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I have a question about type casting. I have the following JSON String:

{"server":"clients","method":"whoIs","arguments":["hello"]}

I am parsing it to the following Map<String, Object>.

{arguments=[hello], method=whoIs, server=clients}

It is now possible to do the following:

request.get("arguments");

This works fine. But I need to get the array that is stored in the arguments. How can I accomplish this? I tried (for example) the following:

System.out.println(request.get("arguments")[0]);

But of course this didn't work..

How would this be possible?

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1  
How do you pass the JSON string to the Map? This isn't directly possible. What is the request object you are using? Do you use a specific web framework? –  kgiannakakis Apr 12 '10 at 14:34
    
well I use just sockets for receiving.. and then the svenson library for parsing. and store it like this: Map<String, Object> –  heldopslippers Apr 12 '10 at 14:36
2  
"this doesn't work" is not useful: please explain HOW it is failing (exception, stack trace). Also: which JSON Library are you using? –  StaxMan Apr 12 '10 at 18:33
    
Was this issue resolved? –  Programmer Bruce Jun 16 '11 at 17:13

3 Answers 3

up vote 2 down vote accepted

Most likely, value is a java.util.List. So you would access it like:

System.out.println(((List<?>) request.get("arguments")).get(0));

But for more convenient access, perhaps have a look at Jackson, and specifically its Tree Model:

JsonNode root = new ObjectMapper().readTree(source);
System.out.println(root.get("arguments").get(0));

Jackson can of course bind to a regular Map too, which would be done like:

Map<?,?> map = new ObjectMapper().readValue(source, Map.class);

But accessing Maps is a bit less convenient due to casts, and inability to gracefully handle nulls.

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And yet ANOTHER case in which the SO editor won't let me make a critical one-letter correction (and somehow I can't get past the CATSPAW or whatever it's called): The URL for the Tree Model is missing the "l". Here's the correct one: wiki.fasterxml.com/JacksonTreeModel. –  JohnK Oct 28 '12 at 6:08
    
thx, fixed it... –  StaxMan Oct 31 '12 at 22:18

Maybe

 System.out.println( ((Object[]) request.get("arguments")) [0]);

? You could also try casting this to a String[].

Anyway, there are more civilized ways of parsing JSON, such as http://code.google.com/p/google-gson/.

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yes i tried almost all json parsers. The problem with google-gson is that it requires classes. I think this is bad practice because for almost every type of request i can expect i need to create a class. –  heldopslippers Apr 12 '10 at 14:40
    
nope that doesn't work. But maybe i am wrong about gson... –  heldopslippers Apr 12 '10 at 14:42
    
If you don't have classes, you still need to write code to handle the hierarchy inside JSON. ...and classes were invented just exactly for the same purpose. You could also get the best of both worlds by by writing your own (de)serializers. Anyway, it is hard for me to comment without knowing much of your project details. –  mindas Apr 12 '10 at 14:46
    
Ah yes of course i understand. Well i am building a content Management System that will have an Enterprise Service Bus architecture. This means that the system will have a lot of small servers who will each have their own function. (for example an pictures server for images and a rights server for right policies etc .). The requests between the servers are based on the following principle: {server:images, method:getPicture(1)}. I already build the system in ruby but for performance i am rebuilding it in java. –  heldopslippers Apr 12 '10 at 15:03
    
And because java doesn't have an eval() method i changed the json requests to: {server:images, method:getPicture, arguments:[1]} –  heldopslippers Apr 12 '10 at 15:03

StaxMan is correct that the type of the JSON array in Java is List (with ArrayList as implementation), assuming that the JSON is deserialized similar to

Map<String, Object> map = JSONParser.defaultJSONParser().parse(Map.class, jsonInput);

It is easy to determine such things by simply inspecting the types.

Map<String, Object> map = JSONParser.defaultJSONParser().parse(Map.class, jsonInput);
System.out.println(map);

for (String key : map.keySet())
{
  Object value = map.get(key);
  System.out.printf("%s=%s (type:%s)\n", key, value, value.getClass());
}

Output:

{arguments=[hello], method=whoIs, server=clients}
arguments=[hello] (type:class java.util.ArrayList)
method=whoIs (type:class java.lang.String)
server=clients (type:class java.lang.String)

Also, the svenson documentation on basic JSON parsing describes that "[b]y default, arrays will be parsed into java.util.List instances".

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