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AKBASIC_MAX_LINE_LENGTH's cut from 256 to 80 left seventeen lines of examples/megademo unloadable: the sixteen IM$() picture strings (up to 252 characters) and TUNEA/TUNEB's four-bar PLAY strings (174 and 175). The real ceiling is 78 characters, not 80 -- stdio_readline() refuses a read that fills the 80-byte buffer without a newline, so content plus its terminator must fit in 79. The picture: vaporwave.py's PAYLOAD drops from 240 to 64, so every emitted IM$(NN) = "..." line fits under the ceiling. chop() no longer slices blind; it walks the stream a record at a time -- two characters for a run, three for an R row record -- and never cuts inside one, because the decoder reads a record's tail with MID on the string it is walking and a record straddling two IM$ entries decodes as garbage. The old blind slice at 240 only happened to be safe. verify() now simulates the CHOPPED strings with the cursor threaded across the boundaries exactly the way DRAWSTREAM executes them, so a bad cut is an assertion failure instead of a corrupted screen, and emit_block() asserts every emitted line fits. The picture is 56 strings where it was 16; the decoder needed no changes at all, since it already carries X#/Y# from one IM$ entry to the next. The music: TUNEA and TUNEB each become four PLAY statements, one bar apiece. play.c keeps voice, envelope, level and duration state on the runtime across statements and every PLAY appends to the same queue, so four bars queue exactly as one long string did. Each bar restates the V1T3U9S prefix so a bar dropped by QFULL cannot leave the next batch playing on the drum kit's envelope. Everything still clears the shrunken pools with room to spare: 1625 source lines of 2048, ~704 array slots of 2048, identifiers within the 24-character symtab key. Verified end to end against this branch's build: the demo loads, the offscreen host renders every scene, and the scene-5 still is pixel-identical to vaporwave.py's own preview. The test suite fails the same seventeen cases with and without this commit. Co-Authored-By: Claude Fable 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01ACffnV6F7sxQuG3Y8a1L3s
368 lines
13 KiB
Python
368 lines
13 KiB
Python
#!/usr/bin/env python3
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"""Generate the megademo's vaporwave picture, and its six frames of video.
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The picture is composed directly in akbasic's 16-colour palette space at
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160x120 -- one cell is a 5x5 pixel block on the 800x600 window -- then
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run-length encoded into string literals the demo decodes with INSTR and
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draws with three WIDTH-2 lines per run.
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The video is delta frames. Six phases of a perfect loop -- the floor
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grid advancing on a geometric progression parameterised so phase 6 lands
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exactly on phase 0, and the sun's slice pattern crawling on a period-six
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cycle -- and each frame encodes only the rows that differ from the one
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before it: an 'R' record carrying the row in two base-36 digits, then
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ordinary runs, with unreachable colour 'Q' as a skip. The rays are not
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in the encoding at all; the demo overdraws them live, which is what
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turns a thirty-run grid row back into a five-run one.
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Why strings and not DATA: the interpreter's DATA pool is 512 items and
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the stroke font already holds ~350 of them. A string literal carries one
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RLE run in two characters. TODO.md section 4 records the gap.
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Why the dithering is by row and not by pixel: per-pixel ordered dither
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shatters every gradient into one-cell runs, which is death for RLE.
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Row-phase dither keeps the runs long, and horizontal banding is what a
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CRT did to a gradient anyway.
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Usage:
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python3 vaporwave.py --preview OUT.png write a x5 preview of
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phase 0, rays included
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python3 vaporwave.py --splice MEGADEMO.BAS rewrite the generated
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block between the
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PICTURE-BEGIN/END markers
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"""
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import argparse
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import struct
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import sys
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import zlib
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W, H = 160, 120
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PHASES = 6
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# src/graphics_tables.c, Pepto's PAL measurement. Index 0 unused.
