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I'm programming an emulator in Java (currently working on the 6502 processor), and I'm planning to use my own wrappers for some primitive types, simply because it enables me to do some things easier. The problem is, I'm planning to emulate a complete NES console, and the CPU has access to 65536 bytes of memory. A primitive byte is 1 byte, a wrapper is AT LEAST 8 bytes. Creating an array of 65536 bytes (primitive) vs 65536 Bytes (wrapper) would cause at LEAST 8 times the amount of memory usage, not accounting for registers and whatnot. Not only that, but I can only assume that using objects instead of primitive types will be slower. What I'm wondering now is, since modern processors have gigs of RAM anyway, is it bad to use at least 8 times as much memory just to make it a bit easier on myself (and probably decrease the size of the emulator a little)? Or should I keep it efficient and just use primitive types?

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Actually a reference to a Byte is at least, and still typically, 4 bytes due to OOP compression. –  Marko Topolnik Jun 3 '13 at 12:56
    
Yes, perhaps to the standard Java Byte wrapper class, but I'm using my own. I suspect that this means it will still be 8 bytes. –  ZimZim Jun 3 '13 at 12:58
    
No, a reference is a reference... this is a low-level JVM optimization. It stores Ordinary Object Pointers in 4 bytes instead of 8. Anyway, whichever object you use, you'll cache all 256 possible values and the footprint will be almost entirely independent of the size of your objects. –  Marko Topolnik Jun 3 '13 at 13:01
    
The question is tagged with Java, so just a comment: There is a Scala feature which allows you to extend primitive types without any performance penalty. So you don't "lose" the normal operators like "+", it keeps the code clean (no wrapper required), and you can add you own "operators". –  Beryllium Jun 3 '13 at 13:16
    
Why at all you consider using wrapped bytes as option? What benefits do you expect? –  Alexei Kaigorodov Jun 3 '13 at 13:31

2 Answers 2

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I suspect the memory footprint of the JVM itself will dwarf whatever memory you allocate for your 6502 emulation.

As is quoted so often for these sort of questions,

premature optimisation is the root of all evil

and I would get your implementation correct first, and only then identify any optimisations you can/should make.

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What does this "drawf" mean? I assume it has something to do with compressing/shrinking something, but what do you mean by it? –  ZimZim Jun 3 '13 at 13:00
    
It's plain English language :) "A dwarfs B" == "B looks like a dwarf compared to A". –  Marko Topolnik Jun 3 '13 at 13:01
    
Ah, in that manner. I've rarely ever heard the word dwarf used as a verb anyway, so I was confused. –  ZimZim Jun 3 '13 at 13:04

Compared to the speed of this CPU your current machine is so much faster, that you really don't need to worry about performance. You would have probably go out of your way and write exceptionally bad code to get such an issue. :)

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