/** *Givenintegersmandn,assumingm<n,thetriple(n^2-m^2, *2mn,andn^2+m^2)isaPythagoreantriplewitha^2+b^2= *c^2.ThismethodsreturnsalongarrayholdingthePythagorean *triplecorrespondingtotheinputs.
*/ staticlong [] pythagoreanTriple(int m, int n) { long M = m; long N = n; long result[] = newlong[3];
for(int i = 0; i < testCases.length; i++) {
failures += testHypotCase(testCases[i][0], testCases[i][1],
testCases[i][2]);
}
// Verify hypot(x, 0.0) is close to x over the entire exponent // range. for(int i = DoubleConsts.MIN_SUB_EXPONENT;
i <= Double.MAX_EXPONENT;
i++) { double input = Math.scalb(2, i);
failures += testHypotCase(input, 0.0, input);
}
// Test Pythagorean triples
// Small ones for(int m = 1; m < 10; m++) { for(int n = m+1; n < 11; n++) { long [] result = pythagoreanTriple(m, n);
failures += testHypotCase(result[0], result[1], result[2]);
}
}
// Big ones for(int m = 100000; m < 100100; m++) { for(int n = m+100000; n < 200200; n++) { long [] result = pythagoreanTriple(m, n);
failures += testHypotCase(result[0], result[1], result[2]);
}
}
// Approaching overflow tests
/* *Createarandomvaluerwithanlarge-ishexponent.The *resultofhypot(3*r,4*r)shouldbeapproximately5*r.(The *computationof4*risexactsinceitjustchangesthe *exponent).Whiletheexponentofrislessthanorequal *to(MAX_EXPONENT-3),thecomputationshouldnotoverflow.
*/
java.util.Random rand = RandomFactory.getRandom(); for(int i = 0; i < 1000; i++) { double d = rand.nextDouble(); // Scale d to have an exponent equal to MAX_EXPONENT -15
d = Math.scalb(d, Double.MAX_EXPONENT
-15 - Tests.ilogb(d)); for(int j = 0; j <= 13; j += 1) {
failures += testHypotCase(3*d, 4*d, 5*d, 2.5);
d *= 2.0; // increase exponent by 1
}
}
// Test for monotonicity failures. Fix one argument and test // two numbers before and two numbers after each chosen value; // i.e. // // pcNeighbors[] = // {nextDown(nextDown(pc)), // nextDown(pc), // pc, // nextUp(pc), // nextUp(nextUp(pc))} // // and we test that hypot(pcNeighbors[i]) <= hypot(pcNeighbors[i+1])
{ double pcNeighbors[] = newdouble[5]; double pcNeighborsHypot[] = newdouble[5]; double pcNeighborsStrictHypot[] = newdouble[5];
for(int i = -18; i <= 18; i++) { double pc = Math.scalb(1.0, i);
staticint testHypotCase(double input1, double input2, double expected, double ulps) { int failures = 0; if (expected < 0.0) { thrownew AssertionError("Result of hypot must be greater than " + "or equal to zero");
}
// Test Math and StrictMath methods with no inputs negated, // each input negated singly, and both inputs negated. Also // test inputs in reversed order.
for(int i = -1; i <= 1; i += 2) { for(int j = -1; j <= 1; j += 2) { double x = i * input1; double y = j * input2;
failures += Tests.testUlpDiff("Math.hypot", x, y, Math::hypot, expected, ulps);
failures += Tests.testUlpDiff("Math.hypot", y, x, Math::hypot, expected, ulps);
failures += Tests.testUlpDiff("StrictMath.hypot", x, y, StrictMath::hypot, expected, ulps);
failures += Tests.testUlpDiff("StrictMath.hypot", y, x, StrictMath::hypot, expected, ulps);
}
}
return failures;
}
publicstaticvoid main(String... argv) { int failures = 0;
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