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I need to convert a certain JSON string to a Java object. I am using Jackson for JSON handling. I have no control over the input JSON (I read from a web service). This is my input JSON:

{"wrapper":[{"id":"13","name":"Fred"}]}

Here is a simplified use case:

private void tryReading() {
    String jsonStr = "{\"wrapper\"\:[{\"id\":\"13\",\"name\":\"Fred\"}]}";
    ObjectMapper mapper = new ObjectMapper();  
    Wrapper wrapper = null;
    try {
        wrapper = mapper.readValue(jsonStr , Wrapper.class);
    } catch (Exception e) {
        e.printStackTrace();
    }
    System.out.println("wrapper = " + wrapper);
}

My entity class is:

public Class Student { 
    private String name;
    private String id;
    //getters & setters for name & id here
}

My Wrapper class is basically a container object to get my list of students:

public Class Wrapper {
    private List<Student> students;
    //getters & setters here
}

I keep getting this error and "wrapper" returns null. I am not sure what's missing. Can someone help please?

org.codehaus.jackson.map.exc.UnrecognizedPropertyException: Unrecognized field "wrapper" (Class Wrapper), not marked as ignorable
 at [Source: java.io.StringReader@1198891; line: 1, column: 13] (through reference chain: Wrapper["wrapper"])
 at org.codehaus.jackson.map.exc.UnrecognizedPropertyException.from(UnrecognizedPropertyException.java:53)
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1  
I found this useful to avoid creating a wrapper class: Map dummy<String,Student> = myClientResponse.getEntity(new GenericType<Map<String, Student>>(){}); and then Student myStudent = dummy.get("wrapper"); –  pulkitsinghal Jul 17 '13 at 13:50

14 Answers 14

You can use Jackson's class-level annotation:

@JsonIgnoreProperties

It will ignore every property you haven't defined in your POJO. Very useful when you are just looking for a couple of properties in the JSON and don't want to write the whole mapping. More info at Jackson's website. If you want to ignore any non declared property, you should write:

@JsonIgnoreProperties(ignoreUnknown = true)
share|improve this answer
1  
Ariel, is there any way to declare this external to the class? –  Jon Nov 3 '11 at 16:13
1  
I haven't done it but I believe that you can get somewhere in the annotations processing code and add the behavior programatically, although I can't think why you would like to do it. Can you give me an example? –  Ariel Kogan Nov 14 '11 at 15:05
1  
I'm serializing classes that I do not own (cannot modify). In one view, I'd like to serialize with a certain set of fields. In another view, I want a different set of fields serialized (or perhaps rename the properties in the JSON). –  Jon Nov 14 '11 at 18:19
3  
Why this answer is not accepted yet? –  Julián Apr 17 '13 at 8:03
2  
Julián, this is not the correct answer to the question of the OP. However, I suspect that people come here because they google how to ignore properties not defined in POJO and this is the first result, so they end up up-voting this and Suresh's response (thats what happened to me). Although the original question has nothing to do with wanting to ignore undefined properties. –  Ric Jafe Nov 14 at 15:50

You can use

ObjectMapper objectMapper = getObjectMapper();
objectMapper.configure(DeserializationFeature.FAIL_ON_UNKNOWN_PROPERTIES, false);

It will ignore all the properties that are not declared.

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1  
This didn't work for me, it still fails on unknown properties –  Denis Kniazhev Oct 5 '12 at 13:29
    
Could u please paste atleast a piece of code what exactly u are doing, You might have missed something there..Either by doing this or by using "@JsonIgnoreProperties(ignoreUnknown = true) " Your problem should be resolved. Anyways good luck. –  Suresh Lalchandani Oct 7 '12 at 16:51
    
I run this code: pastebin.com/rdBNezEn. However, I have realized that what this question asks is a bit different. Your answer is valid –  Denis Kniazhev Oct 8 '12 at 12:52
10  
FWIW -- I had to import this slightly different enum: org.codehaus.jackson.map.DeserializationConfig.Feature.FAIL_ON_UNKNOWN_PROPERTIE‌​S –  raf Jan 25 '13 at 0:53
4  
^Above is for Jackson versions prior to 2 –  755 Jul 19 '13 at 22:40

The first answer is almost correct, but what is needed is to change getter method, NOT field -- field is private (and not auto-detected); further, getters have precedence over fields if both are visible. (there are ways to make private fields visible, too, but if you want to have getter there's not much point)

So getter should either be named "getWrapper()", or annotated with:

@JsonProperty("wrapper")

if you prefer getter method name as is.

