450 lines
15 KiB
C++
450 lines
15 KiB
C++
/* @file random_tree_ops.hpp **/
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#include "randomgen/xoshiro256.hpp"
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#include "indentlog/scope.hpp"
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#include "indentlog/print/tag.hpp"
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#include "indentlog/print/vector.hpp"
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#include "catch2/catch.hpp"
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#include <algorithm>
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#include <map>
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#include <vector>
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namespace utest {
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struct Util {
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/* generate vector with integers [0.. n-1] */
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static std::vector<std::uint32_t> vector_upto(std::uint32_t n) {
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std::vector<std::uint32_t> u(n);
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for (std::uint32_t i = 0; i < n; ++i)
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u[i] = i;
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return u;
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} /*vector_upto*/
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static std::map<std::uint32_t, std::uint32_t>
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map_upto(std::uint32_t n)
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{
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std::map<std::uint32_t, std::uint32_t> m;
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for(std::uint32_t i=0; i<n; ++i) {
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m[i] = i;
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}
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return m;
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} /*map_upto*/
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/* generate random permutation of integers [0.. n-1] */
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static std::vector<uint32_t>
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random_permutation(uint32_t n, xo::rng::xoshiro256ss *p_rgen) {
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/* vector [0 .. n-1] */
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std::vector<uint32_t> u = vector_upto(n);
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/* shuffle to get unpredictable permutation */
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std::shuffle(u.begin(), u.end(), *p_rgen);
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return u;
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} /*random_permutation*/
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}; /*Util*/
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/* note: trivial REQUIRE() call in else branch bc we still want
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* catch2 to count assertions when verification succeeds
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*/
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# define REQUIRE_ORCAPTURE(ok_flag, catch_flag, expr) \
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if (catch_flag) { \
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REQUIRE((expr)); \
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} else { \
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REQUIRE(true); \
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ok_flag &= (expr); \
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}
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# define REQUIRE_ORFAIL(ok_flag, catch_flag, expr) \
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REQUIRE_ORCAPTURE(ok_flag, catch_flag, expr); \
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if (!ok_flag) \
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return ok_flag
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template <typename Tree>
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struct TreeUtil : public Util {
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static bool
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test_clear(bool catch_flag,
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Tree * p_tree)
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{
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bool ok_flag = true;
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REQUIRE_ORFAIL(ok_flag, catch_flag, p_tree->verify_ok());
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p_tree->clear();
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REQUIRE_ORFAIL(ok_flag, catch_flag, p_tree->verify_ok(catch_flag));
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REQUIRE_ORFAIL(ok_flag, catch_flag, p_tree->empty());
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REQUIRE_ORFAIL(ok_flag, catch_flag, p_tree->size() == 0);
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return ok_flag;
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} /*test_clear*/
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/* do n random inserts (taken from *p_rgen) into *p_rbtreẹ
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* inserted keys will be distinct values in [0, .., n-1]
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*/
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static bool
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random_inserts(std::uint32_t n,
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bool catch_flag,
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xo::rng::xoshiro256ss * p_rgen,
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Tree * p_tree)
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{
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using xo::xtag;
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bool ok_flag = true;
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xo::scope log(XO_DEBUG(catch_flag));
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REQUIRE_ORFAIL(ok_flag, catch_flag, p_tree->verify_ok());
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/* n keys 0..n-1 */
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std::vector<std::uint32_t> u(n);
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for(std::uint32_t i=0; i<n; ++i)
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u[i] = i;
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/* shuffle to get unpredictable insert order */
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std::shuffle(u.begin(), u.end(), *p_rgen);
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/* insert keys according to permutation u */
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uint32_t i = 1;
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for(uint32_t x : u) {
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log && log(xtag("i", i), xtag("n", n), xtag("key", x));
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/* .first: iterator @ insert position
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* .second: true if insert occurred (ịẹ tree size incremented)
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*/
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auto insert_result = p_tree->insert(typename Tree::value_type(x, 10 * x));
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REQUIRE_ORFAIL(ok_flag, catch_flag, p_tree->verify_ok(catch_flag));
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REQUIRE_ORFAIL(ok_flag, catch_flag, insert_result.second);
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/* verify: iterator returned by Treẹinsert(), refers to inserted key,value pair */
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log && log(xtag("iter.node", insert_result.first.node()));
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REQUIRE_ORFAIL(ok_flag, catch_flag, insert_result.first->first == x);
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REQUIRE_ORFAIL(ok_flag, catch_flag, insert_result.first->second == 10 * x);
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++i;
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}
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REQUIRE_ORFAIL(ok_flag, catch_flag, p_tree->size() == n);
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return ok_flag;
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} /*random_inserts*/
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/* do n random removes (taken from *p_rgen) from *p_rbtree;
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* assumes *p_rbtree has keys [0 .. n-1] where n=p_rbtreẹsize
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*/
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static bool
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random_removes(bool catch_flag,
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xo::rng::xoshiro256ss * p_rgen,
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Tree * p_tree)
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{
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using xo::scope;
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using xo::xtag;
