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I can't understand how the operand FE FC FF FF results to 0x9e7080.

I tried some math sub/add to the current address, because it should be relative jump, but the result still not equal to 0x9e7080.

instruction address | bytes | text form

L_009E737D | E9 FE FC FF FF | jmp 0x9e7080
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  • 009E737D + FFFFFCFE + 5 = 9e7080, the math checks out
    – harold
    Mar 15, 2015 at 21:52

1 Answer 1

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There are three things to consider:

  1. FEFCFFFF is given as little endian and represents a hex value of 0xFFFFFCFE.
  2. This hex value is sign extended and is thus negative with a decimal value of -770.
  3. You also have to add the number of bytes the instruction takes.

This leads to 0x009E737D + 0xFFFFFCFE + 5 = 0x009e7080, which equals 0x009E737D - 0x00000302 + 5 = 0x009e7080.

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  • 0x009E737D + 0xFFFFFCFE + 5 = 1009e7080.
    – Krab
    Mar 15, 2015 at 23:55
  • That would be 33 (or more) bit math, without using sign-extension.
    – harold
    Mar 16, 2015 at 9:55
  • ah sorry it's in two's complement, im noob
    – Krab
    Mar 16, 2015 at 19:42

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