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std::string str = "12345679012.124678";
double back = boost::lexical_cast<double>( str );
std::string str2 =boost::lexical_cast<std::string>( back );

//here str2 is equal to str

Is it normal that there is no loss here (i.e final string = orignal string) even if number's significand digits is greater than std::numeric_limit<double>::digits10 (i.e 15)?

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It depends. For 17 digits, there's likely no loss. For more, the probability increases (but there will always be values for which there is no loss). – James Kanze Oct 29 '12 at 14:59
@]ames:maybe it's like for unsigned char where for values from 100 to 255 there is no loss even if std::numeric_limit<char>::digits10 return 2 ? – Guillaume07 Oct 29 '12 at 15:01
For that particular value: yes, it's normal. Generally, see James Kanze's comment. – Daniel Fischer Oct 29 '12 at 15:02
An easy way to see loss is to type in a number with all 9s (example). – Jesse Good Oct 29 '12 at 21:28

1 Answer 1

up vote 0 down vote accepted

Yes, it is normal.

std::numeric_limit<double>::digits10 refers to a maximum amount of digits where casting is warranted not lossy.

This does not imply losses using wider numbers than the limit, only implies an increasing probability of loss.

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