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Why does this equation produce two different values for e in C (32-bit) and Java (64-bit)? They are off by an unexpectedly large amount.

int a, b, c, d;
double e;

a = -12806;
b = 1;
c = 800;
d = 19209;

double f = (32768 / 10.24);

e = (a + (double) b / c * d) / f;

C produces -3.9940624237060547. Java produces -3.9943714843750002.

UPDATE:

Sorry folks, this error appears to be something else than I expected. I reduced my code to just this equation and the numbers it produces are much closer.

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1  
Any examples of that "unexpectedly large amount" ? –  Vache Feb 24 '12 at 1:45
1  
Which inputs do you use and which results do you get? –  Andres F. Feb 24 '12 at 1:45
    
what is sizeof(double) in C and Java on your system? –  Bingo Feb 24 '12 at 1:57

2 Answers 2

up vote 1 down vote accepted

In Java the implicit braces are a bit different:

    int a, b, c, d;
    double e;

    a = 3;
    b = 4;
    c = 5;
    d = 6;
    e = a + (double) b / c * d;
    System.out.println("e=" + e);
    e = a + (((double) b) / c) * d; // Java: 7.8
    System.out.println("e=" + e);

If you run this in C you will see the difference.

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This has been answered here:

Retain precision with Doubles in java

Your best bet would be to use BigDecimals as these retain this precision.

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