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How can I do this:

I'm trying to find a way to open resources which name is determined at runtime only.

Let me explain in more details

I want to have a XML that references a bunch of other XML files in the application apk.

For the purpose of explaining let's say the main XML is main.xml and the other XML are file1.xml file2.xml, fileX.xml.

What I want is to read main.xml, extract the name of the XML I want (fileX.xml) for example. And then read fileX.XML.

The problem I face is that what I extract form main.xml is a string and I can't find a way to change that to R.raw.nameOfTheFile

Anybody has an idea?

I don't want to:

  • regroup everything in one huge XML file
  • hardcode main.xml in a huge switch case that links a number/string to the resource ID
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i faced a similar problem but I am not getting any accepted answer for this. Can anybody start bounty for this question? –  Mohit Sehgal Aug 30 '13 at 8:48

2 Answers 2

up vote 39 down vote accepted

I haven't used it with raw files or xml layout files, but for drawables I use this:

getResources().getIdentifier("fileX", "drawable","com.yourapppackage.www");

to get the identifier (R.id) of the resource. You would need to replace drawable with something else, maybe raw or layout (untested).

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Thanks for the answer that work great. For those in the same case here is a good explanation on the subject (once I had the name of the function it was simple): getResources().getIdentifier("fileX", "raw", application package); –  Jason Rogers Sep 6 '10 at 5:22
1  
Dead link? @JasonRogers Ah, nvm - it should be anddev.org/… –  aaronsnoswell Jul 20 '12 at 2:31
1  
no not dead link casperOne removed my post and changed it to a comment without taking the time to do it correctly (aka broken link) here is the link: anddev.org/tinytut_-get_resources_by_name__getidentifier-t460.html –  Jason Rogers Jul 20 '12 at 10:53
    
worked perfectly fine.! –  Mohit Sehgal Aug 30 '13 at 9:16

I wrote this handy little helper method to encapsulate this:

public static String getResourceString(String name, Context context) {
    int nameResourceID = context.getResources().getIdentifier(name, "string", context.getApplicationInfo().packageName);
    if (nameResourceID == 0) {
        throw new IllegalArgumentException("No resource string found with name " + name);
    } else {
        return context.getString(nameResourceID);
    }
}
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Very useful, thanks, but not ever we would want a string. sometimes a stream would be better. –  Gustavo Maciel Dec 23 '11 at 0:31

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