166 lines
5.1 KiB
Zig
166 lines
5.1 KiB
Zig
const std = @import("../../index.zig");
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const debug = std.debug;
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const math = std.math;
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const cmath = math.complex;
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const Complex = cmath.Complex;
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const ldexp_cexp = @import("ldexp.zig").ldexp_cexp;
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pub fn cosh(z: var) Complex(@typeOf(z.re)) {
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const T = @typeOf(z.re);
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return switch (T) {
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f32 => cosh32(z),
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f64 => cosh64(z),
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else => @compileError("cosh not implemented for " ++ @typeName(z)),
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};
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}
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fn cosh32(z: Complex(f32)) Complex(f32) {
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const x = z.re;
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const y = z.im;
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const hx = @bitCast(u32, x);
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const ix = hx & 0x7fffffff;
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const hy = @bitCast(u32, y);
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const iy = hy & 0x7fffffff;
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if (ix < 0x7f800000 and iy < 0x7f800000) {
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if (iy == 0) {
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return Complex(f32).new(math.cosh(x), y);
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}
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// small x: normal case
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if (ix < 0x41100000) {
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return Complex(f32).new(math.cosh(x) * math.cos(y), math.sinh(x) * math.sin(y));
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}
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// |x|>= 9, so cosh(x) ~= exp(|x|)
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if (ix < 0x42b17218) {
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// x < 88.7: exp(|x|) won't overflow
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const h = math.exp(math.fabs(x)) * 0.5;
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return Complex(f32).new(math.copysign(f32, h, x) * math.cos(y), h * math.sin(y));
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}
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// x < 192.7: scale to avoid overflow
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else if (ix < 0x4340b1e7) {
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const v = Complex(f32).new(math.fabs(x), y);
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const r = ldexp_cexp(v, -1);
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return Complex(f32).new(r.re, r.im * math.copysign(f32, 1, x));
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}
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// x >= 192.7: result always overflows
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else {
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const h = 0x1p127 * x;
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return Complex(f32).new(h * h * math.cos(y), h * math.sin(y));
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}
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}
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if (ix == 0 and iy >= 0x7f800000) {
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return Complex(f32).new(y - y, math.copysign(f32, 0, x * (y - y)));
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}
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if (iy == 0 and ix >= 0x7f800000) {
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if (hx & 0x7fffff == 0) {
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return Complex(f32).new(x * x, math.copysign(f32, 0, x) * y);
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}
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return Complex(f32).new(x, math.copysign(f32, 0, (x + x) * y));
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}
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if (ix < 0x7f800000 and iy >= 0x7f800000) {
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return Complex(f32).new(y - y, x * (y - y));
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}
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if (ix >= 0x7f800000 and (hx & 0x7fffff) == 0) {
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if (iy >= 0x7f800000) {
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return Complex(f32).new(x * x, x * (y - y));
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}
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return Complex(f32).new((x * x) * math.cos(y), x * math.sin(y));
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}
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return Complex(f32).new((x * x) * (y - y), (x + x) * (y - y));
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}
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fn cosh64(z: Complex(f64)) Complex(f64) {
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const x = z.re;
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const y = z.im;
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const fx = @bitCast(u64, x);
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const hx = @intCast(u32, fx >> 32);
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const lx = @truncate(u32, fx);
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const ix = hx & 0x7fffffff;
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const fy = @bitCast(u64, y);
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const hy = @intCast(u32, fy >> 32);
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const ly = @truncate(u32, fy);
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const iy = hy & 0x7fffffff;
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// nearly non-exceptional case where x, y are finite
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if (ix < 0x7ff00000 and iy < 0x7ff00000) {
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if (iy | ly == 0) {
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return Complex(f64).new(math.cosh(x), x * y);
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}
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// small x: normal case
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if (ix < 0x40360000) {
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return Complex(f64).new(math.cosh(x) * math.cos(y), math.sinh(x) * math.sin(y));
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}
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// |x|>= 22, so cosh(x) ~= exp(|x|)
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if (ix < 0x40862e42) {
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// x < 710: exp(|x|) won't overflow
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const h = math.exp(math.fabs(x)) * 0.5;
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return Complex(f64).new(h * math.cos(y), math.copysign(f64, h, x) * math.sin(y));
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}
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// x < 1455: scale to avoid overflow
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else if (ix < 0x4096bbaa) {
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const v = Complex(f64).new(math.fabs(x), y);
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const r = ldexp_cexp(v, -1);
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return Complex(f64).new(r.re, r.im * math.copysign(f64, 1, x));
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}
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// x >= 1455: result always overflows
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else {
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const h = 0x1p1023;
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return Complex(f64).new(h * h * math.cos(y), h * math.sin(y));
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}
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}
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if (ix | lx == 0 and iy >= 0x7ff00000) {
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return Complex(f64).new(y - y, math.copysign(f64, 0, x * (y - y)));
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}
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if (iy | ly == 0 and ix >= 0x7ff00000) {
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if ((hx & 0xfffff) | lx == 0) {
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return Complex(f64).new(x * x, math.copysign(f64, 0, x) * y);
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}
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return Complex(f64).new(x * x, math.copysign(f64, 0, (x + x) * y));
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}
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if (ix < 0x7ff00000 and iy >= 0x7ff00000) {
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return Complex(f64).new(y - y, x * (y - y));
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}
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if (ix >= 0x7ff00000 and (hx & 0xfffff) | lx == 0) {
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if (iy >= 0x7ff00000) {
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return Complex(f64).new(x * x, x * (y - y));
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}
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return Complex(f64).new(x * x * math.cos(y), x * math.sin(y));
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}
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return Complex(f64).new((x * x) * (y - y), (x + x) * (y - y));
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}
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const epsilon = 0.0001;
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test "complex.ccosh32" {
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const a = Complex(f32).new(5, 3);
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const c = cosh(a);
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debug.assert(math.approxEq(f32, c.re, -73.467300, epsilon));
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debug.assert(math.approxEq(f32, c.im, 10.471557, epsilon));
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}
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test "complex.ccosh64" {
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const a = Complex(f64).new(5, 3);
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const c = cosh(a);
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debug.assert(math.approxEq(f64, c.re, -73.467300, epsilon));
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debug.assert(math.approxEq(f64, c.im, 10.471557, epsilon));
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}
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