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I've spent the past two hours debugging what seems extremely unlikely. I've stripped the method of a secondary Android Activity to exactly this:

public void onClick(View v) {
        String str = "25";
        long my_long = Long.getLong(str);
} // onClick (v)

And yeah, I get a crash with the good ol' NullPointerException:

09-11 02:02:50.444: ERROR/AndroidRuntime(1588): Uncaught handler: thread main exiting due to uncaught exception 09-11 02:02:50.464: ERROR/AndroidRuntime(1588): java.lang.NullPointerException

It looks like (from other tests) that Long.getLong(str) returns NULL, which is driving me bonkers. WHAT AM I MISSING?

Thanks in advance. I'm okay with stupidly missing the obvious, but my sanity is on the line.

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2  
use Long.parseLong(str); instead of Long.getLong(str); –  user370305 Sep 11 '11 at 7:31

4 Answers 4

up vote 42 down vote accepted

You are missing the fact that Long.getLong(String str) is not supposed to parse a String to a long, but rather to return a long value of a system property represented by that string. As others have suggested, what you actually need is Long.parseLong(String str).

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Ahh, that makes perfect sense. Thanks! –  Scott Biggs Sep 11 '11 at 16:57
    
Very descriptive reply.+1 for that. –  Android Killer Sep 11 '11 at 17:30
    
Thanks and welcome :) –  MeLight Sep 11 '11 at 18:35
3  
I have often wondered what getLong and the other getX of the primitive types where supposed to do. It seems to me to be a very poor design choice to have getLong on the Long class which is related to system variables or perhaps just a curse to those of us who, like my self, use ctrl+space too extensively. Great response. –  abondoa Mar 20 '14 at 15:41

you can use Long.parsLong(String) instead of getLong(String) it will solve the problem

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Thanks, the change worked! –  Scott Biggs Sep 11 '11 at 18:52

I think you are using wrong function use Long.parseLong(str) then you can get the right answer.

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You are absolutely right. Thanks for the help! –  Scott Biggs Sep 11 '11 at 18:52
    
My pleasure to help u buddy. –  Android Killer Sep 12 '11 at 2:26

Long.parseLong(someString) approved. Don't forget to catch NumberFormatException if there's a probability of unparsable string.

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Yes, thank you! Wasn't thinking along those lines. –  Scott Biggs Sep 11 '11 at 16:58

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