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LithosAnanake/src/starkernel/arch/riscv64/apic.c
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Robert Allan JamesandClaude Sonnet 5 5f4df673c1 riscv64: PLIC bring-up, external-interrupt substrate (item 4.3.5b)
Punch list §25 item 4.3.5b complete.

sie.SEIE enabled, PLIC threshold/claim/complete wired into the trap
handler. Verified with a UART-loopback synthetic interrupt (PLIC has no
software set-pending register, unlike GICv2): claim_count=1, last_irq=10,
IIR confirms genuine receive-data cause, byte matched exactly. Self-test
code run once for evidence then fully reverted, per Captain Bob's ruling;
only the permanent substrate remains, no source enabled by default.
Three-arch acceptance boot clean, zero exceptions.

Co-Authored-By: Claude Sonnet 5 <noreply@anthropic.com>
2026-08-08 11:24:47 -04:00

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/*
StarForth — Steady-State Virtual Machine Runtime
Copyright (c) 20232025 Robert A. James. All rights reserved.
Licensed under the StarForth License, Version 1.0.
*/
/**
* apic.c (riscv64) - APIC stub. No Local APIC on RISC-V; interrupt
* controller is PLIC (Platform-Level Interrupt Controller). apic_init()
* calls into plic.c for the real PLIC bring-up (item 4.3.5b); apic_eoi()
* stays a no-op since PLIC completion happens per-source in the trap
* handler (claim/complete), not via a single shared EOI register.
*/
#include "apic.h"
#include "uefi.h"
#include "console.h"
#include "timer.h"
#include "starkernel/plic.h"
#include <stdint.h>
static uint64_t s_timer_period_tsc = 0;
static uint64_t s_time_hz = 0; /* `time` CSR frequency (item 0.8/§26) */
/* ---------------------------------------------------------------------------
* SBI (Supervisor Binary Interface)
*
* RISC-V S-mode cannot program the timer directly: the CLINT's mtimecmp is an
* M-mode register. The timer is armed by asking the SEE (OpenSBI, running in
* M-mode beneath EDK2) via ECALL.
*
* Calling convention, SBI v0.2+ (SBI spec §3): a7 = EID, a6 = FID,
* a0.. = arguments; returns a0 = error, a1 = value.
* ------------------------------------------------------------------------- */
#define SBI_EXT_BASE 0x10UL
#define SBI_BASE_FID_PROBE_EXT 3UL
#define SBI_EXT_TIME 0x54494D45UL /* "TIME" */
#define SBI_TIME_FID_SET_TIMER 0UL
#define SBI_SUCCESS 0L
/* sie.STIE — supervisor timer interrupt enable (Privileged Spec §4.1.3) */
#define SIE_STIE (1UL << 5)
typedef struct
{
long error;
long value;
} sbiret_t;
/** @brief Issue an SBI ECALL with one argument. */
static sbiret_t sbi_call1(unsigned long eid, unsigned long fid,
unsigned long arg0)
{
register unsigned long r_a0 __asm__("a0") = arg0;
register unsigned long r_a1 __asm__("a1") = 0;
register unsigned long r_a6 __asm__("a6") = fid;
register unsigned long r_a7 __asm__("a7") = eid;
sbiret_t ret;
__asm__ volatile (
"ecall"
: "+r"(r_a0), "+r"(r_a1)
: "r"(r_a6), "r"(r_a7)
: "memory");
ret.error = (long)r_a0;
ret.value = (long)r_a1;
return ret;
}
/**
* @brief Read the RISC-V @c time CSR.
*
* Deadlines handed to @c sbi_set_timer() are absolute values on this counter.
* @c arch/riscv64/timer.c keeps its own copy of this accessor; duplicating
* four instructions is preferable to widening @c timer.h with an
* architecture-specific accessor that only these two files can use.
*/
static inline uint64_t rdtime(void)
{
uint64_t val;
__asm__ volatile (
"rdtime %0" : "=r"(val));
return val;
}
/* Set once in apic_timer_start(): 1 when the TIME extension probed present,
* 0 when the timer could not be armed at all. */
static int s_sbi_time_ok = 0;
/* Absolute `time` value of the next expected interrupt. Advanced by period
* rather than recomputed from "now" so that a late tick does not push the
* whole schedule out; see riscv64_timer_rearm(). */
static uint64_t s_next_deadline = 0;
/**
* @brief Arm the SBI timer for @p deadline.
* @return 1 on success, 0 if the SEE rejected the call.
*/
static int sbi_set_timer(uint64_t deadline)
{
sbiret_t r = sbi_call1(SBI_EXT_TIME, SBI_TIME_FID_SET_TIMER,
(unsigned long)deadline);
return r.error == SBI_SUCCESS;
}
/**
* @brief Re-arm the one-shot SBI timer and account the tick.
*
* **The SBI timer is one-shot by nature.** Servicing a timer interrupt without
* programming the next deadline leaves the heartbeat stopped permanently, with
* no error anywhere — the single most likely silent failure of this driver.
* Every path out of a timer interrupt must reach this function.
*
* The step is @c heartbeat_next_period_ns() (item 0.8, §26) converted to
* `time`-counter ticks via @c s_time_hz, not the fixed @c s_timer_period_tsc
* used to seed the very first deadline in @c apic_timer_start() -- the
