Architecture restructure from morning review: 1. code/scripts/ subdivided into sim/, reach/, barrier/, plot/. Easier nav; `barrier/` is the natural place for SOS scale-up scripts. 2. Heatup PJ reach variants consolidated behind TOML configs. reach_heatup_pj.jl now takes `--config path/to/config.toml`; configs/heatup/baseline.toml (wide entry, from predicates.json) and configs/heatup/tight.toml (narrow entry, reproduces all-6-halfspaces discharged result). Old reach_heatup_pj_tight.jl and reach_heatup_pj_tight_full.jl deleted (superseded). 3. Reach output .mat files moved from reachability/ to results/. reachability/ now = specs + docs; results/ = ephemeral outputs (gitignored *.mat). README added. 4. OVERNIGHT_NOTES.md archived to claude_memory/2026-04-20-21-overnight- session-summary.md (date range in the filename makes the history clearer). All include() / Pkg.activate() paths in scripts updated for the new depth. Smoke tests pass (reach_operation.jl generates its .mat in the new results/ location; sim_sanity.jl matches MATLAB). Presentation outline for the 20-min prelim talk landed in presentations/prelim-presentation/outline.md. 14-slide assertion- evidence format targeting OT-informed cybersecurity audience. Each slide: one declarative assertion + one figure. Outline includes which figures already exist and which need to be created, timing checkpoints, cybersecurity angle to emphasize, and Q&A prep. New config configs/heatup/with_steam_dump.toml + its companion scripts/reach/reach_heatup_pj_sd.jl (12-state RHS with Q_sg as an augmented bounded parameter x[10] and time as x[11]). Kicks off point 3 from morning review. Next up: scram X_entry expansion (morning point 2) — LOCA scenario + union of mode reach envelopes. Co-Authored-By: Claude Opus 4.7 (1M context) <noreply@anthropic.com>
270 lines
10 KiB
Julia
270 lines
10 KiB
Julia
#!/usr/bin/env julia
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#
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# reach_heatup_pj.jl — nonlinear reach on heatup, prompt-jump model.
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#
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# Reduced from 10-state to 9-state (n is algebraic). Removes the Λ⁻¹
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# stiffness that capped the full-state reach at ~10 s.
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#
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# State (10D with augmented time):
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# x[1..6] = C_1..C_6 (delayed-neutron precursors)
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# x[7] = T_f
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# x[8] = T_c
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# x[9] = T_cold
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# x[10] = t (augmented time, dt/dt = 1)
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#
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# n is algebraic: n = Λ·Σ λ_i C_i / (β - ρ), ρ = K_p·(T_ref - T_c).
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#
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# Configuration-driven: pass a TOML config path as the first CLI arg,
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# or omit for the baseline config.
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#
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# julia --project=. scripts/reach/reach_heatup_pj.jl # baseline
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# julia --project=. scripts/reach/reach_heatup_pj.jl configs/heatup/tight.toml
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#
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# Configs live in code/configs/heatup/*.toml. See baseline.toml for
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# the full schema.
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using Pkg
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Pkg.activate(joinpath(@__DIR__, "..", ".."))
