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My class is like:

class Foo {
   public String duration;
   public String height;
}

And my json data looks like

{"duration":"12200000", "height":"162"}

Now I want to deserialize it by

 Foo foo = gson.fromJson(jsonStr, Foo.class);

So that, foo.duration is "20 mins" (number of minutes), foo.height is "162cm"

Is this possible to do using Gson?

Thanks!

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What do you mean under "deserialize"? –  Arhimed Nov 17 '11 at 10:17
    
I meant, Foo foo = gson.fromJson(...) –  smilingcoder Nov 17 '11 at 10:20

1 Answer 1

up vote 4 down vote accepted

GSON allows creation of custom deserializers/serializers. Try to read here.

Sorry for without an example.

class FooDeserializer implements JsonDeserializer<Foo>{
   @Override
   public Foo deserialize(JsonElement json, Type typeOfT,
   JsonDeserializationContext context) throws JsonParseException {

    JsonObject jo = (JsonObject)json;
    String a = jo.get("duration").getAsString()+" mins";
    String b = jo.get("height").getAsString() + " cm";

//Should be an appropriate constructor
    return new Foo(a,b);
    }               
}

then:

Gson gson = new GsonBuilder().registerTypeAdapter(Foo.class, foo.new FooDeserializer()).create();

and you should receive result as you wish it to get using fromJson(...).

share|improve this answer
    
Yes, in that doc, the custom deserializer def is based on data type, in my example above, both field type are String, but I need different deserialization logic based on field name. –  smilingcoder Nov 17 '11 at 10:26
    
Check edited answer. –  87element Nov 17 '11 at 11:03
    
Great! This should work. Thanks! –  smilingcoder Nov 18 '11 at 0:55
1  
If you have to do custom parsing for each field of the object being parsed, it defeats the purpose of using Gson ! –  snegi Jan 16 at 18:36

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