* latter remains @c apic_timer_period_tsc()'s return value for
* @c heartbeat_init()'s initial @c expected_delta, unchanged.
*
* Called from @c riscv64_interrupt_handler() in @c interrupts.c on
* @c scause cause 5.
*/
void riscv64_timer_rearm(void)
{
uint64_t now;
uint64_t step;
if (!s_sbi_time_ok) return;
step = (s_time_hz > 0)
? (heartbeat_next_period_ns() * s_time_hz) / 1000000000ULL
: s_timer_period_tsc;
if (step == 0) {
step = 1;
}
s_next_deadline += step;
/* If servicing ran long enough that the next deadline is already behind
* us, resynchronise rather than burn through a backlog of instant
* interrupts. */
now = rdtime();
if (s_next_deadline <= now)
{
s_next_deadline = now + step;
}
sbi_set_timer(s_next_deadline);
}
/*
* @brief Initialise the interrupt controller: PLIC bring-up (item 4.3.5b).
*
* On x86-64 this function configures the Local APIC. On RISC-V the
* Platform-Level Interrupt Controller (PLIC) handles external interrupt
* routing -- @c plic_init() (arch/riscv64/plic.c) maps it, sets the S-mode
* context's threshold, and enables @c sie.SEIE. No source is enabled here;
* that is each future consumer's own job (4.3.5c for virtio-keyboard).
*
* @param boot_info Kernel boot information; unused (PLIC base is a verified
* constant, not discovered from @c boot_info->dtb -- see
* plic.c's file header for why).
* @return 0 always.
*/
int apic_init(BootInfo *boot_info)
{
(void)boot_info;
plic_init();
return 0;
}
/**
* @brief Signal End of Interrupt to the interrupt controller (RISC-V stub).
*
* On x86-64 this writes to the Local APIC EOI register. On RISC-V EOI
* is handled by reading the PLIC claim/complete register; that path is
* not yet wired. This stub is a no-op that satisfies the common interface.
*/
void apic_eoi(void) { }
/*
* @brief Compute the expected `time`-counter ticks per heartbeat period.
*
* Unlike x86-64's APIC timer, this does not itself arm anything — RISC-V S-mode
* cannot program the timer directly, so arming happens via SBI in
* @c apic_timer_start() below. This function only computes
* @c s_timer_period_tsc, the expected number of @c time-counter ticks between
* heartbeats, which seeds both @c apic_timer_start()'s first deadline and
* @c heartbeat_init()'s @c expected_delta.
*
* Falls back to 10,000,000 ticks if either frequency is zero (a safe
* non-zero sentinel preventing division-by-zero in the heartbeat path).
*
* @param tsc_hz `time` counter frequency from @c timer_init() (Hz).
* @param tick_hz Desired heartbeat rate (Hz); 0 → uses fallback.
* @return 0 always.
*/
int apic_timer_init(uint64_t tsc_hz, uint32_t tick_hz)
{
if (tick_hz > 0 && tsc_hz > 0)
s_timer_period_tsc = tsc_hz / tick_hz;
else
s_timer_period_tsc = 10000000;
s_time_hz = tsc_hz;
return 0;
}
/**
* @brief Start timer delivery via the SBI TIME extension.
*
* Probes for the TIME extension first. If the SEE does not provide it the
* timer is **not** armed and the condition is reported loudly rather than
* papered over with the legacy EID 0x00 call: a heartbeat that silently never
* ticks is far worse to diagnose than one that says why at boot.
*
* On success: computes the first absolute deadline, arms it, and sets
* @c sie.STIE. Global delivery is gated separately by @c sstatus.SIE, which
* @c arch_enable_interrupts() sets.
*/
void apic_timer_start(void)
{
sbiret_t probe;
probe = sbi_call1(SBI_EXT_BASE, SBI_BASE_FID_PROBE_EXT, SBI_EXT_TIME);
if (probe.error != SBI_SUCCESS || probe.value == 0)
{
console_println("SBI: TIME extension ABSENT - timer NOT armed, "
"heartbeat will not tick");
s_sbi_time_ok = 0;
return;
}
s_sbi_time_ok = 1;
s_next_deadline = rdtime() + s_timer_period_tsc;
if (!sbi_set_timer(s_next_deadline))
{
console_println("SBI: set_timer REJECTED - timer NOT armed");
s_sbi_time_ok = 0;
return;
}
__asm__ volatile (
"csrs sie, %0"
::
"r"(SIE_STIE) : "memory");
console_println("SBI: timer armed (TIME extension)");
}
/**
* @brief Stop timer delivery by masking @c sie.STIE.
*
* The SBI timer cannot be cancelled outright — masking the enable bit is the
* supported way to stop delivery. Any deadline already programmed simply goes
* unserviced.
*/
void apic_timer_stop(void)
{
__asm__ volatile (
"csrc sie, %0"
::
"r"(SIE_STIE) : "memory");
s_sbi_time_ok = 0;
}
/**
* @brief Return the expected `time`-counter ticks per heartbeat period.
*
* Returns @c s_timer_period_tsc, set by @c apic_timer_init() as
* @c tsc_hz / @c tick_hz. Consumed by @c heartbeat_init() to seed the
* rolling-window @c expected_delta, and by @c apic_timer_start() /
* @c riscv64_timer_rearm() as the SBI deadline step.
*
* @return Expected `time`-counter ticks per heartbeat period; 10,000,000 if
* frequencies were not available at init time.
*/
uint64_t apic_timer_period_tsc(void)
{
return s_timer_period_tsc;
}