1

My JSON has the following structure:

{"name": [9000, {Inst1}, ..., {Instn}]}

Where 9000 is an arbitrary integer and Insti are serialized instances of some class. I'm using something like this for getting all the Inst into the list:

Type listType = new TypeToken<ArrayList<Song>>(){}.getType();

and trying go exclude that first int by writing something like this:

public class ExcludeTotalFound implements ExclusionStrategy {
    private final Class<?> typeToSkip;

    public ExcludeTotalFound(Class<?> typeToSkip) {
        this.typeToSkip = typeToSkip;
    }
    public boolean shouldSkipClass(Class<?> clas_s) {
        return clas_s == typeToSkip;
    }
    public boolean shouldSkipField(FieldAttributes fieldAttributes) {
        return typeToSkip.equals(fieldAttributes.getDeclaredClass());
    }
}

And, finally, I'm doing

gson = new GsonBuilder().addDeserializationExclusionStrategy(new ExcludeTotalFound(int.class)).serializeNulls().create();

and, then:

collection = gson.fromJson(rBody, listType);

where rBody is all that raw array, i.e. {"name": [9000, {Inst1}, ..., {Instn}]

But all what I get is

com.google.gson.JsonSyntaxException: java.lang.IllegalStateException: Expected BEGIN_OBJECT but was NUMBER`

What's the problem?

ADD: As long, as I know that the length of my JSON will never exceed ~500, and that the structure remains always the same, is it good enough to use the following workaround?

Iterator<JsonElement> it = rBody.iterator();
it.next();
while (it.hasNext()) {
    collection.add(gson.fromJson(it.next(), Song.class));
}
  • side note, Class<?> clas_s is sometimes written as Class<?> clazz - anybody know what is the "standard" – NG. Apr 29 '13 at 19:14
  • @SB there is no standard. That's just a parameter name... It helps if you use the same across your application, but if you don't, I don't see a big deal. – acdcjunior May 4 '13 at 6:32
0

This looks pretty similar to this one I answered over here --> Gson custom deserialization. Does that help? It's not by exclusion, but rather by custom deserialization.

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.