802bbcc17a78f5750ce9fa9a29e1f31fae241da8
5 Commits
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802bbcc17a
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Collide sprites with rectangles that are not sprites
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`SOLID id, x1, y1, x2, y2` registers static collision geometry; `SOLID id` retires one and a bare `SOLID` retires them all, the way `TRAP`, `COLLISION` and `DCLOSE` all read absence. `COLLISION 2` and `BUMP(2)` stop being refused and mean *sprite met static geometry*. **This is the thing eight sprite slots made impossible.** A wall of bricks wants sixty, so until now a program could only collide with one by doing the arithmetic itself against its own array -- which is exactly what both breakout listings do, at about two hundred lines between them. A rectangle costs no sprite slot. The id is the **program's own number**, 1 to 64, not a minted handle. That is the whole trick for "which brick did I hit": the id comes back out again, so a wall built as `SOLID I#, ...` maps onto `B#(I#)` with no lookup, and retiring a broken brick is `SOLID I#`. `COLLISION 2` was refused with "sprite-to-background collision needs the screen read back every frame", which was true of the question a C128 asks -- a sprite against the bitmap's set pixels. `SOLID` gives this interpreter a background made of rectangles instead, which is the same question in a form it can answer. Same move `SPRSAV` made when it learned to take an image path. `AKBASIC_INTERRUPT_BACKGROUND` has been sitting in the interrupt table commented "COLLISION 2 -- sprite met background; refused" the whole time. Its accumulator is separate, so a sprite hitting a wall never sets a bit in `BUMP(1)`. **There is no `akgl_CollisionWorld` here, and that is deliberate.** libakgl's uniform grid keeps its cell heads, cell size and origin in file-scope statics, so it is one index per process -- and `akgl_collision_world_init()` ends in a `reset()` that memsets those heads *and* calls `akgl_heap_init_collision_cells()`. An interpreter embedded in a game with its own collision world would have destroyed every registration that game had made, on the first `SOLID` a script ran. So the geometry is indexed by an ordinary array here and pairs go straight to `akgl_collision_test()`, which needs no world. At sixty-four rectangles that is the right answer anyway; libakgl's own numbers put a naive sweep at 0.7% of a frame at sixty-four objects. **The scan now short-circuits when nothing has moved**, and that is what makes any of it affordable. Its inputs are the sprites' boxes, which slots are collidable, and the static geometry; if none changed the answer cannot have. A frame runs one full scan and 255 cached ones. Eight sprites against sixty-four rectangles is five hundred and twelve tests -- fine once a frame, ruinous 256 times. The benchmark was rewritten to say which path it is timing, because with the cache in place a loop that only calls the scan measures the short circuit and nothing else. Breakout now costs 590.6 ns for its one full scan plus 255 cached at 40.0, which is 10.8 us against a 1.19 ms frame -- **0.91%, less than the 2.0% it cost before any of this work**, with static geometry and contacts added on top. `NEW` retires the rectangles, where it cannot undefine a sprite pattern: there *is* an entry point for this one, so leaving them would be a choice, and the wrong one -- a rectangle is invisible, so one left behind by a deleted program is an unexplainable collision in the next. `CLR` leaves them alone. `tests/sprite_verbs.c` gains the whole second path against the mock and its `COLLISION 2` case is rewritten: it pinned the refusal, and now pins that type 2 arms its own handler without disturbing type 1's. `tests/akgl_backends.c` gains the end-to-end version, including a full sixty-four-rectangle wall so the proxy budget is exercised at its ceiling and the pool has to come back intact, and the sixty-fifth refused by name. A bare `SOLID` needed `akbasic_parse_optional_arglist` rather than `akbasic_parse_arglist`, which `DCLOSE` already uses for the same shape. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01EwxGB6TdoVvZ11KQQME9cL |
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f005b88980
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Let a program say what part of a sprite collides
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`SPRHIT n, kind [,x1, y1, x2, y2]` gives a sprite a collision shape: a box, a circle inscribed in it, or a capsule. `RSPHIT(n, f)` reads it back in SPRHIT's own argument order, the way RSPRITE and RSPPOS already do, and needs no device because it answers from interpreter state. The rectangle is two corners measured from the sprite's top-left, in device pixels -- the same `x1, y1, x2, y2` that `BOX` and `SSHAPE` take. A dialect with two spellings for a rectangle is one nobody can write from memory. Omit it and the shape fits whatever the picture turned out to be, which is what a sprite loaded from a file needs: `SPRSAV "ship.png", 1` takes the image's own size and the program never learns what that was. **A sprite nobody has shaped collides with its whole frame, expansion bits included, exactly as before.