27

I have the following JSON string:

{
    "ms": "images,5160.1",
    "turl": "http://ts1.mm.bing.net/th?id=I4693880201938488&pid=1.1",
    "height": "178",
    "width": "300",
    "imgurl": "http://www.attackingsoccer.com/wp-content/uploads/2011/07/World-Cup-2012-Draw.jpg",
    "offset": "0",
    "t": "World Cup 2014 Qualification – Europe Draw World Cup 2012 Draw ...",
    "w": "719",
    "h": "427",
    "ff": "jpeg",
    "fs": "52",
    "durl": "www.attackingsoccer.com/2011/07/world-cup-2012-qualification-europe...",
    "surl": "http://www.attackingsoccer.com/2011/07/world-cup-2012-qualification-europe-draw/world-cup-2012-draw/",
    "mid": "D9E91A0BA6F9E4C65C82452E2A5604BAC8744F1B",
    "k": "6",
    "ns": "API.images"
}

I need to store the value of imgurl in a separate string.

This is what I have till now, but this just gives me the whole JSON string instead of the specific imgurl field.

Gson gson = new Gson();
Data data = new Data();
data = gson.fromJson(toExtract, Data.class);
System.out.println(data);

toExtract is the JSON string. Here is my data class:

public class Data 
{
    public List<urlString> myurls;
}

class urlString
{
    String imgurl;
}
52

When parsing such a simple structure, no need to have dedicated classes.

Solution 1 :

To get the imgurURL from your String with gson, you can do this :

JsonParser parser = new JsonParser();
JsonObject obj = parser.parse(toExtract).getAsJsonObject();
String imgurl = obj.get("imgurl").getAsString();

This uses a raw parsing into a JsonObject.

Solution 2 :

Alternatively, you could extract your whole data in a Properties instance using

 Properties data = gson.fromJson(toExtract, Properties.class);

and read your URL with

String imgurl = data.getProperty("imgurl");
  • 1
    Thank You! This really helped! Could you also please explain to me why my code didn't work? I saw a few other examples where making dedicated classes also worked. – Sid Jul 11 '12 at 9:27
  • 1
    That's because the json structure doesn't correspond to an object containing a list of strings. It would have been like {["a", "anotherurl","ttt"]}. – Denys Séguret Jul 11 '12 at 9:40
  • Thank you, that was extremely helpful. – mseancole Jul 15 '12 at 3:15
  • 4
    Instead of toString() it is better to use getAsString() otherwise it will contain extra quotes. – Tomáš Linhart Apr 20 '15 at 16:21
  • @TomášLinhart You're perfectly right, I fix that – Denys Séguret Apr 20 '15 at 16:27

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