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|
; =============================================================================
; proc.asm - process table management, task creation, fork/exec (stubs)
; =============================================================================
INCLUDE "include/gbos.inc"
SECTION "proc", ROM0
; -----------------------------------------------------------------------------
; ProcInit - table already zeroed by ClearKernelRAM (PS_FREE=0). Seed pids.
; -----------------------------------------------------------------------------
ProcInit::
ld a, 1
ld [wNextPid], a
ld a, 1 ; bank 0 is the init task's; allocate from 1 up
ld [wNextRamBank], a
ret
; -----------------------------------------------------------------------------
; AllocRamBank - bump-allocate a cart-RAM bank. out: A=bank, CF set if none.
; -----------------------------------------------------------------------------
AllocRamBank::
ld a, [wNextRamBank]
cp NUM_RAM_BANKS
jr nc, .none
ld b, a
inc a
ld [wNextRamBank], a
ld a, b
and a ; clear carry
ret
.none
scf
ret
; -----------------------------------------------------------------------------
; FindFreeSlot - scan the proc table for a PS_FREE slot.
; out: A=slot, DE=&PCB, CF set if the table is full.
; -----------------------------------------------------------------------------
FindFreeSlot::
ld c, 0
.l
ld a, c
call PcbPtr ; DE = &PCB[c]
ld a, [de]
cp PS_FREE
jr z, .ok
inc c
ld a, c
cp MAX_PROCS
jr c, .l
scf
ret
.ok
ld a, c
and a ; clear carry
ret
; -----------------------------------------------------------------------------
; PcbPtr - slot -> PCB pointer. in: A=slot out: DE=&PCB. preserves BC.
; -----------------------------------------------------------------------------
PcbPtr::
push bc
ld hl, wProcTable
ld bc, PROC_SIZE
and a
jr z, .done
.mul
add hl, bc
dec a
jr nz, .mul
.done
ld d, h
ld e, l
pop bc
ret
; -----------------------------------------------------------------------------
; ProcCreate - allocate a PCB and build an initial (runnable) task.
; in: HL = task entry, B = cart-RAM bank, C = SVBK u-area bank
; out: A = pid, or 0 if the table is full
; -----------------------------------------------------------------------------
ProcCreate::
; stash params
ld a, l
ld [wTmpEntry], a
ld a, h
ld [wTmpEntry+1], a
ld a, b
ld [wTmpRamB], a
ld a, c
ld [wTmpWramB], a
; find a free slot
ld c, 0
.find
ld a, c
call PcbPtr ; DE = &PCB[c]
ld a, [de]
cp PS_FREE
jr z, .found
inc c
ld a, c
cp MAX_PROCS
jr c, .find
xor a ; table full
ret
.found
ld a, c
ld [wTmpSlot], a
; fill fields; HL walks the PCB
ld h, d
ld l, e
ld a, PS_READY
ld [hl+], a ; PROC_STATE
ld a, [wNextPid]
ld [hl+], a ; PROC_PID
ld [wTmpPid], a
inc a
ld [wNextPid], a
inc hl ; skip PROC_SP (filled below)
inc hl
ld a, 1
ld [hl+], a ; PROC_ROMB lo (placeholder text bank)
xor a
ld [hl+], a ; PROC_ROMB hi
ld a, [wTmpRamB]
ld [hl+], a ; PROC_RAMB
ld a, [wTmpWramB]
ld [hl+], a ; PROC_WRAMB
xor a
ld [hl+], a ; PROC_PARENT
ld [hl], a ; PROC_EXIT
; build the initial stack frame in the task's RAM bank
ld a, [wTmpEntry]
ld l, a
ld a, [wTmpEntry+1]
ld h, a ; HL = entry
ld a, [wTmpRamB]
ld b, a ; B = RAM bank
call ProcSetupStack ; out: HL = initial SP
ld a, l
ld [wTmpSP], a
ld a, h
ld [wTmpSP+1], a
; store SP into PCB.PROC_SP
ld a, [wTmpSlot]
call PcbPtr ; DE = &PCB
ld a, e
add PROC_SP
ld l, a
ld a, d
adc 0
ld h, a ; HL = &PROC_SP
ld a, [wTmpSP]
ld [hl+], a
ld a, [wTmpSP+1]
ld [hl], a
ld a, [wTmpPid]
ret
; -----------------------------------------------------------------------------
; ProcSetupStack - lay a fresh switch-in frame at the top of a task RAM bank.
; in: HL = entry, B = cart-RAM bank
; out: HL = initial SP (points at the saved-HL slot)
; The frame matches hSwitchTo's restore sequence:
; [SP+0..1]=hl [+2..3]=de [+4..5]=bc [+6]=f [+7]=a [+8..9]=entry (ret target)
; -----------------------------------------------------------------------------
ProcSetupStack::
ld a, b
ld [MBC5_RAMB], a ; map task's RAM bank into $A000-$BFFF
push hl ; save entry
ld hl, TASK_STACK_TOP - 9 ; frame base = $BFF6
xor a
ld [hl+], a ; hl_lo
ld [hl+], a ; hl_hi
ld [hl+], a ; de_lo
ld [hl+], a ; de_hi
ld [hl+], a ; bc_lo
ld [hl+], a ; bc_hi
ld [hl+], a ; f
ld [hl+], a ; a
pop de ; DE = entry
ld a, e
ld [hl+], a ; entry lo (ret target)
ld a, d
ld [hl], a ; entry hi
ld hl, TASK_STACK_TOP - 9 ; initial SP
ret
; -----------------------------------------------------------------------------
; sys_fork / sys_exec - TODO. Plan:
; fork: alloc slot, copy parent's 8 KiB RAM bank -> child bank, dup u-area,
; patch child's saved-A to 0 (child return), parent gets child pid.
