570 lines
27 KiB
C++
570 lines
27 KiB
C++
/*
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IterZip(Test) - verify the iterator-combining iterator
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Copyright (C)
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2024, Hermann Vosseler <Ichthyostega@web.de>
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**Lumiera** is free software; you can redistribute it and/or modify it
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under the terms of the GNU General Public License as published by the
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Free Software Foundation; either version 2 of the License, or (at your
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option) any later version. See the file COPYING for further details.
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* *****************************************************************/
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/** @file iter-stack-test.cpp
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** unit test \ref IterZip_test
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*/
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#include "lib/test/run.hpp"
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#include "lib/iter-zip.hpp"
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#include "lib/iter-explorer.hpp"
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#include "lib/test/test-helper.hpp"
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#include "lib/test/diagnostic-output.hpp"/////////////TODO
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#include "lib/format-util.hpp"
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#include "lib/util.hpp"
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#include <array>
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#include <vector>
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namespace lib {
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namespace test{
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using util::join;
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using util::isnil;
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using util::noneg;
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using LERR_(ITER_EXHAUST);
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using lib::meta::forEach;
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using lib::meta::mapEach;
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using std::make_tuple;
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using std::tuple;
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using std::get;
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namespace {// Test Fixture ...
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auto num5() { return NumIter{0,5}; }
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template<uint N, uint S=0>
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auto numS() { return explore(num5()).transform([](int i){ return i*N + S; }); }
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auto num31(){ return numS<3,1>(); }
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auto num32(){ return numS<3,2>(); }
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auto num33(){ return numS<3,3>(); }
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auto hexed = [](int i){ return util::showHash(i,1); };
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/** Diagnostic helper: join all the elements from the iterator */
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template<class II>
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inline string
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materialise (II&& ii)
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{
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return util::join (std::forward<II> (ii), "-");
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}
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}
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#define TYPE(_EXPR_) showType<decltype(_EXPR_)>()
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/*********************************************************************************//**
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* @test demonstrate construction and verify behaviour of a combined-iterator builder.
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* - construction from arbitrary arguments by tuple-mapping a builder function
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* - defining the operation on the product type by lifting individual operations
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* - use the library building blocks to construct a zip-iter-builder
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* - iterate a mix of source iterators and containers
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* - apply additional processing logic by pipelining
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* @see IterExplorer
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* @see IterExplorer_test
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*/
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class IterZip_test : public Test
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{
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virtual void
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run (Arg)
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{
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simpleUsage();
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test_Fixture();
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demo_mapToTuple();
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demo_construction();
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verify_iteration();
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verify_references();
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verify_pipelining();
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verify_exploration();
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}
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/** @test demonstrate combined iteration */
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void
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simpleUsage()
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{
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auto a = std::array{1u,2u,3u};
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auto v = std::vector{{2l,3l}};
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// loop over both in lockstep
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for (auto [u,l] : zip(a,v))
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CHECK (u + 1 == l);
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// iterate-with index
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auto it = izip(v);
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CHECK (it);
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CHECK (*it == "«tuple<ulong, long&>»──(0,2)"_expect );
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++it;
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CHECK (*it == "«tuple<ulong, long&>»──(1,3)"_expect );
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CHECK (it);
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++it;
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CHECK (not it);
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VERIFY_ERROR (ITER_EXHAUST, *it );
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VERIFY_ERROR (ITER_EXHAUST, ++it );
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}
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/** @test demonstrate how the test Fixture is used */
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void
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test_Fixture()
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{
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CHECK (materialise (num5() ) == "0-1-2-3-4"_expect);
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CHECK (materialise (num31() ) == "1-4-7-10-13"_expect);
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CHECK (materialise (num33() ) == "3-6-9-12-15"_expect);
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CHECK (materialise (num32()
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.transform(hexed)
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) == "02-05-08-0B-0E"_expect);
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}
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/** @test demonstrate to apply a function to tuple contents */
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void
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demo_mapToTuple()
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{
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auto t1 = make_tuple (41u, 0.61803, '6');
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CHECK (t1 == "«tuple<uint, double, char>»──(41,0.61803,6)"_expect );
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auto t1f = mapEach (t1, [](auto v){ return v+1; });
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CHECK (t1f == "«tuple<uint, double, int>»──(42,1.61803,55)"_expect ); // ASCII('6') ≙ 54 promoted to int
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auto t1ff = mapEach (t1, [](auto& v){ v += 1; return v; });
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CHECK (t1ff == "«tuple<uint, double, char>»──(42,1.61803,7)"_expect );
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CHECK (t1f == "«tuple<uint, double, int>»──(42,1.61803,55)"_expect );
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CHECK (t1 == "«tuple<uint, double, char>»──(42,1.61803,7)"_expect ); // src-tuple t1 affected by side-effect
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// tuple may hold a reference....
