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I have a program that receives binary data, and depending on its heading, represents either a float, int, double, char, string, etc.

In the program, I utilize the ByteBuffer class to take that byte[] and then use the getFloat() or getInt() etc. methods to extract out the contents into a usable form.

I'd like to pass the value from getFloat() or getInt() to the System.out.println() efficiently, without using a switch or if/else statements for all the possibilities.

Since println() can accept a Float, Int or anything, it would be nice if there was a Java Object I could use that I can stuff the getXXX() data into, regardless of the type, and then return the value into the println() function.

Only problem is, I don't know of any Java class that does this and my Google searches are dry. Anyone know of a class?

I suppose I could write one, but I try to do everything the Java certified way first.

EDIT: here is an example with my current code:

ByteBuffer buffer = ByteBuffer.wrap(dat.message);

if (dat.dataType.equalsIgnoreCase("float")) {

    System.out.println("Message: " + buffer.getFloat());

} else if (dat.dataType.equalsIgnoreCase("int")) {

    System.out.println("Message: " + buffer.getInt());

} else if (dat.dataType.equalsIgnoreCase("char")) {

    System.out.println("Message: " + buffer.getChar());

} else if (dat.dataType.equalsIgnoreCase("long")) {

    System.out.println("Message: " + buffer.getLong());

} else if (dat.dataType.equalsIgnoreCase("boolean")) {

    System.out.println("Message: " + buffer.get());

} else if (dat.dataType.equalsIgnoreCase("string")) {

    String str = new String(dat.message);
    System.out.println("Message: " + str);

}

Too ugly for me, there's gotta be a better way with Java.

share|improve this question
    
Why not use the Object class? –  Navin Feb 22 '13 at 22:50
    
Maybe I should... I noticed this is a method in ByteBuffer: Class<? extends dat.datType> func = buffer.getClass(); the getClass(). Not sure exactly how to use it though –  E.S. Feb 22 '13 at 23:03
    
There is probably a case for the visitor pattern here. But it is hard to tell what the practical use of your dat object is since it seems to just hold byte data and a String representing the type. Almost like you could quite simply convert that data to boxed types at a higher level in the application. Or make subclasses for the allowable concrete types. Then you wouldn't even need the visitor, just a proper implementation of toString. –  Tim Bender Feb 22 '13 at 23:11

2 Answers 2

up vote 4 down vote accepted
public Object getValue(Dat dat) {
    ByteBuffer buffer = ByteBuffer.wrap(dat.message);

    if (dat.dataType.equalsIgnoreCase("float")) {
        return buffer.getFloat();
    } else if (dat.dataType.equalsIgnoreCase("int")) {
        return buffer.getInt();
    } else if (dat.dataType.equalsIgnoreCase("char")) {
        return buffer.getChar();
    } else if (dat.dataType.equalsIgnoreCase("long")) {
        return buffer.getLong();
    } else if (dat.dataType.equalsIgnoreCase("boolean")) {
        return buffer.get() != 0;
    } else if (dat.dataType.equalsIgnoreCase("string")) {
        return new String(dat.message);
    }
}

// ...

System.out.println("Message: " + getValue(dat));

A float will get auto-boxed into a Float which is an Object.
An int will get auto-boxed into an Integer which is an Object.
And so on.

share|improve this answer
    
so returning the Object class will work in println()? –  E.S. Feb 22 '13 at 23:04
    
Cool, although its pretty similar to my original solution, it does let me create a static method elsewhere in my code and not clog my algorithm method. –  E.S. Feb 22 '13 at 23:08
    
You can achieve the same functionality much more neatly with an enum. –  OldCurmudgeon Feb 23 '13 at 0:27
ByteBuffer buffer = ByteBuffer.wrap(dat.message);
System.out.println("Message: " + buffer);

All objects in Java are instances of some class that inherits from Object. Since println accepts Objects, you don't have to worry about what type you are passing in.


Edit: Can you provide a declaration for dat?

share|improve this answer
    
Really? That's all.. so the getXXX() method was superfluous? –  E.S. Feb 22 '13 at 22:55
1  
I take that back, it didn't work.... I accidentally left the getFloat() in there... This is what pops out when I don't specify getXXX() Message: java.nio.HeapByteBuffer[pos=0 lim=4 cap=4] –  E.S. Feb 22 '13 at 22:56
    
dat is my own class that just holds a bunch of data. That's all. It has shorts, floats, ints, strings, etc. –  E.S. Feb 22 '13 at 23:03
    
@EricS Yeah, I forgot that buffers can't automatically convert to the right datatype. You can make your solution lot shorter with reflection but that may be overkill for your purposes. –  Navin Feb 22 '13 at 23:05
    
Yeah, learning more about reflection is high on my list of Java skills –  E.S. Feb 22 '13 at 23:11

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