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I have been trying to follow along with this solution How to find specified name and its value in JSON-string from Java?

However it does not seem to make sense.

I define a new gson object from a string:

Example of string here: http://api.soundrop.fm/spaces/XJTt3mXTOZpvgmOc

public void convertToJson()
{
    Gson gson = new Gson();
    Object gsonContent = gson.fromJson( stringContent, RadioContent.class );
}

And then try and return a value:

public Object getValue( String find )
{
    return gsonContent.find;
}

Finally its called with:

public static void print( String find = "title" )
{
    Object value = radioContent.getValue( find );

    System.out.println( value );
}

However I am getting an error:

java: cannot find symbol
  symbol:   variable find
  location: variable gsonContent of type java.lang.Object

Full classes: Main class: http://pastebin.com/v4LrZm6k Radio class: http://pastebin.com/2BWwb6eD

share|improve this question
    
First got to json.org and study the JSON syntax. There are two types of JSON structures, "objects" and "arrays". Everything is built by layering those together. "Objects" you access using keys, while "arrays" are accessed with a numeric index. Depending on the toolkit you use the "deserialized" JSON will be represented as plain old Java Maps ("objects") and Lists ("arrays") or special Map/List-like classes belonging to the JSON kit you use. (It's important to note that the JSON "object" is not the same as the Java "Object".) –  Hot Licks Feb 7 '14 at 19:39
    
Essentially, all I want to do is get the value of a key. So I'm guessing objects are what I should be working with. –  Nonnisi Feb 7 '14 at 19:43
    
Parse the JSON as a JsonObject and retrieve the field you need. –  Sotirios Delimanolis Feb 7 '14 at 19:45
    
Retrieving the field is what I have been trying to achieve here. –  Nonnisi Feb 7 '14 at 19:48
1  
In the general case (without looking at the incoming JSON), when you parse JSON you don't know if you get back an object or an array. So you'd use instanceof to check which, and then cast to the appropriate type. If you "trust" the JSON to be a certain way you can skip that and parse directly as an object. In either case, once you have an object (Java Map), you can get the element you want using the appropriate key. Of course, if you want something several layers in you must "peel the onion" to get there. –  Hot Licks Feb 7 '14 at 20:51

1 Answer 1

up vote 1 down vote accepted

This is Java. Fields are resolved based on the declared type of the object reference.

Based on your compiler error, gsonContent is a variable of type Object. Object does not have a find field.

You're already telling Gson what type to deserialize to, so just make the gsonContent variable be of that type

RadioContent gsonContent = gson.fromJson( stringContent, RadioContent.class );

Also, it seems like you are shadowing the instance gsonContent field with a local variable.


You can do the following as well

JsonObject jsonObject = gson.fromJson( stringContent, JsonObject.class);
jsonObject.get(fieldName); // returns a JsonElement for that name
share|improve this answer
    
Does creating a new instance of RadioContent waste a large amount of resources? Since most of it would not be used for that instance, would I be wiser to move find to a separate class and then create an instance of that new class? –  Nonnisi Feb 7 '14 at 19:34
    
@Nonnisi This gson.fromJson( stringContent, RadioContent.class ); creates a RadioContent instance regardless of what you assign it to. –  Sotirios Delimanolis Feb 7 '14 at 19:35
    
public static void print( String find = "title" ) I added = "title" to simplify the example. –  Nonnisi Feb 7 '14 at 19:38
    
Im a little confused about JsonObject jsonObject = gson.fromJson( stringContent, JsonObject.class); It seems to produce an empty json object rather than one populated with the content from StringContent. –  Nonnisi Feb 7 '14 at 21:20

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