轉載自：http://blog.csdn.net/a9529lty/article/details/8232948

I use jackson for converting JSON to Object class.

JSON:

{ "aaa":"111", "bbb":"222", "ccc":"333" }

Object Class:

class Test{public String aaa;public String bbb; }

Code:

ObjectMapper mapper = new ObjectMapper(); Object obj = mapper.readValue(content, valueType);

My code throws exception like that: org.codehaus.jackson.map.exc.UnrecognizedPropertyException: Unrecognized field "cccc" (Class com.isoftstone.banggo.net.result.GetGoodsInfoResult), not marked as ignorable

And I don't want to add a prop to class Test,I just want jackson convert the exist value whith is also exist in Test.

??? Jackson provides a few different mechanisms to configure handling of "extra" JSON elements.? Following is an example of configuring the ObjectMapper to not FAIL_ON_UNKNOWN_PROPERTIES.

import org.codehaus.jackson.annotate.JsonAutoDetect.Visibility; import org.codehaus.jackson.annotate.JsonMethod; import org.codehaus.jackson.map.DeserializationConfig; import org.codehaus.jackson.map.ObjectMapper;public class JacksonFoo {public static void main(String[] args) throws Exception{// { "aaa":"111", "bbb":"222", "ccc":"333" }String jsonInput = "{ \"aaa\":\"111\", \"bbb\":\"222\", \"ccc\":\"333\" }";ObjectMapper mapper = new ObjectMapper().setVisibility(JsonMethod.FIELD, Visibility.ANY);mapper.configure(DeserializationConfig.Feature.FAIL_ON_UNKNOWN_PROPERTIES, false);Test test = mapper.readValue(jsonInput, Test.class);} }class Test {String aaa;String bbb; }

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For other approaches, see http://wiki.fasterxml.com/JacksonHowToIgnoreUnknown

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