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Per the SWIG Documentation (21.9.1 Default primitive type mappings), the C uint8_t is mapped to a Java short which is 16 bits and the C uint_15_t is mapped to a Java int which is 32 bits. I believe the C functions are 8 and 16 bits respectively, why does SWIG double the number of bits when wrapping in Java?

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The problem is that Java types are always signed.

Thus if you have an unsigned C type that goes from 0 to 255, the smallest Java type that can represent the upper half of that range is a short.

The alternative is that you shift or somehow transform your uint8_t to use the negative parts of Java's byte, but the semantics of that are very counterintuitive.

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that makes sense for the uint8_t but couldn't you use a short then for uint16_t then? Why use a 32 bit int? –  c12 Feb 10 '12 at 18:40
    
@c12 The exact same problem happens with the uint16_t. In Java a short ranges from -32,768 to 32,767, whilst a uint16_t ranges from 0 to 65,536 - where should the upper half of the uint16_t go if you used a short? –  Flexo Feb 10 '12 at 18:43
    
how do you get swig to use a byte instead of a short? I am using a library in java that uses bytes and passing these to from my swig interface. the upcasting of byte to short is a pain because of the signedness. –  Sam Feb 26 '13 at 23:10
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@Sam will update later with an example. –  Flexo Feb 27 '13 at 8:48
    
thanks Flexo. I should note that the shorts im receiving are from an array (I'm using carrays to get the getItem setItem functionality) –  Sam Feb 27 '13 at 8:58

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