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What is the difference in precision when representing a very long integer into double in C++?

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In future, please tag questions with the relevant programming language. –  Robin Green Nov 28 '13 at 8:28
    
thank you! I cannot create tag myself due to low reputation –  LCFactorization Nov 28 '13 at 8:43
    
You don't need to create a tag, you simply need to use the correct tag. –  Robin Green Nov 28 '13 at 10:25

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Firstly, there is no very long type in C++. I assume you are talking about a 64-bit integer type and that double corresponds to the 64-bit IEE 754 floating point representation.

A 64 bit integer has (up to) 64 bits of precision; i.e. roughly 19 decimal digits (assuming an unsigned integer type). By contrast, a 64 bit IEE floating point has 52 bits of precision; i.e. roughly 15 decimal digits.

The example you give has 35 decimal digits, which means that it can't be represented as a 64 bit integer at all. The double representation of that number would lose roughly the last 20 decimal digits of precision.

Reference:

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thank you! I am trying to handle a nonlinear system with such very long integer parameters as here: stackoverflow.com/questions/20255722/…, do you think factoring all such integers into prime factors OK? –  LCFactorization Nov 28 '13 at 8:45
    
I don't see how it would help. –  Stephen C Nov 28 '13 at 9:10

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