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206 lines
3.9 KiB
NASM
206 lines
3.9 KiB
NASM
; Parse string at (HL) as a hexadecimal value and return value in IX under the
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; same conditions as parseLiteral.
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parseHexadecimal:
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call hasHexPrefix
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ret nz
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push hl
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push de
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ld d, 0
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inc hl ; get rid of "0x"
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inc hl
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call strlen
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cp 3
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jr c, .single
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cp 4
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jr c, .doubleShort ; 0x123
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cp 5
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jr c, .double ; 0x1234
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; too long, error
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jr .error
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.double:
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call parseHexPair
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jr c, .error
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inc hl ; now HL is on first char of next pair
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ld d, a
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jr .single
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.doubleShort:
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ld a, (hl)
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call parseHex
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jr c, .error
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inc hl ; now HL is on first char of next pair
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ld d, a
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.single:
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call parseHexPair
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jr c, .error
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ld e, a
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cp a ; ensure Z
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jr .end
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.error:
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call unsetZ
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.end:
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push de \ pop ix
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pop de
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pop hl
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ret
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; Sets Z if (HL) has a '0x' prefix.
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hasHexPrefix:
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ld a, (hl)
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cp '0'
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ret nz
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push hl
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inc hl
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ld a, (hl)
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cp 'x'
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pop hl
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ret
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; Parse string at (HL) as a binary value (0b010101) and return value in IX.
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; High IX byte is always clear.
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; Sets Z on success.
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parseBinaryLiteral:
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call hasBinPrefix
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ret nz
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push bc
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push hl
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push de
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ld d, 0
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inc hl ; get rid of "0b"
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inc hl
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call strlen
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or a
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jr z, .error ; empty, error
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cp 9
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jr nc, .error ; >= 9, too long
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; We have a string of 8 or less chars. What we'll do is that for each
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; char, we rotate left and set the LSB according to whether we have '0'
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; or '1'. Error out on anything else. C is our stored result.
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ld b, a ; we loop for "strlen" times
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ld c, 0 ; our stored result
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.loop:
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rlc c
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ld a, (hl)
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inc hl
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cp '0'
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jr z, .nobit ; no bit to set
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cp '1'
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jr nz, .error ; not 0 or 1
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; We have a bit to set
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inc c
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.nobit:
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djnz .loop
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ld e, c
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cp a ; ensure Z
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jr .end
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.error:
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call unsetZ
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.end:
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push de \ pop ix
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pop de
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pop hl
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pop bc
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ret
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; Sets Z if (HL) has a '0b' prefix.
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hasBinPrefix:
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ld a, (hl)
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cp '0'
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ret nz
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push hl
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inc hl
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ld a, (hl)
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cp 'b'
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pop hl
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ret
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; Parse string at (HL) and, if it is a char literal, sets Z and return
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; corresponding value in IX. High IX byte is always clear.
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;
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; A valid char literal starts with ', ends with ' and has one character in the
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; middle. No escape sequence are accepted, but ''' will return the apostrophe
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; character.
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parseCharLiteral:
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ld a, 0x27 ; apostrophe (') char
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cp (hl)
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ret nz
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push hl
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push de
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inc hl
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inc hl
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cp (hl)
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jr nz, .end ; not ending with an apostrophe
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inc hl
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ld a, (hl)
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or a ; cp 0
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jr nz, .end ; string has to end there
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; Valid char, good
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ld d, a ; A is zero, take advantage of that
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dec hl
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dec hl
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ld a, (hl)
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ld e, a
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cp a ; ensure Z
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.end:
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push de \ pop ix
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pop de
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pop hl
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ret
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; Parses the string at (HL) and returns the 16-bit value in IX. The string
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; can be a decimal literal (1234), a hexadecimal literal (0x1234) or a char
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; literal ('X').
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;
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; As soon as the number doesn't fit 16-bit any more, parsing stops and the
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; number is invalid. If the number is valid, Z is set, otherwise, unset.
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parseLiteral:
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call parseCharLiteral
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ret z
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call parseHexadecimal
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ret z
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call parseBinaryLiteral
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ret z
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jp parseDecimal
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; Parse string in (HL) and return its numerical value whether its a number
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; literal or a symbol. Returns value in IX.
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; Sets Z if number or symbol is valid, unset otherwise.
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parseNumberOrSymbol:
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call parseLiteral
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ret z
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; Not a number.
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; Is str a single char? If yes, maybe it's a special symbol.
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call strIs1L
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jr nz, .symbol ; nope
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ld a, (hl)
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cp '$'
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jr z, .returnPC
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cp '@'
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jr nz, .symbol
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; last val
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ld ix, (DIREC_LASTVAL)
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ret
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.symbol:
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push de ; --> lvl 1
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call symFindVal ; --> DE
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jr nz, .notfound
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; value in DE. We need it in IX
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push de \ pop ix
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pop de ; <-- lvl 1
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cp a ; ensure Z
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ret
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.notfound:
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pop de ; <-- lvl 1
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; If not found, check if we're in first pass. If we are, it doesn't
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; matter that we didn't find our symbol. Return success anyhow.
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; Otherwise return error. Z is already unset, so in fact, this is the
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; same as jumping to zasmIsFirstPass
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jp zasmIsFirstPass
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.returnPC:
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push hl
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call zasmGetPC
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push hl \ pop ix
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pop hl
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ret
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