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bool ok_flag = true;
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xo::scope log(XO_DEBUG(catch_flag));
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REQUIRE_ORFAIL(ok_flag, catch_flag, p_tree->verify_ok(catch_flag));
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uint32_t n = p_tree->size();
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/* random permutation of keys in *p_tree */
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std::vector<std::uint32_t> u
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= random_permutation(n, p_rgen);
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log && log(xtag("remove-order", u));
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/* will keep track of which keys remain as we move them */
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std::map<std::uint32_t, std::uint32_t> m = Util::map_upto(n);
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/* remove keys in permutation order */
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std::uint32_t i = 1;
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for (std::uint32_t x : u) {
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log && log("iter i: removing key from n-node tree",
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xtag("i", i), xtag("key", x), xtag("n", n));
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/* remove x from tracking map m also */
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m.erase(x);
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log && log("remove key :iter ", i, "/", n, xtag("key", x));
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p_tree->erase(x);
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// rbtreẹdisplay();
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REQUIRE_ORFAIL(ok_flag, catch_flag, p_tree->size() == n-i);
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/* amongst other things, this guarantees that keys in *p_tree
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* appear in increasing order
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*/
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REQUIRE_ORFAIL(ok_flag, catch_flag, p_tree->verify_ok(catch_flag));
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#ifdef NOT_YET
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/* 1. rbtree should now contain all the keys in [0..n-1],
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* with u[0]..u[i-1] excluded; this is the same as the
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* contents of m.
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*/
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auto m_ix = m.begin();
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auto m_end_ix = m.end();
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auto visitor_fn =
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([&m_ix, m_end_ix]
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(std::pair<int, double> const & contents)
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{
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REQUIRE(m_ix != m_end_ix);
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REQUIRE(contents.first == m_ix->second);
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++m_ix;
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});
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p_tree->visit_inorder(visitor_fn);
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#endif
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++i;
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}
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REQUIRE_ORFAIL(ok_flag, catch_flag, m.empty());
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REQUIRE_ORFAIL(ok_flag, catch_flag, p_tree->size() == 0);
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log.end_scope();
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return ok_flag;
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} /*random_removes*/
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/* Require:
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* - tree has keys [0..n-1], where n=treẹsize()
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* - for each key k, associated value is 10*k
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*/
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static bool
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random_lookups(bool catch_flag,
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Tree const & tree,
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xo::rng::xoshiro256ss * p_rgen)
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{
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using xo::scope;
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using xo::xtag;
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xo::scope log(XO_DEBUG(catch_flag));
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/* -> false if/when verification fails */
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bool ok_flag = true;
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REQUIRE_ORFAIL(ok_flag, catch_flag, tree.verify_ok(catch_flag));
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size_t n = tree.size();
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std::vector<std::uint32_t> u
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= random_permutation(n, p_rgen);
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/* lookup keys in permutation order */
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std::uint32_t i = 1;
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for (std::uint32_t x : u) {
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INFO(tostr(xtag("i", i), xtag("n", n), xtag("x", x)));
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REQUIRE_ORFAIL(ok_flag, catch_flag, tree[x] == x*10);
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REQUIRE_ORFAIL(ok_flag, catch_flag, tree.verify_ok(catch_flag));
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REQUIRE_ORFAIL(ok_flag, catch_flag, tree.size() == n);
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/* also test treẹfind() */
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auto find_ix = tree.find(x);
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REQUIRE_ORFAIL(ok_flag, catch_flag, find_ix != tree.end());
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REQUIRE_ORFAIL(ok_flag, catch_flag, find_ix->first == x);
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REQUIRE_ORFAIL(ok_flag, catch_flag, find_ix->second == x*10);
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++i;
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}
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REQUIRE_ORFAIL(ok_flag, catch_flag, tree.size() == n);
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log.end_scope();
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return ok_flag;
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} /*random_lookups*/
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/* Require:
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* - tree has keys [0..n-1], where n=treẹsize()
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* - tree value at key k is dvalue+10*k
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*/
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static bool
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check_ordinal_lookup(std::uint32_t dvalue,
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bool catch_flag,
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Tree const & tree)
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{
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using xo::scope;
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using xo::xtag;
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/* -> false if/when verification fails */
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bool ok_flag = true;
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xo::scope log(XO_DEBUG(catch_flag));
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std::size_t const n = tree.size();
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std::size_t i = 0;
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log && log("tree with size n", xtag("n", n));
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for (std::size_t i=0; i<n; ++i) {
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typename Tree::const_iterator ix;
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try {
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ix = tree.find_ith(i); /* find_ith() may throw if broken */
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} catch(...) {
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if (catch_flag)
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throw;
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}
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REQUIRE_ORFAIL(ok_flag, catch_flag, ix.is_dereferenceable());
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REQUIRE_ORFAIL(ok_flag, catch_flag, (ix != tree.end()));
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REQUIRE_ORFAIL(ok_flag, catch_flag, (ix->first == i));
