alpaqa 1.1.0a1
Nonconvex constrained optimization
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ipopt-adapter.cpp
Go to the documentation of this file.
2
4
5#include <IpIpoptCalculatedQuantities.hpp>
6#include <stdexcept>
7
8namespace alpaqa {
9
11
13 Index &nnz_h_lag, IndexStyleEnum &index_style) {
14 n = static_cast<Index>(problem.get_num_variables());
15 m = static_cast<Index>(problem.get_num_constraints());
16 nnz_jac_g = static_cast<Index>(cvt_sparsity_jac_g.get_sparsity().nnz());
17 nnz_h_lag = static_cast<Index>(cvt_sparsity_hess_L.get_sparsity().nnz());
18 auto jac_g_index = cvt_sparsity_jac_g.get_sparsity().first_index;
19 auto hess_L_index = cvt_sparsity_hess_L.get_sparsity().first_index;
20 if (jac_g_index != hess_L_index)
21 throw std::invalid_argument(
22 "All problem matrices should use the same index convention");
23 if (jac_g_index != 0 && jac_g_index != 1)
24 throw std::invalid_argument(
25 "Sparse matrix indices should start at 0 or 1");
26 index_style = jac_g_index == 0 ? TNLP::C_STYLE : TNLP::FORTRAN_STYLE;
27 auto hess_L_sym = cvt_sparsity_hess_L.get_sparsity().symmetry;
28 using enum sparsity::Symmetry;
29 if (hess_L_sym != Upper && hess_L_sym != Lower)
30 throw std::invalid_argument("Hessian matrix should be symmetric");
31 return true;
32}
33
35 Number *g_l, Number *g_u) {
36 const auto &C = problem.get_variable_bounds();
37 mvec{x_l, n} = C.lower;
38 mvec{x_u, n} = C.upper;
39 const auto &D = problem.get_general_bounds();
40 mvec{g_l, m} = D.lower;
41 mvec{g_u, m} = D.upper;
42 return true;
43}
44
46 bool init_z, Number *z_L, Number *z_U,
47 Index m, bool init_lambda,
48 Number *lambda) {
49 if (init_x) {
50 if (initial_guess.size() > 0)
51 mvec{x, n} = initial_guess;
52 else
53 mvec{x, n}.setZero();
54 }
55 if (init_z) {
57 mvec{z_L, n} = (initial_guess_bounds_multipliers.array() < 0)
59 else
60 mvec{z_L, n}.setZero();
62 mvec{z_U, n} = (initial_guess_bounds_multipliers.array() > 0)
64 else
65 mvec{z_U, n}.setZero();
66 }
67 if (init_lambda) {
68 if (initial_guess_multipliers.size() > 0)
70 else
71 mvec{lambda, m}.setZero();
72 }
73 return true;
74}
75
76bool IpoptAdapter::eval_f(Index n, const Number *x, [[maybe_unused]] bool new_x,
77 Number &obj_value) {
78 obj_value = problem.eval_objective(cmvec{x, n});
79 return true;
80}
81
83 [[maybe_unused]] bool new_x, Number *grad_f) {
84 problem.eval_objective_gradient(cmvec{x, n}, mvec{grad_f, n});
85 return true;
86}
87
88bool IpoptAdapter::eval_g(Index n, const Number *x, [[maybe_unused]] bool new_x,
89 Index m, Number *g) {
90 problem.eval_constraints(cmvec{x, n}, mvec{g, m});
91 return true;
92}
93
95 [[maybe_unused]] bool new_x,
96 [[maybe_unused]] Index m, Index nele_jac,
97 Index *iRow, Index *jCol, Number *values) {
98 if (!problem.provides_eval_constraints_jacobian())
99 throw std::logic_error(
100 "Missing required function: eval_constraints_jacobian");
101 if (values == nullptr) { // Initialize sparsity
102 std::ranges::copy(cvt_sparsity_jac_g.get_sparsity().row_indices, iRow);
103 std::ranges::copy(cvt_sparsity_jac_g.get_sparsity().col_indices, jCol);
104 } else { // Evaluate values
105 cvt_sparsity_jac_g.convert_values_into(
106 std::span{values, static_cast<size_t>(nele_jac)},
107 [&](std::span<real_t> v) {
108 problem.eval_constraints_jacobian(cmvec{x, n}, as_vec(v));
109 });
