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zasm: add support for relative labels
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@ -615,22 +615,57 @@ getUpcode:
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ld c, 1
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jr .computeBytesWritten
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.withByte:
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; verify that the MSB in argument is zero
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inc hl
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; HL points to our number (LSB), with (HL+1) being our MSB which should
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; normally by zero. However, if our instruction is jr or djnz, that
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; number is actually a 2-bytes address that has to be relative to PC,
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; so it's a special case. Let's check for this special case.
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bit 7, (ix+3)
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jr z, .absoluteValue ; bit not set? regular byte value,
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; Our argument is a relative address ("e" type in djnz and jr). We have
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; to subtract (curOutputOffset) from it.
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; First, check whether we're on first pass. If we are, skip processing
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; below because not having real symbol value makes relative address
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; verification falsely fail.
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ld c, 2 ; this is a two bytes instruction
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call zasmIsFirstPass
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jr z, .computeBytesWritten
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; We're on second pass
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push de ; Don't let go of this, that's our dest
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ld de, (curOutputOffset)
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call JUMP_INTOHL
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dec hl ; what we write is "e-2"
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dec hl
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call subDEFromHL
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pop de ; Still have it? good
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; HL contains our number and we'll check its bounds. If It's negative,
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; H is going to be 0xff and L has to be >= 0x80. If it's positive,
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; H is going to be 0 and L has to be < 0x80.
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ld a, l
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cp 0x80
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jr c, .skipHInc ; a < 0x80, H is expected to be 0
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; A being >= 0x80 is only valid in cases where HL is negative and
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; within bounds. This only happens is H == 0xff. Let's increase it to 0.
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inc h
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.skipHInc:
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; Let's write our value now even though we haven't checked our bounds
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; yet. This way, we don't have to store A somewhere else.
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ld (de), a
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ld a, h
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or a ; cp 0
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jr nz, .numberTruncated ; if A is anything but zero, we're out
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; of bounds.
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jr .computeBytesWritten
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.absoluteValue:
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; verify that the MSB in argument is zero
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inc hl ; MSB is 2nd byte
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ld a, (hl)
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dec hl ; HL now points to LSB
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or a ; cp 0
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jr nz, .numberTruncated
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; HL points to our number
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; one last thing to check. Is the 7th bit on the displacement value set?
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; if yes, we have to decrease our value by 2. Uses for djnz and jr.
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bit 7, (ix+3)
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jr z, .skipDecrease
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; Yup, it's set.
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dec (hl)
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dec (hl)
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.skipDecrease:
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ldi
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ld c, 2
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jr .computeBytesWritten
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@ -25,6 +25,7 @@
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; JUMP_UPCASE
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; JUMP_UNSETZ
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; JUMP_INTODE
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; JUMP_INTOHL
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; JUMP_FINDCHAR
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; JUMP_BLKSEL
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; RAMSTART (where we put our variables in RAM)
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11
apps/zasm/tests/test2.asm
Normal file
11
apps/zasm/tests/test2.asm
Normal file
@ -0,0 +1,11 @@
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; Test relative jumps
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label1:
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jp label1
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jp label2
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jp label2
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jr label2
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jr nc, label1
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label2:
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jr label1
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jr nc, label1
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@ -22,6 +22,18 @@ cpHLDE:
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cp e
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ret ; flags are correct
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; HL - DE -> HL
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subDEFromHL:
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push af
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ld a, l
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sub e
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ld l, a
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ld a, h
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sbc d
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ld h, a
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pop af
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ret
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; Returns length of string at (HL) in A.
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strlen:
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push bc
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@ -33,6 +33,7 @@
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#define STDIN_BUFSIZE 0x8000
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// When defined, we dump memory instead of dumping expected stdout
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//#define MEMDUMP
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//#define DEBUG
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static Z80Context cpu;
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static uint8_t mem[0x10000];
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@ -119,7 +120,9 @@ int main()
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}
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#endif
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fflush(stdout);
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#ifdef DEBUG
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fprintf(stderr, "Ended with A=%d DE=%d\n", cpu.R1.br.A, cpu.R1.wr.DE);
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#endif
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return 0;
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}
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@ -12,6 +12,7 @@ jp addHL
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jp upcase
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jp unsetZ
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jp intoDE
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jp intoHL
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jp findchar
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jp parseHexPair
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jp blkSel
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@ -5,9 +5,10 @@ JUMP_ADDHL .equ 0x08
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JUMP_UPCASE .equ 0x0b
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JUMP_UNSETZ .equ 0x0e
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JUMP_INTODE .equ 0x11
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JUMP_FINDCHAR .equ 0x14
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JUMP_PARSEHEXPAIR .equ 0x17
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JUMP_BLKSEL .equ 0x1a
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JUMP_INTOHL .equ 0x14
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JUMP_FINDCHAR .equ 0x17
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JUMP_PARSEHEXPAIR .equ 0x1a
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JUMP_BLKSEL .equ 0x1d
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.equ USER_CODE 0x4800
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.equ RAMSTART 0x5800
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