; exec: point PROC_ROMB at a flashed program image, reset RAM-bank layout
; (copy .data from ROM, zero .bss, fresh heap/stack), longjmp in.
; -----------------------------------------------------------------------------
; =============================================================================
; sys_fork() - duplicate the current process.
; out: A = child pid in the parent, 0 in the child, $FF on failure.
;
; Runs on the parent's user stack at entry (SP = Uafter, pointing at the rst
; return address). We switch to a kernel stack in WRAM0 so we're free to swap
; the $A000 cart-RAM window (the parent's user stack lives there), copy the
; parent's 8 KiB bank into a freshly allocated child bank via a WRAM bounce
; buffer, then plant a switch-in frame in the child so it "returns from fork"
; with A=0 to the same user PC.
; =============================================================================
sys_fork::
; capture parent user SP (= Uafter)
ld hl, sp+0
ld a, l
ld [wForkUserSP], a
ld a, h
ld [wForkUserSP+1], a
ld sp, KSTACK_TOP2 ; move off the cart-RAM stack
call FindFreeSlot ; A=slot, DE=&child PCB
jp c, .fail
ld [wForkChildSlot], a
call AllocRamBank ; A=child cart-RAM bank
jp c, .fail
ld [wForkChildBank], a
; remember the parent's bank so we can restore the window afterwards
ld a, [wCurProc]
add PROC_RAMB
ld l, a
ld a, [wCurProc+1]
adc 0
ld h, a
ld a, [hl]
ld [wForkParentBank], a
; ---- copy parent bank -> child bank, 32 pages of 256 bytes ----
ld c, 0 ; page index 0..31
.page
ld a, [wForkParentBank]
ld [MBC5_RAMB], a ; map parent bank
ld a, $A0
add c
ld h, a
ld l, 0 ; HL = $A000 + c*256
ld de, wCopyBuf
ld b, 0 ; 256 iterations (b wraps 0->255..->0)
.rd
ld a, [hl+]
ld [de], a
inc de
dec b
jr nz, .rd
ld a, [wForkChildBank]
ld [MBC5_RAMB], a ; map child bank
ld a, $A0
add c
ld h, a
ld l, 0
ld de, wCopyBuf
ld b, 0
.wr
ld a, [de]
ld [hl+], a
inc de
dec b
jr nz, .wr
inc c
ld a, c
cp 32
jr c, .page
; child bank is currently mapped
; ---- plant the child's switch-in frame at Uafter-8 (in child bank) ----
; hSwitchTo restore pops hl,de,bc,af then rets; we zero those 8 bytes and
; leave the copied return address (retU) at Uafter untouched, so the child
; resumes at the post-fork PC with A=0.
ld a, [wForkUserSP]
sub 8
ld l, a
ld a, [wForkUserSP+1]
sbc 0
ld h, a ; HL = Uafter-8
xor a
ld b, 8
.zframe
ld [hl+], a
dec b
jr nz, .zframe
; restore the parent's bank into the window (parent stack valid again)
ld a, [wForkParentBank]
ld [MBC5_RAMB], a
; ---- fill the child PCB ----
ld a, [wForkChildSlot]
call PcbPtr ; DE = &child PCB
ld h, d
ld l, e ; HL walks child PCB
ld a, PS_READY
ld [hl+], a ; STATE
ld a, [wNextPid]
ld [hl+], a ; PID
ld [wForkChildPid], a
inc a
ld [wNextPid], a
ld a, [wForkUserSP] ; PROC_SP = Uafter-8
sub 8
ld [hl+], a
ld a, [wForkUserSP+1]
sbc 0
ld [hl+], a
; PROC_ROMB = parent ROMB (shared read-only text)
ld a, [wCurProc]
add PROC_ROMB
ld e, a
ld a, [wCurProc+1]
adc 0
ld d, a ; DE = &parent.PROC_ROMB
ld a, [de]
ld [hl+], a
inc de
ld a, [de]
ld [hl+], a
; PROC_RAMB = child bank
ld a, [wForkChildBank]
ld [hl+], a
; PROC_WRAMB = parent WRAMB (u-area shared for now)
ld a, [wCurProc]
add PROC_WRAMB
ld e, a
ld a, [wCurProc+1]
adc 0
ld d, a
ld a, [de]
ld [hl+], a
; PROC_PARENT = parent pid
ld a, [wCurProc]
add PROC_PID
ld e, a
ld a, [wCurProc+1]
adc 0
ld d, a
ld a, [de]
ld [hl+], a
; PROC_EXIT = 0
xor a
ld [hl], a
; ---- return to the parent with child pid ----
ld a, [wForkUserSP]
ld l, a
ld a, [wForkUserSP+1]
ld h, a
ld sp, hl ; back on the parent's user stack
ld a, [wForkChildPid]
ret
.fail
; restore parent user stack and report failure
ld a, [wForkUserSP]
ld l, a
ld a, [wForkUserSP+1]
ld h, a
ld sp, hl
ld a, $FF
ret
|