File size: 4,317 Bytes
be99550 | 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 | #[path="../korean_telemetry.rs"] mod korean_telemetry;
use rand::Rng;
use korean_telemetry::TelemetryReporter;
#[derive(Copy, Clone, Debug, PartialEq)]
pub enum PhaseState {
HyperInhibition,
StandardInhibition,
SubInhibition,
NegQuiescent,
PosQuiescent,
SubExcitation,
StandardExcitation,
HyperExcitation,
}
impl PhaseState {
pub fn value(&self) -> f32 {
match self {
PhaseState::HyperInhibition => -2.0,
PhaseState::StandardInhibition => -1.0,
PhaseState::SubInhibition => -0.5,
PhaseState::NegQuiescent => -0.01,
PhaseState::PosQuiescent => 0.01,
PhaseState::SubExcitation => 0.5,
PhaseState::StandardExcitation => 1.0,
PhaseState::HyperExcitation => 2.0,
}
}
pub fn from_energy(e: f32) -> Self {
if e <= -1.5 { PhaseState::HyperInhibition }
else if e <= -0.75 { PhaseState::StandardInhibition }
else if e <= -0.25 { PhaseState::SubInhibition }
else if e <= 0.0 { PhaseState::NegQuiescent }
else if e <= 0.25 { PhaseState::PosQuiescent }
else if e <= 0.75 { PhaseState::SubExcitation }
else if e <= 1.5 { PhaseState::StandardExcitation }
else { PhaseState::HyperExcitation }
}
}
pub struct BioPhysPlanetEngine {
pub size: usize,
pub bedrock: Vec<f32>,
pub topsoil: Vec<PhaseState>,
pub mutation_rate: f32,
}
impl BioPhysPlanetEngine {
pub fn new(size: usize, mutation_rate: f32) -> Self {
let mut rng = rand::thread_rng();
let bedrock: Vec<f32> = (0..size * size)
.map(|i| {
let x = (i % size) as f32;
let y = (i / size) as f32;
((x * 0.3).sin() + (y * 0.3).cos()) * 0.5
})
.collect();
let topsoil: Vec<PhaseState> = (0..size * size)
.map(|_| PhaseState::from_energy(rng.gen_range(-2.0..2.0)))
.collect();
BioPhysPlanetEngine { size, bedrock, topsoil, mutation_rate }
}
pub fn step(&mut self) -> f32 {
let mut rng = rand::thread_rng();
let mut next_topsoil = self.topsoil.clone();
let mut total_energy = 0.0f32;
let s = self.size as i32;
for y in 0..s {
for x in 0..s {
let idx = (y * s + x) as usize;
let neighbors = [
((y - 1 + s) % s * s + x) as usize,
((y + 1) % s * s + x) as usize,
(y * s + (x - 1 + s) % s) as usize,
(y * s + (x + 1) % s) as usize,
];
let neighbor_energy: f32 = neighbors.iter()
.map(|&n_idx| self.topsoil[n_idx].value())
.sum::<f32>() * 0.25;
let mut local_field = neighbor_energy + self.bedrock[idx];
if rng.gen_bool(self.mutation_rate as f64) {
local_field += rng.gen_range(-0.5..0.5);
}
let new_phase = PhaseState::from_energy(local_field);
next_topsoil[idx] = new_phase;
total_energy += local_field.abs();
}
}
self.topsoil = next_topsoil;
total_energy / (self.size * self.size) as f32
}
pub fn get_phase_values(&self) -> Vec<f32> {
self.topsoil.iter().map(|p| p.value()).collect()
}
}
fn main() {
println!("============================================================");
println!(" ๐ BioPhys 8-State ์์ง & ์ค์๊ฐ ํ๊ตญ์ด ํ
๋ ๋ฉํธ๋ฆฌ ์ฐ๋");
println!("============================================================\n");
let grid_size = 16;
let mutation_rate = 0.05;
let mut engine = BioPhysPlanetEngine::new(grid_size, mutation_rate);
for tick in 1..=5 {
let avg_energy = engine.step();
let phases = engine.get_phase_values();
let report = TelemetryReporter::analyze(&phases, avg_energy, tick);
println!("{}", report);
}
println!("============================================================");
println!(" โ
ํ๊ตญ์ด ํ
๋ ๋ฉํธ๋ฆฌ ํ์ดํ๋ผ์ธ ์ฐ๋ ์๋ฃ");
println!("============================================================");
}
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