intellij-idea 具有多个参数的MapStruct QualifiedByName

yqhsw0fo 于 2022-11-01 发布在其他

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我遇到过这样一种情况：我的Map方法有3个参数，并且所有这三个参数都被用于派生目标类型的一个属性。
我已经在接口中创建了一个默认的Map方法，保存了用于派生属性的逻辑，现在为了调用这个方法，我可以在@Mapping注解中使用expression = "java( /*method call here*/ )"。
有什么方法可以对@qualifiedByName这样的mapstruct注解执行此操作吗？我尝试注解具有expression属性的注解，并使用qualifiedByName，但它不起作用：

@Mapper
public interface OneMapper {

    @Mapping(target="id", source="one.id")
    //@Mapping(target="qualified",expression = "java( checkQualified (one, projId, code) )")
    @Mapping(target="qualified",qualifiedByName="checkQualifiedNamed")
    OneDto createOne (One one, Integer projId, Integer val, String code);

    @Named("checkQualifiedNamed")
    default Boolean checkQualified (One one, Integer projId, Integer val, String code) {
        if(one.getProjectId() == projId && one.getVal() == val && one.getCode().equalsIgnoreCase(code)) {
            return Boolean.TRUE;
        }
        return Boolean.FALSE;                   
    }
}

intellij-idea

来源：https://stackoverflow.com/questions/47694501/mapstruct-qualifiedbyname-with-multiple-parameters

4条答案

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vx6bjr1n1#

目前，MapStruct不支持具有多个源属性的Map方法。
然而，在您的情况下，您可以使用1.2.0中的@Context。据我所知，projId和code只是作为Map的助手，它们不用于Map中的目标属性。
所以你可以这样做（理论上应该可以）：

@Mapper
public interface OneMapper {

    @Mapping(target="id", source="one.id")
    @Mapping(target="qualified", qualifiedByName="checkQualifiedNamed")
    OneDto createOne (One one, @Context Integer projId, @Context String code);

    @Named("checkQualifiedNamed")
    default Boolean checkQualified (One one, @Context Integer projId, @Context String code) {
        if(one.getProjectId() == projId && one.getCode().equalsIgnoreCase(code)) {
            return Boolean.TRUE;
        }
        return Boolean.FALSE;                   
    }
}

另一种选择是将所有这些属性提取到一个单独的类中并传递沿着（这将允许同一类型的多个参数）。
该类将如下所示：

public class Filter {

    private final Integer projId;
    private final Integer val;
    private final String code;

    public Filter (Integer projId, Integer val, String code) {
        this.projId = projId;
        this.val = val;
        this.code = code;
    }

    //getters
}

Map器将如下所示：

@Mapper
public interface OneMapper {

    @Mapping(target="id", source="one.id")
    @Mapping(target="qualified", qualifiedByName="checkQualifiedNamed")
    OneDto createOne (One one, @Context Filter filter);

    @Named("checkQualifiedNamed")
    default Boolean checkQualified (One one, @Context Filter filter) {
        if(one.getProjectId() == filter.getProjId() && one.getVal() == filter.getVal() && one.getCode().equalsIgnoreCase(filter.getCode())) {
            return Boolean.TRUE;
        }
        return Boolean.FALSE;                   
    }
}

然后，您可以调用Map器，如下所示：mapper.createOne(one, new Filter(projId, val, code));

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n53p2ov02#

自1.2版起，支持：http://mapstruct.org/documentation/stable/reference/html/#mappings-with-several-source-parameters
例如这样的例子：

@Mapping(source = "person.description", target = "description")
@Mapping(source = "address.houseNo", target = "houseNumber")
DeliveryAddressDto personAndAddressToDeliveryAddressDto(Person person, Address address);

更新
由于Mapstruct允许将多个源参数Map到一个目标，我建议从Map器中提取checkQualified方法，并预先计算结果，然后用checkQualified方法的结果调用Map器。Mapstruct是一个 mapping 库，在执行任意逻辑方面并不出色。这不是不可能的，但就个人而言，我看不出这对你的案子有什么帮助。
使用提取的逻辑，Map器可能如下所示：

@Mapper
public interface OneMapper {
    OneDto toOneDto(One one, Boolean qualified);
}

Map器的使用方式如下：

One one = new One(1, 10, 100, "one");
boolean qualified = checkQualified(one, 10, 100, "one");
boolean notQualified = checkQualified(one, 10, 100, "two");
OneDto oneDto = mapper.toOneDto(one, isQualified);

有关完整示例，请参见：https://github.com/phazebroek/so-mapstruct/blob/master/src/main/java/nl/phazebroek/so/MapStructDemo.java

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xiozqbni3#

如果需要根据同一源对象的多个源字段计算单个目标字段，则可以将完整源对象而不是单个字段传递给自定义Map器函数：
示例实体：

@Entity
@Data
public class User {
    private String firstName;
    private String lastName;
}

示例DTO：

public class UserDto {
    private String fullName;
}

...和Map器...不传递单个源（firstName）：

@Mapper
public abstract class UserMapper {

    @Mapping(source = "firstName", target = "fullName", qualifiedByName = "nameTofullName")
    public abstract UserDto userEntityToUserDto(UserEntity userEntity);

    @Named("nameToFullName")
    public String nameToFullName(String firstName) {
        return String.format("%s HOW DO I GET THE LAST NAME HERE?", firstName);
    }

...将完整的实体对象（userEntity）作为源进行传递：

@Mapper
public abstract class UserMapper {

    @Mapping(source = "userEntity", target = "fullName", qualifiedByName = "nameToFullName")
    public abstract UserDto userEntityToUserDto(UserEntity userEntity);

    @Named("nameToFullName")
    public String nameToOwner(UserEntity userEntity) {
        return String.format("%s %s", userEntity.getFirstName(), userEntity.getLastName());
    }

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jv4diomz4#

您可以创建一个默认方法，该方法使用附加上下文www.example.com在内部调用mapstruct方法params.in这种方式，您可以获取“qualifiedByName”部分中的所有参数

@Mapper
public interface OneMapper {

    default OneDto createOne(One one, Integer projId, Integer val, String code) {
        return createOneWithContext(one,porjId,val,code
                                    one,porjId,val,code //as context params
        );
    }

    @Mapping(target="id", source="one.id")
    @Mapping(target="qualified",source="one",qualifiedByName="checkQualifiedNamed")
    OneDto createOneWithContext (One one, Integer projId, Integer val, String code
                     @Context One oneAsContext, 
                     @Context Integer projIdAsContext, 
                     @Context Integer valAsContext, 
                     @Context String codeAsContext

);

    @Named("checkQualifiedNamed")
    default Boolean checkQualified (One one, @Context Integer projId, @Context Integer val, @Context String code) {
        if(one.getProjectId() == projId && one.getVal() == val && one.getCode().equalsIgnoreCase(code)) {
            return Boolean.TRUE;
        }
    return Boolean.FALSE;                   
    }
}

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intellij-idea 具有多个参数的MapStruct QualifiedByName

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