023362b05a5855148dfba310e46e93d74c0d81a8
105
Commits
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023362b05a |
A second screen, and one port to say which is shown
A screen drawn where it can be seen is seen half drawn. A program that moves forty things and rewrites the map underneath them is wrong for as long as it takes to put them all right, and at a megahertz that is long enough to look at. So the device brings a second screen bank, on port 0x3B, and port 0x3C says which of the two is displayed. Everything a program draws into the other one is invisible until one byte shows the whole of it at once. ONE REGISTER IS ENOUGH, where the hardware this imitates needed two. The other said which screen the CPU's window pointed at; there is no window here, because a program reaches a bank through the memory controller by its number. Writing to the screen that is not shown is a matter of naming its bank, and the device never has to be told. And a flip cannot tear: a frame is drawn from one bank in one go, so a flip either happened before that frame or happens before the next. There is nothing to race, where the real machines had to catch the few lines between frames to swap in. The console draws into whichever screen is displayed rather than one of its own, so a fault message lands where somebody can read it even if a game had flipped. And CosmOS puts the displayed screen back at exit, the way it already puts back the cursor and the ink: a program that faulted while flipped could not have, and a shell that only came out right for programs which remembered would come out wrong the day one crashed. Flip.asm is the worked example. It deliberately does NOT restore the display itself - that is the point of the paragraph above, and it is what makes the system's guarantee the thing under test rather than the program's good manners. Written the other way round first, where it passed with the guarantee deleted. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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66e7b84272 |
The screen is two banks: an atlas and a screen
Tiles and colours are written when a program loads; the map is written whenever anything moves. Sharing one 64K bank made them compete for room neither needed all of, and had a worse consequence than being cramped: a bitmap covers the whole bank, so entering bitmap mode destroyed the font. A program could not draw a picture and then say anything about it. Split, each gets a whole bank. The atlas holds the tiles and the palette, the screen holds the map or a bitmap, and a picture now costs the map and nothing else. It also leaves 48K free in the atlas, which is where the sprite table and a second page of tiles are going. No new mechanism was needed. A bank is registered by naming the port that owns it, so a device with two banks needs two ports that own memory: the base port keeps the atlas, since tiles have been at 0x0000 since there was a screen at all, and 0x3A owns the screen. The registry now answers honestly about which ports in the block bring memory, where it used to say all sixteen did. CosmOS never addresses video memory except in one place - the screen save, which walks 196 pages of it. The page number already says which bank a page is in, so screenBankFor works it out rather than keeping a second list beside screenPageFor. Grid and picture.asm register both banks; colours.asm only touches the palette and needed none of it. Tests/video.sh names the memory every write is for, because an address cannot: tile 5 and bitmap pixel 5 are both 0x0005, and a helper that guessed would be right for the tiles and silently wrong for a picture. And picture.asm gained a check, because this change broke it and nothing noticed - registering the second bank leaves DestBank pointing at it, so the palette went into the wrong one and the picture came out black. It was the only thing here found by looking rather than by a test. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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bb065fe221 |
Tab finishes a word somebody started
The first word of a line, against the shell's fifteen commands. One match goes in with a space after it, because a word that can only be one thing is finished. Several are folded into their longest common prefix and that goes in, which is the most that can be said without guessing which was meant - and if that adds nothing, the matches are listed and the line put back underneath. THE LINE COMING BACK IS THE HALF I EXPECTED TO BE HARD and it was already solved. The prompt has been reprinted somewhere else entirely, so the editor's idea of where the line begins is wrong - but editAnchor works that out backwards from where printing ended, precisely so it survives the screen moving. Listing is a redraw it already knew how to do. editInsert became editPut, a routine, because completing a word puts in several characters and every one of them is that. Which cost a bug immediately: the old inline code left the insertion point in A, and a RET puts A back to what the caller had. Two more bugs worth naming, both mine and both the same shape - a pointer that had moved: THE CANDIDATE'S START HAS TO BE KEPT. The comparison walks DP3 through the name as it matches, so by the time a match is declared, DP3 points at the part AFTER what was typed - and that is what got copied. "he" completed to "he" because the answer taken was "lp". AND THE INSERTION STOPS AT OR PAST, not exactly equal. With the wrong answer the two counters passed each other and the loop ran off the end of the buffer, filling the line with whatever was next in memory. They cannot pass each other now, and the branch stays, because the cheaper failure is worth nothing. MY OWN TEST HAD A HOLE and breaking the code found it. The later-word case pressed Tab after a space, where there is nothing to finish anyway, so it passed whether or not the shell checked which word it was on. It types "echo he" now, which would become "echo help" if it did not. The assembler's label table went past 1024 and is doubled. A ceiling reached once will be reached again, and it is pointers into source already in memory. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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f97d15de08 |
The font comes from a chip, not from RAM that remembers
videoReset zeroed video memory and then wrote the font and the sixteen colour schemes into it, and the comment above that said out loud what was wrong with it: "everything here is ordinary video memory". RAM does not wake up with anything in it. That was the last piece of magic in this device, and it looked harmless until something wanted the font BACK - a program that redefines a glyph had destroyed the only copy there was. So the device has a character generator, the way the machines this one is pretending to be really did, and the copy into RAM is a thing it DOES rather than a state it mysteriously starts in. Command port 0x39: bit 0 for the font, bit 1 for the schemes. THE RAM IS STILL RAM. A program may overwrite every glyph and every colour and should be able to, which is what makes this a tile engine rather than a text display. What changed is that it is no longer a one way door. NEITHER COMMAND CLEARS WHAT IT DOES NOT OWN. The font used to clear the whole of tile memory before writing itself, which was harmless while it happened only at reset and is wrong the moment a program can ask: a program that defined a tile of its own and then wanted its text back would have paid for it with the tile. The reason it is a chip rather than a file on the disk, which was the other candidate: the boot chain prints before CosmOS exists. Stage one prints "?" when there is nothing to boot, and if the font came off the disk then the message about the disk having failed would be the one thing that could not be drawn. A system that wants its own font still loads one over the top - the ROM is the floor, not the policy. Two things that had been worked around now simply work. The shell asks for both whenever a program exits, so a program that redefined a letter no longer leaves it unable to spell, and Grid no longer needs to have saved the screen to avoid handing back green text on blue. And the fault screen asks for the glyphs first, because a message spelled in somebody's tile graphics is no message at all. Five video checks. Two runs each for the font and the schemes, since the map holds a tile NUMBER and the glyph is looked up when the frame is drawn - so restoring changes every cell using it, including ones drawn before, and what the two runs differ by is the command. The third guards the decision not to clear: tile 200 has to survive the font coming back. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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c1b3c4c156 |
A rule for the bug that formatted a disk
falls-into-subroutine. The code above a label ends without going anywhere and the label is one something CALLs, so execution walks into the subroutine, reaches its RET, and returns to whatever the Stack happens to hold - because nobody called, there is no caller, and it goes somewhere nobody named. It is worth a rule because the symptom is nowhere near the cause and changes with the Stack. In CosmOS's monitor it was usually a byte that does not decode, in the middle of newLine; once it was inside sbfsFormat, and the machine formatted the disk it had booted from. Two exemptions, and both had to exist or the rule would have reported well written code: A TAIL CALL IS THE SAME SHAPE AND IS FINE. Falling out of one subroutine into another means the RET returns to the outer caller, which is real. So it only fires when nothing since the last branch or return was a call target either - which is the linter's usual trade of precision for being worth reading. AND osExit NEVER RETURNS. It is how a loaded program gives the machine back, and every program here ends with it and then writes its helpers underneath. Without that, twelve well written programs were reported. It is the one name from the system this tool knows, and the comment says why it is there. Also SRET, which stopsFallthrough did not list. It returns from a handler exactly as RET returns from a call, and leaving it out is a gap in every rule that asks what reaches an instruction. Load bearing rather than tidy: without it cosmos.asm reports a handler ending in SRET as falling into the routine written under it. A first pass over the file collects call targets, because a subroutine is very often called from further down than it is written. The corpus reports none of it, which is the point rather than a disappointment, and the Test Manual now says so - a baseline entry that is absent is otherwise indistinguishable from a rule that never runs. Checked against the version of cosmos.asm from before the fix, where it names the line. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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000a6d39cb |
Somewhere to send the fault about there being nowhere to send it
Dispatching through a vector with nothing in it was the one fault this machine could not hand over, because the thing that would hand it over is the thing that has just found nothing to hand it to. It stopped the machine and no program could do anything about it - so calling a service the system does not implement was fatal, and that is an ordinary mistake to make. Two new fault vectors: 5 when a software vector was empty, 6 when a device interrupted and its hardware entry was. Separate, because they are separate mistakes with separate fixes - one is a program calling something that is not there, the other a program that asked to be interrupted and forgot the handler. WHICH ENTRY WAS EMPTY ARRIVES IN Q, and it is the only thing on this machine a handler is given in a register. Not a fault cause register by another route: the vector still says what happened and Q says which of the 256 entries it happened about, which is a parameter and not a cause. It costs no new state at all, because the frame already saved the Q the interrupted program had and RETI puts it back. The escalation happens once. If vector 5 or 6 is itself empty the machine stops the way it always did, having genuinely run out of places to go. swiFaultTest is what guards that, and it was written long before any of this: it installs nothing, so it must still get the old halt. Breaking the escalation fails the two new tests and not that one; making the escalation unbounded fails that one and not the two new ones. Each break fails exactly the half it belongs to. noDeviceTest is fed no input on purpose. The console raises its line once when input ENDS as well as when a byte arrives - which exists so a program driven by interrupts is told when nothing more is coming - so with no input at all, that end is what turns up. Groundwork for CosmOS's fault screen, which wanted to catch these two and could not. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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4d976fc22a |
