use super::driver::{CobylaWork, Transition};
struct Fixture {
problem: String,
n: usize,
m_nlcon: usize,
rho_beg: f64,
rho_end: f64,
max_fun: usize,
x0: Vec<f64>,
evals: Vec<(f64, f64, Vec<f64>)>,
final_f: f64,
final_cstrv: f64,
final_x: Vec<f64>,
}
fn kv<'a>(tok: &'a str, key: &str) -> &'a str {
let (k, v) = tok
.split_once('=')
.unwrap_or_else(|| panic!("expected key=value, got {tok:?}"));
assert_eq!(k, key, "expected key {key:?}, got {k:?}");
v
}
fn parse_fixture(text: &str) -> Fixture {
let mut problem = None;
let mut n = None;
let mut m_nlcon = None;
let mut rho_beg = None;
let mut rho_end = None;
let mut max_fun = None;
let mut x0 = None;
let mut evals = Vec::new();
let mut final_line = None;
for line in text.lines() {
let line = line.trim();
if line.is_empty() {
continue;
}
if let Some(rest) = line.strip_prefix("# config") {
let t: Vec<&str> = rest.split_whitespace().collect();
problem = Some(kv(t[0], "problem").to_string());
n = Some(kv(t[1], "n").parse().unwrap());
m_nlcon = Some(kv(t[2], "m_nlcon").parse().unwrap());
rho_beg = Some(kv(t[3], "rho_beg").parse().unwrap());
rho_end = Some(kv(t[4], "rho_end").parse().unwrap());
max_fun = Some(kv(t[5], "maxfun").parse().unwrap());
} else if let Some(rest) = line.strip_prefix("# x0") {
x0 = Some(
rest.split_whitespace()
.map(|s| s.parse().unwrap())
.collect::<Vec<f64>>(),
);
} else if let Some(rest) = line.strip_prefix("# final") {
final_line = Some(rest.to_string());
} else if line.starts_with('#') {
continue;
} else {
let mut t = line.split_whitespace();
let _idx: usize = t.next().unwrap().parse().unwrap();
let f: f64 = t.next().unwrap().parse().unwrap();
let cstrv: f64 = t.next().unwrap().parse().unwrap();
let x: Vec<f64> = t.map(|s| s.parse().unwrap()).collect();
evals.push((f, cstrv, x));
}
}
let fl = final_line.expect("fixture missing `# final` line");
let mut t = fl.split_whitespace();
let _final_nf: usize = kv(t.next().unwrap(), "nf").parse().unwrap();
let _rc: i32 = kv(t.next().unwrap(), "rc").parse().unwrap();
let final_f: f64 = kv(t.next().unwrap(), "f").parse().unwrap();
let final_cstrv: f64 = kv(t.next().unwrap(), "cstrv").parse().unwrap();
assert_eq!(t.next(), Some("x="), "expected `x=` before final x");
let final_x: Vec<f64> = t.map(|s| s.parse().unwrap()).collect();
Fixture {
problem: problem.expect("problem"),
n: n.expect("n"),
m_nlcon: m_nlcon.expect("m_nlcon"),
rho_beg: rho_beg.expect("rho_beg"),
rho_end: rho_end.expect("rho_end"),
max_fun: max_fun.expect("maxfun"),
x0: x0.expect("x0"),
evals,
final_f,
final_cstrv,
final_x,
}
}
fn objective(problem: &str, x: &[f64]) -> f64 {
match problem {
"disk" => x[0] * x[1],
"fletcher" => -x[0] - x[1],
"ballsphere" => x.iter().map(|&xi| (xi - 2.0).powi(2)).sum(),
other => panic!("unknown problem {other:?}"),
}
}
fn constraints(problem: &str, x: &[f64]) -> Vec<f64> {
match problem {
"disk" => vec![x[0] * x[0] + x[1] * x[1] - 1.0],
"fletcher" => vec![x[0] * x[0] - x[1], x[0] * x[0] + x[1] * x[1] - 1.0],
"ballsphere" => vec![x.iter().map(|&xi| xi * xi).sum::<f64>() - 1.0],
other => panic!("unknown problem {other:?}"),
}
}
fn violation(constr: &[f64]) -> f64 {
constr.iter().fold(0.0_f64, |a, &c| a.max(c)).max(0.0)
}
fn check_parity(text: &str) {
let fx = parse_fixture(text);
let n = fx.n;
let m = fx.m_nlcon;
assert_eq!(fx.x0.len(), n);
for (k, (f_prima, cstrv_prima, x)) in fx.evals.iter().enumerate() {
