Files
vatrog-vm-signaling/src/test/test_sock.c
T
lirent e6c7aed8eb memwrite: per-process (cr3) target and full-extent socket SRC
- CMD_MEMWRITE now carries a target page-table root (cr3) as its first field;
  cr3 == 0 keeps the kernel address-space default (backward-compatible). A control
  that has discovered a process's cr3 through its own read-only perception can
  write that process's private memory under the same exclusive write lease.
  Freshness of the cr3 is the control's responsibility — signaling does not
  validate it (that is perception, not coherence), mirroring the read side.

- A socket control can now carry an SRC larger than the inline frame budget: a
  length-prefixed SRC tail follows the CMD_MEMWRITE frame (flag SRC_PAYLOAD, the
  length being the frame's own len). A per-connection two-phase receiver
  accumulates the tail into a fixed conn-owned buffer up to the extent bound,
  matching the in-process payload path. A zero or over-bound length is a framing
  violation that closes the connection: leaving the promised tail unread would
  desync the stream and draining an arbitrary length would be a denial of service.

The capability, exclusive lease, source and extent gates are unchanged and
reused; only the event header gained the cr3 field and the socket transport
gained the tail receiver. The adapter resolves cr3 == 0 to the kernel root on
its worker thread and writes atomically.
2026-06-20 21:21:20 +03:00

274 lines
11 KiB
C

/* test_sock.c — out-of-process control: wire codec + authentication/admission.
* Bring up two listeners (one admitting, one rejecting) on abstract sockets, run
* the core in a separate thread, connect clients and check: policy invoked,
* valid poller admitted, unauthorized rejected (EOF), reap without a crash. */
#define _GNU_SOURCE
#include "vmsig.h"
#include "vmsig_socket.h"
#include "memctx.h" /* VMSIG_MEMWRITE_MAX: the adapter's extent bound (private) */
#include <stdio.h>
#include <string.h>
#include <stdlib.h>
#include <stdint.h>
#include <pthread.h>
#include <stdatomic.h>
#include <sys/socket.h>
#include <sys/un.h>
#include <unistd.h>
#include <stddef.h>
#include <time.h>
static int g_fail = 0;
#define CHECK(cond, msg) do { \
if (!(cond)) { printf(" FAIL: %s\n", (msg)); g_fail = 1; } \
} while (0)
static atomic_int g_auth = 0;
static atomic_int g_deny = 0;
static atomic_int g_admit = 0;
static atomic_int g_reject = 0;
static void audit_cb(void* ud, const vmsig_audit* a) {
(void)ud;
if (a->kind == VMSIG_AUDIT_ADMIT) atomic_fetch_add(&g_admit, 1);
else if (a->kind == VMSIG_AUDIT_REJECT) atomic_fetch_add(&g_reject, 1);
}
static vmsig_grant pol_ok(uint32_t uid, uint32_t pid, void* ud) {
(void)pid; (void)ud;
atomic_fetch_add(&g_auth, 1);
vmsig_grant g; memset(&g, 0, sizeof g);
g.principal = uid; g.endpoint_mask = 1u << 0;
g.source_mask = 0xFFFFFFFFu; g.cap_mask = VMSIG_CAP_OBSERVE;
return g;
}
static vmsig_grant pol_deny(uint32_t uid, uint32_t pid, void* ud) {
