1

I need to convert some strings programmatically generated into valid JSON.

I'm using Gson to validate a json string this way:

try{
    new com.google.gson.JsonParser().parse("{\"data\":\\\"some data...\"}");                
}catch(JsonParseException e){
    System.out.println(e.getMessage());
}

I know this json is not ok, but I need to implement a way to know where exactly the error is. If I validate that string in jsonlint, the error displayed is:

Parse error on line 2:
{    "data": \"somedata..."}
-------------^
Expecting 'STRING', 'NUMBER', 'NULL', 'TRUE', 'FALSE', '{', '[' 

However, the exception message diplayed by Gson is not as descriptive:

com.google.gson.stream.MalformedJsonException: Expected value at line 1 column 9

So, is there a tool in java as descriptive as jsonlint for the validation messages?. I need to present it to a end user.

Thanks in advance!

  • 1
    What's wrong with using jsonlint then? – djechlin Aug 28 '13 at 0:14
  • 1
    "Descriptive"? Do you need this to present to the user? Because the Gson message tells the same thing as Jsonlint, it is just not enumeration what a "value" technically is. – Hauke Ingmar Schmidt Aug 28 '13 at 0:38
  • yes, I need to present the validation message to the user. I would use jsonlint but don't know how to integrate it to java. This will be a swing application. – Boel Aug 28 '13 at 0:42
  • It is not the task of a parser to format error messages in an end user friendly way. – Hauke Ingmar Schmidt Aug 29 '13 at 16:53
0

Try this:

try{
        JsonObject root = (JsonObject)new JsonParser().parse("{\"data\":\"some data...\"}");  
        System.out.println(root.toString());
    }catch(JsonParseException e){
        System.out.println(e.getMessage());
    }
  • thanks but this time the string to be parsed is not malformed and the excepcion will not launch. – Boel Aug 28 '13 at 3:58

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