110 // TODO: reuse workspace
111 }
112 return true;
113}
114
115bool IpoptAdapter::eval_h(Index n, const Number *x, [[maybe_unused]] bool new_x,
116 Number obj_factor, Index m, const Number *lambda,
117 [[maybe_unused]] bool new_lambda, Index nele_hess,
118 Index *iRow, Index *jCol, Number *values) {
119 if (!problem.provides_eval_lagrangian_hessian())
120 throw std::logic_error(
121 "Missing required function: eval_lagrangian_hessian");
122 if (values == nullptr) { // Initialize sparsity
123 std::ranges::copy(cvt_sparsity_hess_L.get_sparsity().row_indices, iRow);
124 std::ranges::copy(cvt_sparsity_hess_L.get_sparsity().col_indices, jCol);
125 } else { // Evaluate values
126 cvt_sparsity_hess_L.convert_values_into(
127 std::span{values, static_cast<size_t>(nele_hess)},
128 [&](std::span<real_t> v) {
129 problem.eval_lagrangian_hessian(cmvec{x, n}, cmvec{lambda, m},
130 obj_factor, as_vec(v));
131 });
132 // TODO: reuse workspace
133 }
134 return true;
135}
136void IpoptAdapter::finalize_solution(Ipopt::SolverReturn status, Index n,
137 const Number *x, const Number *z_L,
138 const Number *z_U, Index m,
139 const Number *g, const Number *lambda,
140 Number obj_value,
141 const Ipopt::IpoptData *ip_data,
142 Ipopt::IpoptCalculatedQuantities *ip_cq) {
143 results.status = status;
144 results.solution_x = cmvec{x, n};
145 results.solution_z_L = cmvec{z_L, n};
146 results.solution_z_U = cmvec{z_U, n};
147 results.solution_y = cmvec{lambda, m};
148 results.solution_g = cmvec{g, m};
149 results.solution_f = obj_value;
150 results.infeasibility = ip_cq->curr_constraint_violation();
151 results.nlp_error = ip_cq->unscaled_curr_nlp_error();
152 results.iter_count = ip_data->iter_count();
153}
154
155} // namespace alpaqa
IpoptAdapter(const Problem &problem)
const Problem & problem
bool eval_g(Index n, const Number *x, bool new_x, Index m, Number *g) override
bool eval_grad_f(Index n, const Number *x, bool new_x, Number *grad_f) override
SparsityConv cvt_sparsity_jac_g
bool eval_h(Index n, const Number *x, bool new_x, Number obj_factor, Index m, const Number *lambda, bool new_lambda, Index nele_hess, Index *iRow, Index *jCol, Number *values) override
bool get_starting_point(Index n, bool init_x, Number *x, bool init_z, Number *z_L, Number *z_U, Index m, bool init_lambda, Number *lambda) override
bool get_bounds_info(Index n, Number *x_l, Number *x_u, Index m, Number *g_l, Number *g_u) override
struct alpaqa::IpoptAdapter::Results results
bool eval_f(Index n, const Number *x, bool new_x, Number &obj_value) override
bool get_nlp_info(Index &n, Index &m, Index &nnz_jac_g, Index &nnz_h_lag, IndexStyleEnum &index_style) override
bool eval_jac_g(Index n, const Number *x, bool new_x, Index m, Index nele_jac, Index *iRow, Index *jCol, Number *values) override
void finalize_solution(Ipopt::SolverReturn status, Index n, const Number *x, const Number *z_L, const Number *z_U, Index m, const Number *g, const Number *lambda, Number obj_value, const Ipopt::IpoptData *ip_data, Ipopt::IpoptCalculatedQuantities *ip_cq) override
TypeErasedProblem< config_t > Problem
SparsityConv cvt_sparsity_hess_L
typename Conf::mvec mvec
Definition config.hpp:89
auto as_vec(std::span< T, E > s)
Convert a std::span to an Eigen::Vector view.
Definition span.hpp:51
typename Conf::cmvec cmvec
Definition config.hpp:90