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707 lines
17 KiB
707 lines
17 KiB
title 'Boot loader module for CP/M 3.0'
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maclib options.lib
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public ?init,?ldccp,?rlccp,?time
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public @bootdu,@bootsl
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extrn ?pmsg,?conin
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extrn ?mvinit,?bnkxlt,?xmove,?move
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extrn @civec,@covec,@aivec,@aovec,@lovec
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extrn @cbnk,?bnksl,?bank
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extrn @sysdr,@ccpdr
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extrn dph0
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extrn @dtbl,@ctbl
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extrn @date,@hour,@min,@sec
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extrn @srch1
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extrn @hbbio
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extrn addhla, bcd2bin, bin2bcd
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extrn cout, phex8, phex16, crlf, crlf2
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include c:ver.lib
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bdos equ 5
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if banked
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tpa$bank equ 1
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else
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tpa$bank equ 0
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endif
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dseg ; init done from banked memory
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?init:
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call ?mvinit
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; Install RomWBW CBIOS stamp in page zero
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ld hl,stpimg
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ld de,stploc
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ld bc,stpsiz
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ldir
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if banked
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; Clone page zero from bank 0 to additional banks
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ld b,3 ; last bank
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ld c,0 ; src bank
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init$2:
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push bc ; save bank id's
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call ?xmove ; set src/dest banks
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ld bc,0100h ; size is one page
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ld hl,0 ; dest adr is 0
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ld de,0 ; src adr is 0
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call ?move ; do it
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pop bc ; restore bank id's
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djnz init$2 ; loop till done
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endif
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call cinit ; char device init
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ld hl,signon$msg ; signon message
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call ?pmsg ; print it
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; Get boot disk unit and save it
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ld bc,0F8E0h ; HBIOS func: get boot info
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rst 08 ; do it, D := boot unit, E: := boot slice
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ld a,d ; move boot unit to A
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ld (@bootdu),a ; save it
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ld a,e ; move boot slice to A
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ld (@bootsl),a ; save it
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call dinit
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call clrram
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ret
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cinit:
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; Setup CON: I/O vector based on HBIOS console device
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ld b,0FAh ; HBIOS Peek Function
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ld a,(@hbbio) ; HBIOS bank id
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ld d,a ; ... goes in D
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ld hl,112h ; Offset 112h is current console device
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rst 08 ; Call HBIOS, value in E
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push de ; save console unit value
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ld b,e ; Use as loop counter
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inc b ; ... but loop 1 extra time
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ld hl,0 ; Clear vector bitmap
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scf ; Set carry
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cinit$1:
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rr h ; Rotate carry flag
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rr l ; ... into correct vector position
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djnz cinit$1 ; loop as needed
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ld (@civec),hl ; assign to console input
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ld (@covec),hl ; assign to console output
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; Setup AUX: I/O vector if there are 2+ char devices in system
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ld bc,0F800h ; HBIOS GET Character Device Count
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rst 08 ; do it, count in E
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ld a,e ; device count to accum
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pop de ; recover console unit num to E
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push af ; save device count
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cp 2 ; check for 2+ char devices
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jr c,cinit$3 ; if not, skip aux assignment
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ld a,e ; console unit num to A
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or a ; check for zero
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ld hl,4000h ; assume aux on second char device
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jr z,cinit$2 ; if console on unit 0, assumption good
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ld hl,8000h ; otherwise, aux goes to first char device
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cinit$2:
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ld (@aivec),hl ; assign to aux input
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ld (@aovec),hl ; assign to aux output
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cinit$3:
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pop af ; recover device count
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; Truncate char table based on actual num of char devices
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rlca ; A still has char device count
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rlca ; * 8 for ctbl entry size
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rlca ; "
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ld hl,@ctbl ; Start of char table
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call addhla ; Skip used entries
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xor a ; Zero to accum
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ld (hl),0 ; Set table terminator
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ret ; done
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dinit:
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; loop through all disk devices to count hard disk units
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ld b,0F8h ; SYS GET
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ld c,010h ; Disk Drive Unit Count
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rst 08 ; e := disk unit count
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ld b,e ; count to b
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ld a,b ; count to a
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or a ; set flags
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ret z ; !!! handle zero devices (albeit poorly) !!!