(void)uid; (void)pid; (void)ud;
atomic_fetch_add(&g_deny, 1);
vmsig_grant g; memset(&g, 0, sizeof g); /* empty => reject */
return g;
}
static uint64_t now_ns(void) {
struct timespec ts;
clock_gettime(CLOCK_MONOTONIC, &ts);
return (uint64_t)ts.tv_sec * 1000000000ull + (uint64_t)ts.tv_nsec;
}
static int connect_abstract(const char* name) {
int fd = socket(AF_UNIX, SOCK_STREAM, 0);
if (fd < 0) return -1;
struct sockaddr_un a; memset(&a, 0, sizeof a); a.sun_family = AF_UNIX;
size_t n = strlen(name);
a.sun_path[0] = 0;
memcpy(a.sun_path + 1, name + 1, n - 1);
socklen_t alen = (socklen_t)(offsetof(struct sockaddr_un, sun_path) + n);
if (connect(fd, (struct sockaddr*)&a, alen) < 0) { close(fd); return -1; }
return fd;
}
static void* loop_main(void* p) { vmsig_core_run((vmsig_core*)p); return NULL; }
static void wait_atomic(atomic_int* a, int want, int ms) {
for (int i = 0; i < ms; i++) {
if (atomic_load(a) >= want) return;
struct timespec t = { .tv_sec = 0, .tv_nsec = 1000000 };
nanosleep(&t, NULL);
}
}
static void test_wire(void) {
printf("test_wire\n");
vmsig_event ev; memset(&ev, 0, sizeof ev);
ev.kind = VMSIG_EV_CMD_VM; ev.source = VMSIG_SRC_VMHOST; ev.dir = VMSIG_DIR_DOWN;
ev.prio = VMSIG_PRIO_HIGH; ev.endpoint = 0; ev.corr = 0xABCD;
for (int i = 0; i < 48; i++) ev.inln[i] = (uint8_t)i;
vmsig_wire w; vmsig_wire_encode(&w, &ev);
vmsig_event d;
CHECK(vmsig_wire_decode(&w, &d) == 0, "decode ok");
CHECK(d.kind == ev.kind && d.source == ev.source &&
d.endpoint == ev.endpoint && d.corr == ev.corr, "frame fields match");
CHECK(memcmp(d.inln, ev.inln, 48) == 0, "inln matches");
vmsig_wire bad = w; bad.magic = 0; vmsig_event x;
CHECK(vmsig_wire_decode(&bad, &x) == -1, "bad magic rejected");
}
/* ===== variant B: socket CMD_MEMWRITE with a length-prefixed SRC tail (>INLINE) =====
* Stub memctx adapter (no VM): proves the socket transport carries a frame + SRC tail
* (with partial recv), routes through cap -> grant -> lease-gate -> adapter, and gets
* ACT_ACK ok=1. Also: an over-cap len is a framing violation that closes the connection. */
/* Policy granting a MEMWRITE-capable poller (cap MEMWRITE|MEMCTX|OBSERVE). */
static vmsig_grant pol_mw(uint32_t uid, uint32_t pid, void* ud) {
(void)pid; (void)ud;
vmsig_grant g; memset(&g, 0, sizeof g);
g.principal = uid; g.endpoint_mask = 1ull << 0;
g.source_mask = 0xFFFFFFFFu;
g.cap_mask = VMSIG_CAP_MEMWRITE | VMSIG_CAP_MEMCTX | VMSIG_CAP_OBSERVE;
g.arb_prio = 10;
return g;
}
/* Encode + write a single fixed frame. */
static int send_frame(int fd, const vmsig_event* ev) {
vmsig_wire w; vmsig_wire_encode(&w, ev);
return (write(fd, &w, sizeof w) == (ssize_t)sizeof w) ? 0 : -1;
}
/* Read fixed frames until an ACT_ACK with the wanted corr; return its ok flag (-1 on
* timeout/EOF). The ACK inln layout from mc_memwrite_ack: {int ok; uint32 corr; uint32 origin}. */
static int wait_ack(int fd, uint32_t want_corr, int ms) {
