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Why double.Epsilon != std::numeric_limits<double>::min()?

On my PC: double.Epsilon == 4.9406564584124654E-324 and is defined in .NET std::numeric_limits<double>::min() == 2.2250738585072014e-308

Is there a way to get 2.2250738585072014e-308 from .NET?

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3 Answers 3

up vote 9 down vote accepted

They're different because double.Epsilon returns the smallest representable value. numeric_limits<double>::min() returns the smallest normalized value.

Basically double.Epsilon is the equivalent to numeric_limits<double>::denorm_min().

The easiest way of getting the equivalent in .NET is probably to work out the bit pattern for the minimal normalized number and use BitConverter.Int64BitsToDouble.

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Exactly the kind of answer I was looking for. Thanks Jon –  sthiers Apr 15 '09 at 9:59

Well you could use C++/CLI to return the value:

double epsilon() { return std::numeric_limits<double>::min(); }

Why would you want to though? Why do they have to be the same? You should try to avoid skating on the edges of your floating point numbers.

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Epsilon is the minimal possible difference between two doubles. (Edit: not exact, it's the minimal positive nonzero number in this case).

double.MinValue

is what you need.

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1  
The OP is looking for a tiny but positive number. double.MinValue is a massive and negative number. –  Jon Skeet Apr 15 '09 at 9:50
    
Uh? I thought, tnat numeric_limits returns minimal value that can be represented, not minimal nonzero number.. –  Yossarian Apr 15 '09 at 9:51
    
Take a look at the values given in the question: "std::numeric_limits<double>::min() == 2.2250738585072014e-308" –  Jon Skeet Apr 15 '09 at 9:52

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