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How to convert this Objective C code in Java ?

NSMutableString * thisPart = [[NSMutableString alloc] init];
UInt64 intVal = (UInt64)[thisPart longLongValue];
if (!intVal) { isBad = YES; break; }

I've been searching over the internet but didn't find any useful information over the internet.

If I had :

UInt32 _tmpPacket_packetId;
_tmpPacket_packetId = (UInt32)intVal;  // UInt64 intVal = (UInt64)[thisPart longLongValue];

Can I do this :

BigInteger tmpPacket_packetId = intVal;

Actually the right question is : Is it right to do that to get the same thing as done in Objective C?

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2 Answers

up vote 2 down vote accepted

I'm going to assume that you don't care about the NSMutableString bit which would probably similar to the StringBuilder/StringBuffer classes. A UInt64 would appear to be a 64bit unsigned int? Then you could use the String constructor provided by BigInteger(String)

StringBuilder thisPart = new StringBuilder("12345678901234567890");
try {
    BigInteger intVal = new BigInteger(thisPart.toString());
} catch (NumberFormatException e) {
    System.out.println("Bad value");
    isBad = true;
    break; // or return or what have you
}
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Actually it's kinda work.But now I have an error doing this : *** thisPart=tmp.substring(lastLoc, needsSize); ** where *** String tmp=incomingData.toString(); //(incomingData is byte[]). *** and it's saying to convert thisPart to String. –  Android-Droid Aug 26 '11 at 12:24
    
Then don't use StringBuilder, just use String. I was going by the fact that you were using an NSMutableString in Objective-c. –  Goibniu Aug 26 '11 at 12:27
    
And last question if I had this : *** _tmpPacket_packetId = (UInt32)intVal; *** where *** UInt32 _tmpPacket_packetId *** Can I do this : BigInteger tmpPacket_packetId = intVal; //not really sure if it will be right as in Objective C... –  Android-Droid Aug 26 '11 at 12:36
    
Could you add that part to your question, I'm finding it difficult to read in the comments. –  Goibniu Aug 26 '11 at 13:04
    
I just edit the question. –  Android-Droid Aug 26 '11 at 13:12
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String str = "1234567890";
long l = Long.parseLong(str);

You'll need error handling around the parse call.

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It's giving me this error : Cannot invoke longValue() on the primitive type long. –  Android-Droid Aug 26 '11 at 12:11
    
You don't need the longValue(), it will be auto-unboxed (at least in Java > 5, or so). Edit: Actually as Bombastic found, parseLong returns a primitive long, but if it had returned Long, this comment would apply. –  Bart van Heukelom Aug 26 '11 at 12:12
    
I'm was assuming the UInt64 is an unsigned long, so you'll have issues with overflow. But if it's not, then this works. –  Goibniu Aug 26 '11 at 12:12
    
@Rulmeq Only if the number is actually used in calculations. If it's just stored and later e.g sent over a network, you can store unsigned numbers in a signed long just fine. Edit: But now that I think of it, that seems an unlikely use case when parsing from a string. –  Bart van Heukelom Aug 26 '11 at 12:14
    
Wow, 12 years working with Java, never knew that :) Thanks. –  Goibniu Aug 26 '11 at 12:17
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