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avra: a little code deduplication
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@ -134,23 +134,23 @@ instrNames:
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; In the same order as in instrNames
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; In the same order as in instrNames
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instrTbl:
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instrTbl:
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; Rd(5) + Rd(5) (0x02) and Rd(5) + bit (0x05) (same processing)
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; Rd(5) + Rd(5) (0x02) and Rd(5) + bit (0x05) (same processing)
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.db 0x02, 0b00011100, 0x00 ; ADC
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.db 0x02, 0b00011100, 0x00 ; ADC Rd, Rr
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.db 0x02, 0b00001100, 0x00 ; ADD
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.db 0x02, 0b00001100, 0x00 ; ADD Rd, Rr
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.db 0x02, 0b00100000, 0x00 ; AND
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.db 0x02, 0b00100000, 0x00 ; AND Rd, Rr
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.db 0x05, 0b11111000, 0x00 ; BLD
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.db 0x05, 0b11111000, 0x00 ; BLD Rd, b
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.db 0x05, 0b11111010, 0x00 ; BST
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.db 0x05, 0b11111010, 0x00 ; BST Rd, b
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.db 0x41, 0b00100100, 0x00 ; CLR (Rr copies Rd)
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.db 0x41, 0b00100100, 0x00 ; CLR Rd (Bit 6)
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.db 0x02, 0b00010100, 0x00 ; CP
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.db 0x02, 0b00010100, 0x00 ; CP Rd, Rr
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.db 0x02, 0b00000100, 0x00 ; CPC
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.db 0x02, 0b00000100, 0x00 ; CPC Rd, Rr
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.db 0x02, 0b00010000, 0x00 ; CPSE
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.db 0x02, 0b00010000, 0x00 ; CPSE Rd, Rr
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.db 0x02, 0b00100100, 0x00 ; EOR
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.db 0x02, 0b00100100, 0x00 ; EOR Rd, Rr
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.db 0x02, 0b00101100, 0x00 ; MOV
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.db 0x02, 0b00101100, 0x00 ; MOV Rd, Rr
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.db 0x02, 0b10011100, 0x00 ; MUL
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.db 0x02, 0b10011100, 0x00 ; MUL Rd, Rr
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.db 0x02, 0b00101000, 0x00 ; OR
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.db 0x02, 0b00101000, 0x00 ; OR Rd, Rr
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.db 0x02, 0b00001000, 0x00 ; SBC
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.db 0x02, 0b00001000, 0x00 ; SBC Rd, Rr
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.db 0x05, 0b11111100, 0x00 ; SBRC
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.db 0x05, 0b11111100, 0x00 ; SBRC Rd, b
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.db 0x05, 0b11111110, 0x00 ; SBRS
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.db 0x05, 0b11111110, 0x00 ; SBRS Rd, b
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.db 0x02, 0b00011000, 0x00 ; SUB
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.db 0x02, 0b00011000, 0x00 ; SUB Rd, Rr
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; Rd(4) + K(8): XXXXKKKK ddddKKKK
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; Rd(4) + K(8): XXXXKKKK ddddKKKK
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.db 0x04, 0b01110000, 0x00 ; ANDI
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.db 0x04, 0b01110000, 0x00 ; ANDI
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.db 0x04, 0b00110000, 0x00 ; CPI
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.db 0x04, 0b00110000, 0x00 ; CPI
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@ -164,7 +164,7 @@ instrTbl:
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.db 0x00, 0b11000000, 0x00 ; RJMP
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.db 0x00, 0b11000000, 0x00 ; RJMP
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; IN and OUT
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; IN and OUT
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.db 0x07, 0b10110000, 0x00 ; IN
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.db 0x07, 0b10110000, 0x00 ; IN
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.db 0x87, 0b10111000, 0x00 ; OUT (args reversed)
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.db 0x87, 0b10111000, 0x00 ; OUT (Bit 7)
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; no arg
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; no arg
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.db 0x00, 0b10010101, 0b10011000 ; BREAK
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.db 0x00, 0b10010101, 0b10011000 ; BREAK
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.db 0x00, 0b10010100, 0b10001000 ; CLC
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.db 0x00, 0b10010100, 0b10001000 ; CLC
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@ -304,43 +304,20 @@ parseInstruction:
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cp I_ASR
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cp I_ASR
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jp c, .spit ; no arg
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jp c, .spit ; no arg
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; spitRd5
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; spitRd5
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ld a, h
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call .placeRd
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call .placeRd
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jp .spit
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jp .spit
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.spitRd5Rr5:
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.spitRd5Rr5:
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; This is used for both Rd(5) + Rr(5) and Rd(5) + bit because the same
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; This is used for both Rd(5) + Rr(5) and Rd(5) + bit because the same
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; logic works for both cases.
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; logic works for both cases.
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ld a, h
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call .placeRd
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call .placeRd
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ld a, l
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call .placeRr
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; let's start with the 4 lower bits
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jr .spit
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and 0xf
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or c
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; We now have our LSB in A. Let's spit it now.
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call ioPutB
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ld a, l
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; and now that last high bit, currently bit 4, which must become bit 1
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and 0b00010000
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rra \ rra \ rra
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or b
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ld b, a
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jp .spitMSB
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.spitRdK8:
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.spitRdK8:
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ld a, h ; Rd
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call .placeRd
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call .placeRd
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ld a, l ; K
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call .placeRr
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; let's start with the 4 lower bits
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rr b ; K(8) start at B's 1st bit, not 2nd
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and 0xf
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jr .spit
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or c
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; We now have our LSB in A. Let's spit it now.
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call ioPutB
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ld a, l
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; and now those high 4 bits
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and 0xf0
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rra \ rra \ rra \ rra
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ld b, a
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jp .spitMSB
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.spitK12:
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.spitK12:
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; Let's deal with the upcode constant before we destroy IX below
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; Let's deal with the upcode constant before we destroy IX below
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@ -373,7 +350,6 @@ parseInstruction:
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.spitINOUT:
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.spitINOUT:
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; Rd in H, A in L
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; Rd in H, A in L
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ld a, h
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call .placeRd
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call .placeRd
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ld a, l
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ld a, l
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and 0xf
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and 0xf
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@ -453,12 +429,29 @@ parseInstruction:
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jr .spitBR2
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jr .spitBR2
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; local routines
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; local routines
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; place number in A in BC at position .......d dddd....
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; place number in H in BC at position .......d dddd....
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; BC is assumed to be 0
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; BC is assumed to be 0
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.placeRd:
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.placeRd:
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sla a \ rla \ rla \ rla ; last RLA might set carry
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sla h \ rl h \ rl h \ rl h ; last RL H might set carry
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rl b
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rl b
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ld c, h
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ret
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; place number in L in BC at position ...rrrr. ....rrrr
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; BC is assumed to be either 0 or to be set by .placeRd, that is, that the
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; high 4 bits of C and lowest bit of B will be preserved.
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.placeRr:
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; let's start with the 4 lower bits
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ld a, l
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and 0x0f
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or c
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ld c, a
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ld c, a
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ld a, l
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; and now those high 4 bits which go in B.
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and 0xf0
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rra \ rra \ rra
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or b
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ld b, a
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ret
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ret
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.swapHL:
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.swapHL:
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