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using LinearAlgebra
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using ReachabilityAnalysis, LazySets
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using JSON
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using MAT
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using TOML
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# --- Plant constants (must match pke_params) ---
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const LAMBDA = 1e-4
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const BETA_1, BETA_2, BETA_3, BETA_4, BETA_5, BETA_6 =
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0.000215, 0.001424, 0.001274, 0.002568, 0.000748, 0.000273
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const BETA = BETA_1 + BETA_2 + BETA_3 + BETA_4 + BETA_5 + BETA_6
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const LAM_1, LAM_2, LAM_3, LAM_4, LAM_5, LAM_6 =
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0.0124, 0.0305, 0.111, 0.301, 1.14, 3.01
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const P0 = 1e9
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const M_F, C_F, M_C, C_C, HA, W_M, M_SG =
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50000.0, 300.0, 20000.0, 5450.0, 5e7, 5000.0, 30000.0
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const T_COLD0 = 290.0
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const DT_CORE = P0 / (W_M * C_C)
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const T_HOT0 = T_COLD0 + DT_CORE
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const T_C0 = (T_HOT0 + T_COLD0) / 2
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const T_F0 = T_C0 + P0 / HA
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const T_STANDBY = T_C0 - 33.333333
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const RAMP_RATE_CS = 28.0 / 3600
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const KP_HEATUP = 1e-4
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# --- Taylorized heatup PJ RHS ---
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@taylorize function rhs_heatup_pj_taylor!(dx, x, p, t)
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rho = KP_HEATUP * (T_STANDBY + RAMP_RATE_CS * x[10] - x[8])
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sum_lam_C = LAM_1*x[1] + LAM_2*x[2] + LAM_3*x[3] +
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LAM_4*x[4] + LAM_5*x[5] + LAM_6*x[6]
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denom = BETA - rho
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n = LAMBDA * sum_lam_C / denom
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inv_factor = sum_lam_C / denom
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dx[1] = BETA_1 * inv_factor - LAM_1 * x[1]
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dx[2] = BETA_2 * inv_factor - LAM_2 * x[2]
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dx[3] = BETA_3 * inv_factor - LAM_3 * x[3]
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dx[4] = BETA_4 * inv_factor - LAM_4 * x[4]
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dx[5] = BETA_5 * inv_factor - LAM_5 * x[5]
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dx[6] = BETA_6 * inv_factor - LAM_6 * x[6]
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dx[7] = (P0 * n - HA * (x[7] - x[8])) / (M_F * C_F)
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dx[8] = (HA * (x[7] - x[8]) - 2 * W_M * C_C * (x[8] - x[9])) / (M_C * C_C)
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dx[9] = (2 * W_M * C_C * (x[8] - x[9])) / (M_SG * C_C)
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dx[10] = one(x[1])
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return nothing
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end
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# --- Config loader ---
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function load_config(config_path)
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if isfile(config_path)
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return TOML.parsefile(config_path)
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else
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error("Config file not found: $config_path")
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end
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end
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function build_entry_box(config)
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if get(config, "use_predicates_entry", false)
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pred_path = joinpath(@__DIR__, "..", "..", "..", "reachability", "predicates.json")
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pred_raw = JSON.parsefile(pred_path)
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entry = pred_raw["mode_boundaries"]["q_heatup"]["X_entry_polytope"]
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n_lo, n_hi = entry["n_range"]
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T_f_lo, T_f_hi = entry["T_f_range_C"]
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T_c_lo, T_c_hi = entry["T_c_range_C"]
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T_cold_lo, T_cold_hi = entry["T_cold_range_C"]
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else
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e = config["entry"]
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n_lo, n_hi = e["n_range"]
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T_f_lo, T_f_hi = e["T_f_range_C"]
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T_c_lo, T_c_hi = e["T_c_range_C"]