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; loop thru devices to count total hard disk volumes
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ld c,0 ; init c as device list index
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ld d,0 ; init d as total device count
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ld e,0 ; init e for hard disk device count
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ld hl,drvlst ; init hl ptr to drive list
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;
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dinit2:
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call dinit3 ; check drive
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inc c ; next unit
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djnz dinit2 ; loop
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ld a,d ; total device count to d
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ld (drvlstc),a ; save the count
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jr dinit4 ; continue
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dinit3:
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push de ; save de (hard disk volume counter)
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push hl ; save drive list ptr
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push bc ; save loop control
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ld b,17h ; hbios func: report device info
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rst 08 ; call hbios, unit to c
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ld a,d ; device type to a
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pop bc ; restore loop control
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pop hl ; restore drive list ptr
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pop de ; restore de
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cp 30h ; hard disk device?
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jr nc,dinit3a ; if so, handle special
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ld (hl),c ; save unit num in list
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inc hl ; bump ptr
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inc d ; inc total device count
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ret
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;
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dinit3a:
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; check for active and return if not
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push de ; save de (hard disk volume counter)
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push hl ; save drive list ptr
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push bc ; save loop control
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ld b,18h ; hbios func: sense media
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ld e,1 ; perform media discovery
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rst 08
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pop bc ; restore loop control
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pop hl ; restore drive list ptr
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pop de ; restore de
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ret nz ; if no media, just return
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; if active...
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ld (hl),c ; save unit num in list
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inc hl ; bump ptr
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inc d ; inc total device count
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inc e ; increment hard disk count
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ret ; and return
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dinit4: ; set slices per volume (hdspv) based on hard disk volume count
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ld a,e ; hard disk volume count to a
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ld e,8 ; assume 8 slices per volume
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dec a ; dec accum to check for count = 1
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jr z,dinit5 ; yes, skip ahead to implement 8 hdspv
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ld e,4 ; now assume 4 slices per volume
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dec a ; dec accum to check for count = 2
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jr z,dinit5 ; yes, skip ahead to implement 4 hdspv
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ld e,2 ; in all other cases, we use 2 hdspv
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dinit5:
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ld a,e ; slices per volume value to accum
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ld (hdspv),a ; save it
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ld hl,0 ; dph index
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ld a,(@bootdu) ; boot disk unit
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ld d,a ; ... to d
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ld a,(@bootsl) ; boot slice
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ld e,a ; ... to e
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ld b,1 ; one slice please
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call dinit8a ; make DPH for A:
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ld a,(drvlstc) ; active drive list count to accum
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ld b,a ; ... and move to b for loop counter
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ld de,drvlst ; de is ptr to active drive list
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dinit6:
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; loop thru all units available
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push de ; preserve drive list ptr
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ex de,hl ; list ptr to hl
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ld c,(hl) ; get unit num from list
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ex de,hl ; list ptr back to de
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push bc ; preserve loop control
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push hl ; preserve dph pointer
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ld b,17h ; hbios func: report device info
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rst 08 ; call hbios, d := device type
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pop hl ; restore dph pointer
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pop bc ; get unit index back in c
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push bc ; resave loop control
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call dinit7 ; make drive map entry(s)
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pop bc ; restore loop control
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inc c ; increment list index
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pop de ; restore drive list ptr
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inc de ; increment active drive list ptr
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djnz dinit6 ; loop as needed
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; zero out remaining dph table entries
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ld a,16 ; dph table entries
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sub l ; subtract entries used
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ret z ; return if all entries used
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ld b,a ; save as loop counter
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ld a,l ; current dph to accum
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rlca ; *2 for word entry
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ld hl,@dtbl ; start of dtbl
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call addhla ; hl now points to entry
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dinit6a:
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xor a ; zero accum
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ld (hl),a ; zero lsb
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inc hl ; next byte
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ld (hl),a ; zero msb
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inc hl ; next byte
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djnz dinit6a
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ret ; finished
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dinit7: ; process a unit (all slices)
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ld e,0 ; initialize slice index
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ld b,1 ; default loop counter
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ld a,d ; device type to accum
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ld d,c ; unit number to d
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cp 030h ; hard disk device?
