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c40bc329d5
To run a parseExpr on first pass would always return a false success with dummy value because symbols are configured to always succeed on first pass. This would make expressions like ".fill 0x38-$" so bad things to labels because "0x38-$" wouldn't return the same thing on first and second pass. Revert to parsing literals and symbols after having scanned for expressions and add a special case specifically for char literals (which is why we scanned for literals and symbols first in the first place).
110 lines
2.4 KiB
NASM
110 lines
2.4 KiB
NASM
; Parse expression in string at (HL) and returns the result in IX.
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; We expect (HL) to be disposable: we mutate it to avoid having to make a copy.
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; Sets Z on success, unset on error.
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parseExpr:
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push de
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push hl
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call _parseExpr
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pop hl
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pop de
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ret
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_parseExpr:
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ld a, '+'
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call _findAndSplit
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jp z, _applyPlus
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ld a, '-'
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call _findAndSplit
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jp z, _applyMinus
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ld a, '*'
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call _findAndSplit
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jp z, _applyMult
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jp parseNumberOrSymbol
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; Given a string in (HL) and a separator char in A, return a splitted string,
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; that is, the same (HL) string but with the found A char replaced by a null
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; char. DE points to the second part of the split.
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; Sets Z if found, unset if not found.
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_findAndSplit:
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push hl
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call .skipCharLiteral
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call findchar
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jr nz, .end ; nothing found
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; Alright, we have our char and we're pointing at it. Let's replace it
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; with a null char.
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xor a
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ld (hl), a ; + changed to \0
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inc hl
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ex de, hl ; DE now points to the second part of the split
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cp a ; ensure Z
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.end:
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pop hl ; HL is back to the start
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ret
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.skipCharLiteral:
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; special case: if our first char is ', skip the first 3 characters
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; so that we don't mistake a literal for an iterator
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push af
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ld a, (hl)
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cp 0x27 ; '
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jr nz, .skipCharLiteralEnd ; not a '
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xor a ; check for null char during skipping
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; skip 3
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inc hl
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cp (hl)
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jr z, .skipCharLiteralEnd
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inc hl
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cp (hl)
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jr z, .skipCharLiteralEnd
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inc hl
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.skipCharLiteralEnd:
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pop af
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ret
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.find:
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; parse expression on the left (HL) and the right (DE) and put the results in
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; DE (left) and IX (right)
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_resolveLeftAndRight:
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call parseExpr
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ret nz ; return immediately if error
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; Now we have parsed everything to the left and we have its result in
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; IX. What we need to do now is the same thing on (DE) and then apply
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; the + operator. Let's save IX somewhere and parse this.
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ex de, hl ; right expr now in HL
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push ix
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pop de ; numeric left expr result in DE
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jp parseExpr
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; Parse expr in (HL) and expr in (DE) and apply + operator to both sides.
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; Put result in IX.
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_applyPlus:
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call _resolveLeftAndRight
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ret nz
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; Good! let's do the math! IX has our right part, DE has our left one.
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add ix, de
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cp a ; ensure Z
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ret
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; Same as _applyPlus but with -
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_applyMinus:
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call _resolveLeftAndRight
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ret nz
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push ix
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pop hl
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ex de, hl
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scf \ ccf
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sbc hl, de
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push hl
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pop ix
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cp a ; ensure Z
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ret
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_applyMult:
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call _resolveLeftAndRight
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ret nz
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push ix \ pop bc
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call multDEBC
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push hl \ pop ix
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cp a ; ensure Z
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ret
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