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PALETTE = [
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(0x00, 0x00, 0x00), (0x00, 0x00, 0x00), (0xff, 0xff, 0xff),
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(0x88, 0x39, 0x32), (0x67, 0xb6, 0xbd), (0x8b, 0x3f, 0x96),
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(0x55, 0xa0, 0x49), (0x40, 0x31, 0x8d), (0xbf, 0xce, 0x72),
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(0x8b, 0x54, 0x29), (0x57, 0x42, 0x00), (0xb8, 0x69, 0x62),
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(0x50, 0x50, 0x50), (0x78, 0x78, 0x78), (0x94, 0xe0, 0x89),
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(0x78, 0x69, 0xc4), (0x9f, 0x9f, 0x9f),
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]
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# Run encoding alphabets. Position decides meaning, so overlap is fine.
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# 'Q' is a skip (INSTR misses the colour table and the decoder's guard
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# draws nothing) and 'R' opens a row record.
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COLORCH = "ABCDEFGHIJKLMNOP"
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SKIP = "Q"
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ROWREC = "R"
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LENCH = "ABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789"
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MAXRUN = len(LENCH)
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# The interpreter reads source through an 80-byte line buffer and refuses
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# any line that fills it (AKBASIC_MAX_LINE_LENGTH, sink_stdio.c), so a
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# stored line is at most 78 characters plus its newline. 'IM$(NN) = "' and
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# the closing quote spend 12 of those; 64 keeps the emitted lines under
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# the ceiling with margin to spare while the index stays two digits.
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PAYLOAD = 64
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MAXLINE = 78
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SUN_CX, SUN_CY, SUN_R = 80, 50, 30
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HORIZON = 74
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GRID_R = 1.55
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RAY_SPREAD = 26
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def band_mix(y, x, frac, a, b):
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threshold = (((y * 5) + ((x // 8) * 3)) % 8) / 8.0
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return b if frac > threshold else a
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def sky_color(y, x):
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bands = [(7, 5), (5, 11), (11, 9)]
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seg = HORIZON / len(bands)
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i = min(int(y / seg), len(bands) - 1)
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frac = (y - (i * seg)) / seg
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a, b = bands[i]
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return band_mix(y, x, frac, a, b)
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def sun_color(y):
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frac = (y - (SUN_CY - SUN_R)) / (2.0 * SUN_R)
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if frac < 0.4:
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return 8
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if frac < 0.7:
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return 9
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return 3
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def sun_sliced(y, phase):
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"""Period-six cuts below the sun's midline, crawling with the phase."""
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if y < SUN_CY:
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return False
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return ((y + phase) % 6) < (1 + min(1, (y - SUN_CY) // 14))
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def grid_rows(t):
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"""Horizontal grid lines at loop parameter t in [0,1): row k sits at
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HORIZON+1 + B*(r^(k+t)-1), so t=1 reproduces t=0 shifted one line."""
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rows, k = [], 0
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while True:
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y = HORIZON + 1 + 2.2 * (GRID_R ** (k + t) - 1.0)
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if y >= H:
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return rows
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rows.append(int(y))
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k += 1
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def compose(phase, rays=False):
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img = [[1] * W for _ in range(H)]
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for y in range(HORIZON):
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for x in range(W):
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img[y][x] = sky_color(y, x)
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for i, (sx, sy) in enumerate([(9, 5), (31, 11), (52, 3), (74, 8),
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(99, 14), (126, 6), (147, 12), (18, 21),
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(139, 24), (61, 17)]):
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img[sy][sx] = 2 if i % 3 else 16
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for y in range(SUN_CY - SUN_R, SUN_CY + SUN_R + 1):
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if y < 0 or y >= HORIZON or sun_sliced(y, phase):
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continue
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dy = y - SUN_CY
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half = int((SUN_R * SUN_R - dy * dy) ** 0.5)
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for x in range(SUN_CX - half, SUN_CX + half + 1):
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img[y][x] = sun_color(y)
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for r in grid_rows(phase / float(PHASES)):
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for x in range(W):
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img[r][x] = 5
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if rays:
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for i in range(-9, 10):
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x0, y0 = SUN_CX, HORIZON
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x1, y1 = SUN_CX + (i * RAY_SPREAD), H + 20
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steps = max(abs(x1 - x0), abs(y1 - y0))
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for s in range(steps + 1):
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x = x0 + ((x1 - x0) * s) // steps
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y = y0 + ((y1 - y0) * s) // steps
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if 0 <= x < W and HORIZON < y < H:
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img[y][x] = 4
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return img
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def encode_run(color, n):
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return COLORCH[color - 1] + LENCH[n - 1]
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def encode_skip(n):
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out = ""
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while n > 0:
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step = min(n, MAXRUN)
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out += SKIP + LENCH[step - 1]
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n -= step
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return out
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def encode_base(img):
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"""The full raster, top to bottom; rows advance automatically.