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jr c,dinit8 ; nope, leave loop count at 1
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ld a,(hdspv) ; get slices per volume to accum
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ld b,a ; move to b for loop counter
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dinit8: ; test to avoid reallocating boot disk unit/slice
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ld a,(@bootdu) ; boot disk unit to accum
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cp d ; compare to cur unit
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jr nz,dinit8a ; if ne, ok to continue
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ld a,(@bootsl) ; boot slice to accum
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cp e ; compare to cur slice
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jr nz,dinit8a ; if ne, ok to continue
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inc e ; is boot du/slice, skip it
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djnz dinit8 ; loop till done with unit
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ret
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dinit8a:
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; d=unit, e=slice, l=dph#, b=slice cnt
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ld a,l ; dph # to accum
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cp 16 ; dph table size
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ret z ; bail out if overflow
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push hl ; save dph #
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rlca ; *2 for adr entry
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ld hl,@dtbl ; dph table start
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call addhla ; offset hl to desired entry
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ld a,(hl) ; dereference
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inc hl
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ld h,(hl)
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ld l,a
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dec hl ; backup to slice field
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ld (hl),e ; update slice number
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dec hl ; backup to unit number
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ld (hl),d ; update unit number
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pop hl ; restore dph #
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inc hl ; next dph #
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inc e ; next slice
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djnz dinit8 ; loop till done with unit
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ret
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; RomWBW CBIOS page zero stamp starts at $40
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; $40-$41: Marker ('W', ~'W')
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; $42-$43: Version bytes: major/minor, update/patch
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; $44-$45: CBIOS Extension Info address
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stploc equ 40h
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stpimg db 'W',~'W' ; marker
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db rmj << 4 | rmn ; first byte of version info
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db rup << 4 | rtp ; second byte of version info
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dw cbx ; address of cbios ext data
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stpsiz equ $ - stpimg
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cseg ; ram disk init must be done from resident memory
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;
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; Initialize ram disk by filling directory with 'e5' bytes
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; Fill first 8k of ram disk track 1 with 'e5'
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;
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clrram:
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di ; no interrupts
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ld a,(0FFE0h) ; get current bank
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push af ; save it
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;ld a,(bnkramd) ; first bank of ram disk
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ld a,080h ; first bank of ram disk
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;call hb_bnksel ; select bank
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call 0FFF3h ; select bank
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; Check first 32 directory entries. If any start with an invalid
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; value, init the ram disk. Valid entries are e5 (empty entry) or
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; 0-15 (user number).
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ld hl,0
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ld de,32
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ld b,32
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clrram0:
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ld a,(hl)
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cp 0E5h
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jr z,clrram1 ; e5 is valid
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cp 16
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jr c,clrram1 ; 0-15 is also valid
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jr clrram2 ; invalid entry! jump to init
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clrram1:
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add hl,de ; loop for 32 entries
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djnz clrram0
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; jr clrram2 ; *debug*
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jr clrram3 ; all entries valid, bypass init
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clrram2:
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ld hl,0 ; source adr for fill
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ld bc,2000h ; length of fill is 8k
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ld a,0E5h ; fill value
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call fill ; do it
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or 0ffh ; flag value for cleared
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ld (clrflg),a ; save it
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clrram3:
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;ld a,(bnkuser) ; usr bank (tpa)
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pop af ; recover original bank
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;call hb_bnksel ; select bank
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call 0FFF3h ; select bank
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ei ; resume interrupts
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ld a,(clrflg) ; get cleared flag
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or a ; set flags
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ld hl,clr$msg ; clear ram disk message
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call nz,?pmsg ; print msg if true
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ret
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;
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; Fill memory at hl with value a, length in bc. All regs used.
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; Length *must* be greater than 1 for proper operation!!!
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;
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fill:
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ld d,h ; set de to hl
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ld e,l ; so destination equals source
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ld (hl),a ; fill the first byte with desired value
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inc de ; increment destination
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dec bc ; decrement the count
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ldir ; do the rest
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ret ; return
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cseg ; boot loading most be done from resident memory
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; This version of the boot loader loads the CCP from a file
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; called CCP.COM on the system drive.
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?ldccp:
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; Force CCP to use system boot drive as initial default
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ld a,(@sysdr) ; get system boot drive
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ld (@ccpdr),a ; set CCP current drive
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; First time, load the CCP.COM file into TPA
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ld a,(@sysdr) ; get system boot drive
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;ld (4),a ; save in page zero???
