如何制作保存对象的 getter/setter 的 Map 的静态版本?
- PHPz转载
- 2024-02-06 08:03:03597浏览
问题内容
我有一个在调用对象时构建的映射,该映射为调用者提供变量名称作为键和 getter/setter 对作为值。这按预期工作。我的问题是,我每次调用它时都会构建它,我想知道是否有一种方法可以将其声明为静态并仅提供我想要调用它的对象,这样我就不会每次都构建地图因为 getter 和 setter 在运行时不会改变。
我有:
package main;
import org.javatuples.Pair;
import java.util.Map;
import java.util.function.Consumer;
import java.util.function.Supplier;
public interface MapPackHelperI
{
public Map<String, Pair<Supplier, Consumer>> getNameToGetterSetterMap();
}
package main;
import java.util.List;
import java.util.Map;
import java.util.HashMap;
import org.javatuples.Pair;
import java.util.function.Consumer;
import java.util.function.Supplier;
public class SomeStruct implements MapPackHelperI
{
private long somelong;
private String somestring;
private List<Float> somelistfloat;
private SomeEnum someenum;
public Map<String, Pair<Supplier, Consumer>> getNameToGetterSetterMap()
{
Map<String, Pair<Supplier, Consumer>> nameToGetterSetterMap = new HashMap<>();
nameToGetterSetterMap.put("somelong", Pair.with( this::getSomelong, (Consumer<Long>)this::setSomelong));
nameToGetterSetterMap.put("somestring", Pair.with( this::getSomestring, (Consumer<String>)this::setSomestring));
nameToGetterSetterMap.put("somelistfloat", Pair.with( this::getSomelistfloat, (Consumer<List<Float>>)this::setSomelistfloat));
nameToGetterSetterMap.put("someenum", Pair.with( this::getSomeenum, (Consumer<SomeEnum>)this::setSomeenum));
return nameToGetterSetterMap;
}
public long getSomelong() {
return this.somelong;
}
public void setSomelong(long somelong) {
this.somelong = somelong;
}
public String getSomestring() {
return this.somestring;
}
public void setSomestring(String somestring) {
this.somestring = somestring;
}
public List<Float> getSomelistfloat() {
return this.somelistfloat;
}
public void setSomelistfloat(List<Float> somelistfloat) {
this.somelistfloat = somelistfloat;
}
public SomeEnum getSomeenum() {
return this.someenum;
}
public void setSomeenum(SomeEnum someenum) {
this.someenum = someenum;
}
// ... hashcode, toString, and equals, not relevant for the example
}
这允许我从其他地方做:
public static String serialize(MapPackHelperI objectToSerialize)
{
Map<String, Pair<Supplier, Consumer>> nameToGetterSetterMap = objectToSerialize.getNameToGetterSetterMap();
for(Entry<String, Pair<Supplier, Consumer>> current : nameToGetterSetterMap.entrySet())
{
String name = current.getKey();
Supplier getter = current.getValue().getValue0();
//code that serializes into string with name and getter regardless of the MapPackHelperI I pass in
}
// return the string representation of the object. I have another method that uses the same map to go the other way with the setter.
}
就像我说的,这可行,但每次调用它时我都会实例化并填充地图。
有没有办法让 SomeStruct 有一个 public static Map7ac420dc38be31c2cf1f91a147206a67> nameToGetterSetterMap = new HashMapa8093152e673feb7aba1828c43532094(); (或一些等效的),这样 public Map05dbde19e2ff5497399c066cd6cfc66a> getNameToGetterSetterMap() 将实例化的参数作为参数SomeStruct 并仅将调用应用于该特定对象。
我尝试做一个静态地图并用 SomeStruct::getSomelong 等填充它,但编译器说我不能这样做。
正确答案
成员字段
答案似乎如此明显,我一定错过了一些东西:将新构造的映射缓存为私有成员字段。
public class SomeStruct implements MapPackHelperI
{
private long somelong;
private String somestring;
private List<Float> somelistfloat;
private SomeEnum someenum;
private Map<String, Pair<Supplier, Consumer>> map =
Map.of(
"somelong", Pair.with( this::getSomelong, (Consumer<Long>)this::setSomelong) ,
"somestring", Pair.with( this::getSomestring, (Consumer<String>)this::setSomestring) ,
"somelistfloat", Pair.with( this::getSomelistfloat, (Consumer<List<Float>>)this::setSomelistfloat) ,
"someenum", Pair.with( this::getSomeenum, (Consumer<SomeEnum>)this::setSomeenum)
) ;
public Map<String, Pair<Supplier, Consumer>> getNameToGetterSetterMap()
{
return this.map ;
}
…
您应该能够将 map 成员变量设置为 static,但除非您确定自己正在对 SomeStruct 进行无数次实例化,否则我认为这是不值得麻烦的微优化。
以上是如何制作保存对象的 getter/setter 的 Map 的静态版本?的详细内容。更多信息请关注PHP中文网其他相关文章!
声明:
本文转载于:stackoverflow.com。如有侵权,请联系admin@php.cn删除