2

I have a Java app that is getting back the following JSON from a 3rd party RESTful web service:

{
    "widgets":[
        [
            {
                "id":25128,
                "status":"always",
                "uuid":"96f62edd-fa8a-4267-8ffb-14af0d37de26"
            }
        ],
        [
            {
                "id":25200,
                "status":"always",
                "uuid":"78553c9e-398f-495a-8fb8-ada0fb297844"
            }
        ],
        [
            {
                "id":25128,
                "status":"never",
                "uuid":"b1e3deb2-a842-4cba-8272-458d15efb394"
            }
        ]
    ]
}

And trying to convert it into a List<Widget> using GSON:

public class Widget {
    @SerializedName("id")
    private Long id;

    @SerializedName("status")
    private String status;

    @SerializedName("uuid")
    private String uuid;

    // Getters & setters, etc.
}

Here is my mapper code:

String jsonResponse = getJsonFromWebService();
Gson gson = new Gson();
List<Widget> widgets = gson.fromJson(jsonResponse, new TypeToken<List<Widget>>(){}.getType());

When I run this, I'm getting the following error:

java.lang.IllegalStateException: Expected BEGIN_ARRAY but was BEGIN_OBJECT at line 1 column 2
java.lang.IllegalStateException: Expected BEGIN_ARRAY but was BEGIN_OBJECT at line 1 column 2
com.google.gson.JsonSyntaxException: java.lang.IllegalStateException: Expected BEGIN_ARRAY but was BEGIN_OBJECT at line 1 column 2

Obviously, I either need to manipulate the JSON string before sending it to my GSON mapper code, or I need to configure GSON to handle the "unexpected" JSON, but I'm not sure which is easier/more appropriate. If I need to "massage" the JSON string, not sure what I need to do to make GSON play nicely with it. And if I need to configure GSON, not sure what to do there either. Any ideas? Thanks in advance.

  • 1
    Each of the elements in the JSON array of widgets is itself an array with a single element - your deserialization logic does not account for that. – cjstehno Feb 28 '13 at 14:24
1

What's wrong is that you're ignoring the root JSON Object with a single JSON Property "widgets". Try deserializing your data into this object instead:

public class WidgetList {
    @SerializedName("widgets")
    private List<List<Widget>> widgets;
}
  • 1
    And new Gson().fromJson(json, new TypeToken<List<List<Widget>>>(){}.getType()); – jn1kk Feb 28 '13 at 15:07
  • Nice suggestion @jsn but it actually didn't work. I had to just use new Gson().fromJson(json, WidgetList.class) and that worked fine. – IAmYourFaja Feb 28 '13 at 16:11
  • { "items" : [ 1, 2, 3 ] } does not deserialize to List<int>, but [ 1, 2, 3 ] does. You can't ignore the top-level object with single property. – Timothy Shields Feb 28 '13 at 16:30
0

Massaging it to the below format works for me

[
    {
       'id':25128,
       'status':'always',
       'uuid':'96f62edd-fa8a-4267-8ffb-14af0d37de26'                                                           },       
    {
        'id':25200,
        'status':'always',
        'uuid':'78553c9e-398f-495a-8fb8-ada0fb297844'                                           },
    {   'id':25128,
        'status':'never',
        'uuid':'b1e3deb2-a842-4cba-8272-458d15efb394'   
}
]

As the below demonstrates

public class TryMe {

    public static void main(String[] args) {

    Gson gson = new Gson();
        List<Widget> widgets = gson.fromJson(json,
                new TypeToken<List<Widget>>() {
                }.getType());

        System.out.println(widgets);
    }
}

class Widget {
    @SerializedName("id")
    private Long id;

    @SerializedName("status")
    private String status;

    @SerializedName("uuid")
    private String uuid;

    public Long getId() {
        return id;
    }

    public void setId(Long id) {
        this.id = id;
    }

    public String getStatus() {
        return status;
    }

    public void setStatus(String status) {
        this.status = status;
    }

    public String getUuid() {
        return uuid;
    }

    public void setUuid(String uuid) {
        this.uuid = uuid;
    }

    @Override
    public String toString() {
        return "Widget [id=" + id + ", status=" + status + ", uuid=" + uuid
                + "]";
    }   
}

Giving the below resp

[Widget [id=25128, status=always, uuid=96f62edd-fa8a-4267-8ffb-14af0d37de26], Widget [id=25200, status=always, uuid=78553c9e-398f-495a-8fb8-ada0fb297844], Widget [id=25128, status=never, uuid=b1e3deb2-a842-4cba-8272-458d15efb394]]

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.