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tuple<char, char&> t2{get<2>(t1), get<2>(t1ff)};
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CHECK (t2 == "«tuple<char, char&>»──(7,7)"_expect );
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auto t2f = mapEach (t2, [](auto& v){ v -= 1; return v; });
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CHECK (t2f == "«tuple<char, char>»──(6,6)"_expect ); // function-result is value, thus res-tuple holds values
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CHECK (t2 == "«tuple<char, char&>»──(6,6)"_expect); // ...but src-tuple t2 was affected by side-effect
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CHECK (t1ff == "«tuple<uint, double, char>»──(42,1.61803,6)"_expect ); // ...which in turn holds a ref, so value in t1ff changed
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CHECK (t1 == "«tuple<uint, double, char>»──(42,1.61803,7)"_expect ); // ...while the other one was picked by value => t1 unchanged
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// function may return references....
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auto refr = [](auto&& v) -> decltype(auto) { return v; };
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int five = 5;
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CHECK (TYPE (refr(five)) == "int&"_expect);
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CHECK (TYPE (refr(5 )) == "int&"_expect);
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auto t2r = mapEach (t2, refr);
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CHECK (t2r == "«tuple<char&, char&>»──(6,6)"_expect ); // function yields references, which are placed into res-tuple
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forEach (t2r, [](auto& v){ v +=23; });
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CHECK (t2r == "«tuple<char&, char&>»──(M,M)"_expect ); // apply operation with side-effect to the last res-tuple t2r
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CHECK (t2 == "«tuple<char, char&>»──(M,M)"_expect ); // the referred src-tuple t2 is also affected
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CHECK (t2f == "«tuple<char, char>»──(6,6)"_expect ); // (while previously constructed t2f holds values unaffected)
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CHECK (t1 == "«tuple<uint, double, char>»──(42,1.61803,7)"_expect ); // the first elm in t2 was bound by value, so no side-effect
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CHECK (t1ff == "«tuple<uint, double, char>»──(42,1.61803,M)"_expect ); // but the second elm in t2 was bound by ref to t1ff
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}
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template<typename...ITS>
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auto
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buildIterTuple (ITS&& ...iters)
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{
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return make_tuple (lib::explore (std::forward<ITS> (iters)) ...);
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}
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/** @test demonstrate how a tuple-zipping iterator can be constructed */
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void
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demo_construction()
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{
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// let's start with the basics...
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// We can use lib::explore() to construct a suitable iterator,
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// and thus we can apply it to each var-arg and place the results into a tuple
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auto arry = std::array{3u,2u,1u};
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auto iTup = buildIterTuple (num5(), arry);
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CHECK (TYPE(iTup) == "tuple<IterExplorer<iter_explorer::BaseAdapter<NumIter<int> > >, "
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"IterExplorer<iter_explorer::BaseAdapter<iter_explorer::StlRange<array<uint, 3ul>&> > > >"_expect);
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// and we can use them as iterators...
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auto iterate_it = [](auto& it){ ++it; };
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auto access_val = [](auto& it){ return *it; };
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forEach (iTup, iterate_it);
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auto vTup = mapEach (iTup, access_val);
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CHECK (vTup == "«tuple<int, uint>»──(1,2)"_expect);
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using ITup = decltype(iTup);
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// Next step: define a »product iterator«
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// by mapping down each of the base operations onto the tuple elements
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struct ProductCore
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{
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ITup iters_;
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ProductCore(ITup&& iterTup)
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: iters_{move (iterTup)}
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{ }
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/* === »state core« protocol API === */
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bool
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checkPoint() const
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{
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bool active{true}; // note: optimiser can unroll this
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forEach (iters_, [&](auto& it){ active = active and bool(it); });
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return active;
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}
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ITup&
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yield() const
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{
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return unConst(iters_); // ◁─────────────── note: we expose the iterator-tuple itself as »product«
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}
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void
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iterNext()
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{
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forEach (iters_, [](auto& it){ ++it; });
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}
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};
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// ....and now we're essentially set!
