开发者

How to 'cout' the correct number of decimal places of a double value?

开发者 https://www.devze.com 2023-01-26 06:56 出处:网络
I 开发者_开发知识库need help on keeping the precision of a double. If I assign a literal to a double, the actual value was truncated.

I 开发者_开发知识库need help on keeping the precision of a double. If I assign a literal to a double, the actual value was truncated.

int main() {
    double x = 7.40200133400;
    std::cout << x << "\n";
}

For the above code snippet, the output was 7.402

Is there a way to prevent this type of truncation? Or is there a way to calculate exactly how many floating points for a double? For example, number_of_decimal(x) would give 11, since the input is unknown at run-time so I can't use setprecision().


I think I should change my question to: How to convert a double to a string without truncating the floating points. i.e.

#include <iostream>
#include <string>
#include <sstream>

template<typename T>
std::string type_to_string( T data ) {
    std::ostringstream o;
    o << data;
    return o.str();
}

int main() {
    double x = 7.40200;
    std::cout << type_to_string( x ) << "\n";
}

The expected output should be 7.40200 but the actual result was 7.402. So how can I work around this problem? Any idea?


Due to the fact the float and double are internally stored in binary, the literal 7.40200133400 actually stands for the number 7.40200133400000037653398976544849574565887451171875

...so how much precision do you really want? :-)

#include <iomanip>    
int main()
{
    double x = 7.40200133400;
    std::cout << std::setprecision(51) << x << "\n";
}

And yes, this program really prints 7.40200133400000037653398976544849574565887451171875!


You must use setiosflags(ios::fixed) and setprecision(x).

For example, cout << setiosflags(ios::fixed) << setprecision(4) << myNumber << endl;

Also, don't forget to #include <iomanip.h>.


std::cout << std::setprecision(8) << x;

Note that setprecision is persistent and all next floats you print will be printed with that precision, until you change it to a different value. If that's a problem and you want to work around that, you can use a proxy stringstream object:

std::stringstream s;
s << std::setprecision(8) << x;
std::cout << s.str();

For more info on iostream formatting, check out the Input/output manipulators section in cppreference.


Solution using Boost.Format:

#include <boost/format.hpp>
#include <iostream>

int main() {
    double x = 7.40200133400;
    std::cout << boost::format("%1$.16f") % x << "\n";
}

This outputs 7.4020013340000004.

Hope this helps!


The only answer to this that I've come up with is that there is no way to do this (as in calculate the decimal places) correctly! THE primary reason for this being that the representation of a number may not be what you expect, for example, 128.82, seems innocuous enough, however it's actual representation is 128.8199999999... how do you calculate the number of decimal places there??


Responding to your answer-edit: There is no way to do that. As soon as you assign a value to a double, any trailing zeroes are lost (to the compiler/computer, 0.402, 0.4020, and 0.40200 are the SAME NUMBER). The only way to retain trailing zeroes as you indicated is to store the values as strings (or do trickery where you keep track of the number of digits you care about and format it to exactly that length).


Let s make an analogous request: after initialising an integer with 001, you would want to print it with the leading zeroes. That formatting info was simply never stored.

For further understanding the double precision floating point storage, look at the IEEE 754 standard.


Doubles don't have decimal places. They have binary places. And binary places and decimal places are incommensurable (because log2(10) isn't an integer).

What you are asking for doesn't exist.


The second part of the question, about how to preserve trailing zeroes in a floating point value from value specification to output result, has no solution. A floating point value doesn't retain the original value specification. It seems this nonsensical part was added by an SO moderator.

Regarding the first and original part of the question, which I interpret as how to present all significant digits of 7.40200133400, i.e. with output like 7.402001334, you can just remove trailing zeroes from an output result that includes only trustworthy digits in the double value:

#include <assert.h>         // assert
#include <limits>           // std::(numeric_limits)
#include <string>           // std::(string)
#include <sstream>          // std::(ostringstream)

namespace my{
    // Visual C++2017 doesn't support comma-separated list for `using`:
    using std::fixed; using std::numeric_limits; using std::string;
    using std::ostringstream;

    auto max_fractional_digits_for_positive( double value )
        -> int
    {
        int result = numeric_limits<double>::digits10 - 1;
        while( value < 1 ) { ++result; value *= 10; }
        return result;
    }

    auto string_from_positive( double const value )
        -> string
    {
        ostringstream stream;
        stream << fixed;
        stream.precision( max_fractional_digits_for_positive( value ) );
        stream << value;
        string result = stream.str();
        while( result.back() == '0' )
        {
            result.resize( result.size() - 1 );
        }
        return result;
    }

    auto string_from( double const value )
        -> string
    {
        return (0?""
            : value == 0?   "0"
            : value < 0?    "-" + string_from_positive( -value )
            :               string_from_positive( value )
            );
    }
}

#include<iostream>
auto main()
    -> int
{
    using std::cout;
    cout << my::string_from( 7.40200133400 ) << "\n";
    cout << my::string_from( 0.00000000000740200133400 ) << "\n";
    cout << my::string_from( 128.82 ) << "\n";
}

Output:

7.402001334
0.000000000007402001334
128.81999999999999

You might consider adding logic for rounding to avoid long sequences of 9's, like in the last result.

0

精彩评论

暂无评论...
验证码 换一张
取 消