let f_rust = objective(&fx.problem, x);
let c_rust = constraints(&fx.problem, x);
assert_eq!(c_rust.len(), m, "{}: constraint count mismatch", fx.problem);
let cstrv_rust = violation(&c_rust);
let f_tol = 1e-12 * f_prima.abs().max(1.0);
assert!(
(f_rust - f_prima).abs() <= f_tol,
"{} eval {}: objective mismatch C vs Rust: prima={:.17e} rust={:.17e} diff={:.3e}",
fx.problem,
k,
f_prima,
f_rust,
(f_rust - f_prima).abs(),
);
let c_tol = 1e-12 * cstrv_prima.abs().max(1.0);
assert!(
(cstrv_rust - cstrv_prima).abs() <= c_tol,
"{} eval {}: cstrv mismatch C vs Rust: prima={:.17e} rust={:.17e} diff={:.3e}",
fx.problem,
k,
cstrv_prima,
cstrv_rust,
(cstrv_rust - cstrv_prima).abs(),
);
}
let trace = std::cell::RefCell::new(Vec::<Vec<f64>>::new());
let mut eval = |x: &[f64]| -> Result<(f64, Vec<f64>), std::convert::Infallible> {
trace.borrow_mut().push(x.to_vec());
Ok((objective(&fx.problem, x), constraints(&fx.problem, x)))
};
let (mut work, _bx, _bf) =
CobylaWork::try_init(fx.x0.clone(), m, fx.rho_beg, fx.rho_end, &mut eval).unwrap();
let mut converged = false;
for _ in 0..fx.max_fun {
let transition = work.step(&mut eval).unwrap();
if matches!(transition, Transition::Converged) {
converged = true;
break;
}
if matches!(transition, Transition::Failed) {
break;
}
if trace.borrow().len() >= fx.max_fun {
break;
}
}
let (basin_x, basin_f) = work.best();
let nf = trace.borrow().len();
let npt = n + 1;
let trace_ref = trace.borrow();
assert!(
trace_ref.len() >= npt,
"{}: basin made only {} evals, fewer than n+1={}",
fx.problem,
trace_ref.len(),
npt,
);
let initial = &trace_ref[..npt];
for (f_prima, _cstrv, want) in &fx.evals[..npt] {
let found = initial.iter().any(|got| {
got.len() == want.len() && got.iter().zip(want).all(|(a, b)| (a - b).abs() <= 1e-12)
});
assert!(
found,
"{}: initial design missing PRIMA point {:?} (f={:.6e})",
fx.problem, want, f_prima
);
}
drop(trace_ref);
assert!(
converged,
"{}: basin stopped on the eval budget, not convergence",
fx.problem
);
let f_tol = 1e-6 * (1.0 + fx.final_f.abs());
assert!(
(basin_f - fx.final_f).abs() <= f_tol,
"{}: final f mismatch: prima={:.17e} basin={:.17e} diff={:.3e} tol={:.3e}",
fx.problem,
fx.final_f,
basin_f,
(basin_f - fx.final_f).abs(),
f_tol,
);
let x_inf = basin_x
.iter()
.zip(&fx.final_x)
.map(|(a, b)| (a - b).abs())
.fold(0.0_f64, f64::max);
assert!(
x_inf <= 1e-4,
"{}: final x mismatch (||.||_inf = {:.3e} > 1e-4)\n prima={:?}\n basin={:?}",
fx.problem,
x_inf,
fx.final_x,
basin_x,
);
assert!(
fx.final_cstrv <= 1e-6,
"{}: fixture final point infeasible, cstrv = {:.3e}",
fx.problem,
fx.final_cstrv
);
let cstrv = violation(&constraints(&fx.problem, &basin_x));
assert!(
cstrv <= 1e-6,
"{}: returned point infeasible, cstrv = {:.3e}",
fx.problem,
cstrv
);
let nf_margin = (0.5 * fx.evals.len() as f64).max(15.0);
let nf_diff = (nf as f64 - fx.evals.len() as f64).abs();
assert!(
nf_diff <= nf_margin,
"{}: nf out of margin: prima={} basin={} diff={} margin={:.1}",
fx.problem,
fx.evals.len(),
nf,
nf_diff,
nf_margin,
);
}
macro_rules! parity_test {
($name:ident, $file:literal) => {
#[test]
fn $name() {
check_parity(include_str!(concat!(
env!("CARGO_MANIFEST_DIR"),
"/tests/fixtures/",
$file
)));
}
};
}
parity_test!(disk_matches_prima, "cobyla_disk_2d.tsv");
parity_test!(fletcher_matches_prima, "cobyla_fletcher_2d.tsv");
parity_test!(ballsphere_matches_prima, "cobyla_ballsphere_3d.tsv");