struct timeval tv = { .tv_sec = 0, .tv_usec = 200 * 1000 };
setsockopt(fd, SOL_SOCKET, SO_RCVTIMEO, &tv, sizeof tv);
uint64_t deadline = now_ns() + (uint64_t)ms * 1000000ull;
vmsig_wire w; uint8_t* p = (uint8_t*)&w; size_t off = 0;
while (now_ns() < deadline) {
ssize_t n = read(fd, p + off, sizeof w - off);
if (n <= 0) continue; /* timeout/EOF retry within deadline */
off += (size_t)n;
if (off < sizeof w) continue;
off = 0;
vmsig_event ev;
if (vmsig_wire_decode(&w, &ev) != 0) continue;
if (ev.kind == VMSIG_EV_ACT_ACK && ev.corr == want_corr) {
int ok; memcpy(&ok, ev.inln, sizeof ok);
return ok;
}
}
return -1;
}
static void test_memwrite_tail(void) {
printf("test_memwrite_tail\n");
vmsig_ctx* ctx = vmsig_ctx_new();
vmsig_core* core = vmsig_core_new(ctx);
CHECK(vmsig_core_add_adapter(core, vmsig_memctx_ops(), NULL, 0) >= 0, "add memctx stub");
const char* MW = "@vmsig-sock-mw-test";
CHECK(vmsig_socket_attach(core, MW, pol_mw, NULL) == 0, "attach mw listener");
pthread_t th;
pthread_create(&th, NULL, loop_main, core);
int fd = connect_abstract(MW);
CHECK(fd >= 0, "client connected (mw)");
if (fd >= 0) {
/* acquire the MEMWRITE lease */
vmsig_event d; memset(&d, 0, sizeof d);
d.kind = VMSIG_EV_CMD_ACQUIRE; d.source = VMSIG_SRC_MEMCTX; d.dir = VMSIG_DIR_DOWN;
d.endpoint = 0; d.prio = VMSIG_PRIO_HIGH;
vmsig_lease_req lr = { VMSIG_LEASE_MEMWRITE, 0 };
memcpy(d.inln, &lr, sizeof lr);
CHECK(send_frame(fd, &d) == 0, "send ACQUIRE");
/* happy path: CMD_MEMWRITE(PAYLOAD, len=64) + 64-byte tail, written in two halves
* to exercise the TAIL-phase partial accumulation. */
const uint32_t len = 64u;
uint8_t src[64];
for (uint32_t i = 0; i < len; i++) src[i] = (uint8_t)(i + 1);
vmsig_event mwe; memset(&mwe, 0, sizeof mwe);
mwe.kind = VMSIG_EV_CMD_MEMWRITE; mwe.source = VMSIG_SRC_MEMCTX; mwe.dir = VMSIG_DIR_DOWN;
mwe.endpoint = 0; mwe.prio = VMSIG_PRIO_HIGH; mwe.corr = 0x101;
vmsig_memwrite mw = { 0, 0x1000, len, VMSIG_MW_SRC_PAYLOAD };
memcpy(mwe.inln, &mw, sizeof mw);
CHECK(send_frame(fd, &mwe) == 0, "send CMD_MEMWRITE frame (PAYLOAD)");
CHECK(write(fd, src, 32) == 32, "send SRC tail part 1");
struct timespec ts = { .tv_sec = 0, .tv_nsec = 5 * 1000000 };
nanosleep(&ts, NULL); /* let the loop accumulate a partial tail */
CHECK(write(fd, src + 32, 32) == 32, "send SRC tail part 2");
CHECK(wait_ack(fd, 0x101, 1000) == 1, "B: payload-tail write ACKs ok=1 (stub)");
/* negative: an over-cap PAYLOAD len is a framing-contract violation. The server closes
* the connection — it cannot safely skip the promised tail, and draining an arbitrary
* length would be a DoS. Verify no ACK arrives and the socket reaches EOF (conn shut). */
memset(&mwe.inln, 0, sizeof mwe.inln);
mwe.corr = 0x102;
vmsig_memwrite mw2 = { 0, 0x2000, VMSIG_MEMWRITE_MAX + 1u, VMSIG_MW_SRC_PAYLOAD };
memcpy(mwe.inln, &mw2, sizeof mw2);
CHECK(send_frame(fd, &mwe) == 0, "send CMD_MEMWRITE frame (over-cap)");
/* No ACK arrives; the server shuts the conn, so the socket drains to EOF. A 1s recv