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inc a ; drive + 1 for FCB
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ld (ccp$fcb),a ; stuff into FCB
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add 'A' - 1 ; drive letter
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ld (ccp$msg$drv),a ; save for load msg
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xor a
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ld (ccp$fcb+15),a
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ld hl,0
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ld (fcb$nr),hl
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ld de,ccp$fcb
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call open
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inc a
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jr z,no$CCP
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ld de,0100H
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call setdma
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ld de,128
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call setmulti
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ld de,ccp$fcb
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call read
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if banked
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ld hl,0100h ; clone 3K, just in case
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ld bc,0C80h
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ld a,(@cbnk) ; save current bank
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push af
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ld$1:
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ld a,tpa$bank ; select TPA
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call ?bnksl
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ld a,(hl) ; get a byte
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push af
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ld a,2 ; select extra bank
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call ?bnksl
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pop af ; save the byte
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ld (hl),a
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inc hl ; bump pointer, drop count
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dec bc
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ld a,b ; test for done
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or c
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jr nz,ld$1
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pop af ; restore original bank
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call ?bnksl
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endif
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ret
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no$CCP: ; here if we couldn't find the file
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ld hl,ccp$msg
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call ?pmsg
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call ?conin
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jp ?ldccp
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?rlccp:
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if banked
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ld hl,0100h ; clone 3K
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ld bc,0C80h
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rl$1:
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ld a,2 ; select extra bank
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call ?bnksl
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ld a,(hl) ; get a byte
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push af
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ld a,tpa$bank ; select TPA
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call ?bnksl
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pop af ; save the byte
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ld (hl),a
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inc hl ; bump pointer, drop count
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dec bc
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ld a,b ; test for done
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or c
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jr nz,rl$1
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ret
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else
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jr ?ldccp
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endif
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?time:
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; per CP/M 3 docs, *must* preserve HL, DE
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push hl
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push de
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; force return through time$ret
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ld hl,time$ret
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push hl
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; branch to get or set routine
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ld a,c ; get switch value
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or a ; test for zero
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jr z,time$get ; 0 means get time
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jr time$set ; else set time
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time$ret:
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; restore HL, DE
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pop de
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pop hl
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ret
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time$get:
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; RTC -> cpm date/time in SCB
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; read time from RTC
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ld b,020h ; HBIOS func: get time
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ld hl,tim$buf ; time buffer
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rst 08 ; do it
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ret nz ; bail out on error
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; convert yymmss in time buffer -> cpm3 epoch date offset
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call date2cpm ; time buf (yr, mon, day) -> SCB (@date)
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; set time fields in SCB
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ld a,(tim$hr) ; get hour from time buf
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ld (@hour),a ; ... and put in SCB
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ld a,(tim$min) ; get minute from time buf
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ld (@min),a ; ... and put in SCB
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ld a,(tim$sec) ; get second from time buf
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ld (@sec),a ; ... and put in SCB
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ret
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time$set:
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; CPM date/time in SCB -> RTC
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; convert CPM3 epoch date offset in SCB -> yymmss in time buffer
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call cpm2date ; SCB (@date) -> time buf (yr, mon, day)
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; copy CPM3 time values from SCB -> time buffer
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ld a,(@hour) ; get hour from SCB
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ld (tim$hr),a ; ... and put in tim$hr
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ld a,(@min) ; get minute from SCB
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ld (tim$min),a ; ... and put in tim$min
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ld a,(@sec) ; get second from SCB
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ld (tim$sec),a ; ... and put in tim$sec
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; send time to RTC
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ld b,021h ; HBIOS func: set time
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ld hl,tim$buf ; ... from time buffer
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rst 08 ; do it
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ret
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date2cpm:
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; Convert YYMMSS from time buffer at HL
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; into offset from CPM epoch and store
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; result in SCB.
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ld hl,0 ; initialize day counter
|
|
; Add in days for elapsed years
|
|
ld a,(tim$yr) ; get current year
|
|
call bcd2bin ; convert to binary
|
|
sub 78 ; epoch year
|
|
jr nc,d2c1 ; if not negative, good to go
|
|
add a,100 ; else, adjust for Y2K wrap
|
|
d2c1:
|
|
ld b,a ; loop counter
|
|
ld c,3 ; leap counter, 78->79->80, so 3
|
|
ld de,365 ; days in non-leap year
|
|
or a ; check for zero
|
|
jr z,d2c10 ; skip if zero
|
|
d2c2:
|
|
add hl,de ; add non-leap days
|
|
dec c ; dec leap counter
|
|
jr nz,d2c3 ; if not leap, bypss leap inc
|
|
inc hl ; add leap day
|
|
ld c,4 ; reset leap year counter
|
|
d2c3:
|
|
djnz d2c2 ; loop for all years
|
|
d2c10:
|
|
; Add in days for elapsed months
|
|
ex de,hl ; save HL in DE
|
|
ld hl,daystbl ; point to table of cum days by month
|
|
ld a,(tim$mon) ; get current month
|
|
call bcd2bin ; convert to binary
|
|
dec a ; index from zero
|
|
rlca ; table entries are 2 bytes
|
|
call addhla ; offset to desired month entry
|
|
ld a,(hl) ; get the entry into HL
|
|
inc hl ; ...
|
|
ld h,(hl) ; ...
|
|
ld l,a ; ...
