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For example, I have two numbers represented in base-10 as

n1 = 5.7818 x 10^(-4) = 0.00057818

and

n2 = 5.6743 x 10^(-4) = 0.00056743

The first number, n1, is the result of a computation with float precision. While the second number, n2, is the result of the same computation but with double precision.

I am trying to figure out if the difference in values is due to float precision vs double precision. What I would like to say is something like

 n2 - floating point error <= n1 <= n2 + floating point error

or not. I have been reading up on the matter on Oracle's website here: https://docs.oracle.com/cd/E19957-01/806-3568/ncg_goldberg.html, but so far has not been fruitful.

I get that my precision with float is p = 24, with double is p = 53, and that the base for both is beta = 2, but not sure how to use this to show what I want.

  • 2
    In a sequence of floating-point operations, the errors can compound and behave in a variety of ways. In general, error in the final result can range from zero to infinity (or NaN). To bound the error, you must be specific about the computations being performed and the data domain. There is sn entire field of study for this, numerical analysis. – Eric Postpischil Feb 28 at 22:16

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