A program reading a line gets the editing too
osReadLine goes through the shell's editor now, so anything that asks the system for a line gets arrows, Home, End and Delete. The editor is a program, and a word typed with two letters the wrong way round can be put right without starting the line again. IT DOES NOT GET THE HISTORY, and that is the interesting half. Edit would otherwise fill the history with the text of somebody's document, and pressing Up in the middle of writing one would put "dir" into it. The history belongs to the thing whose lines are commands. Two entry points rather than a flag the caller sets first, so a caller cannot forget which it wanted. And the console is put back the way it was FOUND rather than the way the shell likes it. A program that had asked for key mode and then read a line through the system used to be handed back a console in line mode having asked for nothing of the sort. The status port reports all three things the control port can ask for, in the same order two bits along, so one shift turns what the console IS into what to write to make it that again. Which uncovered a real fault in the console. READING THE STATUS PORT WAS EATING A KEY: in line mode the poll consumed an arrow key and dropped it, so a program that looked and then asked for key mode - exactly what reading a line now does - found the first key it was reaching for already gone. A look must not consume what it cannot report, because the mode can change. It is held now and delivered as soon as something will take it. A blocking read still discards it, and must: that read IS the delivery, and a byte held there would be met again forever. Four recordings gained a program's echo, and cosmosEdit's went from "> : : : : > : : > 1: alpha" to a session you can read. VERIFIED THE SAME WAY AS BEFORE: with only the program side of the echo silenced, all 192 tests pass against the recordings as they were before this commit, so the echo is the whole of what changed. cosmosEditService is the new test and it checks both halves at once. Inside Edit, Left/Delete/Left puts "alpah" right. Up and Down do nothing there - were a program's line walking the shell's history, the next line would come out as the echo command from the top of the file instead of the word. And one press of Up back at the prompt finds the command typed before Edit was started, which is the proof that nothing the editor read went into the history at all. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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b3726c950a |
Deliver the keys that are not characters
An arrow key has never reached this machine. Voyager threw it away for want of anywhere to put it, and a terminal sent ESC [ A, which arrived in the middle of whatever was being read and made it unrecognisable - typing Up at the CosmOS prompt put three bytes in the command line and got "I do not know". So the console names them: one byte each, 0x80 upward, above ASCII so nothing written before them can collide. Up, Down, Left, Right, Home, End and forward Delete, with room above for the paging and function keys. The console normalises, which is what it already does. Behind a window it turns the key somebody pressed into a byte; on a terminal it turns the sequence into the same byte. That is the act it has always performed on Return and Backspace, one layer further along, and it is why a program need not know which of the two it is talking to. What a key MEANS is not the console's business - that belongs to whoever is reading, the same way what is on a disk belongs to the system and what a drive is belongs to the machine. Translated only when standard input really is a terminal. Nothing else sends these sequences, a pipe holds exactly the bytes somebody put in it, and it keeps the Escape-or-Up timing problem out of every test here: a test writes the key values themselves. Line mode drops them, in both front ends, because line mode delivers characters and a line somebody else has finished editing cannot be moved about in. Press.sbx says what it was handed, in hexadecimal and by name, and reads a line before it reads keys so both halves of that rule are checked. Two recordings, one fed as standard input and one as a keyboard, agreeing byte for byte; each break fails exactly one of them. Three checks in terminal.sh type real escape sequences at a pseudo-terminal, which is the only place they are ever read as sequences: that they arrive as keys, that Escape alone is still Escape, and that a character typed straight after an escape is held rather than swallowed. Five recordings re-blessed for Press.sbx appearing on the shared disk, and the whole of that diff is the file's own line and the counts above it. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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04f1ffabd4 |
A disk made of memory, brought up by whoever owns it
THE MACHINE SUPPLIES BLOCKS AND SAYS WHAT A DRIVE IS. It says nothing about filesystems, which is what leaves room for a system that would rather have its own - and is why the volatile bit is a fact about the hardware rather than a promise about SBFS. 0x26 what the selected drive is: bit 0, contents do not survive 0x27, 0x28 how many blocks it has --ram-disk N a drive of N blocks with memory behind it A drive of memory selects, reads, writes and has a size like any other, and a program cannot tell the difference except by how fast it was. The one thing it cannot work out for itself is that the contents are volatile, because an empty disk and a volatile disk look identical from outside. THAT BIT IS THE DIFFERENCE BETWEEN A DRIVE A SYSTEM MAY FORMAT ON SIGHT AND ONE IT MUST NOT. CosmOS formats a volatile drive it cannot read, because there was never anything on it to lose, and leaves every other unreadable drive alone - an unformatted floppy is not an invitation, it is a blank floppy. Removing that check formats somebody's blank disk, which is checked rather than asserted: cosmosBlankDisk boots with one and requires it to be refused. So CosmOS grew a format. The size comes from the drive rather than from a superblock, since a superblock states a size too and that is no use on a disk which has not got one yet. Sixteen directory blocks, 128 names, chosen rather than worked out: a scratch disk runs out of names long before room, and this machine cannot divide. The RAM disk is no faster on this emulator by default, and that is honest rather than disappointing: the emulated disk has no seek time unless asked for one. With --disk-cycles 10000 the same copy is 7.94M cycles against 8.70M, the difference being every write. run.sh takes "ram:2048" where an image name goes, which needs no removing between runs because there is nothing to remove. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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6b51d6391f |
A beat a program sets for itself
The only regular thing on this machine was the screen finishing a frame, sixty times a second and not negotiable - a clock a program BORROWS rather than one it sets. Every duration became a multiple of 16,667 cycles, so a sixteenth note at 120 beats a minute, which is 125,000, is seven and a half frames and cannot be asked for at all. The way round it was to choose a tempo whose subdivisions happen to land on whole frames, which is making the music fit the machine. Examples/tune.asm says so in its own header. 0x50 Status: a period went by, it is running, it will interrupt 0x51 Control: run, repeat, interrupt 0x52-0x54 The period, in cycles, most significant first THE PERIOD IS IN CYCLES because that is what everything else here is counted in - the cost model counts them and a frame is measured in them - so a timer counting anything else would be a second unit to remember. Twenty four bits reaches from one cycle to sixteen and a half seconds, with 120 beats a minute at 500,000 in the middle, and there is no range left for a prescaler to buy. Starting loads the period; asking it to run while it already is does not, so turning interrupts on half way through a period does not silently move the beat being kept. What is left over carries into the next period, so a period of 1,000 ticks every 1,000 and not every 1,000 plus however late anybody looked. Reading the status takes the tick down and the line with it, which is the rule this machine settled two days ago about every status port. The timing check is in terminal.sh and not the manifest, and the reason is worth keeping: settle() strips cycle counts from recordings, which is right for every other program and useless for a clock. "It printed eight dots" would pass on a timer that fired them all at once. terminal.sh measures that eight periods of 125,000 come to a million within a couple of hundred cycles, and that 99.97% of them were spent asleep. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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b1538e0618 |
Give the disk four drives, behind one controller
SEVERAL DISKS ARE ONE CONTROLLER AND NOT SEVERAL DEVICES, and the instruction set decided that rather than taste. A port is an immediate byte inside the OUT that names it - portOut takes it from Program Memory - so a program cannot compute one. "The disk on port 0x20 plus drive times four" is not something this machine can say, and two disks as two devices would mean a branch on the drive number in all eleven places sbfs.asm names a disk port. A drive register is what a floppy controller has always been. 0x24 Drive, which the block, command and status registers refer to 0x25 Drives, read only: how many are plugged in --disk given more than once fills them in order. What is per drive is the image, its size and its write protection; the block register, the status and the one buffer belong to the controller, which is the same division real hardware makes. A drive that is not there is refused rather than wrapped, because wrapping means a program asking for a drive this machine has not got quietly reading the one it has - the same shape of fault as taking a bank number somebody else was using. An EMPTY drive is a different thing and is selectable: a controller has its drives whether or not there are disks in them, and reading one fails with the error bit the way an empty drive should. Changing drives finishes whatever the one being left was in the middle of. A transfer waits for the clock, so one may be owed at any moment, and running it against the disk that is arriving would be a fault with no owner. Also stops parseOptions setting its defaults field by field. It was nine assignments beside a struct, and a list beside a thing drifts from the thing: adding two fields left them holding whatever was on the stack, so a machine given one disk was told it already had four drives. It is one zeroing now, and a default that is not nought can be written under it where it reads as the exception. That struct growing a field once before left Voyager linked against an object that disagreed about its size. Nothing in CosmOS uses any of this yet. The mount record is next. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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bcd42e75ca |
Scroll the screen sideways, and by less than a cell
The screen could move one way, a cell at a time. Three registers were missing and this adds them: a column origin so the map can be wider than the screen as well as taller, and a pixel remainder for each axis so the step can be one pixel rather than eight. 0x36 Scroll column, in cells, wrapping at 128 0x37 Fine X, 0 to 7 pixels 0x38 Fine Y, 0 to 7 pixels FINE DOES NOT CARRY INTO COARSE. Writing 8 to a fine register writes 0, because only its low three bits mean anything. The alternative was for a write of 8 to step the coarse register, and it was rejected for one reason: a program that scrolls has to know where it has got to, and if the hardware carries then the only way to find out is to read the register back. Keeping them apart means the program already knows, because it did the arithmetic itself. It is also what the machines this one is pretending to be did. The renderer now draws one more row and one more column than fit and clips them, because with a fine offset the screen no longer begins on a cell boundary and the cells at two edges are partly off it. videoPutCell follows the column origin as it has always followed the row - a caller means a cell of the SCREEN, and the screen is a window onto the map. The fine offsets are deliberately not applied there: they move the finished picture by less than a cell, and there is no such thing as less than a cell to write into. So a program may scroll to any pixel without the console's idea of where row three, column five is moving underneath it. Grid now scrolls diagonally, a pixel a frame, in four port writes and two carries. It moved eight pixels every fourth frame before, which reads as the picture jumping rather than travelling. Seven checks, each one the same program with one register changed, so what is compared is where the picture stopped. Breaking fine X, fine Y, the column origin, the three-bit mask, or the console's use of the origin each fails exactly one of them. Grid's own two checks had to be rewritten, and the reason is worth keeping: they asked whether pixel 4 was a grid line, which was really a check that the scroll happened to be at a cell boundary. A picture that moves a pixel a frame can only be asked things that are true at every offset - that it repeats every eight pixels, and that one band of eight rows holds different colours from the next. Also repairs docs.sh, which found the minimal CosmOS application by taking the first asm block in the README. Documenting a program with an example above it made that a different block, and the check complained that the minimal application had no #Base about something that never claimed to be one. It looks under System Services now. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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0e0731e2b1 |
