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b745f49186
The goal is to avoid mixing those routines with "character devices" (acia, vpd, kbd) which aren't block devices and have routines that have different expectations. This is a first step to fixing #64.
212 lines
5.6 KiB
NASM
212 lines
5.6 KiB
NASM
; buf - manage line buffer
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;
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; *** Variables ***
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; Number of lines currently in the buffer
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.equ BUF_LINECNT BUF_RAMSTART
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; List of pointers to strings in scratchpad
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.equ BUF_LINES @+2
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; Points to the end of the scratchpad, that is, one byte after the last written
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; char in it.
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.equ BUF_PADEND @+ED_BUF_MAXLINES*2
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; The in-memory scratchpad
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.equ BUF_PAD @+2
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.equ BUF_RAMEND @+ED_BUF_PADMAXLEN
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; *** Code ***
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; On initialization, we read the whole contents of target blkdev and add lines
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; as we go.
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bufInit:
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ld hl, BUF_PAD ; running pointer to end of pad
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ld de, BUF_PAD ; points to beginning of current line
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ld ix, BUF_LINES ; points to current line index
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ld bc, 0 ; line count
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; init pad end in case we have an empty file.
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ld (BUF_PADEND), hl
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.loop:
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call ioGetB
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jr nz, .loopend
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or a ; null? hum, weird. same as LF
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jr z, .lineend
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cp 0x0a
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jr z, .lineend
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ld (hl), a
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inc hl
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jr .loop
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.lineend:
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; We've just finished reading a line, writing each char in the pad.
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; Null terminate it.
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xor a
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ld (hl), a
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inc hl
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; Now, let's register its pointer in BUF_LINES
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ld (ix), e
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inc ix
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ld (ix), d
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inc ix
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inc bc
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ld (BUF_PADEND), hl
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ld de, (BUF_PADEND)
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jr .loop
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.loopend:
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ld (BUF_LINECNT), bc
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ret
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; transform line index HL into its corresponding memory address in BUF_LINES
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; array.
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bufLineAddr:
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push de
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ex de, hl
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ld hl, BUF_LINES
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add hl, de
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add hl, de ; twice, because two bytes per line
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pop de
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ret
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; Read line number specified in HL and make HL point to its contents.
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; Sets Z on success, unset if out of bounds.
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bufGetLine:
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push de ; --> lvl 1
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ld de, (BUF_LINECNT)
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call cpHLDE
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pop de ; <-- lvl 1
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jp nc, unsetZ ; HL > (BUF_LINECNT)
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call bufLineAddr
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; HL now points to an item in BUF_LINES.
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call intoHL
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; Now, HL points to our contents
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cp a ; ensure Z
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ret
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; Given line indexes in HL and DE where HL < DE < CNT, move all lines between
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; DE and CNT by an offset of DE-HL. Also, adjust BUF_LINECNT by DE-HL.
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; WARNING: no bounds check. The only consumer of this routine already does
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; bounds check.
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bufDelLines:
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; Let's start with setting up BC, which is (CNT-DE) * 2
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push hl ; --> lvl 1
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ld hl, (BUF_LINECNT)
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scf \ ccf
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sbc hl, de
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; mult by 2 and we're done
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sla l \ rl h
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push hl \ pop bc
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pop hl ; <-- lvl 1
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; Good! BC done. Now, let's adjust BUF_LINECNT by DE-HL
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push hl ; --> lvl 1
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scf \ ccf
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sbc hl, de ; HL -> nb of lines to delete, negative
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push de ; --> lvl 2
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ld de, (BUF_LINECNT)
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add hl, de ; adding DE to negative HL
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ld (BUF_LINECNT), hl
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pop de ; <-- lvl 2
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pop hl ; <-- lvl 1
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; Line count updated!
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; One other thing... is BC zero? Because if it is, then we shouldn't
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; call ldir (otherwise we're on for a veeeery long loop), BC=0 means
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; that only last lines were deleted. nothing to do.
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ld a, b
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or c
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ret z ; BC==0, return
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; let's have invert HL and DE to match LDIR's signature
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ex de, hl
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; At this point we have higher index in HL, lower index in DE and number
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; of bytes to delete in BC. It's convenient because it's rather close
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; to LDIR's signature! The only thing we need to do now is to translate
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; those HL and DE indexes in memory addresses, that is, multiply by 2
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; and add BUF_LINES
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push hl ; --> lvl 1
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ex de, hl
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call bufLineAddr
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ex de, hl
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pop hl ; <-- lvl 1
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call bufLineAddr
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; Both HL and DE are translated. Go!
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ldir
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ret
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; Insert string where DE points to memory scratchpad, then insert that line
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; at index HL, offsetting all lines by 2 bytes.
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bufInsertLine:
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call bufIndexInBounds
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jr nz, .append
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push de ; --> lvl 1, scratchpad ptr
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push hl ; --> lvl 2, insert index
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; The logic below is mostly copy-pasted from bufDelLines, but with a
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; LDDR logic (to avoid overwriting). I learned, with some pain involved,
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; that generalizing this code wasn't working very well. I don't repeat
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; the comments, refer to bufDelLines
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ex de, hl ; line index now in DE
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ld hl, (BUF_LINECNT)
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scf \ ccf
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sbc hl, de
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; mult by 2 and we're done
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sla l \ rl h
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push hl \ pop bc
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; From this point, we don't need our line index in DE any more because
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; LDDR will start from BUF_LINECNT-1 with count BC. We'll only need it
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; when it's time to insert the line in the space we make.
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ld hl, (BUF_LINECNT)
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call bufLineAddr
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; HL is pointing to *first byte* after last line. Our source needs to
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; be the second byte of the last line and our dest is the second byte
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; after the last line.
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push hl \ pop de
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dec hl ; second byte of last line
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inc de ; second byte beyond last line
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; HL = BUF_LINECNT-1, DE = BUF_LINECNT, BC is set. We're good!
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lddr
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.set:
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; We still need to increase BUF_LINECNT
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ld hl, (BUF_LINECNT)
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inc hl
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ld (BUF_LINECNT), hl
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; A space has been opened at line index HL. Let's fill it with our
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; inserted line.
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pop hl ; <-- lvl 2, insert index
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call bufLineAddr
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pop de ; <-- lvl 1, scratchpad offset
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ld (hl), e
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inc hl
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ld (hl), d
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ret
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.append:
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; nothing to move, just put the line there. Let's piggy-back on the end
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; of the regular routine by carefully pushing the right register in the
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; right place.
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; But before that, make sure that HL isn't too high. The only place we
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; can append to is at (BUF_LINECNT)
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ld hl, (BUF_LINECNT)
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push de ; --> lvl 1
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push hl ; --> lvl 2
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jr .set
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; copy string that HL points to to scratchpad and return its pointer in
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; scratchpad, in HL.
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bufScratchpadAdd:
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push de
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ld de, (BUF_PADEND)
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push de ; --> lvl 1
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call strcpyM
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inc de ; pad end is last char + 1
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ld (BUF_PADEND), de
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pop hl ; <-- lvl 1
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pop de
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ret
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; Sets Z according to whether the line index in HL is within bounds.
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bufIndexInBounds:
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push de
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ld de, (BUF_LINECNT)
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call cpHLDE
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pop de
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jr c, .withinBounds
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; out of bounds
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jp unsetZ
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.withinBounds:
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cp a ; ensure Z
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ret
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