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I have a javax.json.JsonObject and want to validate it against a JSON schema. So I've found the com.github.fge.json-schema-validator. But it works only with com.fasterxml.jackson.databind.JsonNode.

Is there a way to convert my JsonObject into a JsonNode?

0

2 Answers 2

10
public JsonNode toJsonNode(JsonObject jsonObj) {
    ObjectMapper objectMapper = new ObjectMapper();
    return objectMapper.readTree(jsonObj.toString());
}

this will just to it. JsonObject.toString() will convert to json String, you don't need to use anything else.

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The following solution parses a javax.json.JsonObject into a JSON string and then parses the JSON string into a com.fasterxml.jackson.databind.JsonNode using Jackson's ObjectMapper:

public JsonNode toJsonNode(JsonObject jsonObject) {

    // Parse a JsonObject into a JSON string
    StringWriter stringWriter = new StringWriter();
    try (JsonWriter jsonWriter = Json.createWriter(stringWriter)) {
        jsonWriter.writeObject(jsonObject);
    }
    String json = stringWriter.toString();

    // Parse a JSON string into a JsonNode
    ObjectMapper objectMapper = new ObjectMapper();
    JsonNode jsonNode = objectMapper.readTree(json);

    return jsonNode;
}
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  • 1
    This it is! Thank you very much :)
    – Maik
    Apr 8, 2016 at 9:04
  • @frogeyedpeas Is the lack of the import details the reason for the downvote? Jan 8, 2017 at 18:18
  • No I didn't downvote, i only stumbled upon this just now and it seems relevant to something I'm working on. Jan 8, 2017 at 18:20
  • @frogeyedpeas I'll consider updating the answer with the import details very soon. For now, the qualified class names on the top of the answer give you a hint. Jan 8, 2017 at 18:24
  • 1
    @frogeyedpeas Please refer to javax.json.Json. It's part of the Java EE 7 and was introduced in the JSR 353, the Java API for JSON Processing. Jan 8, 2017 at 18:31

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