Put the cursor home when the screen is cleared
A screen with nothing on it and a cursor half way down it is not a cleared screen: the next thing written lands where the last thing happened to leave off, at a position whose meaning was just erased. The shell's clear did exactly that, and left the next line one row below wherever it had been. Both halves were missing. consoleClearScreen blanks the cells and does not touch cursorRow or cursorColumn, and 2J on a terminal empties the screen without moving anything - H is what puts the cursor at the top. Life and Snake never showed this because they follow their clear with an explicit 1;1H of their own. They were working around it, which is why the bug survived until a command cleared the screen and then let somebody type. The attribute is deliberately not reset. Clearing is about what is on the screen rather than how the next thing will be drawn, and a program that chose a colour and then cleared still wants that colour - which is what a terminal does too. Two checks in video.sh, and they took two goes to make independent. The first pointed at the row where the letter lands when the cursor is NOT homed, so removing the clear and removing the homing failed the same pair and neither said which. The second now looks at a row nothing writes to either way - and at a letter whose ink actually reaches the pixel it reads, which "two" did not, so it passed on a screen that had never been cleared. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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85329f13c3 |
Take a device's line down when its status port is read
A device raises a line and something has to take it down. Two things did: being interrupted, and being woken from WAIT with the Interrupt Flag down - the second because a masked program has nowhere to dispatch to, so nobody else would. There was a third way to learn a device had finished and nothing answered it. The documented idiom reads the status, branches out if the device is already done, and only WAITs otherwise; on a disk quick enough to finish before the first look, which is every disk here, the WAIT is unreachable. The line then stood for the rest of the machine's life. The program that leaves it standing never pays for it - it was masked throughout. The bill arrives at whoever next sets the Interrupt Flag. The boot chain reads the disk to load a program, leaves the line up, and hands over; the loaded program is then interrupted on behalf of a read that finished before it existed, through a vector table with no entry for a device it never touched, and faults on the instruction after its SIF. Found by running Examples/tune.asm through Once. It set up its whole sound and died four bytes before its first note, which is why it was silent rather than wrong - and why it looked like a sound bug for a while. So reading the port that answers a device takes its line down, the same way taking the byte already took the console's down. Disk and screen do it on their status port. And a reset now clears every line, which is the sentence the manual already makes about the vector table: a handler left behind aims an interrupt into a program that is no longer running, and so does a line. testPrograms/diskLineTest.asm pins it - the racy idiom, then SIF with no handler installed anywhere. It faults without the fix. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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62a657f1a7 |
Give Voyager a speaker
The device already made the samples; this takes them out of its ring and hands them to Raylib, a sub-buffer at a time. Nothing here decides what a sound is, the same as nothing in presentFrame decides what the screen looks like - which is why the headless binary and this one make the same sound, and why the suite can check a device with no speaker in it. Asked for rather than assumed: a host with no audio device still gets a window, because a machine worth looking at should not need one to start. When the ring runs short the missing samples are filled by holding the last one rather than by zeroes. It is still a glitch; a jump to silence and back is a click, and a held level is not. Also removes a comment that had been left in twice above the frame loop. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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d388cd3122 |
Give the machine a sound device
Four channels on ports 0x40 to 0x4F, each one a whole soundThing voice:
two oscillators, two envelopes, a filter and the routing between them. A
channel keeps its patch between notes, so a program sets an instrument up
once and then plays it.
Six ports rather than forty, because a voice has around forty settings and
four of them would spend more than half the port space on one device.
There is a selector and a value instead: say which channel, say which
setting, write it. That is three writes to change a setting and two to
play a note, which is the right way round - patches are loaded, notes are
played in an inner loop.
Samples come from the machine's clock and not the host's: 48,000 a second
of emulated time, worked out in whole numbers so it never drifts. A
million cycles is exactly 48,000 samples on any host at any speed, which
is what makes a sound something a test can compare. --sound writes them
out, the way --screen writes a picture, for the same reason: the suite has
no speaker.
Tests/sound.sh is 22 checks and found three real defects the first time it
ran, all the same shape - a synthesizer written for a patch editor, wired
up as hardware and inheriting the editor's assumptions:
- Only one voice had an oscillator switched on, so three of the four
channels could not make a sound whatever was written to them.
- That voice's oscillator arrived at full gain and every other one
arrived at nothing, an asymmetry with no reason behind it.
- A note with no sustain is silent but not over, so the obvious way to
wait for a sound to finish waits for ever.
The first two are fixed by the device defining its own power-on state
rather than inheriting synthInit's: every channel arrives able to make a
sound, so writing a note number is the whole of playing a note. The third
was already written into the manual as advice, an hour before the check
existed. The check disagreed with the documentation and the check was
right; the manual now says the one rule, which is that a note sounds until
the gate is dropped.
Programs/Examples/tune.asm plays eight notes, taking its tempo from the
screen's frame interrupt because that is the only regular beat this
machine has. It spends 99.8% of its cycles asleep in WAIT.
Voyager has no speaker yet - this is the device and its tests. Playing the
samples out of the window is the next commit.
Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW
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b0d06aa6e5 |
Make the vendored synth plain ASCII
soundThing's comments use em dashes and an arrow, and this repository is plain ASCII throughout because the tooling around it does not do Unicode. Tests/docs.sh caught it the first time it ran against the new file, which is what that check is for. Comments only; nothing the compiler sees has changed. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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f58b0f93af |
Vendor the voice engine, with the level it always had and could not say
soundThing's synth.c and synth.h, and nothing else of it: the voice engine pulls in maths, stdlib, stdint and stdio and knows nothing about Raylib, MIDI, patches or the interface, which is what made it liftable. Copied rather than submoduled - two files against tying this build to another repository's history is not a close call - so the header carries the whole of the difference and is meant to stay current. A VOICE'S LEVEL IS A ROUTING NOW. Envelope 0 was multiplied into the output unconditionally, so routing it to a filter or an oscillator meant it shaped the volume as well whether that was wanted or not, which is most of the trouble with making percussion. There was no flag to turn that off and there never had been: Envelope is the only one of the four modulating things without an active flag, where LFO, Filter and Oscillator all have one. It could not take the filter's shape either. filterTick returning its input unchanged is the right nothing-happens answer, but an envelope returning a constant would be useless as a mod source - and being a mod source while NOT being the volume is exactly the thing wanted. So the voice names the source that shapes its level, the way every other destination names its source, and MOD_SOURCE_NONE means nothing shapes it. Two things fall out that were not possible before: envelope 1 shaping the volume, and an LFO doing it, which is tremolo. Envelope 0 still decides how long a voice lasts, because it still ticks. A voice with its level unrouted will therefore cut rather than fade when the envelope reaches idle - fine or wanted for percussion, a click if the oscillators are loud at that moment, and a one line change to end on note-off instead if it turns out to matter. NOISE COMES FROM A SEEDED GENERATOR, one to each thing that makes it. rand() is global state shared with the whole process and varies between C libraries, so the same program sounded different on different machines and no recorded result could have meant anything. One generator each rather than one shared, because two noise sources drawing the same stream are not two noise sources. Checked rather than assumed: two synths from the same start produce identical samples, and 4,617 of 4,800 of them are non-zero, so it is noise and not silence. AND A CHANNEL IS THE CHANNEL YOU ASKED FOR. synthNoteOn hunts for a free voice and steals round-robin, which is what a keyboard wants and what the standalone synthesizer still does. Channel two is channel two. Both old calls are untouched. Nothing links it yet. It compiles clean and standalone under -std=c11 -pedantic, which is what make strict already checks, and the 169 tests are unmoved because nothing calls it. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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33afc20abc |
Give the memory controller to a bus rather than to the machine
The third and largest piece of the peripheral core, and like the two before it nothing changes: 169 tests, and the two that would notice a misroute pass loudest of all. A CONTROLLER IS THE MOST STATEFUL THING ON THIS MACHINE - a source bank and address, a destination, a length, five guard registers and a table describing every bank it can reach. Two processors sharing one would interleave into nonsense: one sets a source, the other sets a destination, the first issues a blit and moves the wrong bytes somewhere else again. No arbitration fixes that, because there is nothing to arbitrate - both writes were legal and the result belongs to neither of them. So it is a struct threaded through all seventeen functions that touch it, rather than a pointer to a current one set on the way in. The smaller change was tempting and is the shape that produced the stale reset flag and the editor's IsNew surviving a second run, both this week: state that has to be set on the right path before anything reads it. A controller is where that goes wrong quietly rather than loudly. THE STATICS WERE DELETED RATHER THAN LEFT, which is what made this safe to do mechanically. A missed reference is a compile error rather than a variable that still exists and serves the wrong core, so "did I catch all 165?" stopped being a judgement and became a question the compiler answered. Two things the transformation nearly got wrong, both caught by reading rather than by building. guardStart and guardEnd are fields of Bank as well as registers of the controller, so banks[n].guardStart had to keep its name while a bare guardStart changed - the difference between a fence and the register about to be written into one. And a definition and a call look alike enough that the first attempt turned publishBank(number) into publishBank(Controller *c, number); definitions start at column zero here and calls never do. Tests/agree.sh is what says this is right, more than the count does. It builds the same disk with SplitDisk and with CosmOS and compares byte for byte, and every filesystem operation on the machine goes through the controller - so a blit that went to the wrong place would corrupt a disk that is checked against one built by different code entirely. Tests/cycles.sh covers the other half, since what a transfer costs depends on pendingCycles landing in the right one. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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5be5bea994 |