* timeout bounds the wait if the server wrongly kept the connection open. */
struct timeval rtv = { .tv_sec = 1, .tv_usec = 0 };
setsockopt(fd, SOL_SOCKET, SO_RCVTIMEO, &rtv, sizeof rtv);
uint8_t junk[80]; ssize_t rr;
while ((rr = read(fd, junk, sizeof junk)) > 0) { /* drain any in-flight, then EOF */ }
CHECK(rr == 0, "B: over-cap closed the connection (EOF)");
close(fd);
}
struct timespec t = { .tv_sec = 0, .tv_nsec = 50 * 1000000 };
nanosleep(&t, NULL);
vmsig_core_stop(core);
pthread_join(th, NULL);
vmsig_core_free(core);
vmsig_ctx_free(ctx);
}
int main(void) {
test_wire();
test_memwrite_tail();
printf("test_socket\n");
vmsig_ctx* ctx = vmsig_ctx_new();
vmsig_core* core = vmsig_core_new(ctx);
vmsig_core_set_audit(core, audit_cb, NULL);
const char* OK = "@vmsig-sock-ok-test";
const char* DENY = "@vmsig-sock-deny-test";
CHECK(vmsig_socket_attach(core, OK, pol_ok, NULL) == 0, "attach ok listener");
CHECK(vmsig_socket_attach(core, DENY, pol_deny, NULL) == 0, "attach deny listener");
pthread_t th;
pthread_create(&th, NULL, loop_main, core);
/* valid poller: connect -> policy -> admission */
int c1 = connect_abstract(OK);
CHECK(c1 >= 0, "client connected (ok)");
wait_atomic(&g_auth, 1, 1000);
CHECK(atomic_load(&g_auth) >= 1, "policy invoked — poller authenticated/admitted");
if (c1 >= 0) close(c1); /* disconnect -> deferred reap (no crash) */
/* unauthorized: connect -> server closes -> EOF on the client */
int c2 = connect_abstract(DENY);
CHECK(c2 >= 0, "client connected (deny)");
wait_atomic(&g_deny, 1, 1000);
CHECK(atomic_load(&g_deny) >= 1, "deny policy invoked");
if (c2 >= 0) {
struct timeval tv = { .tv_sec = 1, .tv_usec = 0 };
setsockopt(c2, SOL_SOCKET, SO_RCVTIMEO, &tv, sizeof tv);
char b; ssize_t r = read(c2, &b, 1);
CHECK(r == 0, "connection rejected by server (EOF)");
close(c2);
}
/* slot reuse: churn > MAX_CONTROLS(64). Without returning slots the listener
* would die after 64 cycles. Each cycle: connect(ok) -> wait auth++ -> close. */
int base = atomic_load(&g_auth);
const int churn = 70;
for (int k = 0; k < churn; k++) {
int fc = connect_abstract(OK);
if (fc < 0) { CHECK(0, "churn connect"); break; }
wait_atomic(&g_auth, base + k + 1, 1000);
close(fc);
struct timespec ts = { .tv_sec = 0, .tv_nsec = 2 * 1000000 };
nanosleep(&ts, NULL); /* let the loop reap before the next connection */
}
CHECK(atomic_load(&g_auth) >= base + churn,
"slots reused: churn > MAX_CONTROLS admitted");
/* audit recorded admissions and rejections */
CHECK(atomic_load(&g_admit) >= 1, "audit: poller admission");
CHECK(atomic_load(&g_reject) >= 1, "audit: rejection (deny listener)");
struct timespec t = { .tv_sec = 0, .tv_nsec = 50 * 1000000 };
nanosleep(&t, NULL); /* let the loop process the reaps */
vmsig_core_stop(core);
pthread_join(th, NULL);
vmsig_core_free(core);
vmsig_ctx_free(ctx);
printf("socket tests: %s\n", g_fail ? "FAIL" : "PASS");
return g_fail ? 1 : 0;
}