# imprecise?

Console.WriteLine(0.5f * 2f);       // 1
Console.WriteLine(0.5f * 2f - 1f);  // 0

Console.WriteLine(0.1f * 10f);      // 1
Console.WriteLine(0.1f * 10f - 1f); // 1.490116E-08

Why does 0.1f * 10f - 1f end up being 1.490116E-08 (0.0000001490116)?

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marked as duplicate by Matthew Flaschen, pst, John Kugelman, Daniel Pryden, Kirk Woll Nov 25 '10 at 0:58

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.

5  
    
See [Why is floating point arithmetic in C# imprecise? ](stackoverflow.com/questions/753948/…). – Matthew Flaschen Nov 25 '10 at 0:42
    
I can't post an answer due to the duplicate flag, but the cause is actually C#'s use of intermediate precision. See stackoverflow.com/a/30280829/392585 – Simon Byrne Oct 23 '15 at 20:58
up vote 4 down vote accepted

See Wiki: Floating Point. float/double/decimal are relative precision types. Not all values (of which there are infinitely many) can be exactly stored. You are seeing the result of this loss of accuracy. This is why it is almost always correct to use |a - b| < small_delta for float-point comparisons.

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Because floating operations are not precise, take a look here:

section Some other computer representations for non-integral numbers. 0.1 cannot finitely be represented in base 2.

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Read this (explains quite exactly this case): http://www.exploringbinary.com/the-answer-is-one-unless-you-use-floating-point/

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Easy, approximations accumulate.

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0.5 is representable exactly in floating point, which is why 0.5*2 = 1 exactly.

However, 0.1 is not representable exactly, hence 0.1*10 is not exactly 1.

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