IEEE-754 Double (64-bit floating point) vs. Long (64-bit Integer) Revisited

断了今生、忘了曾经 提交于 2019-12-06 18:51:40

问题


I'm revisiting a question (How to test if numeric conversion will change value?) that as far as I was concerned was fully solved. The problem was to detect when a particular numeric value would overflow JavaScript's IEEE-754 Number type. The previous question was using C# and the marked answer worked perfectly.

Now I'm doing the exact same task but this time in Java and it doesn't work. AFAIK, Java uses IEEE-754 for its double data type. So I should be able to cast it back and forth to force the loss of precision but it round trips. Baffled by this I started poking deeper in Java and now I'm really confused.

In both C# and Java, the min and max values for long are the same:

long MIN_VALUE = -9223372036854775808L;
long MAX_VALUE = 9223372036854775807L;

AFAIK, these values are outside the representable numbers in IEEE-754 because of the fixed bits reserved for the exponent and sign.

// this fails in browsers that have stuck with the pure ECMAScript Number format
var str = Number(-9223372036854775808).toFixed();
if ("-9223372036854775808" !== str) { throw new Error("Overflow!"); }

This returns false for (value = -9223372036854775808L) in Java:

boolean invalidIEEE754(long value) {
    try {
        return ((long)((double)value)) != value;
    } catch (Exception ex) {
        return true;
    }
}

This returns false for (value = -9223372036854775808L) in Java:

boolean invalidIEEE754(long value) {
    // trying to get closer to the actual representation and
    // being more explicit about conversions
    long bits = Double.doubleToLongBits(Long.valueOf(value).doubleValue());
    long roundtrip = Double.valueOf(Double.longBitsToDouble(bits)).longValue();
    return (value != roundtrip);
}

This returns true for (value = -9223372036854775808L) but is less accurate:

boolean invalidIEEE754(long value) {
    return (0x0L != (0xFFF0000000000000L & (value < 0L ? -value : value)));
}

Why does this work this way? Am I missing something like compiler optimization, e.g. is the compiler detecting my conversions and "fixing" them for me?

Edit: Adding test case by request. All three of these tests fail:

import static org.junit.Assert.*;
import org.junit.Test;

public class FooTests {

    @Test
    public void ieee754One() {
        assertTrue(((long)((double)Long.MIN_VALUE)) != Long.MIN_VALUE);
    }

    @Test
    public void ieee754Two() {
        long bits = Double.doubleToLongBits(Long.valueOf(Long.MIN_VALUE).doubleValue());
        long roundtrip = Double.valueOf(Double.longBitsToDouble(bits)).longValue();

        assertTrue(Long.MIN_VALUE != roundtrip);
    }

    @Test
    public void ieee754Three() {
        long bits = Double.doubleToRawLongBits(Long.valueOf(Long.MIN_VALUE).doubleValue());
        long roundtrip = Double.valueOf(Double.longBitsToDouble(bits)).longValue();

        assertTrue(Long.MIN_VALUE != roundtrip);
    }
}

回答1:


-9223372036854775808L is representable as an IEEE-754 double-precision number. It is exactly -2^63, which has the double representation -1.0 x 2^63 and encoding 0xc3e0000000000000.

Double is capable of representing numbers much, much larger than this. However, it is not capable of representing all integers in the range of representable numbers. For example, if you add one to the number, you will get -9223372036854775807 = -2^63 + 1, which is not representable as a double-precision value, and will not survive the round-trip conversion.

Converting -2^63 + 1 to double will round it to the nearest representable double value, which is -2^63; conversion back to long will preserve that value.

Edit: What platform did you do you JavaScript test on? In current Safari,

"-9223372036854775808" === Number(-9223372036854775808).toFixed()

evaluates as True.



来源:https://stackoverflow.com/questions/4349155/ieee-754-double-64-bit-floating-point-vs-long-64-bit-integer-revisited

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