Make the interrupt lines belong to a bus rather than to the machine
The second piece of the peripheral core, and like the first it changes nothing: one array of bits became a struct, and the machine's own devices reach it through wrappers because every one of them really is on this bus. IT WAS ONE ARRAY INDEXED BY PORT FOR THE WHOLE MACHINE. With two processors that is not a tidiness problem, it is each of them seeing the other's lines: a disk finishing would interrupt a sound core, a sound core's tick would interrupt the shell, and both would arrive at a handler installed for something else entirely. Hardware vectors are per port, so the numbers would even look plausible on the way in. Unlike the shift register, which was harmless until there was a second core to share it with, this one was always going to be wrong the moment there was one. Still to come on this rung: a controller each, since it holds the source, the destination, the length and five guard registers, and two cores setting those between each other's instructions would interleave into nonsense. Then the interleaving rule, which belongs in the manual as machine behaviour rather than as something the emulator happens to do. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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dae3455da0 |
Give the CPU a bus, so that there can be more than one
The first piece of the peripheral core, and it changes no behaviour: the machine still has exactly one processor, and every one of the 169 tests still passes. What changes is that the code has stopped assuming so. FIVE THINGS A CPU ASKS OF THE WORLD OUTSIDE ITSELF, and every one of them was a call to a function there was exactly one of: the port handlers, what the controller spent moving memory, what was spent stopped waiting on a device, and the two that work the interrupt lines. Fine for a machine with one processor and wrong for a machine with two, because A PERIPHERAL CORE'S BUS IS ITS OWN - it sees the devices its own device gives it, raises its own lines, and stalls on its own controller, none of which are the host's. They are gathered into a Bus that the CPU holds a pointer to, rather than threaded through as a bus number, because a bus is something a device PROVIDES. A device that provides one should hand over the answers rather than be looked up by an index somebody else has to keep right. initializeCPU puts the machine's own there, which is what every processor was on when there could only be one, so nothing at any call site moved. And shiftRegister is a local now. It always was one in effect - written and read inside a single instruction and never carried to the next - but it sat at file scope, where a second processor would have shared it. Two cores taking each other's shift halfway through an SHL is a poor thing to discover later, and it cost two braces to make impossible. Still to come on this rung: the interrupt bitmap, which is one file-scope array indexed by port for the whole machine; a controller each; and the interleaving rule, which has to be written into the manual as machine behaviour rather than left as something the emulator does. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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f2e26c1852 |
Stop a pending reset outliving the reset it belonged to
Reset out of picture.bin and CosmOS booted and then halted at once, having been told there was nobody at the keyboard. The button set two things: the machine's reset request, and a flag of the window's own that said "end the next console read, so a machine blocked on a key can get to the point where it notices". The second was only cleared when the console actually asked - and picture.bin never asks. It draws and halts. So the flag survived the restart and answered the NEXT machine's first read with the end of input, which for CosmOS means stop. There is one fact and it now lives in one place. The window asks whether a reset is still waiting rather than remembering that it asked for one, so the read ends only while a restart is genuinely on its way and goes back to normal the moment it has happened. The local flag is gone. Two pieces of state meaning one thing, one of them cleared on a path the other did not need - which is the same shape as the console's line editing flag surviving a second run, a fortnight ago. Worth noticing twice. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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adefce975b |
Let the reset button reach a machine that has stopped
The gesture rebooted CosmOS and could not reboot picture.bin, which is the case it was added for. picture.asm ends in HALT, and a halted machine runs no instructions - so nothing ever reached the code that notices a reset, because a reset is noticed BETWEEN INSTRUCTIONS and there are none. It only ever worked because CosmOS was still going. Which is backwards: a machine that is not going anywhere is exactly the one worth restarting, and it is the one that cannot hear a request by itself. The restart is lifted out of the run loop into machineTakeReset, and the window asks every frame whether the machine is running or not. NAMED AS EMULATOR MAGIC, because it is. There is no reset line on this machine and no keyboard controller to assert one; the window reaches in and sets the same flag the machine port sets. When those are designed, a keyboard controller will have to see the gesture and pull reset regardless of what the CPU is doing - which is the property that matters and the one a port write can never have, since a port write needs a program willing and able to make it. The shape of that is already visible here: asking every frame rather than leaving it to the machine to notice is what a line does. A restart now clears the cycle limit as well, since a machine stopped for reaching one is another thing somebody would press the button over. The three existing reset tests still pass, and they are the ones that matter: they exercise the same restart through the machine port. What no test reaches is the gesture itself, which exists only when there is a window. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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8c6ed62044 |
Reset on a gesture the host has no opinion about
Control, Shift and R. It was Control, Alt and Delete, which brings up a shutdown prompt rather than reaching the machine - and no amount of asking will change that. IT IS A SECURE ATTENTION KEY. Every serious operating system reserves it so that it always reaches the system and never an application, precisely so a program cannot imitate a login screen. On Windows an application cannot see it without a kernel driver; on Linux the desktop takes it. That is not an oversight to work around, it is the same guarantee a reset button wants being enforced one layer further down, and there is no call this program could make that would win the argument. It is unavailable for exactly the reason it seemed right. So the requirement list grew a third item that was not obvious until it bit: the gesture has to be one the host has no opinion about. Control and Shift with a letter is about as free as a combination gets - not window management, not a virtual terminal switch, and not a shortcut any desktop claims by default. It keeps the other two properties: plain F12 and plain Delete stay free for software, and three keys are not pressed by accident. If some platform does send a character for it, nothing comes of that either. Whatever arrives is in memory that is about to be thrown away. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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0afead00de |
Make the reset a gesture rather than a key
Control, Alt and Delete, which was F12. Two reasons, and the first one is about hardware rather than about the emulator. ON REAL HARDWARE THIS IS NOT A KEY AT ALL. A Voyager has a button on the case, and what a window has instead of a case is a gesture standing in for one. So it must not be a key software might want - a machine with a keyboard has function keys on it and something will eventually have a use for F12, which would have meant taking it away again later, from programs already written to expect it. And it must not be reachable by accident. Restarting throws away everything in memory, which is the same data loss Escape was one keypress from causing, arriving by a different door. Three keys together are not pressed by mistake. It has meant this since 1981, so it is also the one gesture nobody has to be told the meaning of - and Delete stays free for software, since the gesture is all three or nothing. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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f7657081be |
Put a reset button on the case, and stop Escape closing the window
ESCAPE WAS A BUG I LEFT. This machine sends Escape to the console like any other key, and Raylib closes a window on Escape unless it is told not to - so a program reading keys could be ended by one of them, taking whatever was in memory with it. SetExitKey(KEY_NULL), and it is a byte again. F12 is the reset button. A button on the case rather than a key the machine can see: nothing sends a function key to the console, so nothing can be surprised by one. It does what writing MACHINE_RESET does, which is that the machine starts the way it started - the boot chain runs again and finds whatever the disk now says to run. Which is what makes a bare metal program escapable. Once puts a demo in front of the next start and deletes the request before jumping, so a demo that has taken the whole machine is one keypress from the system coming back, instead of closing the window and opening it again. IT HAD TO REACH A MACHINE THAT IS WAITING, and that took two more things. A reset is acted on between instructions, and a machine blocked on a key is part way through one - so the button would have set a flag that nothing ever came along to notice, in exactly the situation a reset button is for. The wait ends now: the console is told its input is over, which it is for a machine about to stop existing. And the reset puts the console's input back - nothing pushed back, no line half gathered, and not at the end of input. That was already wrong before the button existed: a reset after the input ran out left a console that had run out afterwards, so a machine could be restarted once and then never typed at again. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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13b20c8834 |
Give the screen a bitmap mode
V4. Mode 2 is 320 by 200 with a byte a pixel: no tile to look up and no attribute to add, the byte IS the palette index. Programs/Examples/picture.asm fills a whole one in 127 bytes of program and 47,498 cycles. IT IS THE SAME MEMORY AS THE TILES AND THE MAP, which is what shared video memory has always been, and there is nowhere else it could be - 64,000 bytes of picture in a 65,536 byte bank leaves room for nothing beside it. Going to bitmap mode does not clear the text screen, it stops calling it one, and coming back finds the tiles holding whatever the picture put there. Taking the screen means taking it. The palette moves to 0xFC00, the top of video memory, because it is the one thing that has to mean the same in every mode and 64,000 bytes of picture leaves nowhere in the middle for it to hide. That is a documented address, so the example, the tests and the manual move with it. A BITMAP HAS NO COLUMNS AND NO ROWS, and both registers read zero rather than a leftover from the last mode. The console asks: told there is no character screen, it has nowhere to put a glyph and draws nothing, while still saying everything down the serial line. The honest alternative is what a machine with shared video memory really does, which is scribble marks nobody can read across somebody's picture - honest and useless, since a program that has taken the screen has not stopped wanting to print. Six checks in Tests/video.sh, to 55: that the mode is 320 by 200, that a byte is one pixel's colour and only that pixel, that printing leaves a picture alone while the letter still goes out, and that the columns register says nought and then forty again. The example is worth reading for one thing beyond the mode: Fill leaves its destination past what it touched, so two hundred rows are drawn from one address set once. Working out where row n begins would be n times 320, and this machine has no multiply. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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1174bd9af5 |