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// use library building blocks to construct a tuple-iter-explorer...
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auto ii = explore (ProductCore{buildIterTuple (num5(), arry)})
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.transform ([&](ITup& iTup){ return mapEach (iTup, access_val); })
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;
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// hold onto your hat!!!
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CHECK (TYPE(ii) == "IterExplorer<"
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"IterableDecorator<"
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"tuple<int, uint>, " // ◁──────────────────────────────── this is the overall result type
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"CheckedCore<"
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"iter_explorer::Transformer<" // ◁──────────────────────────────── the top-layer is a Transformer (to access the value from each src-iter)
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"iter_explorer::BaseAdapter<"
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"IterableDecorator<" // ◁──────────────────────────── the product-iterator we constructed
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"tuple<" // ◁──────────────────────────── ....exposing the iterator-tuple as „result“
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"IterExplorer<" // ◁───────────────────────────────── the first source iterator (directly wrapping NumIter)
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"iter_explorer::BaseAdapter<NumIter<int> > >, "
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"IterExplorer<" // ◁───────────────────────────────── the second source iterator (based on a STL collection)
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"iter_explorer::BaseAdapter<"
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"iter_explorer::StlRange<array<uint, 3ul>&> "
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"> "
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"> "
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">, "
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"CheckedCore<" // ◁──────────────────────────── ....and using the given ProductCore as »state core«
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"IterZip_test::demo_construction()::ProductCore> > >, "
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"tuple<int, uint> " // ◁──────────────────────────────── back to top-layer: result-type of the Transformer
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"> "
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"> "
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"> "
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">"_expect);
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// ....
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// This is indeed a valid iterator,
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// that can be iterated for three steps
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// (limited by the shorter sequence from the array)
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// (first value from num5(), second from the array)
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CHECK (materialise (ii) == "«tuple<int, uint>»──(0,3)-"
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"«tuple<int, uint>»──(1,2)-"
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"«tuple<int, uint>»──(2,1)"_expect);
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}
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/** @test create various product (tuple) iterators
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* from mixed source iterators and verify basic iteration.
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*/
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void
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verify_iteration()
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{
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CHECK (materialise (
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zip (num31(), num32(), num33())
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)
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== "«tuple<uint&, uint&, uint&>»──(1,2,3)-"
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"«tuple<uint&, uint&, uint&>»──(4,5,6)-"
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"«tuple<uint&, uint&, uint&>»──(7,8,9)-"
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"«tuple<uint&, uint&, uint&>»──(10,11,12)-"
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"«tuple<uint&, uint&, uint&>»──(13,14,15)"_expect);
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CHECK (materialise(
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izip (num31(), num32(), num33())
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)
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== "«tuple<ulong, uint&, uint&, uint&>»──(0,1,2,3)-"
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"«tuple<ulong, uint&, uint&, uint&>»──(1,4,5,6)-"
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"«tuple<ulong, uint&, uint&, uint&>»──(2,7,8,9)-"
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"«tuple<ulong, uint&, uint&, uint&>»──(3,10,11,12)-"
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"«tuple<ulong, uint&, uint&, uint&>»──(4,13,14,15)"_expect);
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auto s6 = std::array{1,1,2,3,5,8};
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auto s3 = {3,2,1};
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auto s0 = eachNum(5u,5u);
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CHECK (TYPE(s6) == "array<int, 6ul>"_expect );
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CHECK (TYPE(s3) == "initializer_list<int>"_expect );
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CHECK (TYPE(s0) == "NumIter<uint>"_expect );
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CHECK (materialise (
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zip (s6,s6,s6,eachNum('a'))
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)
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== "«tuple<int&, int&, int&, char>»──(1,1,1,a)-"
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"«tuple<int&, int&, int&, char>»──(1,1,1,b)-"
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"«tuple<int&, int&, int&, char>»──(2,2,2,c)-"
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"«tuple<int&, int&, int&, char>»──(3,3,3,d)-"
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"«tuple<int&, int&, int&, char>»──(5,5,5,e)-"