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T_cold_lo, T_cold_hi = e["T_cold_range_C"]
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end
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n_mid = 0.5 * (n_lo + n_hi)
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C_mid = [BETA_1/(LAM_1*LAMBDA), BETA_2/(LAM_2*LAMBDA),
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BETA_3/(LAM_3*LAMBDA), BETA_4/(LAM_4*LAMBDA),
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BETA_5/(LAM_5*LAMBDA), BETA_6/(LAM_6*LAMBDA)] .* n_mid
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x_lo = [C_mid[1]*(n_lo/n_mid), C_mid[2]*(n_lo/n_mid),
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C_mid[3]*(n_lo/n_mid), C_mid[4]*(n_lo/n_mid),
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C_mid[5]*(n_lo/n_mid), C_mid[6]*(n_lo/n_mid),
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T_f_lo, T_c_lo, T_cold_lo, 0.0]
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x_hi = [C_mid[1]*(n_hi/n_mid), C_mid[2]*(n_hi/n_mid),
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C_mid[3]*(n_hi/n_mid), C_mid[4]*(n_hi/n_mid),
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C_mid[5]*(n_hi/n_mid), C_mid[6]*(n_hi/n_mid),
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T_f_hi, T_c_hi, T_cold_hi, 0.0]
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return Hyperrectangle(low=x_lo, high=x_hi),
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(n_lo=n_lo, n_hi=n_hi,
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T_f_lo=T_f_lo, T_f_hi=T_f_hi,
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T_c_lo=T_c_lo, T_c_hi=T_c_hi,
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T_cold_lo=T_cold_lo, T_cold_hi=T_cold_hi)
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end
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# --- Per-step envelope extraction ---
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function extract_envelopes(flow_hr)
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n_steps = length(flow_hr)
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t_arr = zeros(n_steps)
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Tc_lo_ts = zeros(n_steps); Tc_hi_ts = zeros(n_steps)
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Tf_lo_ts = zeros(n_steps); Tf_hi_ts = zeros(n_steps)
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Tco_lo_ts = zeros(n_steps); Tco_hi_ts = zeros(n_steps)
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n_lo_ts = zeros(n_steps); n_hi_ts = zeros(n_steps)
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rho_lo_ts = zeros(n_steps); rho_hi_ts = zeros(n_steps)
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for (k, R) in enumerate(flow_hr)
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s = set(R)
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t_arr[k] = high(s, 10)
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Tc_lo_ts[k] = low(s, 8); Tc_hi_ts[k] = high(s, 8)
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Tf_lo_ts[k] = low(s, 7); Tf_hi_ts[k] = high(s, 7)
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Tco_lo_ts[k] = low(s, 9); Tco_hi_ts[k] = high(s, 9)
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sumLC_lo = LAM_1*low(s,1) + LAM_2*low(s,2) + LAM_3*low(s,3) +
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LAM_4*low(s,4) + LAM_5*low(s,5) + LAM_6*low(s,6)
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sumLC_hi = LAM_1*high(s,1) + LAM_2*high(s,2) + LAM_3*high(s,3) +
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LAM_4*high(s,4) + LAM_5*high(s,5) + LAM_6*high(s,6)
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t_hi_here = high(s, 10)
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t_lo_here = low(s, 10)
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Tref_lo = T_STANDBY + RAMP_RATE_CS * t_lo_here
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Tref_hi = T_STANDBY + RAMP_RATE_CS * t_hi_here
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rho_lo_here = KP_HEATUP * (Tref_lo - high(s, 8))
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rho_hi_here = KP_HEATUP * (Tref_hi - low(s, 8))
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rho_lo_ts[k] = rho_lo_here
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rho_hi_ts[k] = rho_hi_here
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denom_lo = BETA - rho_hi_here
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denom_hi = BETA - rho_lo_here
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if denom_lo > 0
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n_lo_ts[k] = LAMBDA * sumLC_lo / denom_hi
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n_hi_ts[k] = LAMBDA * sumLC_hi / denom_lo
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end
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end
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return (; t_arr,
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Tc_lo_ts, Tc_hi_ts, Tf_lo_ts, Tf_hi_ts,
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Tco_lo_ts, Tco_hi_ts, n_lo_ts, n_hi_ts,
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rho_lo_ts, rho_hi_ts)
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end
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# --- Main ---
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function main()
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default_config = joinpath(@__DIR__, "..", "..", "configs", "heatup", "baseline.toml")
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config_path = length(ARGS) > 0 ? ARGS[1] : default_config
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# Allow a config path relative to repo root or code/.
