Reorganize source tree: kernel/, v3/, v4/ split and board infrastructure
Source tree reorganization: - Move StarForth v3 engine to v3/ (src/, include/, Makefile) - Move kernel to kernel/ (src/, include/, linker/, Makefile) - Create v4/ skeleton for F18-ISA golden model (DECOMPOSITION.md, JUSTIFICATION.md) - Move FABRIC-0..4.md to docs/fabric/ - Move ONTOLOGY.md and ROADMAP.md to docs/ Board infrastructure: - Add boards/ser5/, boards/raspi/, boards/milkv/, boards/zynq7020/ - Each board has board.mk (ISA, CPU flags, boot recipe) and README.md - Root Makefile becomes thin dispatcher: boot_image, all, clean, docs take TARGET - make boot_image TARGET=SER5|RASPI|MILKV builds one GPT/MBR image per board - ZYNQ7020 target exists but stops with clear error (ARMv7 port not built yet) - scripts/mkdiskimage.sh builds disk images for all boards Docs pipeline: - docs/book/ with LaTeX master (main.tex) and Makefile - pandoc converts Markdown to LaTeX at build time - Two Lua filters: table-widths.lua (wide tables wrap), code-breaks.lua (inline code breaks) - make docs builds single PDF (754 pages, 0 missing characters) - make docs TARGET=<board> adds board appendix - build/docs/<book|board>/meta.tex stamps git commit into PDF Bug fixes: - 42 include paths that only worked by accident now use correct relative paths - clang-18 hardcode replaced with configurable CC variable (fixed aarch64 build) - Pi 5: kernel_2712.img linked at 0x80000, .bss zeroed, memory reserved - Doxyfile, .clang-tidy, README.md, Kconfig paths updated Verified: - Hosted v3 build passes 1012 tests, 0 failures - SER5 image boots in QEMU (OVMF), POST passes, K exact (65536 = Q48_ONE) - Milk-V image boots in QEMU (OpenSBI + U-Boot + bootefi), POST passes - make clean TARGET=<board> removes only that board and its ISA objects - make all builds all boards, hosted v3, and docs in one run Co-authored-by: Junie <junie@jetbrains.com>
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/*
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StarForth — Steady-State Virtual Machine Runtime
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Copyright (c) 2023–2025 Robert A. James
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All rights reserved.
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This file is part of the StarForth project.
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Licensed under the StarForth License, Version 1.0 (the "License");
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you may not use this file except in compliance with the License.
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You may obtain a copy of the License at:
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https://github.com/star.4th@proton.me/StarForth/LICENSE.txt
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This software is provided "AS IS", WITHOUT WARRANTY OF ANY KIND,
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express or implied, including but not limited to the warranties of
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merchantability, fitness for a particular purpose, and noninfringement.
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See the License for the specific language governing permissions and
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limitations under the License.
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StarForth — Steady-State Virtual Machine Runtime
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Copyright (c) 2023–2025 Robert A. James
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All rights reserved.
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This file is part of the StarForth project.
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Licensed under the StarForth License, Version 1.0 (the "License");
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you may not use this file except in compliance with the License.
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You may obtain a copy of the License at:
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https://github.com/star.4th@proton.me/StarForth/LICENSE.txt
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This software is provided "AS IS", WITHOUT WARRANTY OF ANY KIND,
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express or implied, including but not limited to the warranties of
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merchantability, fitness for a particular purpose, and noninfringement.
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See the License for the specific language governing permissions and
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limitations under the License.
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*/
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/**
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* timer.h - Timer and Heartbeat Interface
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*
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* M5 Time Model:
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* - TIME-TICKS (Q64.0): Monotonic heartbeat counter, never decreases
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* - TIME-TRUST (Q48.16): Continuous confidence metric [0.0, 1.0]
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* - No discrete modes (NONE/REL/ABS are legacy, being phased out)
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* - Trust is a measurement, never gates execution
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*/
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#ifndef STARKERNEL_TIMER_H
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#define STARKERNEL_TIMER_H
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#include <stdint.h>
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#include "uefi.h"
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#include "q48_16.h"
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/* ============================================================================
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* M5 Time Model (New)
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* ============================================================================ */
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/* TIME-TRUST: Continuous confidence metric in Q48.16 format */
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typedef q48_16_t time_trust_t;
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/* Rolling window size for timestamp variance computation */
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#define TIME_WINDOW_SIZE 64
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/* TIME-TRUST thresholds in Q48.16 (for diagnostics, NOT for gating) */
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#define TIME_TRUST_HIGH Q48_ONE /* 1.0 = full confidence */
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#define TIME_TRUST_LOW (Q48_ONE >> 2) /* 0.25 = low confidence */
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/*
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* Rolling window of timestamp deltas for variance computation.
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* Each entry is (actual_tsc_delta - expected_tsc_delta) in TSC ticks.
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*/
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typedef struct time_window {
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int64_t deltas[TIME_WINDOW_SIZE]; /* Signed: can be early or late */
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uint32_t pos; /* Current write position */
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uint32_t count; /* Number of valid samples (up to SIZE) */
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} TimeWindow;
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/*
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* M5 Heartbeat State: Holds all time-related metrics.
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* Updated every heartbeat tick by the ISR.
