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4 dayskernel: a real timer source (64 Hz tick IRQ) + uptime(1)user1-0/+5
The kernel had no clock: TimerISR was a reti stub, IEF_TIMER masked, and IME was never enabled - the vectors were decorative. sys_sleep just polls DIV deltas per-process; nothing counted globally. Now: TAC runs the hardware timer at 16384 Hz with TMA=0, so TIMA overflows at exactly 64 Hz; TimerISR increments a monotonic 32-bit wTicks (wraps after ~2.1 years). Scheduling stays cooperative - the ISR is transparent. Enabling IME in a kernel written for zero interrupts needs care wherever SP points into memory whose bank is being switched (an IRQ pushes onto SP): - read_block/write_block map the disk bank over the $A000 window that holds the caller's stack -> di/ei around the transfer (~2ms, well under the 15.6ms tick period, so no tick is ever lost) - hSwitchTo switches SVBK + cart-RAM banks under the outgoing stack -> di on entry, ei once the incoming stack is mapped - fork already runs on KSTACK_TOP2 (fixed WRAM) - safe as-is - term_putc's SVBK switch only remaps $Dxxx, stacks live in $Axxx/$Cxxx SYS_UPTIME (36) copies the counter (4B LE, di/ei so the read can't tear) to a user buffer; libc gticks(); usr/uptime.c formats 'up [Nd] H:MM:SS'. uptime avoids SDCC long div/shift entirely: sm83.lib modules link into their own areas that land in the $A000 RAM window (latent build.sh trap, documented there) - bytewise >>6 plus bounded subtraction loops instead.
5 daysfs rewrite stage 2: inodes + root directory (block-based, persistent)user1-53/+12
- fs.asm: a real block filesystem on the persistent block device - superblock, block/inode bitmaps, a 32-entry inode table (type, size, 8 direct block pointers -> files up to 2 KiB), and a root directory of 16-byte entries. Metadata cached in WRAMX; one-block data cache streams file/dir blocks. - same syscall interface (open/getb/putb/list/remove) -> tools unchanged; ls now enumerates until flist() runs out (16 files, was hardcoded 8). - old 8-slot WRAM FS removed; cart RAM partitioned: process banks 0-7, disk 8-11. - two register-clobber bugs fixed: alloc_block/alloc_inode returned the bitmap-block number (write_bitmap clobbers C); db_use loaded the wrong block on a transition (db_flush->write_block clobbers C) -> multi-block files broke. - verified: 10+ files, multi-block (300-byte) files, delete, and persistence across reboots. Debug 'blk' disk tool retained (fill/peek). - README: document the block filesystem.
6 daysfs rewrite stage 1: persistent block device (bounce buffer, cart SRAM)user1-0/+161
- blk.asm: read_block/write_block move 256-byte blocks between battery-backed cart-RAM banks (8-11, the 'disk') and a WRAM bounce buffer. Banking is hidden in those two routines; they inline the 'restore my bank' step so they never touch the stack while the disk bank is mapped over the process's $A000 window (the stack lives there too -- a call/ret would rug-pull it). - format-on-first-boot: superblock magic in block 0; otherwise the disk persists. - cart RAM bumped to 128 KiB (-r 4); process banks 0-7, disk banks 8-11. - debug tool 'blk fill/peek' + syscalls to validate round-trip and persistence. - verified: round-trip incl. cross-bank (block 100 -> bank 11); block survives a reboot via .sav; magic intact (no reformat on 2nd boot). - old WRAM 8-slot FS still backs the tools until stages 2-3.