Give the machine a frame to wait for
V3. The screen interrupts at each frame on hardware vector 0x30, and WAIT finally has something worth sleeping on. THERE WAS NO CLOCK. Every program that wanted to happen at a certain speed counted instructions and hoped, which is why Snake's pause silently halved the day a cycle stopped being an instruction and became a memory access - the program was right and the thing it was counting changed underneath it. A screen finishing sixty times a second is a real beat, and it is counted in the MACHINE'S cycles rather than the host's, so the same program sees the same number of frames in the same number of cycles however fast anything really ran. That is what makes a frame something a test can count and a recorded result can hold. Status bit 0 goes up when a frame has gone by and reading the status port puts it down, so a program with no handler can watch for it instead. Control bit 0 asks to be interrupted, and is OFF when the machine starts: an interrupt with nothing installed to catch it is a fault, so a screen that began interrupting the moment it was switched on would take down every program written before frames existed. More than one frame can pass between two looks, and the flag and the line are each one thing, so several still mean one of each. A missed frame is missed. Programs/Examples/frames.asm prints a dot a frame for a second: 1,000,324 cycles, and 996,460 of them spent asleep. That split is the thing worth seeing - a program that polled instead would print the same sixty dots, take the same second, and spend every cycle of it on the bus. Its header explains why waiting is not spinning and why a machine with a beat can stop guessing at one. Six checks in Tests/video.sh, and two of them are about the clock rather than the output, because the output cannot tell the difference. That the machine slept through nearly all of ten frames, and that polling three frames actually took three frames - a status flag that stayed up once set would print exactly the same character and look perfectly correct. Breaking the frame interrupt on purpose left a machine asleep for ever and hung the whole suite, which is a worse way to be told than a failing check. Tests/video.sh bounds its runs at ten seconds now, the way Tests/run.sh always has. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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0852666e73 |
Mirror the source tree onto the system disk
A list of files in a makefile goes stale the moment somebody adds a program and forgets to name it, and what they forgot is invisible until they go looking for it on the machine. So SplitDisk gained a mirror command and the disk rule is one line: putting a file where the others live is now the whole of putting it on the disk. EVERY FILE GOES THROUGH put AND EVERY DIRECTORY THROUGH mkdir. That is the point of it - mirror adds a walk and no filesystem code at all, so anything the format refuses here it refuses everywhere, in the same words. What is new is the walk, and the walk is what the six checks in Tests/disk.sh are about: that it goes all the way down, that it leaves dotfiles and named directories behind, and that a name too long stops it. REFUSED RATHER THAN SKIPPED, because a disk quietly missing a file is the exact failure a mirror exists to prevent. Which meant four sources had to be renamed - a directory entry holds 22 characters and they were 23, 23, 24 and 29: 16bitSegmentedSieve.asm -> 16bitSieve.asm 16bitSegmentedSieveModern.asm -> 16bitSieveModern.asm consoleInterruptTest.asm -> consoleInterrupt.asm controllerWriteTest.asm -> controllerWrite.asm The test names in the manifest are unchanged, since those are identifiers and every recorded result is filed under them. Only where the source lives has moved. The entries are sorted before anything is written. readdir hands them back in whatever order the host filesystem feels like, and a disk image that comes out different from one run to the next is an image no test could compare against another. The disk grew from one megabyte to four and from 192 directory entries to 1,024. The sources are 2,850 blocks and the mirror filled the old directory on its first run, which is a thing that should not need thinking about again. The Tests fixture disk is deliberately NOT mirrored. It is a controlled fixture with known contents, and the shipped disk is the one meant to be useful; they want different things. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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ff4b025058 |
Make the cursor blink while the machine is waiting, and show how the palette works
THE CURSOR DID NOT BLINK, and the reason is worth stating: it blinks on the machine's clock, and the machine's clock had stopped. A console waiting on a key stops the CPU, so no cycles passed, so the phase never moved - and the one moment somebody is looking at a cursor is the moment they are being asked to type. Waiting is now charged as IDLE CYCLES, which is what they were built for: a machine stopped on a device is not using memory, the same distinction WAIT makes, arrived at from the other direction. And the devices are told as it happens rather than when the instruction finally finishes, because a display controller does not stop blinking because the processor is waiting on a keyboard, any more than a disk stops turning. A keyboard file can now say NOTHING happened. A zero is a byte no keyboard sends, so it is free to mean "a moment went by with nobody typing" - which is the commonest thing behind a window and the only thing a file otherwise could not express. That unlocked the whole waiting path: three checks that the cursor is lit, then dark half a second later, then lit again, which is what blinking is. And Programs/Examples/colours.asm, because the palette had nowhere a newcomer could read it. It prints the sixteen pairs, prints each one again turned inside out, and then CHANGES ONE by writing three bytes into the palette - so the difference between using the colours a machine wakes up with and choosing your own is visible in one program. Its header explains what a cell is, what the attribute nibble does, why palette entries are four bytes rather than three, and why video memory has to be reached through the controller. The manual now says where the palette lives and points at it. SplitLint found a redundant RSTA in the example, which was worth acting on rather than suppressing: the zero was already in A from the mode write two lines up, and saying so in a comment teaches that SETD does not touch A, which is a thing worth knowing. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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d6feddd1b6 |
Give the console colour and a cursor
COLOUR COSTS A NIBBLE AND NO HARDWARE. A glyph is drawn in palette indices 0 and 1, paper and ink, and a cell's attribute nibble adds sixteen to both - so sixteen banks is already sixteen ink and paper pairs, and all that was missing was a register saying which one the console draws in. That is port 0x06, read as well as written like the rest. The palette a machine wakes up with is arranged so that HIGHLIGHTING IS ONE BIT: banks 0 to 7 are colours on black, banks 8 to 15 are the same colours as paper with black ink. So attribute XOR 8 turns any pair inside out. That is a convention rather than a rule of the machine - the device only ever adds the nibble and looks the answer up - but it is the convention that makes a highlighted line and a cursor free. Bank 0 is still grey on black, so nothing that was written before this has changed colour. THE CURSOR IS THE SAME BIT AGAIN. It is drawn by turning its cell inside out rather than by putting a block over it, so the character underneath stays readable, which matters to somebody editing a line. The device draws it rather than the window, because on a machine with a screen a cursor is a hardware feature - one drawn by the presenter would not be in a picture the machine saved. It blinks on the machine's own clock, half a second each way, so the phase is a pure function of the cycle count and a screen saved at a given cycle is the same screen every time. A blink on the host's clock would have made every saved picture a matter of luck. Off unless asked for, with bit 2 of the control port. That is right for a machine - a program painting its own screen does not want something blinking in the middle of it - and CosmOS asks for one at boot. It also asks again when it takes the console back from a program that has stopped, because a program handing key mode back the way it was told to writes zero, which turns the cursor off. The shell owns the prompt, so the shell is what makes sure there is something blinking at it. Nine more checks in Tests/video.sh, to 41: that the attribute colours the ink and not the paper, that XOR 8 turns both, that it reads back, that a cursor appears where the registers put it and only when asked for, and that it goes dark again half a million cycles later. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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978aec4809 |
Let the console edit a line, and let a file be a keyboard
BACKSPACE REACHED THE SHELL. A terminal in line mode does not hand a program every keystroke: it collects a line, rubs out a backspace, and delivers the finished thing at Return. CosmOS has always relied on that, and behind a window there is no terminal to do it, so the raw 0x08 went into the command buffer. Correcting a typo produced a line that looked perfectly right on the screen and matched no command at all - "I do not know: help". So the console does it, because behind a window the console IS the terminal. In key mode it does not, and must not: a program in key mode asked for every keystroke as it happens. CosmOS now asks for eighty columns at boot. Its own help text is seventy-four characters wide, and dir, the monitor and the assembler's messages all assume room. The machine still wakes up in the smaller mode, which is right for a machine - it is the system that knows what shape of screen its own output needs, and a game that wants forty columns says so. AND A FILE CAN BE A KEYBOARD, which is the part that matters beyond today. The console behind a window is not the console behind a terminal, and until now the difference was unreachable: it broke twice in two days and a person typing found it both times. --keyboard installs the same hook a window does, so the same path runs, and the manifest has a column for it. cosmosTyped types "halp", backs over it, arrives at "help", and requires the help to come out. Verified by removing the rub-out, which loses the whole help text. It does not test the window. Voyager's key queue and everything about presenting frames are still out of reach. It tests the console, which is where the logic is. Along the way: VOY_OBJS was missing from the dependency include, so voyager.o never rebuilt when a header changed. EmulatorOptions grew a field, Voyager kept an object that disagreed about the size of the struct, and smashed its stack on every run. A clean build hides it and 'make sanitize' cleans first, so that would never have found it either. Tests/voyager.sh did, by failing all 115 tests that start the machine - which is the differential test earning its keep on a bug that has nothing to do with what it was built to check. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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310804e267 |
Give Snake back the speed its comment promised, and present in step with the display
