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How to port this code in Objective-C? Anyone please help.

return data.length != 0 ? new Byte(data[0]) : null;  // In Java  

I am doing it this way, but this does not show the proper result

return datalen!= 0?malloc(sizeof(char) *data[0]) :NULL; //In Objective C it is write java data is byte 

**In obj C** datalen int datalen = sizeof(data)/sizeof(*data);

I am unable to return data value. What is the problem?

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BTW: You would never use new Byte(byte) like this in Java. You can use autoboxing or Byte.valueOf(byte) as every possible Byte value is cached. –  Peter Lawrey Aug 1 '12 at 14:58

3 Answers 3

up vote 1 down vote accepted

You should return a NSData object:

NSData* dataObj = nil;
if (datalen)
        dataObj = [NSData dataWithBytes:data length:1];

return dataObj;
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In Java you are returning a new object wrapper of type Byte; in Objective-C there is no object like that. The object that you are returning in Java represents a single byte or null if the byte wasn't there (i.e. the length of data array was zero).

The closest thing in Objective-C would be NSNumber:

-(NSNumber*) theMethod {
    // Prepare the data and compute datalen
    return datalen ? [NSNumber numberWithChar:data[0]] : nil;
}

You would need to unwrap the value on the receiving end:

if (returnedValue != nil) {
    char ch = returnedValue.charValue;
}

Note that the way you compute datalen by dividing sizeof by the size of the element works only for C array objects. It does not work for pointers and C arrays passed to your method. If the array is passed into your method, its length needs to be passed as well.

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In C, use the sizeof operator (i.e. not the function), in this case:

int datalen = sizeof data;

But I would suggest using NSData like phix23 mentioned, it's much more Objective-C like and comes with a lot of goodies.

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