File size: 6,947 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 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120 121 122 123 124 125 126 127 128 129 130 131 132 133 134 135 136 137 138 139 140 141 142 143 144 145 146 147 148 149 150 151 152 153 154 155 156 157 158 159 160 161 162 163 164 165 166 167 168 169 170 171 172 173 174 175 176 177 178 179 180 181 182 183 184 185 186 187 188 189 190 191 192 193 194 195 196 197 198 199 200 201 | mod korean_telemetry;
mod exporter;
use rand::Rng;
use korean_telemetry::TelemetryReporter;
use exporter::StateExporter;
// 1. 8λ 물리/μλ¬Όνμ μμ μ€μ
#[derive(Copy, Clone, Debug, PartialEq)]
pub enum PhaseState {
HyperInhibition, // -2.0
StandardInhibition,// -1.0
SubInhibition, // -0.5
NegQuiescent, // -0.0
PosQuiescent, // +0.0
SubExcitation, // +0.5
StandardExcitation,// +1.0
HyperExcitation, // +2.0
}
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 }
}
}
// 2. ν΅ν© 볡μ‘κ³ λμν νμ± μμ§
pub struct BioPhysEngine {
pub size: usize,
pub bedrock: Vec<f32>,
pub topsoil: Vec<PhaseState>,
pub mutation_rate: f32,
pub energy_history: Vec<(usize, f32)>,
}
impl BioPhysEngine {
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();
BioPhysEngine {
size,
bedrock,
topsoil,
mutation_rate,
energy_history: Vec::new(),
}
}
// 1 μ€ν
λμν μ μ΄ μ°μ°
pub fn step(&mut self, tick: usize) -> 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;
let avg_energy = total_energy / (self.size * self.size) as f32;
self.energy_history.push((tick, avg_energy));
avg_energy
}
pub fn get_phase_values(&self) -> Vec<f32> {
self.topsoil.iter().map(|p| p.value()).collect()
}
}
fn main() {
println!("============================================================");
println!(" π BioPhys 볡μ‘κ³ λμν ν΅ν© μμ€ν
ꡬλ");
println!("============================================================\n");
let grid_size = 16;
let mutation_rate = 0.05;
let mut engine = BioPhysEngine::new(grid_size, mutation_rate);
println!("βοΈ μμ€ν
μ΄κΈ°ν μλ£ (16x16 격μ, 8λ μμ 체κ³, 5% λ³μ΄μ¨)\n");
// 10ν λμν μν μ μ΄ λ° μ€μκ° νκ΅μ΄ ν
λ λ©νΈλ¦¬ μ€ν
for tick in 1..=6 {
let avg_energy = engine.step(tick);
let phases = engine.get_phase_values();
let report = TelemetryReporter::analyze(&phases, avg_energy, tick);
println!("{}", report);
}
// κ²°κ³Ό λ‘κ·Έ νμΌ μ μ₯
if let Err(e) = StateExporter::save_energy_log("energy_log.csv", &engine.energy_history) {
eprintln!("λ‘κ·Έ μ μ₯ μ€λ₯: {}", e);
} else {
println!("π λμν μλ ΄ λ°μ΄ν°κ° 'energy_log.csv'μ μ μ μ μ₯λμμ΅λλ€.");
}
println!("\n============================================================");
println!(" β
μ 체 νμ΄νλΌμΈ(λμν + ν
λ λ©νΈλ¦¬ + λ°μ΄ν° λ‘κΉ
) μ€ν μλ£");
println!("============================================================");
}
// π§ͺ BioPhys μμ§ λ¨μ ν
μ€νΈ μ€μνΈ (tests/engine_tests.rs)
#[cfg(test)]
mod tests {
use super::*;
// 1. μμ μ μ΄ μμΉ λ§€ν ν
μ€νΈ
#[test]
fn test_phase_state_thresholds() {
assert_eq!(PhaseState::from_energy(2.5), PhaseState::HyperExcitation);
assert_eq!(PhaseState::from_energy(1.0), PhaseState::StandardExcitation);
assert_eq!(PhaseState::from_energy(0.0), PhaseState::NegQuiescent);
assert_eq!(PhaseState::from_energy(-1.0), PhaseState::StandardInhibition);
assert_eq!(PhaseState::from_energy(-2.5), PhaseState::HyperInhibition);
}
// 2. μμ§ μ΄κΈ°ν λ° ν¬κΈ° κ²μ¦ ν
μ€νΈ
#[test]
fn test_engine_initialization() {
let size = 8;
let engine = BioPhysEngine::new(size, 0.0);
assert_eq!(engine.bedrock.len(), size * size);
assert_eq!(engine.topsoil.len(), size * size);
}
// 3. λμν μ€ν
λ° μλμ§ λ‘κ·Έ λμ ν
μ€νΈ
#[test]
fn test_engine_step_and_energy() {
let size = 8;
let mut engine = BioPhysEngine::new(size, 0.05);
let e1 = engine.step(1);
let e2 = engine.step(2);
assert!(e1 > 0.0);
assert!(e2 > 0.0);
assert_eq!(engine.energy_history.len(), 2);
}
// 4. νκ΅μ΄ ν
λ λ©νΈλ¦¬ λ°±λΆμ¨ μ ν©μ± ν
μ€νΈ
#[test]
fn test_telemetry_reporter() {
let phases = vec![2.0, 1.0, 0.0, -1.0]; // 25% each approximately
let report = TelemetryReporter::analyze(&phases, 1.0, 1);
assert!(report.contains("λΆμ 리ν¬νΈ"));
assert!(report.contains("νκ· κ³λ©΄ μλμ§"));
}
}
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