Two things, one certain and one likely. THE CERTAIN ONE IS NOT THE WINDOW'S FAULT. Snake's pause loop said "at the emulated rate this is about an eighth of a second", and it was, when a cycle was one instruction. A cycle became one memory access, every loop in the machine got dearer, and this one silently doubled: the game has been running at half the speed it documents ever since, in a terminal as much as in a window. Measured rather than guessed - the inner loop is a DECA and a BNA, one byte and three, so four cycles a turn, and a whole run went from 3,848,610 cycles to 1,920,504 when the outer count came down from 256 to 122. Almost exactly half, which is what the arithmetic said it would be. That is the cost model change reaching a program nobody thought to re-measure. Worth looking for others: any loop tuned by eye before that change is running at half its intended speed. THE LIKELY ONE is the frame limiter. Without the vsync hint, Raylib sleeps towards sixty frames a second on its own clock, which beats against a display refreshing on its own - frames shown twice or skipped, and the machine handed an uneven number of cycles each time, since it takes its budget from the wall clock. The hint puts presentation in step with the screen. SetTargetFPS stays for a driver that ignores it. Snake is one byte bigger, because RSTB became INIB. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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43a05b3df1 |
Replace the escape parser with cursor registers
The console had grown an ANSI parser, and that was the wrong shape. ANSI exists because a screen used to be on the other end of a serial line and a byte stream was the only channel there was. This screen is memory the program can already address, so reaching it by sending characters for a state machine to take apart is a middleman for something the machine does better - and it meant accepting an open protocol somebody else defines, in hardware, with no natural end to it. Everything else on this machine is registers. So the console gets three: cursor row at 0x03, cursor column at 0x04, and a command port at 0x05 where 1 clears the screen. Both cursor registers are READ as well as written, which is the thing an escape cannot do without sending a query and parsing a reply - a routine that wants to put the cursor back where it found it can now ask. Clearing is one command against a thousand cells walked one at a time. Snake and Life are smaller for it: 2,168 bytes to 2,163 and 1,410 to 1,396. A HOST TERMINAL STILL SPEAKS ANSI, and bridging to the host is the emulator's job, the same job it does reading standard input. So the escapes are now GENERATED, outbound, for the set this device chooses, rather than parsed inbound as though the machine were a terminal. The set cannot grow behind our backs because we are the ones saying it. The cursor is announced lazily, at the next character rather than at the register write, so setting a row and a column costs one sequence rather than two. The console's block widens from three ports to six, which registryTest noticed: it had been asking about port 0x05 precisely BECAUSE nothing was there, and the console had just moved in. Re-blessing it would have left it checking nothing, so it asks about 0x80 instead - clear of the console, the disk, the screen, the controller, and the sound device coming to 0x40. Six checks in Tests/video.sh swapped from the sequences to the registers, including that the cursor reads back and that one sent past the edge is clamped rather than refusing. Those checks also stopped counting bytes from the ends of a file, which had quietly started measuring an escape the moment the console began announcing the cursor. SplitLint caught the one thing worth catching in the port: the clear command leaves A at 1 and key mode is also 1, so the second load looks redundant. Acting on it would tie a console command to a console mode by coincidence, and break silently if either ever moved, so it is suppressed with that reason rather than removed. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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bdb2d0d8e6 |
Keep a key until it is asked for
Input worked at the shell and not in Snake, and that split is the whole diagnosis: the shell blocks on a read, Snake polls the READY bit. Only the polling path was broken. RAYLIB CLEARS ITS CHARACTER QUEUE ON EVERY POLL, and a poll happens inside EndDrawing, so a key survives exactly one frame unless something takes it in that frame. The window presents sixty times a second and Snake looks about ten, so five keys in six were thrown away by the next present before the game ever glanced at them. A blocking read presented and then looked immediately, which is why the shell never noticed. The window now keeps its own queue, drained from Raylib at every present and emptied only when the console actually takes a byte. That is what this machine already promises about its console, and Snake's own comment is the specification: "the console keeps the next key until it is asked for, so a key pressed while the snake was moving is still there next frame". The hook was not honouring it. Asking the queue first also makes the two questions the same question. A poll takes whatever is waiting and returns at once, and a blocking read takes whatever is waiting, then presents a frame and looks again - so neither path can see a key the other would have missed. The queue drops its oldest when it fills, so somebody leaning on the keyboard while a program ignores it cannot push out what they typed most recently. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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556a14b288 |
Teach the console the sequences the corpus already speaks, and let the status port see the window
Three things Snake found the moment somebody ran it in a window, and all three are the same kind of mistake: the console grew a screen and kept asking the terminal. IT COULD NOT CLEAR THE SCREEN. Every program here that moves a cursor does it with ANSI escapes, because until there was a screen the thing on the other end was somebody's terminal. The controller drew "[2J" as three letters and left the board underneath. It now parses them, which is what a video terminal did - a VT100 is exactly this. The whole corpus uses two, ESC[2J and ESC[H, and the general shape is recognised so anything else is swallowed rather than drawn: a sequence nobody implemented should leave no marks. Cursor positioning is in too, since it is the same parse and one line more. IT DID NOT SEE KEYS FROM THE WINDOW, but did when the terminal behind it was focused, which is the whole diagnosis in one sentence. Snake polls the READY bit and never blocks, and consoleFetch - what the status port asks - was polling standard input regardless of whether a front end had installed a hook. So a window's keys were invisible to every program that looks before it reads, and a keystroke aimed at the terminal would be picked up instead. The hook now takes a question. Zero is the status port looking, and must not present or sleep: a program polling in a loop would otherwise be charged a frame for every glance. One is the data port blocking, where presenting is exactly right, because a machine waiting for a key is still a machine somebody is looking at. One value for both would have made either polling ruinous or waiting dead. AND IT RAN SLOWLY, which was the same bug wearing a hat: a game that never receives a steering key is a game that only ever goes one way. Six more checks in Tests/video.sh, to 32: that ESC[2J clears, that ESC[H goes to the corner without disturbing what is drawn, that ESC[3;5H counts rows and columns from one, and that an unknown sequence is swallowed and leaves nothing behind. The hook itself is still the one thing here the suite cannot reach - it exists only when there is a window, and this host has no display. It was found by a person playing Snake, which is where the Test Manual says these go on being found. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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6f8ad42277 |
Fill the window, let it be resized, and make black black
Three things a person looking at a real screen found in five minutes, none of which the headless tests could have seen. THE PICTURE FILLED A QUARTER OF THE WINDOW. The window opened at the largest screen the device can make, doubled, and then drew a 320 by 200 mode at that same doubling - so three quarters of it was bezel. It now takes the largest whole-number scale that fits: the two modes are exactly a factor of two apart and the window opens at twice the larger, so both fill it exactly, at four and at two. Changing mode changes how sharp the screen is rather than how big it is. Whole numbers on purpose. A 320 by 200 picture stretched by 2.7 has some rows twice as tall as their neighbours, which on eight pixel glyphs is the difference between text and mush. THE WINDOW WOULD NOT RESIZE. It does now, and the picture rescales to whatever it becomes, still in whole pixels and still centred. How big somebody wants a screen is not the machine's business. AND BLACK WAS NOT BLACK. Both the paper and the bezel were tinted towards green, on the theory that a phosphor never was neutral. On a real screen that reads as a fault rather than as character: a background that is nearly black looks like a background that failed to be black. Paper is black now and ink is a neutral grey, because a default should be the unsurprising thing - anything with a point of view about colour is 254 palette entries away and belongs to a program. The bezel is a clearly lighter grey, so what is left over when the window's shape does not match the picture's looks like a bezel rather than like more screen. The two checks that name the waking colours name the new ones. That they had to change is the check working: they say what they depend on rather than assuming it. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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773b0f8add |
Put CosmOS on the screen without changing a line of it
The console is now a display controller as well as a port: it owns a font, keeps a cursor, handles newline, carriage return, backspace and wrapping, and scrolls. That is an ordinary kind of chip - it is what a video terminal's character generator did - and it is the reason this rung needed no changes to CosmOS at all. CosmOS already writes bytes to port 0x00. It writes to BOTH the screen and standard output, which is deliberate. A machine with a screen and a serial line is an ordinary machine, the emulator's standard output is that serial line, and one console drives both. It is also what keeps all 165 recorded results passing under Voyager, and what makes --screen work on the plain SplitBit: there is one console and it drives everything it has. Scrolling moves the video device's origin and no memory. The row arriving at the bottom is cleared because the map is a ring and it holds what was there 128 rows ago; the rows going off the top are not, and that is a hundred rows of scrollback nothing had to keep. The test reads the register back rather than looking at the screen, because a console blitting rows instead would look identical and cost twelve percent of a frame for every line printed. The font is vendored from Hatchet-GPU with a note saying where it came from, since that repository is not part of this one. 135 glyphs in ASCII order, which is the thing that makes it worth keeping - PETSCII's whole inconvenience was that its order was not ASCII's, so a machine using it needed a translation table in front of every string. Here the machine subtracts 32. It is stored one bit a pixel and expanded into tile memory at reset: 1,088 bytes against 16 kilobytes. Voyager gets a keyboard. A window has no standard input, and a machine blocking on it inside a frame would stop drawing and stop answering, so a front end with a window installs a hook that the console calls while it has nothing: it keeps the window alive and hands back a key. The hook has to tell "nobody has typed yet", which happens sixty times a second, apart from "the window has gone", which is the end of input - one value for both would have made the first keystroke look like a closed machine. In line mode the console echoes what it is given, because there is no terminal behind a window to do it and that was always the terminal's job. Tests/video.sh grew from 14 checks to 26, half of them about the console rather than the device: those programs ask the video device for nothing and write bytes to port 0x00 like every SplitBit program always has. Verified by breaking two things - removing the scroll failed exactly the two checks about scrolling, and removing the cursor advance failed exactly the three that depend on it. Two video checks had quietly depended on palette entry 0 being black, which stopped being true the moment a machine woke up able to show text. They now set what they are about to look at, and a new check pins the waking state itself. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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83623a3df3 |
Give the Voyager a screen
