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Is it possible to index a Java array based on a byte?

i.e. something like

array[byte b] = x;

I have a very performance-critical application which reads b (in the code above) from a file, and I don't want the overhead of converting this to an int. What is the best way to achieve this? Is there a performance-decrease as a result of using this method of indexing rather than an int?

With many thanks,

Froskoy.

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1  
I can't speak to the performance issue. If you want this I'd use a ByteBuffer and iterate through it. ByteBuffer is pretty optimized... You could also use a direct ByteBuffer –  EdH Sep 27 '12 at 21:49
    
Have you tried it? Hint - it compiles... –  DNA Sep 27 '12 at 21:50
4  
If you're reading from a file on a physical disk (even an SSD), then conversions from byte to int are going to be utterly insignificant compared with the path it takes to get the data out in the first place. –  Jon Skeet Sep 27 '12 at 21:52
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I wouldn't assume there is a significant performance hit until you have measured it and it causing a problem for you program. Worry about performance when its isn't a problem leads to poor design choices. –  Peter Lawrey Sep 27 '12 at 21:57

4 Answers 4

up vote 4 down vote accepted

There's no overhead for "converting this to an int." At the Java bytecode level, all bytes are already ints.

In any event, doing array indexing will automatically upcast to an int anyway. None of these things will improve performance, and many will decrease performance. Just leave your code using an int.

The JVM specification, section 2.11.1:

Note that most instructions in Table 2.2 do not have forms for the integral types byte, char, and short. None have forms for the boolean type. Compilers encode loads of literal values of types byte and short using Java virtual machine instructions that sign-extend those values to values of type int at compile-time or runtime. Loads of literal values of types boolean and char are encoded using instructions that zero-extend the literal to a value of type int at compile-time or runtime. Likewise, loads from arrays of values of type boolean, byte, short, and char are encoded using Java virtual machine instructions that sign-extend or zero-extend the values to values of type int. Thus, most operations on values of actual types boolean, byte, char, and short are correctly performed by instructions operating on values of computational type int.

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"all bytes are already ints" Won't it have to do sign extension to fill the extra bits on the upcast? Or is there some other mechanism that I'm not aware of? –  Brian Sep 27 '12 at 21:56
    
The sign extension is already there. As soon as you have a method-local variable that's a byte, it's actually implemented as an int. –  Louis Wasserman Sep 27 '12 at 22:06
    
Interesting, I didn't know that. Do you happen to know a JLS citation for that? J/w, it's fine if you don't, I can investigate it myself tonight. –  Brian Sep 27 '12 at 22:08
    
I updated my answer with an actual demonstration from real code. –  Louis Wasserman Sep 27 '12 at 22:09
    
As far as I understood his question, he meant accessing any type of array with a byte variable, such as Object[] objs; byte b; ... Object obj = objs[b]; However, from your example, it seems that it doesn't matter, it'll result in the same behavior anyway. Thanks +1 –  Brian Sep 27 '12 at 22:12

No, there is no performance decrease, because on the moment you read the byte, you store it in a CPU register sometime. Those registers always works with WORDs, which means that the byte is always "converted" to an int (or a long, if you are on a 64 bit machine).

So, simply read your byte like this:

int b = (in.readByte() & 0xFF);

If your application is that performance critical, you should be optimizing elsewhere.

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As all integer types in java are signed you have anyway to mask out 8 bits of b's value provided you do expect to read from the file values greater than 0x7F:

byte b;
byte a[256];
a [b & 0xFF] = x;
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No; array indices are non-negative integers (JLS 10.4), but byte indices will be promoted.

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But "Arrays must be indexed by int values; short, byte, or char values may also be used as index values because they are subjected to unary numeric promotion (§5.6.1) and become int values. " –  Zoe Sep 27 '12 at 21:49
    
@Zoe So it's indexed by an int--but I could have been clearer. –  Dave Newton Sep 27 '12 at 21:50
    
I think you had it. just a bit terse to understand. –  Code Droid Oct 4 '12 at 21:48

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