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I am trying to include raw JSON inside a Java object when the object is (de)serialized using Jackson. In order to test this functionality, I wrote the following test:

public static class Pojo {
    public String foo;

    @JsonRawValue
    public String bar;
}

@Test
public void test() throws JsonGenerationException, JsonMappingException, IOException {

    String foo = "one";
    String bar = "{\"A\":false}";

    Pojo pojo = new Pojo();
    pojo.foo = foo;
    pojo.bar = bar;

    String json = "{\"foo\":\"" + foo + "\",\"bar\":" + bar + "}";

    ObjectMapper objectMapper = new ObjectMapper();
    String output = objectMapper.writeValueAsString(pojo);
    System.out.println(output);
    assertEquals(json, output);

    Pojo deserialized = objectMapper.readValue(output, Pojo.class);
    assertEquals(foo, deserialized.foo);
    assertEquals(bar, deserialized.bar);
}

The code outputs the following line:

{"foo":"one","bar":{"A":false}}

The JSON is exactly how I want things to look. Unfortunately, the code fails with an exception when attempting to read the JSON back in to the object. Here is the exception:

org.codehaus.jackson.map.JsonMappingException: Can not deserialize instance of java.lang.String out of START_OBJECT token at [Source: java.io.StringReader@d70d7a; line: 1, column: 13] (through reference chain: com.tnal.prism.cobalt.gather.testing.Pojo["bar"])

Why does Jackson function just fine in one direction but fail when going the other direction? It seems like it should be able to take its own output as input again. I know what I'm trying to do is unorthodox (the general advice is to create an inner object for bar that has a property named A), but I don't want to interact with this JSON at all. My code is acting as a pass-through for this code -- I want to take in this JSON and send it back out again without touching a thing, because when the JSON changes I don't want my code to need modifications.

Thanks for the advice.

EDIT: Made Pojo a static class, which was causing a different error.

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5 Answers 5

up vote 12 down vote accepted

@JsonRawValue is intended for serialization-side only, since the reverse direction is a bit trickier to handle. In effect it was added to allow injecting pre-encoded content.

I guess it would be possible to add support for reverse, although that would be quite awkward: content will have to be parsed, and then re-written back to "raw" form, which may or may not be the same (since character quoting may differ). This for general case. But perhaps it would make sense for some subset of problems.

But I think a work-around for your specific case would be to specify type as 'java.lang.Object', since this should work ok: for serialization, String will be output as is, and for deserialization, it will be deserialized as a Map. Actually you might want to have separate getter/setter if so; getter would return String for serialization (and needs @JsonRawValue); and setter would take either Map or Object. You could re-encode it to a String if that makes sense.

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This works like a charm; see my response for code (formatting in the comments is awgul). –  yves amsellem Jul 12 '12 at 12:55

Following @StaxMan answer, I've made the following works like a charm:

public class Pojo {
  Object json;

  @JsonRawValue
  public String getJson() {
    // default raw value: null or "[]"
    return json == null ? null : json.toString();
  }

  public void setJson(JsonNode node) {
    this.json = node;
  }
}

And, to be faithful to the initial question, here is the working test:

public class PojoTest {
  ObjectMapper mapper = new ObjectMapper();

  @Test
  public void test() throws IOException {
    Pojo pojo = new Pojo("{\"foo\":18}");

    String output = mapper.writeValueAsString(pojo);
    assertThat(output).isEqualTo("{\"json\":{\"foo\":18}}");

    Pojo deserialized = mapper.readValue(output, Pojo.class);
    assertThat(deserialized.json.toString()).isEqualTo("{\"foo\":18}");
    // deserialized.json == {"foo":18}
  }
}
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This is a problem with your inner classes. The Pojo class is a non-static inner class of your test class, and Jackson cannot instantiate that class. So it can serialize, but not deserialize.

Redefine your class like this:

public static class Pojo {
    public String foo;

    @JsonRawValue
    public String bar;
}

Note the addition of static

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Thanks. That got me one step further, but now I'm getting a different error. I'll update the original post with the new error. –  bhilstrom Jan 24 '11 at 15:59

I had the exact same issue. I found the solution in this post : Parse JSON tree to plain class using Jackson or its alternatives

Check out the last answer. By defining a custom setter for the property that takes a JsonNode as parameter and calls the toString method on the jsonNode to set the String property, it all works out.

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I was able to do this with a custom deserializer (cut and pasted from here)

package etc;

import java.io.IOException;

import com.fasterxml.jackson.core.JsonParser;
import com.fasterxml.jackson.core.JsonProcessingException;
import com.fasterxml.jackson.core.TreeNode;
import com.fasterxml.jackson.databind.DeserializationContext;
import com.fasterxml.jackson.databind.JsonDeserializer;

/**
 * Keeps json value as json, does not try to deserialize it
 * @author roytruelove
 *
 */
public class KeepAsJsonDeserialzier extends JsonDeserializer<String> {

    @Override
    public String deserialize(JsonParser jp, DeserializationContext ctxt)
            throws IOException, JsonProcessingException {

        TreeNode tree = jp.getCodec().readTree(jp);
        return tree.toString();
    }
}
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