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mod korean_telemetry;
mod exporter;

use rand::Rng;
use korean_telemetry::TelemetryReporter;
use exporter::StateExporter;

// 1. 8λŒ€ 물리/생물학적 μœ„μƒ μ€€μœ„
#[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. 톡합 λ³΅μž‘κ³„ 동역학 ν–‰μ„± μ—”μ§„
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 μŠ€ν… 동역학 전이 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!(" 🌌 BioPhys λ³΅μž‘κ³„ 동역학 톡합 μ‹œμŠ€ν…œ ꡬ동");
    println!("============================================================\n");

    let grid_size = 16;
    let mutation_rate = 0.05;
    let mut engine = BioPhysEngine::new(grid_size, mutation_rate);

    println!("βš™οΈ μ‹œμŠ€ν…œ μ΄ˆκΈ°ν™” μ™„λ£Œ (16x16 격자, 8λŒ€ μœ„μƒ 체계, 5% λ³€μ΄μœ¨)\n");

    // 10회 동역학 μƒνƒœ 전이 및 μ‹€μ‹œκ°„ ν•œκ΅­μ–΄ ν…”λ ˆλ©”νŠΈλ¦¬ 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 둜그 파일 μ €μž₯
    if let Err(e) = StateExporter::save_energy_log("energy_log.csv", &engine.energy_history) {
        eprintln!("둜그 μ €μž₯ 였λ₯˜: {}", e);
    } else {
        println!("πŸ“ 동역학 수렴 데이터가 'energy_log.csv'에 정상 μ €μž₯λ˜μ—ˆμŠ΅λ‹ˆλ‹€.");
    }

    println!("\n============================================================");
    println!(" βœ… 전체 νŒŒμ΄ν”„λΌμΈ(동역학 + ν…”λ ˆλ©”νŠΈλ¦¬ + 데이터 λ‘œκΉ…) μ‹€ν–‰ μ™„λ£Œ");
    println!("============================================================");
}

// πŸ§ͺ BioPhys μ—”μ§„ λ‹¨μœ„ ν…ŒμŠ€νŠΈ μŠ€μœ„νŠΈ (tests/engine_tests.rs)

#[cfg(test)]
mod tests {
    use super::*;

    // 1. μœ„μƒ 전이 수치 λ§€ν•‘ ν…ŒμŠ€νŠΈ
    #[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. μ—”μ§„ μ΄ˆκΈ°ν™” 및 크기 검증 ν…ŒμŠ€νŠΈ
    #[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. 동역학 μŠ€ν… 및 μ—λ„ˆμ§€ 둜그 λˆ„μ  ν…ŒμŠ€νŠΈ
    #[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. ν•œκ΅­μ–΄ ν…”λ ˆλ©”νŠΈλ¦¬ λ°±λΆ„μœ¨ μ •ν•©μ„± ν…ŒμŠ€νŠΈ
    #[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("뢄석 리포트"));
        assert!(report.contains("평균 계면 μ—λ„ˆμ§€"));
    }
}