|
|
ex de,hl ; HL = day count, DE = months count
|
|
add hl,de ; add months count into day count
|
|
; Add leap day for current year if appropriate
|
|
dec c ; C still has leap counter
|
|
jr nz,d2c20 ; skip if not leap year
|
|
ld a,(tim$mon) ; get cur mon
|
|
cp 3 ; March?
|
|
jr c,d2c20 ; skip if mon less than March
|
|
inc hl ; add leap day for cur year
|
|
d2c20:
|
|
; Add in days elapsed within month
|
|
; Note that we don't adjust the date to be a zero
|
|
; offset which seems wrong. From what I can tell
|
|
; the CP/M epoch is really 1/0/1978 rather than the
|
|
; 1/1/1978 that the documentation claims. Below seems
|
|
; to work correctly.
|
|
ld a,(tim$day) ; get day
|
|
call bcd2bin ; make binary
|
|
call addhla ; add in days
|
|
ld (@date),hl ; store in SCB
|
|
ret
|
|
|
|
cpm2date:
|
|
; Convert CPM epoch date offset in SCB
|
|
; into YYMMSS values and store result in
|
|
; time buffer at HL.
|
|
ld a,019h
|
|
ld (tim$yr),a
|
|
ld a,001h
|
|
ld (tim$mon),a
|
|
ld a,001h
|
|
ld (tim$day),a
|
|
|
|
ret
|
|
|
|
daystbl:
|
|
; cumulative days elapsed by month (non-leap year)
|
|
dw 0 ; January
|
|
dw 31 ; February (non-leap)
|
|
dw 59 ; March
|
|
dw 90 ; April
|
|
dw 120 ; May
|
|
dw 151 ; June
|
|
dw 181 ; July
|
|
dw 212 ; August
|
|
dw 243 ; September
|
|
dw 273 ; October
|
|
dw 304 ; November
|
|
dw 334 ; December
|
|
|
|
; RTC time buffer (all values packed bcd)
|
|
tim$buf:
|
|
tim$yr db 80h
|
|
tim$mon db 05h
|
|
tim$day db 10h
|
|
tim$hr db 01h
|
|
tim$min db 02h
|
|
tim$sec db 03h
|
|
|
|
open:
|
|
ld c,15
|
|
jp bdos
|
|
|
|
setdma:
|
|
ld c,26
|
|
jp bdos
|
|
|
|
setmulti:
|
|
ld c,44
|
|
jp bdos
|
|
|
|
read:
|
|
ld c,20
|
|
jp bdos
|
|
|
|
clrflg db 0 ; RAM disk cleared flag
|
|
clr$msg db 'RAM Disk Initialized',13,10,13,10,0
|
|
|
|
if zpm
|
|
|
|
signon$msg db 13,10,'ZPM3'
|
|
if banked
|
|
db ' [BANKED]'
|
|
endif
|
|
db ' on HBIOS v'
|
|
biosver
|
|
db 13,10,13,10,0
|
|
|
|
ccp$msg db 13,10,'BIOS Err on '
|
|
ccp$msg$drv db '?'
|
|
db ': No ZCCP.COM file',0
|
|
|
|
|
|
ccp$fcb db 0,'ZCCP ','COM',0,0,0,0
|
|
ds 16
|
|
fcb$nr db 0,0,0
|
|
|
|
else
|
|
|
|
signon$msg db 13,10,'CP/M v3.0'
|
|
if banked
|
|
db ' [BANKED]'
|
|
endif
|
|
db ' on HBIOS v'
|
|
biosver
|
|
db 13,10,13,10,0
|
|
|
|
ccp$msg db 13,10,'BIOS Err on '
|
|
ccp$msg$drv db '?'
|
|
db ': No CCP.COM file',0
|
|
|
|
|
|
ccp$fcb db 0,'CCP ','COM',0,0,0,0
|
|
ds 16
|
|
fcb$nr db 0,0,0
|
|
|
|
endif
|
|
|
|
@bootdu db 0 ; boot disk unit
|
|
@bootsl db 0 ; boot slice
|
|
hdspv db 2 ; slices per volume for hard disks (must be >= 1)
|
|
drvlst ds 32 ; active drive list used durint drv_init
|
|
drvlstc db 0 ; entry count for active drive list
|
|
|
|
; The following section contains key information and addresses for the
|
|
; RomWBW CBIOS. A pointer to the start of this section is stored with
|
|
; with the CBX data in page zero at $44 (see above).
|
|
|
|
cbx:
|
|
devmapadr dw 0 ; device map address
|
|
drvtbladr dw @dtbl ; drive map address (filled in later)
|
|
dphtbladr dw dph0 ; dpb map address
|
|
cbxsiz equ $ - cbx
|
|
|
|
end
|
|
|