Only minor rearrangements necessary to make that possible with C++20
And while at this change (which requires a full rebuild of Lumiera)
- simplify the defined comparison operators, as C++20 can infer most variations
- also mark various usages of `const char*` either as Literal or CStr
Remark: regarding copyright, up to now this is entirely my work,
with two major creation steps in 2008 (conception) and
in 2017 (introduction of a symbol table)
483 lines
19 KiB
C++
483 lines
19 KiB
C++
/*
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LazyInit(Test) - verify a mechanism to install a self-initialising functor
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Copyright (C)
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2023, 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 lazy-init-test.cpp
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** unit test \ref LazyInit_test
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*/
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#include "lib/test/run.hpp"
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#include "lib/test/test-helper.hpp"
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#include "lib/lazy-init.hpp"
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#include "lib/meta/util.hpp"
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#include "lib/util.hpp"
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#include <memory>
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namespace lib {
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namespace test{
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using util::isSameObject;
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using lib::meta::isFunMember;
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using lib::meta::disable_if_self;
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using err::LUMIERA_ERROR_LIFECYCLE;
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using std::make_unique;
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/***********************************************************************************//**
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* @test Verify a mix-in to allow for lazy initialisation of complex infrastructure
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* tied to a std::function; the intention is to have a »trap« hidden in the
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* function itself to trigger on first use and perform the one-time
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* initialisation, then finally lock the object at a fixed place.
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* @see lazy-init.hpp
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* @see lib::RandomDraw
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*/
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class LazyInit_test
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: public Test
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{
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void
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run (Arg)
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{
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seedRand();
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verify_trojanLambda();
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verify_inlineStorage();
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verify_TargetRelocation();
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verify_triggerMechanism();
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verify_lazyInitialisation();
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verify_complexUsageWithCopy();
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}
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/** @test verify construction of the »trap« front-end eventually to trigger initialisation
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* - this test does not involve any std::function, rather a heap-allocated copy of a λ
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* # the _target function_ finally to be invoked performs a verifiable computation
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* # the _delegate_ receives an memory location and returns a reference to the target
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* # the generated _»trojan λ«_ captures its own address, invokes the delegate,
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* retrieves a reference to a target functor, and finally invokes this with actual arguments.
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* @remark the purpose of this convoluted scheme is for the _delegate to perform initialisation,_
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* taking into account the current memory location „sniffed“ by the trojan.
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*/
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void
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verify_trojanLambda()
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{
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size_t beacon;
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auto fun = [&](uint challenge){ return beacon+challenge; };
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using Sig = size_t(uint);
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CHECK (isFunMember<Sig> (&fun));
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beacon = rani();
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uint c = beacon % 42;
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// verify we can invoke the target function
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CHECK (beacon+c == fun(c));
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// verify we can also invoke the target function through a reference
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using FunType = decltype(fun);
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FunType& funRef = fun;
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CHECK (beacon+c == funRef(c));
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// construct delegate function exposing the expected behaviour;
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// additionally this function captures the passed-in address.
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RawAddr location{nullptr};
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auto delegate = [&](RawAddr adr) -> FunType&
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{
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location = adr;
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return fun;
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};
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using Delegate = decltype(delegate);
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auto delP = make_unique<Delegate> (delegate);
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// verify the heap-allocated copy of the delegate behaves as expected
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location = nullptr;
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CHECK (beacon+c == (*delP)(this)(c));
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CHECK (location == this);
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// now (finally) build the »trap function«...
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auto trojanLambda = TrojanFun<Sig>::generateTrap (delP.get());
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CHECK (sizeof(trojanLambda) == sizeof(size_t));
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// on invocation...
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// - it captures its current location
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// - passes this to the delegate
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// - invokes the target function returned from the delegate
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CHECK (beacon+c == trojanLambda(c));
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CHECK (location == &trojanLambda);
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// repeat same with a copy, and changed beacon value
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auto trojanClone = trojanLambda;
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beacon = rani();
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c = beacon % 55;
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CHECK (beacon+c == trojanClone(c));
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CHECK (location == &trojanClone);
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CHECK (beacon+c == trojanLambda(c));
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CHECK (location == &trojanLambda);
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}
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/** @test verify that std::function indeed stores a simple functor inline.