A tile engine on ports 0x30 to 0x3F, bringing one bank of video memory registered the way the disk's buffer is. The CPU writes cell indices and the device turns them into pixels, which is the whole reason a screen is affordable at a megahertz: a frame is 16,667 cycles, a full 320 by 200 picture is 64,000 bytes, and a 40 by 25 map is 2,000. A program that changes two cells writes four bytes. The cost of a screen becomes the number of cells that changed rather than the number of pixels on it. Which makes colour depth free, so the tiles are eight bits: an 8 by 8 cell is 64 pixels and each picks independently out of 256 colours, with no per-cell limit of the kind that made a Spectrum two and C64 multicolour four. The low nibble of a cell's attribute is ADDED to every index in its tile, sixteen at a time, so a tile drawn in 0 to 15 appears in any of sixteen schemes without a second copy in tile memory - and a tile wanting all 256 leaves the nibble at zero and gets them. Neither use costs the other anything. Two decisions are arithmetic rather than taste, and both come from the machine having no multiply. A map row is a page whether the mode fills it or not, so a cell address is the row number as the high byte and the doubled column as the low byte with no arithmetic at all; otherwise every cursor move on a 40 column screen would cost a row-times-40 in software. And a palette entry is four bytes rather than three, so entry n is at n times four, a shift. THE MAP IS A RING and the Scroll register says which of its 128 rows is on top. Scrolling moves a register and no memory: blitting a 40 by 25 screen up one line is 1,920 bytes inside one bank, which is twelve percent of a frame even with the controller widened, and a program printing one page would spend six frames shuffling memory. It is now one port write - and the rows that scrolled off are still there, which is where a terminal gets scrollback it never had. The device is part of the machine rather than part of the window. It renders into a buffer that is a pure function of video memory, so the same program draws the same picture with nobody watching; Voyager puts that buffer on the glass and decides nothing. Both binaries take --screen, which saves a PPM when the machine stops, and that is what makes a screen checkable on a host with no display at all. Tests/video.sh checks fourteen named behaviours rather than comparing a recorded image, because a recorded image would say "something changed" and leave which of the palette, the tile, the attribute, the map or the scroll register broke to be found by hand. Verified by breaking three things in turn: the additive nibble failed exactly one check, the scroll origin exactly two, and moving every cell one pixel sideways exactly the four about placement. Tests/docs.sh could not count past nine, which is how a suite of ten scripts reported itself as wrong for the wrong reason. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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e3ef25e3b3 |
Split the machine from its front end, and add Voyager
The Segan Voyager is the same SplitBit with a screen and a speaker instead of a terminal, and this is the rung that makes there be two of them at all. Everything that is actually the machine - the CPU, the controller, the devices, the run loop, the reporting - moves to machine.c, and each front end brings one file of its own. emulator.c is now sixty lines of argument handling and a three line loop. The machine runs in SLICES rather than to completion, because that is the cut a window needs: run a slice, present a frame, run another. A terminal runs slices until the machine stops. Both loops are three lines, which is why the cut is there rather than anywhere else. At this stage Voyager's window is empty. There is no video device yet and inventing a temporary way to draw would mean building something to throw away. PLAIN MAKE STILL WORKS WITH NO GRAPHICS LIBRARY. Raylib is probed by compiling and linking against it rather than by looking for a file, because a header with no library behind it passes a file check and then fails at link time. Where it is missing, make says so once and builds everything else - the machine, the assembler, the disk tool, the linter and the whole suite. A project about a small understandable CPU should not need OpenGL to run its tests. That nearly broke here: make strict globs Source/Emulator/*.c, so it would have tried to compile voyager.c and failed on precisely the machines the split exists to support, and this machine has Raylib so nothing would have caught it. Tests/voyager.sh runs the WHOLE MANIFEST through Voyager and holds it to the recorded results SplitBit is held to. Not that the two look alike: that one satisfies every recording the other does, byte for byte, exit status included. It reuses run.sh, which now takes the machine from SPLITBIT_EMULATOR, rather than keeping a second copy of the runner that would drift. Voyager not being built is not a failure - it says so and passes. Verified both ways. Made Voyager print one extra line, and 114 of 165 failed: exactly the tests that run the emulator, with the 51 assemble-only and xfail cases correctly untouched. Removed the binary, and the script skipped. Built with HAVE_RAYLIB=no, and everything else still built and checked clean. --headless is taken out of the arguments in voyager.c rather than in the shared parser, which should not learn about a window only one binary has. It exists so the suite can run this binary at all: a front end that could only be exercised by a person looking at it would be a front end nothing checks. loadFile takes a const char * now, which it always should have. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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4c3eac8d9c |
Widen the memory controller's path to sixteen bits
The controller now reaches bank memory two bytes at a time, so a transfer whose source, destination and length are all even moves two bytes a cycle between banks and one within a bank - twice what each was. A 256 byte block between banks falls from 257 cycles to 129. Alignment is required all three ways because a word is read at an even address and written at an even address; an odd anything would mean shifting bytes across word boundaries to line them up, which is a different design. A misaligned transfer falls back to the byte a cycle it cost before, so nothing already written got slower. THE CPU DOES NOT CHANGE. It still sees eight bits, a Data Pointer still addresses a byte, and no instruction means anything different. This is a peripheral getting faster, which is why it is worth doing now rather than after more is built on top of it. The rule is deliberately visible rather than smoothed over: aligning a buffer costs nothing and halves what moving it costs, and a cost a program cannot see is a cost it cannot avoid. Tests/cycles.sh is new, and is the test the Test Manual has always said this kind of change would need - run.sh strips the cycle count from every recorded result, so nothing else in the suite can see any of this. It pins the RATE rather than a total: each case runs twice from programs whose instructions are identical but for the byte written to the Command port, once asking for the transfer and once for GuardOff, which costs nothing beyond the port write. The difference is the transfer and nothing else. Verified by disabling the widening, which failed exactly the three aligned cases and left the five misaligned ones passing. The Programming Manual gains a section saying what a transfer costs, which it never said at all - it only promised a transfer does not wait, which is a different claim and could be read as promising it is free. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01E2JrLzFvuFX9fgi1LDRjrW |
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79727044b7 |
Reboot, and the machine device that makes it possible
Until now the only way to restart was to stop the emulator and run it again, which meant the one thing the machine could not do was the thing Once was written for. The loop now closes without leaving it: > Once /System/Boot/bare.bin next start: /System/Boot/bare.bin, once > Reboot starting again stage two just this once: /System/Boot/bare.bin bare metal: no system, just this Writing 1 to port 0x13 asks the machine to start over. A PORT RATHER THAN A SERVICE, because a reset has to work when the system does not: something only askable through SWI would be unavailable in exactly the case that wants it most, and a program that owns the whole machine has no system to ask. It is device class 0x04, in the range kept for the machine rather than among the peripherals, because it is not one - it is not attached to anything and cannot be unplugged. WHAT A RESET REPEATS IS HOW THE MACHINE STARTED. Named an image, the emulator places it again; named none, the ROM is shadowed again and reads the disk. Anything else would mean a reset changed what the machine IS, which is the one thing a reset must not do. Both are tested. Taken between instructions, because a device cannot restart the machine from inside the instruction that asked: the CPU is part way through a step and its state is not yet anything a reset could leave behind consistently. The disk stays attached and keeps everything written to it - that is what warm means. The vector table is cleared, which is the one deliberate departure from leaving memory alone: a vector points into whatever installed it, and after a reset that program is not running, so a handler left behind would aim an interrupt at an address belonging to something gone. It is the argument CosmOS already makes at exit, applied to the machine. Reboot is 45 bytes, most of them the word it prints. |
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c8c9f0b363 |
SRET: a handler answers the way a subroutine does
CALL saves A, B and Data Pointers 0 to 2 and nothing else, which is exactly why Q and DP3 are how a subroutine hands something back. An interrupt saves all of it, so a service with an answer had to reach into its own frame and un-save two fields by hand: MVSD.2 DPUP.2 0d02 ; the saved Q, by an offset it had to know STA.2 RETI Thirty places in CosmOS did that. Every one knew the frame's layout by heart, and all thirty would have gone quietly wrong the day the frame gained a field - the same duplicated fact this project keeps being bitten by, except duplicated into thirty places AND into the CPU. SRET is 0x76, in the seat the block split left for it. It is RETI's frame with RET's rule applied: A, B and DP0 to DP2 come back, the saved Q and DP3 are dropped, and the Interrupt Flag is restored from the frame - only that bit, so carry survives a service the way it survives a call, and there is one rule rather than two. RETI stays exactly as it was: a hardware handler has nothing to say and must leave no trace. CosmOS is 10,969 bytes against 11,122, and no handler knows a frame offset. TWO MISTAKES WORTH RECORDING, both mine, both caught by tests. The first conversion matched STA.2 with a regular expression that did not allow a trailing comment, so it ran past the end of one handler and into the next. The second understood the pattern and still got it wrong: the old frame write carried the answer from A into the saved Q slot, so simply deleting the write left Q holding whatever it happened to hold. Services that answer by calling something were fine - Q already had it - and services that set A directly silently reported success for every failure. cosmosCwd is what noticed, by saying "cannot go there" about a directory that was there. Sixteen handlers move the answer into Q now. Seven MVQA went with it. They copied Q into A so the frame write could carry it; SRET puts A back, so they moved a value nobody would ever read. |
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cd5f548736 |
Move the opcode map: nothing in 0x0X, and room for a return variant
Three blocks move and nothing else changes. Branches take 0x60, subroutines take 0x70, and the ALU moves up into the 0x10 block the two of them used to share. Order within each block is preserved exactly - this relocates them, it does not rethink them. WHAT IT BUYS IS AN EMPTY 0x00 TO 0x0F. Program Memory that was never written, or a load that stopped part way and left zeroes in its tail, used to read as a long run of ADDs: the machine carried on through them, arrived somewhere unpredictable, and whatever broke there was a long way from the byte that caused it. Now it faults where it is met: Fault: 0x00 at Program Address 0x0004 is not an instruction. That is the address of the byte after the last real instruction, which is the difference between a diagnosis and a search. Reserving the whole nibble rather than just 0x00 means a run into blank memory faults wherever it starts rather than only when it lands on the right byte. runOffTest records it, and the block is left empty for whatever turns out to want it. The other half is room: branches and subroutines had filled 0x10 to 0x1F between them, so a service return that keeps Q and DP3 had nowhere to sit next to its family. It has 0x76 waiting now. Five places wrote an opcode down that the scripted remap did not reach, and four of them were found by tests rather than by looking: - secondPass.c lists which opcodes take an address, and firstPass.c knows SWI by number. Missing those made XOR read as a branch. - Asm.asm knows SWI by number too, being the other assembler. Missing it made the native and host assemblers disagree byte for byte, which is exactly the check that exists to catch a thing known in two places. - loaderTest.asm carries a hand written payload, and its RETI was 0x19. To the assembler those are numbers and to the program they are data, so nothing but running it could notice. It says so in a comment now. - The Assembler Manual prints the bytes hello.asm assembles to, and two of them were branches. The monitor's recorded disassembly moved by exactly the bytes it should: 18 became 72 wherever SWI appears, with SETD and INIB untouched and every disassembled line still reading the same. |
