如何序列化lambda?我怎样才能优雅地序列化一个lambda呢?例如,下面的代码引发一个NotSerializableException..如何在不创建SerializableRunnable“虚拟”界面?public static void main(String[] args) throws Exception {
File file = Files.createTempFile("lambda", "ser").toFile();
try (ObjectOutput oo = new ObjectOutputStream(new FileOutputStream(file))) {
Runnable r = () -> System.out.println("Can I be serialized?");
oo.writeObject(r);
}
try (ObjectInput oi = new ObjectInputStream(new FileInputStream(file))) {
Runnable r = (Runnable) oi.readObject();
r.run();
}}
3 回答
红糖糍粑
TA贡献1815条经验 获得超6个赞
Runnable r = (Runnable & Serializable)() -> System.out.println("Serializable!");
噜噜哒
TA贡献1784条经验 获得超7个赞
import java.io.Serializable;public class Test {
static Object bar(String s) {
return "make serializable";
}
void m () {
SAM s1 = (SAM & Serializable) Test::bar;
SAM s2 = (SAM & Serializable) t -> "make serializable";
}
interface SAM {
Object action(String s);
}}
拉丁的传说
TA贡献1789条经验 获得超8个赞
interface SerializableFunction<T,R> extends Function<T,R>, Serializable {}interface SerializableConsumer<T> extends Consumer<T>, Serializable {}private void someFunction(SerializableFunction<String, Object> function) {
...}someFunction(arg -> doXYZ(arg));
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