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* @remark The implementation of LazyInit relies crucially on a known optimisation
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* in the standard library ─ which unfortunately is not guaranteed by the standard:
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* Typically, std::function will apply _small object optimisation_ to place a very
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* small functor directly into the wrapper, if the payload has a trivial copy-ctor.
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* `Libstdc++` is known to be rather restrictive, while other implementations trade
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* increased storage size of std::function against more optimisation possibilities.
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* LazyInit exploits this optimisation to „spy“ about the current object location,
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* allowing to execute the lazy initialisation on first use, without further help
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* by client code. This trickery seems to be the only way, since λ-capture by reference
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* is broken after copying or moving the host object (typically required for DSL use).
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* In case this turns out to be fragile, LazyInit should become a "LateInit" and needs
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* help by the client or the user to trigger initialisation; alternatively the DSL
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* could be split off into a separate builder object distinct from RandomDraw.
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*/
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void
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verify_inlineStorage()
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{
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// char payload[24];// ◁─────────────────────────────── use this to make the test fail....
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const char* payload = "I am innocent as a lamb";
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auto lambda = [payload]{ return RawAddr(&payload); };
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RawAddr location = lambda();
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CHECK (location == &lambda);
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std::function funWrap{lambda};
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CHECK (funWrap);
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CHECK (not isSameObject (funWrap, lambda));
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location = funWrap();
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CHECK (util::isCloseBy (location, funWrap));
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// if »small object optimisation« was used,
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// the lambda will be copied directly into the std:function;
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// otherwise it will be heap allocated and this test fails.
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// for context: these are considered "close by",
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// since both are sitting right here in the same stack frame
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CHECK (util::isCloseBy (funWrap, lambda));
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}
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/** @test verify navigating an object structure
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* by applying known offsets consecutively
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* from a starting point within an remote instance
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* @remark in the real usage scenario, we know _only_ the offset
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* and attempt to find home without knowing the layout.
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*/
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void
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verify_TargetRelocation()
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{
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struct Nested
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{
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int unrelated{rani()};
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int anchor{rani()};
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};
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struct Demo
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{
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Nested nested;
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virtual ~Demo(){ };
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virtual RawAddr peek()
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{
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return &nested.anchor;
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}
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};
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// find out generic offset...
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const ptrdiff_t offNested = []{
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Nested probe;
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return captureRawAddrOffset(&probe, &probe.anchor);
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}();
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Demo here;
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// find out actual offset in existing object
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const ptrdiff_t offBase = captureRawAddrOffset(&here, &here.nested);
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CHECK (offBase > 0);
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CHECK (offNested > 0);
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// create a copy far far away...
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auto farAway = make_unique<Demo> (here);
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// reconstruct base address from starting point
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RawAddr startPoint = farAway->peek();
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Nested* farNested = relocate<Nested>(startPoint, -offNested);
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CHECK (here.nested.unrelated == farNested->unrelated);
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Demo* farSelf = relocate<Demo> (farNested, -offBase);
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CHECK (here.nested.anchor == farSelf->nested.anchor);
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CHECK (isSameObject (*farSelf, *farAway));
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}
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/** @test demonstrate the trigger mechanism in isolation
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*/
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void
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verify_triggerMechanism()
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{
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using Fun = std::function<float(int)>;
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Fun theFun;
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CHECK (not theFun);
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int report{0};
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auto delegate = [&report](RawAddr insideFun) -> Fun&
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{
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auto realFun = [&report](int num)
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{
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report += num;
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return num + 23.55f;
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};
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Fun& target = *relocate<Fun>(insideFun, -FUNCTOR_PAYLOAD_OFFSET);
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report = -42; // as proof that the init-delegate was invoked
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target = realFun;
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return target;
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};
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CHECK (not theFun);
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// install the init-»trap«
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theFun = TrojanFun<float(int)>::generateTrap (&delegate);
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CHECK (theFun);
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CHECK (0 == report);
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// invoke function
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int feed{1 + rani (100)};
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float res = theFun (feed);
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// delegate *and* realFun were invoked
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CHECK (feed == report + 42);
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CHECK (res = feed -42 +23.55f);
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// again...
