refactor(library/blast/state): simplify state
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2 changed files with 0 additions and 46 deletions
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@ -29,34 +29,8 @@ bool metavar_decl::restrict_context_using(metavar_decl const & other) {
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state::state() {}
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/** \brief Mark that hypothesis h with index hidx is fixed by the meta-variable midx.
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That is, `h` occurs in the type of `midx`. */
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void state::add_fixed_by(unsigned hidx, unsigned midx) {
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if (auto s = m_fixed_by.find(hidx)) {
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if (!s->contains(midx)) {
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metavar_idx_set new_s(*s);
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new_s.insert(midx);
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m_fixed_by.insert(hidx, new_s);
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}
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} else {
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metavar_idx_set new_s;
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new_s.insert(midx);
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m_fixed_by.insert(hidx, new_s);
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}
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}
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expr state::mk_metavar(hypothesis_idx_set const & c, expr const & type) {
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unsigned midx = mk_mref_idx();
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for_each(type, [&](expr const & e, unsigned) {
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if (!has_href(e))
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return false;
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if (is_href(e)) {
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lean_assert(c.contains(href_index(e)));
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add_fixed_by(href_index(e), midx);
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return false;
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}
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return true; // continue search
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});
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m_metavar_decls.insert(midx, metavar_decl(c, type));
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return blast::mk_mref(midx);
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}
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@ -406,9 +380,6 @@ void state::add_deps(expr const & e, hypothesis & h_user, unsigned hidx_user) {
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add_forward_dep(hidx_user, hidx_provider);
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}
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return false;
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} else if (is_mref(l)) {
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m_branch.m_mvar_idxs.insert(mref_index(l));
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return false;
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} else {
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return true;
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}
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@ -496,9 +467,6 @@ void state::set_target(expr const & t) {
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} else if (is_href(e)) {
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m_branch.m_target_deps.insert(href_index(e));
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return false;
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} else if (is_mref(e)) {
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m_branch.m_mvar_idxs.insert(mref_index(e));
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return false;
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} else {
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return true;
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}
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@ -103,7 +103,6 @@ class branch {
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forward_deps m_forward_deps; // given an entry (h -> {h_1, ..., h_n}), we have that each h_i uses h.
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expr m_target;
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hypothesis_idx_set m_target_deps;
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metavar_idx_set m_mvar_idxs;
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};
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/** \brief Proof state for the blast tactic */
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@ -111,20 +110,10 @@ class state {
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typedef metavar_idx_map<metavar_decl> metavar_decls;
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typedef metavar_idx_map<expr> eassignment;
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typedef metavar_idx_map<level> uassignment;
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typedef hypothesis_idx_map<metavar_idx_set> fixed_by;
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typedef list<proof_step> proof_steps;
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uassignment m_uassignment;
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metavar_decls m_metavar_decls;
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eassignment m_eassignment;
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// In the following mapping, each entry (h -> {m_1 ... m_n}) means that hypothesis `h` cannot be cleared
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// in any branch where the metavariables m_1 ... m_n have not been replaced with the values assigned to them.
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// That is, to be able to clear `h` in a branch `B`, we first need to check whether it
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// is contained in this mapping or not. If it is, we should check whether any of the
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// metavariables `m_1` ... `m_n` occur in `B` (this is a relatively quick check since
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// `B` contains an over-approximation of all meta-variables occuring in it (i.e., m_mvar_idxs).
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// If this check fails, then we should replace any assigned `m_i` with its value, if the intersection is still
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// non-empty, then we cannot clear `h`.
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fixed_by m_fixed_by;
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unsigned m_proof_depth{0};
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proof_steps m_proof_steps;
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branch m_branch;
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@ -144,7 +133,6 @@ class state {
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expr mk_hypothesis(unsigned new_hidx, name const & n, expr const & type, optional<expr> const & value);
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void add_fixed_by(unsigned hidx, unsigned midx);
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unsigned add_metavar_decl(metavar_decl const & decl);
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goal to_goal(branch const &) const;
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@ -173,8 +161,6 @@ public:
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metavar_decl const * get_metavar_decl(unsigned idx) const { return m_metavar_decls.find(idx); }
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metavar_decl const * get_metavar_decl(expr const & e) const { return get_metavar_decl(mref_index(e)); }
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bool has_mvar(expr const & e) const { return m_branch.m_mvar_idxs.contains(mref_index(e)); }
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/************************
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Save/Restore branch
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*************************/
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