** That is a promise rather than a convenience, and it has its own test: the same two sprites in the same two places, once with no SPRHIT and once with a four-pixel box, reporting a collision and then not. Named SPRHIT rather than SPRSHAPE because "shape" already means "a region SSHAPE saved" in this dialect, in this very chapter -- `SPRSAV A$, 1` takes one -- and a reader who typed `SPRSHAPE A$, 1` would have had every reason to. Both names, and RSPHIT, were grepped against every label in docs/, examples/ and both corpora first: a bare word is a label here, so a verb and a label share one namespace and taking a name a checked-in listing already uses would break it silently. `SPRHIT n, 0` takes a sprite out of collision while leaving it on the screen -- the ghost, the flashing invulnerable player, the pickup already taken. Hiding it with `SPRITE n, 0` stops it colliding too, and is what you want when it should not be seen either. The circle answers the complaint chapter 8 already ships a figure of. That figure shows two discs whose *boxes* touch at a corner while the artwork is nowhere near, and `BUMP(1)` reporting a collision; two `SPRHIT n, 2` and it stops. The test asserts both halves so the figure's caption stays true. `tests/verbs_table.c` caught RSPHIT filed after RSPPOS rather than before it, which is the sorted-table test doing exactly the job it exists for. Docs: a new section in chapter 8, rows in the verb and function references in alphabetical order, and chapter 13's "collision is by bounding box" becomes "collision is by shape" with the addition named. 111 with akgl, 110 without, and the artwork breakout still runs clean. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01EwxGB6TdoVvZ11KQQME9cL |
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a1dcfcacf3
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Land a character written past a short row's terminator
A grid row is a NUL-terminated string, and `putchar_at()` wrote the character, advanced and terminated -- so `CHAR 1, 40, 1, "#"` on an otherwise empty row stored the `#` at column 40 with `text[1][0]` still `'\0'`, and the render loop, which stops at the terminator, drew nothing at all. The silent nothing is the trap. The write succeeded, the cursor moved, the stdout mirror showed the character, and only the window stayed blank -- so the program looked right everywhere except where it mattered. The documented truncation on the way *back* is fine and is unaffected. `putchar_at()` now fills the gap with spaces before storing. **Padded there rather than in `sink_moveto()`**, which TODO.md proposed: this way `moveto` stays read-only -- the objection that entry raised against its own suggestion -- and a row is only ever padded when a character actually arrives. The pad fills from the terminator rather than replacing it. The buffer is not cleared between rows, so replacing only the terminator would expose the tail of whatever longer row used to be there: writing "ABCDEFGHIJ", truncating it to "ABCX", then writing at column 7 must give "ABCX Z" and not "ABCX FGZ". tests/akgl_backends.c asserts all three cases, and the middle one keeps the truncation pinned. TODO.md section 6 item 32, struck. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> |
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6bac929901
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Document structures: a chapter, the architecture, and the differences
docs/16-structures.md is the feature: records, nesting, copy-on-assign, strict pointers, lists, what is checked and what is not, and how a host shares its own C structs. Every example in it is executed by docs_examples and byte-compared, including the refusals -- so a message that changes fails the suite rather than quietly making the chapter wrong. The chapter makes one contrast explicitly, because it is the question a reader will actually have: a misspelled *field* is refused and a misspelled *variable* still prints zero. The rule underneath is that what the program declared gets checked and what it did not gets shrugged at -- a variable's name is never declared, a TYPE's field list is. Structures end up the strictest thing in the language, not from a higher standard but because they are the only named thing whose valid spellings are written down. Chapter 14 gains the layout: an instance is a contiguous run of value slots with a diagram of where the fields sit, the three-pass prescan and why each pass exists, why the copy cannot live in akbasic_value_clone(), and why the render depth bound is four rather than eight. Chapter 3 gains the @ suffix, chapter 13 records that all of this is an addition BASIC 7.0 has nothing like, and the verb reference gains TYPE, POINT and DIM ... AS. MAINTENANCE.md gains the two rules that are on a maintainer rather than on a test: a structure copy must not go through clone, and a field chain gets its own leaf field. TODO.md section 5 records what was invented and the three limits that are ours, and section 8 records the two defects the work exposed. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> |
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cdaefcc941
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Write the usage guide as thirteen chapters in docs/
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Organised the way the C128 Programmer's Reference Guide is: the language first, then each hardware area, then the reference sections. One markdown file per chapter. The verb and function references are generated from the interpreter's own dispatch table, with an assertion that every row is described, so they cannot drift out of step with what the program accepts. 98 verbs and 30 functions. Every example was run before it was written down, which caught three claims that were wrong: a whole FOR loop on one line prints nothing rather than looping once, MID and INSTR count from zero where a C128 counts from one, and a multi-line DEF returns a value the caller has to assign away. Chapter 13 is the list a BASIC 7.0 programmer needs -- roughly sixty documented differences, including the two known FOR defects and the fact that drawing does not survive a frame. Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com> |