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report = 0;
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feed = -1-rani(20);
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res = theFun (feed);
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// this time the delegate was *not* invoked,
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// only the installed realFun
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CHECK (feed == report);
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CHECK (res = feed + 23.55f);
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}
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/** @test demonstrate a basic usage scenario
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*/
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void
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verify_lazyInitialisation()
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{
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using Fun = std::function<float(int)>;
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using Lazy = LazyInit<Fun>;
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bool init{false};
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uint invoked{0};
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Lazy funny{funny, [&](Lazy* self)
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{
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Fun& thisFun = static_cast<Fun&> (*self);
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thisFun = [&invoked](int num)
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{
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++invoked;
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return num * 0.555f;
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};
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init = true;
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}};
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CHECK (not invoked);
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CHECK (not init);
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CHECK (funny);
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int feed = 1 + rani(99);
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CHECK (feed*0.555f == funny(feed));
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CHECK (1 == invoked);
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CHECK (init);
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}
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/** elaborate setup used for integration test */
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struct LazyDemo
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: LazyInit<>
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{
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using Fun = std::function<int(int)>;
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int seed{0};
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Fun fun; // ◁────────────────────────────────── this will be initialised lazily....
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template<typename FUN>
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auto
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buildInit (FUN&& fun2install)
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{
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return [theFun = forward<FUN> (fun2install)]
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(LazyDemo* self)
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{ // this runs when init is actually performed....
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CHECK (self);
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if (self->fun)
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// chain-up behind existing function
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self->fun = [self, prevFun=self->fun, nextFun=theFun]
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(int i)
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{
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return nextFun (prevFun (i));
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};
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else
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// build new function chain, inject seed from object
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self->fun = [self, newFun=theFun]
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(int i)
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{
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return newFun (i + self->seed); // Note: binding to actual instance location
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};
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};
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}
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LazyDemo()
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: LazyInit{MarkDisabled()}
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, fun{}
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{
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installInitialiser(fun, buildInit([](int){ return 0; }));
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}
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// prevent this ctor from shadowing the copy ctors //////TICKET #963
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template<typename FUN, typename =disable_if_self<LazyDemo, FUN>>
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LazyDemo (FUN&& someFun)
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: LazyInit{MarkDisabled()}
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, fun{}
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{
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installInitialiser(fun, buildInit (forward<FUN> (someFun)));
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}
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template<typename FUN>
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LazyDemo&&
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attach (FUN&& someFun)
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{
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installInitialiser(fun, buildInit (forward<FUN> (someFun)));
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return move(*this);
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}
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};
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/**
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* @test use an elaborately constructed example to cover more corner cases
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* - the function to manage and initialise lazily is _a member_ of the _derived class_
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* - the initialisation routine _adapts_ this function and links it with the current
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* object location; thus, invoking this function on a copy would crash / corrupt memory.
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* - however, as long as initialisation has not been triggered, LazyDemo instances can be
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* copied; they may even be assigned to existing instances, overwriting their state.
