Add postprocessor functional object to the replace_fn template. Add unit-test that demonstrates how to build a replacer that builds a trace. The trace associates new expressions with the old ones that were used to create it.
Signed-off-by: Leonardo de Moura <leonardo@microsoft.com>
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2 changed files with 75 additions and 3 deletions
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@ -9,6 +9,15 @@ Author: Leonardo de Moura
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#include "expr.h"
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#include "expr_maps.h"
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namespace lean {
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/**
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\brief Default replace_fn postprocessor functional object. It is a
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do-nothing object.
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*/
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class default_replace_postprocessor {
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public:
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void operator()(expr const & old_e, expr const & new_e) {}
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};
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/**
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\brief Functional for applying <tt>F</tt> to the subexpressions of a given expression.
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@ -18,13 +27,17 @@ namespace lean {
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F is invoked for each subexpression \c s of the input expression e.
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In a call <tt>F(n, s)</tt>, n is the scope level, i.e., the number of
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bindings operators that enclosing \c s.
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P is a "post-processing" functional object that is applied to each
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pair (old, new)
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*/
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template<typename F>
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template<typename F, typename P=default_replace_postprocessor>
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class replace_fn {
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static_assert(std::is_same<typename std::result_of<F(expr const &, unsigned)>::type, expr>::value,
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"replace_fn: return type of F is not expr");
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expr_cell_offset_map<expr> m_cache;
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F m_f;
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P m_post;
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expr apply(expr const & e, unsigned offset) {
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bool sh = false;
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@ -60,12 +73,15 @@ class replace_fn {
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if (sh)
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m_cache.insert(std::make_pair(expr_cell_offset(e.raw(), offset), r));
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m_post(e, r);
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return r;
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}
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public:
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replace_fn(F const & f):
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m_f(f) {
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replace_fn(F const & f, P const & p = P()):
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m_f(f),
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m_post(p) {
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}
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expr operator()(expr const & e) {
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@ -8,6 +8,8 @@ Author: Leonardo de Moura
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#include "abstract.h"
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#include "instantiate.h"
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#include "deep_copy.h"
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#include "expr_maps.h"
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#include "replace.h"
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#include "printer.h"
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#include "name.h"
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#include "test.h"
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@ -44,9 +46,63 @@ static void tst2() {
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lean_assert(instantiate(mk_pi("_", Var(3), Var(4)), Var(0)) == mk_pi("_", Var(2), Var(3)));
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}
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class tracer {
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expr_map<expr> & m_trace;
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public:
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tracer(expr_map<expr> & trace):m_trace(trace) {}
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void operator()(expr const & old_e, expr const & new_e) {
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if (!is_eqp(new_e, old_e)) {
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m_trace[new_e] = old_e;
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}
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}
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};
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static void tst3() {
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expr f = Const("f");
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expr x = Const("x");
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expr y = Const("y");
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expr c = Const("c");
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expr d = Const("d");
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expr A = Const("A");
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expr_map<expr> trace;
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auto proc = [&](expr const & x, unsigned offset) -> expr {
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if (is_var(x)) {
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unsigned vidx = var_idx(x);
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if (vidx == offset)
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return c;
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else if (vidx > offset)
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return mk_var(vidx-1);
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else
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return x;
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} else {
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return x;
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}
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};
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replace_fn<decltype(proc), tracer> replacer(proc, tracer(trace));
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expr t = Fun({{x, A}, {y, A}}, f(x, f(f(f(x,x), f(y, d)), f(d, d))));
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expr b = abst_body(t);
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expr r = replacer(b);
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std::cout << r << "\n";
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lean_assert(r == Fun({y, A}, f(c, f(f(f(c,c), f(y, d)), f(d, d)))));
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for (auto p : trace) {
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std::cout << p.first << " --> " << p.second << "\n";
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}
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lean_assert(trace[c] == Var(1));
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std::cout << arg(arg(abst_body(r), 2), 2) << "\n";
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lean_assert(arg(arg(abst_body(r), 2), 2) == f(d,d));
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lean_assert(trace.find(arg(arg(abst_body(r), 2), 2)) == trace.end());
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lean_assert(trace.find(abst_body(r)) != trace.end());
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lean_assert(trace.find(arg(abst_body(r), 2)) != trace.end());
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lean_assert(trace.find(arg(arg(abst_body(r), 2), 1)) != trace.end());
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lean_assert(trace.find(arg(arg(arg(abst_body(r), 2), 1), 1)) != trace.end());
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lean_assert(trace.find(arg(arg(arg(abst_body(r), 2), 1), 2)) == trace.end());
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}
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int main() {
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tst1();
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tst2();
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tst3();
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std::cout << "done" << "\n";
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return has_violations() ? 1 : 0;
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}
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