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if !isfile(config_path)
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alt = joinpath(@__DIR__, "..", "..", config_path)
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isfile(alt) && (config_path = alt)
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end
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config = load_config(config_path)
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println("\n=== Heatup PJ reach — config: $(config["name"]) ===")
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println(" $(get(config, "description", ""))")
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X0, entry_info = build_entry_box(config)
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println(" X_entry: n ∈ [$(entry_info.n_lo), $(entry_info.n_hi)], " *
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"T_c ∈ [$(entry_info.T_c_lo), $(entry_info.T_c_hi)] °C")
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tmjets_cfg = config["tmjets"]
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probes = config["probes"]["horizons_seconds"]
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results = Dict{Float64, Any}()
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for T_probe in probes
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println("\n--- Probe T = $T_probe s ($(round(T_probe/60; digits=1)) min) ---")
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sys = BlackBoxContinuousSystem(rhs_heatup_pj_taylor!, 10)
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prob = InitialValueProblem(sys, X0)
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try
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alg = TMJets(
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orderT = tmjets_cfg["orderT"],
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orderQ = tmjets_cfg["orderQ"],
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abstol = tmjets_cfg["abstol"],
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maxsteps = tmjets_cfg["maxsteps"],
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)
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t_start = time()
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sol = solve(prob; T=Float64(T_probe), alg=alg)
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elapsed = time() - t_start
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flow = flowpipe(sol)
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n_sets = length(flow)
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println(" TMJets: $n_sets reach-sets, wall $(round(elapsed; digits=1)) s")
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flow_hr = overapproximate(flow, Hyperrectangle)
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env = extract_envelopes(flow_hr)
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println(" n envelope: [$(round(minimum(env.n_lo_ts); sigdigits=4)), $(round(maximum(env.n_hi_ts); sigdigits=4))]")
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println(" T_c envelope: [$(round(minimum(env.Tc_lo_ts); digits=2)), $(round(maximum(env.Tc_hi_ts); digits=2))] °C")
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println(" T_f envelope: [$(round(minimum(env.Tf_lo_ts); digits=2)), $(round(maximum(env.Tf_hi_ts); digits=2))] °C")
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println(" T_cold env: [$(round(minimum(env.Tco_lo_ts); digits=2)), $(round(maximum(env.Tco_hi_ts); digits=2))] °C")
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println(" rho env: [$(round(minimum(env.rho_lo_ts); sigdigits=4)), $(round(maximum(env.rho_hi_ts); sigdigits=4))]")
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results[T_probe] = (status="OK", n_sets=n_sets, elapsed=elapsed, env=env)
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catch err
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msg = sprint(showerror, err)
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println(" FAILED: ", first(msg, 300))
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results[T_probe] = (status="FAILED", err=first(msg, 300))
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break
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end
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end
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println("\n=== Summary ===")
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for T_probe in probes
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haskey(results, T_probe) || continue
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r = results[T_probe]
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if r.status == "OK"
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println(" T = $(T_probe) s: OK, $(r.n_sets) sets, $(round(r.elapsed; digits=1))s wall")
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else
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println(" T = $(T_probe) s: FAILED")
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end
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end
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# --- Save ---
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if get(config, "output", Dict()) |> (o -> get(o, "save_per_step", false))
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result_file = config["output"]["result_file"]
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mat_out = joinpath(@__DIR__, "..", "..", "..", "results", result_file)
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saved = Dict{String, Any}(
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"config_name" => config["name"],
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"probe_horizons" => collect(probes),
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"beta" => BETA,
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"Kp" => KP_HEATUP,
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"T_c0" => T_C0,
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"T_cold0" => T_COLD0,
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"T_standby" => T_STANDBY,
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)
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for T_probe in probes
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haskey(results, T_probe) || continue
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r = results[T_probe]
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r.status == "OK" || continue
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pre = "T_$(Int(T_probe))_"
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env = r.env
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saved[pre * "t_arr"] = env.t_arr
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saved[pre * "Tc_lo_ts"] = env.Tc_lo_ts; saved[pre * "Tc_hi_ts"] = env.Tc_hi_ts
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saved[pre * "Tf_lo_ts"] = env.Tf_lo_ts; saved[pre * "Tf_hi_ts"] = env.Tf_hi_ts
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saved[pre * "Tco_lo_ts"] = env.Tco_lo_ts; saved[pre * "Tco_hi_ts"] = env.Tco_hi_ts
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saved[pre * "n_lo_ts"] = env.n_lo_ts; saved[pre * "n_hi_ts"] = env.n_hi_ts
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saved[pre * "rho_lo_ts"] = env.rho_lo_ts; saved[pre * "rho_hi_ts"] = env.rho_hi_ts
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end
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matwrite(mat_out, saved)
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println("\nSaved per-step envelopes to $mat_out")
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end
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end
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main()
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