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* - a second given function will be chained behind the first one; this happens immediately
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* if the first function was already invoked (and this initialised)
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* - but when however both functions are attached immediately, prior to invocation,
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* then an elaborate chain of initialisers is setup behind the scenes and played back
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* in definition order once lazy initialisation is triggered
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* - all the intermediary state is safe to copy and move and fork
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* @remark 11/2023 memory allocations were verified using lib::test::Tracker and the EventLog
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*/
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void
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verify_complexUsageWithCopy()
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{
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LazyDemo dd;
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CHECK (not dd.isInit()); // not initialised, since function was not invoked yet
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CHECK (dd.fun); // the functor is not empty anymore, since the »trap« was installed
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dd.seed = 2;
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CHECK (0 == dd.fun(22)); // d1 was default initialised and thus got the "return 0" function
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CHECK (dd.isInit()); // first invocation also triggered the init-routine
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// is »engaged« after init and rejects move / copy
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VERIFY_ERROR (LIFECYCLE, LazyDemo dx{move(dd)} );
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dd = LazyDemo{[](int i) // assign a fresh copy (discarding any state in d1)
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{
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return i + 1; // using a "return i+1" function
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}};
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CHECK (not dd.isInit());
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CHECK (dd.seed == 0); // assignment indeed erased any existing settings (seed≔2)
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CHECK (dd.fun);
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CHECK (23 == dd.fun(22)); // new function was tied in (while also referring to self->seed)
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CHECK (dd.isInit());
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dd.seed = 3; // set the seed
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CHECK (26 == dd.fun(22)); // seed value is picked up dynamically
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VERIFY_ERROR (LIFECYCLE, LazyDemo dx{move(dd)} );
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// attach a further function, to be chained-up
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dd.attach([](int i)
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{
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return i / 2;
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});
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CHECK (dd.isInit());
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CHECK (dd.seed == 3);
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CHECK (12 == dd.fun(21)); // 21+3+1=25 / 2
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CHECK (13 == dd.fun(22));
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CHECK (13 == dd.fun(23));
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dd.seed++;
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CHECK (14 == dd.fun(23)); // 23+4+1=28 / 2
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CHECK (14 == dd.fun(24));
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CHECK (15 == dd.fun(25));
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// ...use exactly the same configuration,
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// but applied in one shot -> chained lazy-Init
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dd = LazyDemo{[](int i){return i+1; }}
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.attach([](int i){return i/2; });
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dd.seed = 3;
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CHECK (not dd.isInit());
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CHECK (dd.seed == 3);
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CHECK (dd.fun);
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CHECK (12 == dd.fun(21));
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CHECK (13 == dd.fun(22));
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CHECK (13 == dd.fun(23));
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dd.seed++;
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CHECK (14 == dd.fun(23));
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CHECK (14 == dd.fun(24));
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CHECK (15 == dd.fun(25));
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// create a nested graph of chained pending init
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dd = LazyDemo{[](int i){return i+1; }};
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LazyDemo d1{dd};
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LazyDemo d2{move(dd)};
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d2.seed = 3;
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d2.attach ([](int i){return i/2; });
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LazyDemo d3{d2};
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d2.attach ([](int i){return i-1; });
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// dd was left in defunct state by the move, and thus is locked
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CHECK (not dd.fun);
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CHECK (dd.isInit());
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VERIFY_ERROR (LIFECYCLE, LazyDemo dx{move(dd)} );
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// this can be amended by assigning another instance not yet engaged
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dd = d2;
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d2.seed = 5;
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std::swap (d2,d3);
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std::swap (d3,d1);
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// confused?? ;-)
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CHECK (not dd.isInit() and dd.seed == 3); // Seed≡3 {i+1} ⟶ {i/2} ⟶ {i-1}
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CHECK (not d1.isInit() and d1.seed == 5); // Seed≡5 {i+1} ⟶ {i/2} ⟶ {i-1}
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CHECK (not d2.isInit() and d2.seed == 3); // Seed≡3 {i+1} ⟶ {i/2}
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CHECK (not d3.isInit() and d3.seed == 0); // Seed≡0 {i+1}
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CHECK (12 == dd.fun(23)); // 23+3 +1 = 27/2 = 13 -1 = 12
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CHECK (13 == d1.fun(23)); // 23+5 +1 = 29/2 = 14 -1 = 13
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CHECK (13 == d2.fun(23)); // 23+3 +1 = 27/2 = 13 = 13
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CHECK (24 == d3.fun(23)); // 23+0 +1 = 24
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}
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};
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/** Register this test class... */
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LAUNCHER (LazyInit_test, "unit common");
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}} // namespace lib::test
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