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Black spans become skips -- GRAPHIC's clear already painted them --
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which is what keeps the floor nearly free. A skip draws nothing and
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a black run draws black: the base wants the former, a delta erasing
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a moved grid line needs the latter."""
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out = ""
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for y in range(H):
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x = 0
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while x < W:
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c = img[y][x]
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n = 1
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while x + n < W and img[y][x + n] == c and n < MAXRUN:
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n += 1
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out += encode_skip(n) if c == 1 else encode_run(c, n)
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x += n
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return out
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def encode_delta(prev, cur):
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"""Row records for every row that differs, runs spanning the changed
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extent. An unchanged span of eight or more becomes a skip; anything
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shorter is simply repainted, which merges into its neighbours' runs.
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Black runs cost nothing either way -- the decoder draws nothing for
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colour 1 and just advances."""
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out = ""
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for y in range(H):
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diffs = [x for x in range(W) if prev[y][x] != cur[y][x]]
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if not diffs:
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continue
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lo, hi = diffs[0], diffs[-1]
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out += ROWREC + LENCH[y // 36] + LENCH[y % 36]
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if lo:
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out += encode_skip(lo)
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x = lo
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while x <= hi:
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n = 0
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while x + n <= hi and prev[y][x + n] == cur[y][x + n]:
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n += 1
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if n >= 8:
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out += encode_skip(n)
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x += n
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continue
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c = cur[y][x]
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n = 1
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while x + n <= hi and cur[y][x + n] == c and n < MAXRUN:
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n += 1
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out += encode_run(c, n)
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x += n
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return out
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def chop(blob):
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"""Split a stream into strings of at most PAYLOAD characters, cutting
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only between records. The decoder reads a record's tail characters
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with MID on the string it is walking, so a run (two characters) or a
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row record (three) that straddled two IM$ entries would decode as
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garbage; DRAWSTREAM only carries the cursor, never a partial record."""
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out, cur = [], ""
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p = 0
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while p < len(blob):
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n = 3 if blob[p] == ROWREC else 2
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if len(cur) + n > PAYLOAD:
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out.append(cur)
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cur = ""
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cur += blob[p:p + n]
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p += n
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if cur:
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out.append(cur)
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return out
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def simulate(raster, blob, x=0, y=0):
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"""Apply one encoded stream to a raster exactly the way the BASIC
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decoder does, skips-draw-nothing and all. The cursor comes in and
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goes back out because DRAWSTREAM carries it from one IM$ entry to
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the next -- decoding the chopped strings one at a time with the
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cursor threaded through is exactly what the demo will execute."""
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p = 0
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while p < len(blob):
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c = blob[p]
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if c == ROWREC:
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y = (LENCH.index(blob[p + 1]) * 36) + LENCH.index(blob[p + 2])
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x = 0
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p += 3
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continue
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n = LENCH.index(blob[p + 1]) + 1
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ci = COLORCH.find(c) + 1
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if ci >= 1:
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for i in range(n):
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raster[y][x + i] = ci
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x += n
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if x >= W:
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x = 0
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y += 1
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p += 2
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return raster, x, y
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def simulate_lines(raster, lines):
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"""One stream as its chopped strings, cursor carried across the
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boundaries the way DRAWSTREAM carries X# and Y#."""
