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I'm trying to do the following:

// I have a Bundle and convert it to string
Bundle _bundle;
// Meanwhile I put intergers, booleans etc in _bundle
String _strBundle = _bundle.toString();

Later in my code I need to create a Bundle from _strBundle. How do I do that? So far I couldn't find any information on this. Of course I don't wish to parse _strBundle myself and hope that the fremawork already provides a String2Bundle sort of a functionality.

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you have a Bundle in the _bundle.So why do you need Bundle from _strBundle. –  Rasel Jul 1 '11 at 8:17
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At some point in time I need to create a Bundle from a string. It's long to explain why I need this. –  ali.chousein Jul 1 '11 at 8:42

2 Answers 2

up vote 3 down vote accepted

As far as i know there is no way for the framework to know what is stored in your string. The same pattern could have possible interpretations (string, boolean, integer) and so i don't think that that actually even makes sense.

In fact i can't imagine why you would need to do it. You already have the bundle in the first place. I suggest you keep the original bundle and use it when you need it or make the parse of the string and create the bundle yourself (which won't be an easy task if you want to cover all the possibilities).

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Yes indeed, possible interpretations are possible. I have the impression that String-to-Bundle is not supported by the framework. If it was possible I had a terrific software architecture design in my mind, but I have to revise it now I think :-) –  ali.chousein Jul 1 '11 at 10:09
    
I'm glad i could help. Do you know about the principle of accepting answers here by clicking on the checkbox outline beside your favorite answer? –  seth Jul 1 '11 at 10:21

If you want to pass data as String to another place, it's better to use JSONObject it's very simple to create JSONObject from String and vice versa. And it's too similar to Bundle class!

json = new JSONObject(str);
str = json.toString();

Also, You can pass it as String parameter with Intent or the other method as String.

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