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"«tuple<int&, int&, int&, char>»──(8,8,8,f)"_expect);
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CHECK (materialise (
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zip (s6,s3,s6,eachNum('a'))
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)
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== "«tuple<int&, int const&, int&, char>»──(1,3,1,a)-"
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"«tuple<int&, int const&, int&, char>»──(1,2,1,b)-"
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"«tuple<int&, int const&, int&, char>»──(2,1,2,c)"_expect);
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CHECK (isnil (s0));
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CHECK (materialise (
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zip (s0,s3,s6,eachNum('a'))
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)
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== ""_expect);
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CHECK (materialise (
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zip (eachNum('a'),eachNum(-1),s0,s0)
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)
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== ""_expect);
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CHECK (materialise (
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zip (eachNum('a'),eachNum(-1),s3,s0)
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)
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== ""_expect);
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CHECK (materialise (
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zip (eachNum('a'),eachNum(-1),s3,s3)
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)
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== "«tuple<char, int, int const&, int const&>»──(a,-1,3,3)-"
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"«tuple<char, int, int const&, int const&>»──(b,0,2,2)-"
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"«tuple<char, int, int const&, int const&>»──(c,1,1,1)"_expect);
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// a wild mix of data sources,
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// including infinite and virtual ones....
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CHECK (materialise (
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izip (s6 // a STL container given by reference
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,explore(s6).filter([](int i){ return i%2; }) // IterExplorer pipeline with filtering
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,numS<17,170>().transform(hexed) // IterExplorer pipeline with transformer and object value result
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,eachNum((1+sqrt(5))/2) // a Lumiera iterator which happens to be almost inexhaustible
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,explore(s3).asIterSource() // an IterSource, which is a virtual (OO) iterator interface
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)
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)
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== "«tuple<ulong, int&, int&, string&, double, int const&>»──(0,1,1,AA,1.618034,3)-"
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"«tuple<ulong, int&, int&, string&, double, int const&>»──(1,1,1,BB,2.618034,2)-"
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"«tuple<ulong, int&, int&, string&, double, int const&>»──(2,2,3,CC,3.618034,1)"_expect);
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}
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/** @test verify pass-through of references */
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void
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verify_references()
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{
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auto vec = std::vector{1,5};
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auto arr = std::array{2,3};
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// Case-1 ------
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auto i1 = izip (vec,arr);
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CHECK (*i1 == "«tuple<ulong, int&, int&>»──(0,1,2)"_expect ); // initial state points to the first elements, prefixed with index≡0
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get<1>(*i1) = 5; // manipulate through the exposed reference
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CHECK (*i1 == "«tuple<ulong, int&, int&>»──(0,5,2)"_expect ); // effect of manipulation is visible
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CHECK (join(vec) == "5, 5"_expect ); // manipulation indeed flipped the first element in the vector
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CHECK (join(arr) == "2, 3"_expect ); // (while the array remains unaffected)
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// Case-2 ------
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auto i2 = izip (explore(vec).transform([](uint v){ return v-1; }) // this time the first iterator is a pipeline with a transformer
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,arr); // while the second one is again a direct iteration of the array
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CHECK (*i2 == "«tuple<ulong, uint&, int&>»──(0,4,2)"_expect ); // again can see the first elements, and the effect of the transformer
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get<0>(*i2) = 9; // manipulate complete result tuple
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get<1>(*i2) = 9;
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get<2>(*i2) = 9;
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CHECK (*i2 == "«tuple<ulong, uint&, int&>»──(9,9,9)"_expect ); // effect of the manipulation is visible
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++i2; // ...but iteration re-uses the internal result-tuple storage
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CHECK (*i2 == "«tuple<ulong, uint&, int&>»──(1,4,3)"_expect ); // and so the effect of the manipulation seems gone
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CHECK (join(vec) == "5, 5"_expect ); // ...which is in fact true for the vector, due to the transformer
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CHECK (join(arr) == "9, 3"_expect ); // ...while the array could be reached through the reference
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}
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/** @test the result is actually an IterExplorer pipeline builder,
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* which can be used to attach further processing downstream.