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x = y = 0
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for line in lines:
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raster, x, y = simulate(raster, line, x, y)
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return raster
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def verify(frames, base_lines, delta_line_groups):
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"""The base must reproduce frame 0 exactly, and each delta must
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carry the raster exactly to the next frame. A skip leaves the cell
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the encoder promised was already right, so equality is total and
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any difference at all is an encoder bug. This decodes the CHOPPED
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strings, not the blobs, so a chop that split a record would fail
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here instead of corrupting the screen."""
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raster = [[1] * W for _ in range(H)]
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raster = simulate_lines(raster, base_lines)
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assert raster == frames[0], "base stream does not reproduce frame 0"
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for i, lines in enumerate(delta_line_groups):
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want = frames[(i + 1) % PHASES]
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raster = simulate_lines(raster, lines)
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assert raster == want, "delta %d does not reproduce its frame" % i
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def emit_block(base_lines, delta_ranges, all_lines):
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out = []
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out.append("REM ---- PICTURE-BEGIN (generated by vaporwave.py; do not")
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out.append("REM ---- hand-edit -- rerun the script to change the picture)")
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out.append("DIM IM$(%d)" % len(all_lines))
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out.append("DIM VA#(%d)" % PHASES)
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out.append("DIM VB#(%d)" % PHASES)
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out.append("NS# = %d" % len(base_lines))
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for i, (a, b) in enumerate(delta_ranges):
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out.append("VA#(%d) = %d" % (i, a))
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out.append("VB#(%d) = %d" % (i, b))
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for i, s in enumerate(all_lines):
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out.append('IM$(%d) = "%s"' % (i, s))
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out.append("REM ---- PICTURE-END")
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for line in out:
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assert len(line) <= MAXLINE, "emitted line over %d chars: %r" % (
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MAXLINE, line)
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return out
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def write_png(path, img, scale=5):
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w, h = W * scale, H * scale
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raw = bytearray()
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for y in range(h):
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raw.append(0)
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row = img[y // scale]
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for x in range(w):
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raw.extend(PALETTE[row[x // scale]])
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def chunk(tag, data):
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c = struct.pack(">I", len(data)) + tag + data
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return c + struct.pack(">I", zlib.crc32(tag + data) & 0xffffffff)
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with open(path, "wb") as f:
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f.write(b"\x89PNG\r\n\x1a\n")
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f.write(chunk(b"IHDR", struct.pack(">IIBBBBB", w, h, 8, 2, 0, 0, 0)))
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f.write(chunk(b"IDAT", zlib.compress(bytes(raw), 9)))
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f.write(chunk(b"IEND", b""))
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def splice(path, block):
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with open(path) as f:
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text = f.read().splitlines()
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begin = next(i for i, l in enumerate(text) if "PICTURE-BEGIN" in l)
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end = next(i for i, l in enumerate(text) if "PICTURE-END" in l)
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text[begin:end + 1] = block
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with open(path, "w") as f:
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f.write("\n".join(text) + "\n")
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def main():
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ap = argparse.ArgumentParser()
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ap.add_argument("--preview")
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ap.add_argument("--splice")
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args = ap.parse_args()
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frames = [compose(p) for p in range(PHASES)]
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base_blob = encode_base(frames[0])
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base_lines = chop(base_blob)
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all_lines = list(base_lines)
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delta_ranges = []
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delta_line_groups = []
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for i in range(PHASES):
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blob = encode_delta(frames[i], frames[(i + 1) % PHASES])
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lines = chop(blob)
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delta_line_groups.append(lines)
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delta_ranges.append((len(all_lines), len(all_lines) + len(lines) - 1))
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all_lines.extend(lines)
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verify(frames, base_lines, delta_line_groups)
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dbytes = sum(len(l) for g in delta_line_groups for l in g)
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print("base %d bytes in %d strings; video %d bytes in %d strings; "
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"%d strings total" %
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(sum(len(s) for s in base_lines), len(base_lines), dbytes,
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len(all_lines) - len(base_lines), len(all_lines)),
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file=sys.stderr)
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if args.preview:
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write_png(args.preview, compose(0, rays=True))
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if args.splice:
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splice(args.splice, emit_block(base_lines, delta_ranges, all_lines))
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if __name__ == "__main__":
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main()
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