Welcome to OGeek Q&A Community for programmer and developer-Open, Learning and Share
Welcome To Ask or Share your Answers For Others

Categories

0 votes
365 views
in Technique[技术] by (71.8m points)

c - Properties of 80-bit extended precision computations starting from double precision arguments

Here are two implementations of interpolation functions. Argument u1 is always between 0. and 1..

#include <stdio.h>

double interpol_64(double u1, double u2, double u3)
{ 
  return u2 * (1.0 - u1) + u1 * u3;  
}

double interpol_80(double u1, double u2, double u3)
{ 
  return u2 * (1.0 - (long double)u1) + u1 * (long double)u3;  
}

int main()
{
  double y64,y80,u1,u2,u3;
  u1 = 0.025;
  u2 = 0.195;
  u3 = 0.195;
  y64 = interpol_64(u1, u2, u3);
  y80 = interpol_80(u1, u2, u3);
  printf("u2: %a
y64:%a
y80:%a
", u2, y64, y80);
}

On a strict IEEE 754 platform with 80-bit long doubles, all computations in interpol_64() are done according to IEEE 754 double precision, and in interpol_80() in 80-bit extended precision. The program prints:

u2: 0x1.8f5c28f5c28f6p-3
y64:0x1.8f5c28f5c28f5p-3
y80:0x1.8f5c28f5c28f6p-3

I am interested in the property “the result returned by the function is always in-between u2 and u3”. This property is false of interpol_64(), as shown by the values in the main() above.

Does the property have a chance to be true of interpol_80()? If it isn't, what is a counter-example? Does it help if we know that u2 != u3 or that there is a minimum distance between them? Is there a method to determine a significand width for intermediate computations at which the property would be guaranteed to be true?

EDIT: on all the random values I tried, the property held when intermediate computations were done in extended precision internally. If interpol_80() took long double arguments, it would be relatively easy to build a counter-example, but the question here is specifically about a function that takes double arguments. This makes it much harder to build a counter-example, if there is one.


Note: a compiler generating x87 instructions may generate the same code for interpol_64() and interpol_80(), but this is tangential to my question.

See Question&Answers more detail:os

与恶龙缠斗过久,自身亦成为恶龙;凝视深渊过久,深渊将回以凝视…
Welcome To Ask or Share your Answers For Others

1 Reply

0 votes
by (71.8m points)

Yes, interpol_80() is safe, let's demonstrate it.

The problem states that inputs are 64bits float

rnd64(ui) = ui

The result is exactly (assuming * and + are mathematical operations)

r = u2*(1-u1)+(u1*u3)

Optimal return value rounded to 64 bit float is

r64 = rnd64(r)

As we have these properties

u2 <= r <= u3

It is guaranteed that

rnd64(u2) <= rnd64(r) <= rnd64(u3)
u2 <= r64 <= u3

Conversion to 80bits of u1,u2,u3 are exact too.

rnd80(ui)=ui

Now, let's assume 0 <= u2 <= u3, then performing with inexact float operations leads to at most 4 rounding errors:

rf = rnd(rnd(u2*rnd(1-u1)) + rnd(u1*u3))

Assuming round to nearest even, this will be at most 2 ULP off exact value. If rounding is performed with 64 bits float or 80 bits floats:

r - 2 ulp64(r) <= rf64 <= r + 2 ulp64(r)
r - 2 ulp80(r) <= rf80 <= r + 2 ulp80(r)

rf64 can be off by 2 ulp so interpol-64() is unsafe, but what about rnd64( rf80 )?
We can tell that:

rnd64(r - 2 ulp80(r)) <= rnd64(rf80) <= rnd64(r + 2 ulp80(r))

Since 0 <= u2 <= u3, then

ulp80(u2) <= ulp80(r) <= ulp80(r3)
rnd64(u2 - 2 ulp80(u2)) <= rnd64(r - 2 ulp80(r)) <= rnd64(rf80)
rnd64(u3 + 2 ulp80(u3)) >= rnd64(r + 2 ulp80(r)) >= rnd64(rf80)

Fortunately, like every number in range (u2-ulp64(u2)/2 , u2+ulp64(u2)/2) we get

rnd64(u2 - 2 ulp80(u2)) = u2
rnd64(u3 + 2 ulp80(u3)) = u3

since ulp80(x)=ulp62(x)/2^(64-53)

We thus get the proof

u2 <= rnd64(rf80) <= u3

For u2 <= u3 <= 0, we can apply same proof easily.

The last case to be studied is u2 <= 0 <= u3. If we subtract 2 big values, then result can be up to ulp(big)/2 off rather than ulp(big-big)/2...
Thus this assertion we made doesn't hold anymore:

r - 2 ulp64(r) <= rf64 <= r + 2 ulp64(r)

Fortunately, u2 <= u2*(1-u1) <= 0 <= u1*u3 <= u3 and this is preserved after rounding

u2 <= rnd(u2*rnd(1-u1)) <= 0 <= rnd(u1*u3) <= u3

Thus since added quantities are of opposite sign:

u2 <= rnd(u2*rnd(1-u1)) + rnd(u1*u3) <= u3

same goes after rounding, so we can once again guaranty

u2 <= rnd64( rf80 ) <= u3

QED

To be complete we should care of denormal inputs (gradual underflow), but I hope you won't be that vicious with stress tests. I won't demonstrate what happens with those...

EDIT:

Here is a follow-up as the following assertion was a bit approximative and generated some comments when 0 <= u2 <= u3

r - 2 ulp80(r) <= rf80 <= r + 2 ulp80(r)

We can write the following inequalities:

rnd(1-u1) <= 1
rnd(1-u1) <= 1-u1+ulp(1)/4
u2*rnd(1-u1) <= u2 <= r
u2*rnd(1-u1) <= u2*(1-u1)+u2*ulp(1)/4
u2*ulp(1) < 2*ulp(u2) <= 2*ulp(r)
u2*rnd(1-u1) < u2*(1-u1)+ulp(r)/2

For next rounding operation, we use

ulp(u2*rnd(1-u1)) <= ulp(r)
rnd(u2*rnd(1-u1)) < u2*(1-u1)+ulp(r)/2 + ulp(u2*rnd(1-u1))/2
rnd(u2*rnd(1-u1)) < u2*(1-u1)+ulp(r)/2 + ulp(r)/2
rnd(u2*rnd(1-u1)) < u2*(1-u1)+ulp(r)

For second part of the sum, we have:

u1*u3 <= r
rnd(u1*u3) <= u1*u3 + ulp(u1*u3)/2
rnd(u1*u3) <= u1*u3 + ulp(r)/2

rnd(u2*rnd(1-u1))+rnd(u1*u3) < u2*(1-u1)+u1*u3 + 3*ulp(r)/2
rnd(rnd(u2*rnd(1-u1))+rnd(u1*u3)) < r + 3*ulp(r)/2 + ulp(r+3*ulp(r)/2)/2
ulp(r+3*ulp(r)/2) <= 2*ulp(r)
rnd(rnd(u2*rnd(1-u1))+rnd(u1*u3)) < r + 5*ulp(r)/2

I didn't prove the original claim, but not that far...


与恶龙缠斗过久,自身亦成为恶龙;凝视深渊过久,深渊将回以凝视…
OGeek|极客中国-欢迎来到极客的世界,一个免费开放的程序员编程交流平台!开放,进步,分享!让技术改变生活,让极客改变未来! Welcome to OGeek Q&A Community for programmer and developer-Open, Learning and Share
Click Here to Ask a Question

...