如何将作为Map的值的属性序列化为Map的值?我已经能够使用getter上的@JsonSerialize(using=...)注释进行其他简单的转换。但是,我不确定是否存在我想做的事情。
答案 0 :(得分:7)
我们需要类似的东西,在我们的例子中,我们使用了您评论的自定义@JsonSerialize,这很简单:
public class MyCustomSerializer extends JsonSerializer<Map<?, ?>> {
@Override
public void serialize(final Map<?, ?> value, final JsonGenerator jgen, final SerializerProvider provider)
throws IOException, JsonProcessingException {
jgen.writeObject(value.values());
}
}
使用它的代码:
import java.io.IOException;
import java.util.Collections;
import java.util.Map;
import org.codehaus.jackson.JsonGenerationException;
import org.codehaus.jackson.JsonGenerator;
import org.codehaus.jackson.JsonProcessingException;
import org.codehaus.jackson.map.JsonMappingException;
import org.codehaus.jackson.map.JsonSerializer;
import org.codehaus.jackson.map.ObjectMapper;
import org.codehaus.jackson.map.SerializerProvider;
import org.codehaus.jackson.map.annotate.JsonSerialize;
public class JacksonTest {
public static class ModelClass {
private final Map<String, String> map;
public ModelClass(final Map<String, String> map) {
super();
this.map = map;
}
@JsonSerialize(using = MyCustomSerializer.class)
public Map<String, String> getMap() {
return map;
}
}
public static void main(final String[] args) throws JsonGenerationException, JsonMappingException, IOException {
ObjectMapper objectMapper = new ObjectMapper();
objectMapper.writeValue(System.out, new ModelClass(Collections.singletonMap("test", "test")));
}
}
答案 1 :(得分:3)
我使用默认的Serializer 来实现处理不仅仅是String的值:
@Override
public void serialize(final Map<Long, ?> value, final JsonGenerator jgen, final SerializerProvider provider) throws IOException,
JsonProcessingException {
provider.defaultSerializeValue(value.values(), jgen);
}