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* @note the design of IterExplorer inherently requires that
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* generic lambdas accept the _iterator type_ by reference;
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* structural bindings can only be used in a second step.
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*/
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void
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verify_pipelining()
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{
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// for reference: this is the base data.......
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CHECK (materialise (
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zip (num31(), num32(), num33())
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)
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== "«tuple<uint&, uint&, uint&>»──(1,2,3)-"
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"«tuple<uint&, uint&, uint&>»──(4,5,6)-"
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"«tuple<uint&, uint&, uint&>»──(7,8,9)-"
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"«tuple<uint&, uint&, uint&>»──(10,11,12)-"
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"«tuple<uint&, uint&, uint&>»──(13,14,15)"_expect);
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// transform the tuple into another data value
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CHECK (materialise (
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zip (num31(), num32(), num33())
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. transform([](auto& it){ auto [a,b,c] = *it;
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return a+b+c;
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})
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)
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== "6-15-24-33-42"_expect);
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// filter tuples based on inspecting contents
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CHECK (materialise (
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zip (num31(), num32(), num33())
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. filter ([](auto& it){ auto [a,b,c] = *it;
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return not ((a+b+c) % 2);
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})
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)
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||
== "«tuple<uint&, uint&, uint&>»──(1,2,3)-"
|
||
"«tuple<uint&, uint&, uint&>»──(7,8,9)-"
|
||
"«tuple<uint&, uint&, uint&>»──(13,14,15)"_expect);
|
||
|
||
// reduce with accessor and std::plus
|
||
CHECK (zip (num31(), num32(), num33())
|
||
. reduce ([](auto& it){ auto [a,b,c] = *it;
|
||
return a+b+c;
|
||
})
|
||
== 6+15+24+33+42);
|
||
}
|
||
|
||
|
||
|
||
/** @test verify the interplay of _child expansion_ and tuple-zipping.
|
||
* @remark the expansion mechanism implies that a _child sequence_ is generated
|
||
* by an _expand functor,_ based on the current iterator value at that point.
|
||
* The tricky part here is that this expand functor can sit somewhere in the
|
||
* source iterators, while the actual signal to expand is sent from »downstream«
|
||
* and has to be propagated to all children.
|
||
* Thus two expander-setups are demonstrated first, and then triggered from
|
||
* a combined iterator, dispatching the trigger over the tuple-zipping step.
|
||
* - the expansion-sequences unfold the same in each case
|
||
* - the shortest sequence terminates the overall zip()-evaluation
|
||
* - when generating the `expandChildrem()` call _after_ the `zip()`,
|
||
* it is also passed to other iterators that have no expand-functor defined;
|
||
* for those, it is absorbed without effect. Now, since the expandAll()
|
||
* actually works by replacing the iterate() by expandChildern(), this means
|
||
* that the _other sequences_ just do not make any progress.
