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* access * accessed * accesses * accessor * acquiring * across * activated * additive * address * addresses' * aggregated * analysis * and * appropriately * archetype * argument * associated * availability * barriers * because * been * beginning * belongs * beneficial * blocks * borrow * builtin * cannot * canonical * canonicalize * clazz * cleanup * coalesceable * coalesced * comparisons * completely * component * computed * concrete * conjunction * conservatively * constituent * construct * consuming * containing * covered * creates * critical * dataflow * declaration * defined * defining * definition * deinitialization * deliberately * dependencies * dependent * deserialized * destroy * deterministic * deterministically * devirtualizes * diagnostic * diagnostics * differentiation * disable * discipline * dominate * dominates * don't * element * eliminate * eliminating * elimination * embedded * encounter * epilogue * epsilon * escape * escaping * essential * evaluating * evaluation * evaluator * executing * existential * existentials * explicit * expression * extended * extension * extract * for * from * function * generic * guarantee * guaranteed * happened * heuristic * however * identifiable * immediately * implementation * improper * include * infinite * initialize * initialized * initializer * inside * instruction * interference * interferes * interleaved * internal * intersection * intractable * intrinsic * invalidates * irreducible * irrelevant * language * lifetime * literal * looks * materialize * meaning * mergeable * might * mimics * modification * modifies * multiple * mutating * necessarily * necessary * needsmultiplecopies * nonetheless * nothing * occurred * occurs * optimization * optimizing * original * outside * overflow * overlapping * overridden * owned * ownership * parallel * parameter * paths * patterns * pipeline * plottable * possible * potentially * practically * preamble * precede * preceding * predecessor * preferable * preparation * probably * projection * properties * property * protocol * reabstraction * reachable * recognized * recursive * recursively * redundant * reentrancy * referenced * registry * reinitialization * reload * represent * requires * response * responsible * retrieving * returned * returning * returns * rewriting * rewritten * sample * scenarios * scope * should * sideeffects * similar * simplify * simplifycfg * somewhat * spaghetti * specialization * specializations * specialized * specially * statistically * substitute * substitution * succeeds * successful * successfully * successor * superfluous * surprisingly * suspension * swift * targeted * that * that our * the * therefore * this * those * threshold * through * transform * transformation * truncated * ultimate * unchecked * uninitialized * unlikely * unmanaged * unoptimized key * updataflow * usefulness * utilities * villain * whenever * writes Signed-off-by: Josh Soref <jsoref@users.noreply.github.com>
141 lines
2.7 KiB
Swift
141 lines
2.7 KiB
Swift
// RUN: %target-swift-frontend -parse-as-library -O -wmo -emit-sil %s | %FileCheck %s
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// RUN: %target-swift-frontend -parse-as-library -Osize -wmo -emit-sil %s | %FileCheck %s
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// REQUIRES: objc_interop
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// This is an end-to-end test to ensure that the optimizer devirtualizes
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// calls to a protocol composition type.
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public class ClassA<T> { }
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protocol ProtocolA {
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func foo() -> Int
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}
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protocol ProtocolB {
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func bar() -> Int
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}
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public class ClassB: ClassA<String> {
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func foo() -> Int {
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return 10
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}
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}
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extension ClassB: ProtocolA { }
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public class ClassC<T>: ClassA<T> {
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func foo() -> Int {
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return 10
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}
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}
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extension ClassC: ProtocolA { }
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public class ClassD { }
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public class ClassE : ClassD {
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func foo() -> Int {
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return 10
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}
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}
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extension ClassE: ProtocolA { }
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public class ClassF {
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func foo() -> Int {
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return 10
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}
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func bar() -> Int {
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return 10
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}
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}
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extension ClassF: ProtocolA, ProtocolB { }
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public class ClassG <T> {
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func foo() -> Int {
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return 10
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}
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func bar() -> Int {
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return 10
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}
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}
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extension ClassG: ProtocolA, ProtocolB { }
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public class ClassH {
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typealias type = ClassD
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}
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func shouldOptimize1<T>(_ x: ClassA<T> & ProtocolA) -> Int {
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return x.foo()
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}
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func shouldOptimize2(_ x: ClassD & ProtocolA) -> Int {
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return x.foo()
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}
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func shouldOptimize3(_ x: ProtocolA & ProtocolB) -> Int {
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return x.foo() + x.bar()
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}
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func shouldOptimize4(_ x: ProtocolA & ProtocolB) -> Int {
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return x.foo() + x.bar()
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}
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func shouldOptimize5(_ x: ClassH.type & ProtocolA) -> Int {
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return x.foo()
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}
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//CHECK: entryPoint1
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//CHECK-NOT: init_existential_ref
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//CHECK-NOT: open_existential_ref
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//CHECK-NOT: witness_method
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//CHECK: return
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public func entryPoint1(c: ClassB) -> Int {
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return shouldOptimize1(c)
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}
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// TODO: create SR -- this causes a crash on master too
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//public func entryPoint2<T>(c: ClassC<T>) -> Int {
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// return shouldOptimize1(c)
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//}
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//CHECK: entryPoint3
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//CHECK-NOT: init_existential_ref
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//CHECK-NOT: open_existential_ref
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//CHECK-NOT: witness_method
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//CHECK: return
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public func entryPoint3(c: ClassE) -> Int {
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return shouldOptimize2(c)
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}
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//CHECK: entryPoint4
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//CHECK-NOT: init_existential_ref
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//CHECK-NOT: open_existential_ref
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//CHECK-NOT: witness_method
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//CHECK: return
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public func entryPoint4(c: ClassF) -> Int {
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return shouldOptimize3(c)
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}
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//CHECK: entryPoint5
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//CHECK-NOT: init_existential_ref
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//CHECK-NOT: open_existential_ref
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//CHECK-NOT: witness_method
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//CHECK: return
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public func entryPoint5<T>(c: ClassG<T>) -> Int {
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return shouldOptimize4(c)
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}
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//CHECK: entryPoint6
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//CHECK-NOT: init_existential_ref
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//CHECK-NOT: open_existential_ref
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//CHECK-NOT: witness_method
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//CHECK: return
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public func entryPoint6(c: ClassE) -> Int {
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return shouldOptimize5(c)
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}
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