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Can someone improve on this code (MC9S08JM60):

ldhx  #0xDFC4;  // Vector location
ldhx  ,x        // Fetch vector contents
jsr   ,x        // Execute interrupt function

What I want to do is to jump at the location 0xABCD, where, 0xAB lies in 0xDFC4 and 0xCD lies in 0xDFC5.

So, the above code doesn't seem to jump to ABCD location.

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What's the endianness of this processor? Does ldhx #0xABCD; jsr ,x do what you need? –  ruslik Nov 23 '10 at 22:12
    
It's an 8-bit microcontroller, so that question is moot, no? –  Rooke Nov 23 '10 at 22:23
    
Are you able to single-step and view the contents of H:X before the jsr instruction? Does it match the value at 0xDFC4? Do you know where it is jumping? –  Jim Mischel Nov 23 '10 at 22:31
    
@Rooke: No, it's not a moot point. 8-bit microcontrollers typically can address more than 256 bytes of RAM. The ldhx instruction loads 16 bits, so endianness does matter. –  Jim Mischel Nov 23 '10 at 22:33
    
@Rookie: I have no idea about this particular controller or its instuction set. OP assummed big endianness, so I've asked him to test something that does not depend on it. –  ruslik Nov 23 '10 at 22:49

2 Answers 2

The HCS08 Reference Manual is handy in a situation like this:

The immediate mode of the instruction LDHX loads in the byte at address 0xDFC4 into the "H" register, and the byte at address 0xDFC5 into the "X" register.

I think your second instruction is ok.

But your third instruction, JumptoSubRoutine (JSR) does an offset jump, I think. Try JMP ,x

Note also, JSR does a push of the current (return) address to the stack, effectively incrementing the stack pointer by two.

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ldhx 0xDFC4; // Fetch vector contents

jsr ,x // Execute interrupt function

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