|
||
*/
|
||
void
|
||
verify_exploration()
|
||
{
|
||
CHECK (materialise (
|
||
num31()
|
||
)
|
||
== "1-4-7-10-13"_expect);
|
||
|
||
CHECK (materialise (
|
||
explore(num31())
|
||
.expand ([](int i){ return NumIter{noneg(i-1),i}; })
|
||
.expandAll()
|
||
)
|
||
== "1-0-4-3-2-1-0-7-6-5-4-3-2-1-0-10-9-8-7-6-5-4-3-2-1-0-13-12-11-10-9-8-7-6-5-4-3-2-1-0"_expect);
|
||
|
||
CHECK (materialise (
|
||
explore(num31())
|
||
.expand ([](int i){ return NumIter{noneg(i-2),i-1}; })
|
||
.expandAll()
|
||
)
|
||
== "1-4-2-0-7-5-3-1-10-8-6-4-2-0-13-11-9-7-5-3-1"_expect);
|
||
|
||
CHECK (materialise (
|
||
zip
|
||
( eachNum(10)
|
||
, explore(num31())
|
||
.expand ([](int i){ return NumIter{noneg(i-1),i}; })
|
||
.expandAll() // ◁────────────────────────────────────────────── expand triggered in source pipeline, before the zip()
|
||
, explore(num31())
|
||
.expand ([](int i){ return NumIter{noneg(i-2),i-1}; })
|
||
.expandAll()
|
||
)
|
||
)
|
||
== "«tuple<int, uint, uint>»──(10,1,1)-"
|
||
"«tuple<int, uint, uint>»──(11,0,4)-"
|
||
"«tuple<int, uint, uint>»──(12,4,2)-"
|
||
"«tuple<int, uint, uint>»──(13,3,0)-"
|
||
"«tuple<int, uint, uint>»──(14,2,7)-"
|
||
"«tuple<int, uint, uint>»──(15,1,5)-"
|
||
"«tuple<int, uint, uint>»──(16,0,3)-"
|
||
"«tuple<int, uint, uint>»──(17,7,1)-"
|
||
"«tuple<int, uint, uint>»──(18,6,10)-"
|
||
"«tuple<int, uint, uint>»──(19,5,8)-"
|
||
"«tuple<int, uint, uint>»──(20,4,6)-"
|
||
"«tuple<int, uint, uint>»──(21,3,4)-"
|
||
"«tuple<int, uint, uint>»──(22,2,2)-"
|
||
"«tuple<int, uint, uint>»──(23,1,0)-"
|
||
"«tuple<int, uint, uint>»──(24,0,13)-"
|
||
"«tuple<int, uint, uint>»──(25,10,11)-"
|
||
"«tuple<int, uint, uint>»──(26,9,9)-"
|
||
"«tuple<int, uint, uint>»──(27,8,7)-"
|
||
"«tuple<int, uint, uint>»──(28,7,5)-"
|
||
"«tuple<int, uint, uint>»──(29,6,3)-"
|
||
"«tuple<int, uint, uint>»──(30,5,1)"_expect);
|
||
|
||
CHECK (materialise (
|
||
zip
|
||
( eachNum(10)
|
||
, explore(num31())
|
||
.expand ([](int i){ return NumIter{noneg(i-1),i}; })
|
||
, explore(num31())
|
||
.expand ([](int i){ return NumIter{noneg(i-2),i-1}; })
|
||
)
|
||
.expandAll() // ◁──────────┲━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━━ note the difference: expand triggered after the zip()
|
||
) // ▽
|
||
== "«tuple<int, uint, uint>»──(10,1,1)-"
|
||
"«tuple<int, uint, uint>»──(10,0,4)-"
|
||
"«tuple<int, uint, uint>»──(10,4,2)-"
|
||
"«tuple<int, uint, uint>»──(10,3,0)-"
|
||
"«tuple<int, uint, uint>»──(10,2,7)-"
|
||
"«tuple<int, uint, uint>»──(10,1,5)-"
|
||
"«tuple<int, uint, uint>»──(10,0,3)-"
|
||
"«tuple<int, uint, uint>»──(10,7,1)-"
|
||
"«tuple<int, uint, uint>»──(10,6,10)-"
|
||
"«tuple<int, uint, uint>»──(10,5,8)-"
|
||
"«tuple<int, uint, uint>»──(10,4,6)-"
|
||
"«tuple<int, uint, uint>»──(10,3,4)-"
|
||
"«tuple<int, uint, uint>»──(10,2,2)-"
|
||
"«tuple<int, uint, uint>»──(10,1,0)-"
|
||
"«tuple<int, uint, uint>»──(10,0,13)-"
|
||
"«tuple<int, uint, uint>»──(10,10,11)-"
|
||
"«tuple<int, uint, uint>»──(10,9,9)-"
|
||
"«tuple<int, uint, uint>»──(10,8,7)-"
|
||
"«tuple<int, uint, uint>»──(10,7,5)-"
|
||
"«tuple<int, uint, uint>»──(10,6,3)-"
|
||
"«tuple<int, uint, uint>»──(10,5,1)"_expect);
|
||
}
|
||
};
|
||
|
||
|
||
LAUNCHER (IterZip_test, "unit common");
|
||
|
||
|
||
}} // namespace lib::test
|