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I am using GSON to parse a Java bean and pass the JSON string to some javascript. There is an item with sensitive data included in the bean, its not a major security risk, but something i'd rather not be able to be seen in the browser by anyone with a tool such as firebug. This particular variable, I don't need to use in the javascript code.

Is there a way to just skip it when parsing the JSON string from the bean and not include it in the string at all.

Maybe I need to create the JSON string and then remove it before I send back to the client?

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let me know if my previous answer does not work for you. See here: stackoverflow.com/a/4803346/298455 – Nishant Feb 3 '12 at 5:36
up vote 0 down vote accepted

I don't know GSON particularly, so they may have an option for this. If I were them, I would skip transient fields.

The easiest thing however if your bean is not complex is to clone/copy it and then remove the sensitive data from the bean in java. That's got to be easier than trying to edit the JSON after the fact.

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just checked, and it looks like they do the expected thing (skip transients)... sites.google.com/site/gson/gson-user-guide – Gus Feb 3 '12 at 5:31
    
I didn't know about transient fields. Thanks! – ryandlf Feb 3 '12 at 5:33
    
The one gotcha of course is if your bean is also serialized in some other way (such as a session on server reboot), you might not want to loose the info, and therefore not want to use the transient flag. stackoverflow.com/questions/910374/… – Gus Feb 3 '12 at 5:37
    
In this case it is fine, because the data is being set on the bean by default through the constructor from a static string. – ryandlf Feb 3 '12 at 5:44

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