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*/
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typedef struct time_trust_state {
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/* Core counters */
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volatile uint64_t ticks; /* TIME-TICKS: monotonic heartbeat count --
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* written directly in ISR context
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* (heartbeat_tick(), all three archs) and
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* read directly by mainline
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* (heartbeat_ticks()); genuinely
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* concurrent, unlike every other field in
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* this struct (FABRIC-0.md item 4.5a/4.5b,
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* 2026-08-11). */
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uint64_t last_tsc; /* TSC at last heartbeat */
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uint64_t expected_delta; /* Expected TSC ticks per heartbeat */
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/* Rolling window for variance */
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TimeWindow window;
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/* Derived metrics (Q48.16) */
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q48_16_t variance; /* Variance of deltas */
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q48_16_t trust; /* TIME-TRUST: derived from variance */
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/* Statistics */
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uint64_t total_samples; /* Lifetime sample count */
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} TimeTrustState;
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/* ============================================================================
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* Legacy M4 Interface (To Be Phased Out)
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* ============================================================================ */
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/*
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* Timer trust levels (LEGACY - discrete modes violate M5 spec):
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* - NONE: no usable time base
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* - RELATIVE: monotonic-ish, not for claims
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* - ABSOLUTE: invariant + calibrated
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*/
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typedef enum timer_trust_level {
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TIMER_TRUST_NONE = 0,
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TIMER_TRUST_RELATIVE = 1,
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TIMER_TRUST_ABSOLUTE = 2
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} timer_trust_level_t;
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/*
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* Timer calibration record for logging / DoE traceability.
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* Keep it minimal and serial-friendly.
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*/
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typedef struct timer_calibration_record {
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uint64_t hpet_hz; /* HPET frequency derived from period_fs (if available) */
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uint64_t tsc_hz_mean; /* Locked TSC Hz (final) */
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uint64_t pit_hz_mean; /* PIT-based estimate (if used) */
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uint64_t cv_hpet_ppm; /* HPET window CV in ppm (bare metal convergence) */
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uint64_t cv_pit_ppm; /* PIT window CV in ppm (bare metal convergence) */
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uint64_t diff_ppm; /* HPET vs PIT mean diff in ppm (bare metal convergence) */
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uint32_t windows_used; /* number of windows consumed to converge */
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uint8_t converged; /* 1 if converged/locked, 0 otherwise */
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uint8_t vm_mode; /* 1 if hypervisor policy path used */
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uint8_t trust; /* timer_trust_level_t (NONE/RELATIVE/ABSOLUTE) */
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uint8_t reserved[1];
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} timer_calibration_record_t;
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/* Legacy API (still works, wraps M5 internals) */
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int timer_init(BootInfo *boot_info);
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uint64_t timer_tsc_hz(void);
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uint64_t timer_now_ns(void);
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int timer_check_drift_now(void);
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const timer_calibration_record_t *timer_calibration_record(void);
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/* ============================================================================
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* M5 Heartbeat API (New)
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* ============================================================================ */
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/*
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* Initialize the heartbeat subsystem.
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* Called after timer_init(), before enabling APIC timer.
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*/
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void heartbeat_init(uint64_t tsc_hz, uint64_t tick_hz);
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/**
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* Top half. Called directly from each architecture's ISR (punch-list item
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* 0.8) -- one call site per architecture, unchanged from before this item.
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* Does exactly three things: reads the raw counter via
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* @c heartbeat_read_counter(), increments TIME-TICKS, and latches the
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* sample for @c heartbeat_service() to pick up. No window math, no
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* variance, no loops -- this must stay cheap enough for interrupt context.
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*/
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void heartbeat_tick(void);
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/**
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* Bottom half (punch-list item 0.8). Services one pending sample if
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* @c heartbeat_tick() has latched one since the last call: computes the
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* inter-tick deviation, updates the rolling window, and (architecture
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* permitting -- see @c heartbeat.c) recomputes variance and TIME-TRUST.
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* Never runs in interrupt context. Call from the mainline, as frequently
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* as convenient -- a stale/skipped service call degrades the window's
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* fidelity but affects nothing else, since TIME-TRUST is diagnostic only
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* and never gates execution.
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*/
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void heartbeat_service(void);
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/**
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* Read the raw hardware counter this architecture's heartbeat is paced
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* against -- the same clock @c timer_now_ns() and calibration already use
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* internally (rdtsc on amd64, the `time` CSR on riscv64, CNTPCT_EL0 on
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* aarch64), not a separate/different source. Implemented once per
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* architecture in that architecture's timer.c; consumed only by
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* @c heartbeat_tick() in the shared heartbeat.c.
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*/
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uint64_t heartbeat_read_counter(void);
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/**
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* Get current TIME-TICKS (monotonic heartbeat count).
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*/
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uint64_t heartbeat_ticks(void);
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/**
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* Get current TIME-TRUST (Q48.16 confidence metric).
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*/
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time_trust_t heartbeat_trust(void);
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/**
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* Get pointer to full heartbeat state (for diagnostics).
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*/
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const TimeTrustState *heartbeat_state(void);
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/**
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* Set the adaptive re-arm period, in nanoseconds (punch-list item 0.8,
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* FABRIC-0.md §26). Called from the mainline execution path only (Loop #7's
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* site in vm_runtime.c) -- never from interrupt context. Clamped to
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* [1/4x, 4x] of the kernel's base period internally; a caller need not
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* pre-clamp.
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*/
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void heartbeat_set_adaptive_period_ns(uint64_t ns);
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/**
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* Read the period the next hardware re-arm should use. Called from
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* interrupt context by each architecture's re-arm function in place of a
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* fixed constant.
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*/
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uint64_t heartbeat_next_period_ns(void);
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#endif /* STARKERNEL_TIMER_H */
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