问题
This question already has an answer here:
- Representing integers in doubles 5 answers
My question is whether all integer values are guaranteed to have a perfect double representation.
Consider the following code sample that prints "Same":
// Example program
#include <iostream>
#include <string>
int main()
{
int a = 3;
int b = 4;
double d_a(a);
double d_b(b);
double int_sum = a + b;
double d_sum = d_a + d_b;
if (double(int_sum) == d_sum)
{
std::cout << "Same" << std::endl;
}
}
Is this guaranteed to be true for any architecture, any compiler, any values of a
and b
? Will any integer i
converted to double
, always be represented as i.0000000000000
and not, for example, as i.000000000001
?
I tried it for some other numbers and it always was true, but was unable to find anything about whether this is coincidence or by design.
Note: This is different from this question (aside from the language) since I am adding the two integers.
回答1:
Disclaimer (as suggested by Toby Speight): Although IEEE 754 representations are quite common, an implementation is permitted to use any other representation that satisfies the requirements of the language.
The doubles are represented in the form mantissa * 2^exponent
, i.e. some of the bits are used for the non-integer part of the double number.
bits range precision
float 32 1.5E-45 .. 3.4E38 7- 8 digits
double 64 5.0E-324 .. 1.7E308 15-16 digits
long double 80 1.9E-4951 .. 1.1E4932 19-20 digits
The part in the fraction can also used to represent an integer by using an exponent which removes all the digits after the dot.
E.g. 2,9979 · 10^4 = 29979.
Since a common int
is usually 32 bit you can represent all int
s as double, but for 64 bit integers of course this is no longer true. To be more precise (as LThode noted in a comment): IEEE 754 double-precision can guarantee this for up to 53 bits (52 bits of significand + the implicit leading 1 bit).
Answer: yes for 32 bit ints, no for 64 bit ints.
(This is correct for server/desktop general-purpose CPU environments, but other architectures may behave differently.)
Practical Answer as Malcom McLean puts it: 64 bit doubles are an adequate integer type for almost all integers that are likely to count things in real life.
For the empirically inclined, try this:
#include <iostream>
#include <limits>
using namespace std;
int main() {
double test;
volatile int test_int;
for(int i=0; i< std::numeric_limits<int>::max(); i++) {
test = i;
test_int = test;
// compare int with int:
if (test_int != i)
std::cout<<"found integer i="<<i<<", test="<<test<<std::endl;
}
return 0;
}
Success time: 0.85 memory: 15240 signal:0
Subquestion: Regarding the question for fractional differences. Is it possible to have a integer which converts to a double which is just off the correct value by a fraction, but which converts back to the same integer due to rounding?
The answer is no, because any integer which converts back and forth to the same value, actually represents the same integer value in double. For me the simplemost explanation (suggested by ilkkachu) for this is that using the exponent 2^exponent
the step width must always be a power of two. Therefore, beyond the largest 52(+1 sign) bit integer, there are never two double values with a distance smaller than 2, which solves the rounding issue.
回答2:
No. Suppose you have a 64-bit integer type and a 64-bit floating-point type (which is typical for a double
). There are 2^64 possible values for that integer type and there are 2^64 possible values for that floating-point type. But some of those floating-point values (in fact, most of them) do not represent integer values, so the floating-point type can represent fewer integer values than the integer type can.
回答3:
The answer is no. This only works if int
s are 32 bit, which, while true on most platforms, isn't guaranteed by the standard.
The two integers can share the same double representation.
For example, this
#include <iostream>
int main() {
int64_t n = 2397083434877565865;
if (static_cast<double>(n) == static_cast<double>(n - 1)) {
std::cout << "n and (n-1) share the same double representation\n";
}
}
will print
n and (n-1) share the same double representation
I.e. both 2397083434877565865 and 2397083434877565864 will convert to the same double
.
Note that I used int64_t
here to guarantee 64-bit integers, which - depending on your platform - might also be what int
is.
回答4:
You have 2 different questions:
Are all integer values perfectly represented as doubles?
That was already answered by other people (TL;DR: it depends on the precision of int
and double
).
Consider the following code sample that prints "Same": [...] Is this guaranteed to be true for any architecture, any compiler, any values of a and b?
Your code adds two int
s and then converts the result to double. The sum of int
s will overflow for certain values, but the sum of the two separately-converted double
s will not (typically). For those values the results will differ.
回答5:
The short answer is "possibly". The portable answer is "not everywhere".
It really depends on your platform, and in particular, on
- the size and representation of
double
- the range of
int
For platforms using IEEE-754 doubles, it may be true if int
is 53-bit or smaller. For platforms where int
is larger than double
, it's obviously false.
You may want be able to investigate the properties on your runtime host, using std::numeric_limits
and std::nextafter
.
来源:https://stackoverflow.com/questions/43655668/are-all-integer-values-perfectly-represented-as-doubles