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REQUIRE_ORFAIL(ok_flag, catch_flag, (ix->second == 10*i + dvalue));
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}
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log.end_scope();
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return ok_flag;
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} /*check_ordinal_lookup*/
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/* Require:
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* - tree has keys [0..n-1], where n=treẹsize()
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* - tree values at key k is dvalue+10*k
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*
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* catch_flag. true -> log to console + interact with catch2
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* false -> verify iteration behavior for return code
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*/
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static bool
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check_bidirectional_iterator(uint32_t dvalue,
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bool catch_flag,
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Tree const & tree)
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{
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using xo::scope;
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using xo::xtag;
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/* -> false if/when verification fails */
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bool ok_flag = true;
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std::size_t const n = tree.size();
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xo::scope log(XO_DEBUG(catch_flag));
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log && log("tree with size n", xtag("n", n));
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{
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std::size_t i = 0;
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auto end_ix = tree.end();
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log && log(xtag("end_ix", end_ix));
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auto begin_ix = tree.begin();
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auto ix = begin_ix;
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int last_key = -1;
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while (ix != end_ix) {
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log && log("forward loop top",
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xtag("i", i),
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xtag("ix", ix));
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REQUIRE_ORFAIL(ok_flag, catch_flag, ix->first == i);
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REQUIRE_ORFAIL(ok_flag, catch_flag, ix->second == dvalue + 10*i);
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if(i > 0) {
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REQUIRE_ORFAIL(ok_flag, catch_flag, ix->first > last_key);
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}
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last_key = ix->first;
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++i;
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++ix;
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log && log("forward loop bottom",
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xtag("last_key", last_key),
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xtag("next ix", ix));
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}
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/* should have visited exactly n locations */
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REQUIRE_ORFAIL(ok_flag, catch_flag, i == n);
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REQUIRE_ORFAIL(ok_flag, catch_flag, ix == end_ix);
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log && log(xtag("ix", ix), xtag("begin_ix", begin_ix));
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/* now run iterator backwards,
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* starting from "one past the end"
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*/
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if(ix != begin_ix) {
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do {
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--i;
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--ix;
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log && log("forward backup",
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xtag("i", i),
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xtag("ix", ix));
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REQUIRE_ORFAIL(ok_flag, catch_flag, ix.is_dereferenceable());
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log && log(xtag("ix.first", (*ix).first));
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REQUIRE_ORFAIL(ok_flag, catch_flag, (*ix).first == i);
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} while (ix != begin_ix);
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}
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/* should have visited exactly n locations in reverse */
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REQUIRE_ORFAIL(ok_flag, catch_flag, i == 0);
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}
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/* ----- reverse iterators ----- */
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{
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std::int64_t i = n - 1;
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auto rbegin_ix = tree.rbegin();
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auto rend_ix = tree.rend();
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auto rix = rbegin_ix;
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int last_key = -1;
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while (rix != rend_ix) {
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log && log("reverse loop top",
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xtag("i", i),
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xtag("rix", rix));
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REQUIRE_ORFAIL(ok_flag, catch_flag, rix->first == i);
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REQUIRE_ORFAIL(ok_flag, catch_flag, rix->second == dvalue + 10*i);
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if (i < n-1) {
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REQUIRE_ORFAIL(ok_flag, catch_flag, rix->first < last_key);
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}
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last_key = rix->first;
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--i;
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++rix;
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log && log("reverse loop bottom",
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xtag("last_key", last_key),
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xtag("next ix", rix));
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}
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/* should have visited exactly n locations */
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REQUIRE_ORFAIL(ok_flag, catch_flag, i == -1);
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log && log(xtag("rbegin_ix", rbegin_ix));
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/* now run reverse iterator backwrds,
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* starting from "one before the beginning"
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*/
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if (rix != rbegin_ix) {
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do {
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++i;
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--rix;
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log && log("reverse backup",
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xtag("i", i),
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xtag("rix", rix),
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xtag("rix.first", rix->first));
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REQUIRE_ORFAIL(ok_flag, catch_flag, (*rix).first == i);
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} while (rix != rbegin_ix);
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}
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/* should have visited exactly n locations in reversê2 */
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REQUIRE_ORFAIL(ok_flag, catch_flag, i == n - 1);
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}
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log.end_scope();
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return ok_flag;
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} /*check_bidirectional_iterator*/
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}; /*TreeUtil*/
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} /*namespace utest*/
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/* end random_tree_ops.hpp */
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