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Properly find invoke method on default lambda inlining

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In general case parameter type could differ from actual default lambda type.
  E.g.: fun inlineFun(s: (Child) -> Base = { a: Base -> a as Child}),
  where type of default lambda is '(Base) -> Child'.
  In such case we should find somehow actual invoke method in bytecode knowing
  only name, number of parameters and that's actual invoke is non-synthetic
  regardless of bridge one.

  #KT-21946 Fixed
This commit is contained in:
Mikhael Bogdanov
2018-12-27 15:03:40 +01:00
parent 3040a2b145
commit 6bf70a5dd2
14 changed files with 332 additions and 18 deletions
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compiler/testData/codegen/boxInline/defaultValues/lambdaInlining/differentInvokeSignature.kt
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+19
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@@ -0,0 +1,19 @@
// IGNORE_BACKEND: JVM_IR
// FILE: 1.kt
// SKIP_INLINE_CHECK_IN: inlineFun$default
package test
open class Base
class Child(val value: String): Base()
inline fun inlineFun(s: (Child) -> Base = { a: Base -> a as Child}): Base {
return s(Child("OK"))
}
// FILE: 2.kt
import test.*
fun box(): String {
return (inlineFun() as Child).value
}