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dc74149321 |
B4: the disk remembers whether the last start arrived
The loader marks the superblock before it hands over and the system clears the mark when it reaches its prompt, so a system that crashes on the way there leaves it set. The loader finding it still set next time is how a machine that will not start says so to the only thing in a position to do anything about it. Without that, pointing boot.cfg at something that dies before the shell is a machine that can never be told anything again - the shell is the only way to change the file, and the file is what stops the shell from starting. Three states rather than two, and the third is the one worth having: 0 settled the last start arrived; use the configuration 1 trying handed over, and nothing came back to say it got there 2 fell back a try failed and the fallback was used, until settled With only 0 and 1 the machine alternates for ever: fall back, reach a prompt, clear the mark, retry the broken system, crash, fall back. State 2 stops that. A system known not to start is not tried again until somebody says the situation has changed. REACHING THE PROMPT IS A DELIBERATE THRESHOLD. It is not a claim that the system works - a shell can be reached by something broken in every other way. It is the point where a person can type, which is exactly what the fallback exists to give back: anything wrong past there is fixable from the prompt and nothing wrong before it is fixable at all. The routines live in sbfs.asm because both the loader and the system read and write this byte, and two pieces of code with their own idea of where a byte lives is what this format has two implementations and a byte for byte comparison to avoid. And the trap this system documents in its own manual caught me anyway: the first version handed the state back in A, which CALL restores, so every read got whatever the caller happened to be holding. It comes back in memory now, and the comment says why. Three disks differing only in the state on them, so the tests read as three consecutive starts of one machine while none depends on another running. |
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54ff7196c9 |
Stage 0: the emulator carries the ROM, so a disk is enough
./SplitBit --disk system.img stage two CosmOS > No boot image named. The emulator shadows its built in stage one into Program Memory - boot vector included - and the CPU then does exactly what it has always done: reads the boot vector and starts where it points. NOTHING ABOUT THE CPU CHANGED to make a machine that starts itself, which is what picking shadowing over a mapped ROM bought. The ROM is generated from Programs/Boot/stage1.asm by the makefile rather than committed beside it, because a copy of a program kept next to the program is a copy that goes stale. That makes the assembler a real dependency of the emulator, which it always sort of was and now says so. od and awk rather than xxd, which is not everywhere, or python, which the README does not ask anybody to install in order to build this. loadROM is loadFile given bytes instead of a path: both go through one reader over an fmemopen stream, because a ROM is a boot image and there is no reason for the machine to have two ways of understanding one. Naming an image still works and is what every other test here does. That path is not a shortcut to apologise for - placing memory from outside is a real thing real machines allow, and it is a debugger. The help says so now. No image and no disk is the one case with nothing to run, and it says that rather than printing a usage message about a missing file. run.sh gained a "rom" mode which hands the emulator a disk and nothing else. The source column still names stage1.asm, because that is what is IN the ROM: assembling it there says the thing the emulator carries is a thing that still assembles. |
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d07b23f90b |
Rung 2: the machine starts itself off a disk
Stage one exists and works. It is 330 bytes of program and everything it knows is a thing that will be true forever: which port the disk is on, that a SplitBit disk begins with its own name, and where two numbers sit in that first block. Not what a file is, not what a directory is, not that SBFS has versions. It reads the live boot slot into Program Memory, jumps to the first byte, and prints one character and halts if there is nothing there. It is an ordinary boot image for now, so the whole chain runs on machinery that already exists and the emulator has not been touched. Nothing about it changes when it moves into ROM except who puts it in memory. SplitDisk gained "boot" to write a slot and "bootslot" to choose one, kept apart on purpose: writing a slot and starting from it are different decisions, and joining them would make every write a commitment. A slot is always written WHOLE, because one still holding the tail of what was there before is one whose contents depend on its history, and stage one reads all of it without knowing where the file stopped. Three recorded tests, and the pair is the point: two disks differing only in which slot the superblock names, with payloads that say different things. One prints "booted" and the other does not, so this is a test of CHOOSING a slot rather than a test that some bytes were read. The third boots a disk with no boot area and gets the one character a ROM has room for. Eight more host checks, including that a slot is padded whole. Two things worth recording. The first draft used #Align to put the scratch buffer at 0x8000 and produced a 33K file - thirty two kilobytes of zeroes in something meant to be a ROM. It is an address, not storage, which is exactly what the assembler's own scratch map exists to say. And SplitLint caught the second in code written an hour after the baseline that catches it. In the blit set-up, RSTA writes a source address of zero and then RSTA writes a bank number of zero - two unrelated quantities that are equal by accident, in the most safety critical file in the repository. It is marked with a reason rather than removed. |
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612bd1b97c |
B1: a boot area on the disk, reserved by arithmetic that was already there
The first rung of booting from disk. A boot area is blocks between the superblock and the directory that the filesystem never allocates and never sees, and NOTHING WAS ADDED TO RESERVE THEM: both implementations work out the first usable block as directoryStart + directoryBlocks, and directoryStart has always been a field rather than a constant. Formatting with the directory moved up reserves everything below it. Neither allocator changed, on either side. Two new superblock fields in bytes that were reserved: bootBlocks at 14, per slot, and bootSlot at 16. A disk made before this has zero in both, which reads as "no boot area" - true, and the same shape as the version two parent field, where the value an older disk already held was the right answer without conversion. TWO SLOTS, ALWAYS. A boot slot is raw blocks with no entry to rename, so the write-a-temporary-and-rename ordering that protects every file cannot protect it, and a machine interrupted while updating its only slot would not boot at all - the one failure on this disk with no way back. Writing the slot that is not live and then moving one byte makes that a machine that boots what it had before. bootBlocks and directoryStart say the same thing from two sides, so a disk where they disagree is refused rather than guessed at, as is one naming a slot that does not exist. Checked where it matters: the HOST formats a disk with a boot area and the MACHINE fills it, then the reserved blocks are compared against zero. The machine's allocator is the one that had no idea any of this was happening, which is what makes that the check worth having. Six host checks besides, including both halves of the superblock disagreeing. |
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0a2965bc63 |
Name the rules, say when there is nothing to say, and hold a baseline
Four things SplitLint wanted, and they build on each other. EVERY WARNING NAMES ITS RULE, in brackets at the end the way a compiler names the flag that produced it. Twelve rules, listed by --help. That makes the other three possible: suppressions can name one rule and leave the line honest about the others, the harness can assert on a rule's identity rather than on the wording of its message, and --machine can print one tab separated line per warning - file, line, rule, message, help - so nothing downstream reads prose. This file's own output was parsed with regular expressions three times in one day before it had a shape to rely on. A CLEAN RUN SAYS SO: No style warnings: 121 files checked against 12 rules. It used to exit in silence, which does not tell you it found nothing - it tells you nothing at all, and from outside the two are identical. A MARKER THAT SILENCES NOTHING IS ITSELF REPORTED, as dead-suppression. An exception that outlived whatever made it necessary is the thing the required reason exists to prevent, and naming the wrong rule now gets you both the warning you meant to silence and a note that your suppression is doing nothing. AND THE CORPUS IS HELD TO A BASELINE. Sixty one warnings are left in it deliberately and nothing stopped a sixty second. Tests/lint-baseline.txt records how many of each rule each file should produce, so a new one fails make test while the sixty one stay quiet; confirmed by adding an INIA 0d0 to Say.asm and watching it name the file, the rule and the count. It counts per file and rule rather than recording line numbers, because line numbers would churn the whole baseline whenever anything was inserted above a warning - the same reason cycle counts are stripped from recorded output here. ./Tests/lint.sh --bless records it again. One thing to know for next time: the rule name was inserted before the line number at all twenty one call sites, and the signature was changed to match rather than the twenty one call sites being fixed. (path, rule, line) reads no worse than (path, line, rule) and one edit has fewer ways to go wrong than twenty one. |
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c146d98588 |
Stop the linter recommending a change that a faster helper would break
SplitLint knew that CALL restores A, B and Data Pointers 0 to 2, so a pointer set before a call is still set after it. That is true, and it made the tool give advice that was correct today and unsafe to take. Of the 178 redundant SETDs it found across the corpus, 122 were redundant ONLY because of that restore - the shape is everywhere, because it is how a helper is given its arguments: SETD.0 SbfsBlock SETD.2 SbfsFileStart CALL sbfsSetWord SETD.0 SbfsBlock <- flagged Removing that last line is right until sbfsSetWord is reached with RCAL, which restores nothing - and that is not hypothetical, it is what RCAL was added to this machine for, measured at close to halving the assembler's memory traffic. The failure would also be silent from the linter's side: it forgets everything across an RCAL, so it would stop reporting while the removals stayed removed. So a claim now ends at any call, for pointers and for registers, the way a claim about carry already did. 257 warnings become 127, and the redundant SETDs 178 become 54 - which is exactly the number an independent count of "no CALL in between" had arrived at separately. The fixture gained a SETD and an INIA repeated across a CALL, which must stay quiet, and the harness fails with the old behaviour put back. Two mistakes worth recording: the new expectations first pointed at the LABEL above the repeats rather than the repeats, which passes for free because nothing ever warns about a label; and the block landed in the middle of another check's comment, leaving that comment describing the code below it instead of its own. |