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Great answer- I was having the same error, but I was also looking for a way to use a different name, so thanks. –  IcedDante Jan 6 '13 at 21:12
1  
This is the correct answer. I had no idea this happened, so thank you very much! –  gnclmorais Mar 10 '13 at 17:56

This just perfectly worked for me

ObjectMapper objectMapper = new ObjectMapper();
objectMapper.configure(
    DeserializationConfig.Feature.FAIL_ON_UNKNOWN_PROPERTIES, false);

@JsonIgnoreProperties(ignoreUnknown = true) annotation did not.

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This is the one that is sure shot worked for me. –  Rupesh Sep 5 '13 at 6:23

If you are using Jackson 2.0

ObjectMapper mapper = new ObjectMapper();
mapper.disable(DeserializationFeature.FAIL_ON_UNKNOWN_PROPERTIES);
share|improve this answer

Jackson is complaining because it can't find a field in your class Wrapper that's called "wrapper". It's doing this because your JSON object has a property called "wrapper".

I think the fix is to rename your Wrapper class's field to "wrapper" instead of "students".

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Thanks Jim. I tried that and it did not fix the problem. I am wondering if I am missing some annotation.. –  jshree Dec 20 '10 at 4:21
    
Hmm, what happens when you create the equivalent data in Java and then use Jackson to write it out in JSON. Any difference between that JSON and the JSON above should be a clue to what's going wrong. –  Jim Ferrans Dec 20 '10 at 4:48

This solution is generic when reading json streams and need to get only some fields while fields not mapped correctly in your Domain Classes can be ignored:

import org.codehaus.jackson.annotate.JsonIgnoreProperties;
@JsonIgnoreProperties(ignoreUnknown = true)

A detailed solution would be to use a tool such as jsonschema2pojo to autogenerate the required Domain Classes such as Student from the Schema of the json Response. You can do the latter by any online json to schema converter.

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This works better than All please refer to this property.

import com.fasterxml.jackson.databind.DeserializationFeature;
import com.fasterxml.jackson.databind.ObjectMapper;

    ObjectMapper objectMapper = new ObjectMapper();
    objectMapper.configure(DeserializationFeature.FAIL_ON_UNKNOWN_PROPERTIES, false);
    projectVO = objectMapper.readValue(yourjsonstring, Test.class);
share|improve this answer

As no one else has mentioned, thought I would...

Problem is your property in your JSON is called "wrapper" and your property in Wrapper.class is called "students".

So either...

  1. Correct the name of the property in either the class or JSON.
  2. Annotate your property variable as per StaxMan's comment.
  3. Annotate the setter (if you have one)
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I have tried the below method and it works for such JSON format reading with Jackson. Use the already suggested solution of: annotating getter with @JsonProperty("wrapper")

Your wrapper class

public Class Wrapper{ 
  private List<Student> students;
  //getters & setters here 
} 

My Suggestion of wrapper class

public Class Wrapper{ 

  private StudentHelper students; 

  //getters & setters here 
  // Annotate getter
  @JsonProperty("wrapper")
  StudentHelper getStudents() {
    return students;
  }  
} 


public class StudentHelper {

  @JsonProperty("Student")
  public List<Student> students; 

  //CTOR, getters and setters
  //NOTE: If students is private annotate getter with the annotation @JsonProperty("Student")
}

This would however give you the output of the format:

{"wrapper":{"student":[{"id":13,"name":Fred}]}}

Also for more information refer to https://github.com/FasterXML/jackson-annotations

Hope this helps

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Welcome to stackoverflow. Tip, you can use the {} symbols in the tool bar to format your code snippets. –  Leigh Jun 13 '12 at 20:39

What worked for me, was to make the property public. It solved the problem for me.

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Either Change

public Class Wrapper {
    private List<Student> students;
    //getters & setters here
}

to

public Class Wrapper {
    private List<Student> wrapper;
    //getters & setters here
}

---- or ----

Change your JSON string to

{"students":[{"id":"13","name":"Fred"}]}
share|improve this answer

The POJO should be defined as

Response class

public class Response {
    privat List<Wrapper> wrappers;
    // getter and setter
}

Wrapper class

public class Wrapper {
    private String id;
    private String name;
    // getters and setters
}

and mapper to read value

Response response = mapper.readValue(jsonStr , Response.class);
share|improve this answer

For my part, the only line

@JsonIgnoreProperties(ignoreUnknown = true)

didn't work too.

Just add

@JsonInclude(Include.NON_EMPTY)

Jackson 2.4.0

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