Files
lab/bastion/tests/integration/arm-pxe-provision.test.ts
Michal 346bd80c13
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test(bastion): cover the rescue boot path and record what it exposed
`provision debug` is the lab's recovery tool of last resort and had no
integration coverage on any architecture. Adding it -- x86_64 on KVM so
it runs in ~15 minutes, plus the aarch64 equivalent -- showed the rescue
environment coming up correctly but nothing ever listening on port 22.

Reproduced on both architectures, so it is neither ARM-specific nor an
emulation artefact, and it is orthogonal to the multi-arch work: x86_64
is unchanged by that. Documented in ARCHITECTURE.md with the leads worth
checking, rather than left as a silent gap.

Also restructures the ARM rescue suite to seed the machine into state
instead of discovering it first. That mirrors the DGX Spark situation --
SSH-onboarded, never PXE-discovered, architecture known only from its
record -- and holds the test to one emulated boot, since each spends
~15 of its ~18 minutes fetching Anaconda's stage2 under TCG.

KEEP_VM=1 leaves the VM up on failure; half-hour emulated runs are too
expensive to pay twice just to see what happened.

Co-Authored-By: Claude Opus 5 (1M context) <noreply@anthropic.com>
Claude-Session: https://claude.ai/code/session_015nRFZXpKwUVE4SRSHw6GjF
2026-08-11 15:25:57 +01:00

538 lines
22 KiB
TypeScript

// Integration test: aarch64 network PXE boot.
//
// The boot-ISO path already covered ARM (arm-iso-provision.test.ts). This covers the
// network path: DHCP option 93 handing an arm64 client an arm64 iPXE binary, dispatch
// serving an aarch64 kernel, and `provision debug` reaching a rescue shell -- which is
// what the DGX Sparks actually need and could not do.
//
// Two suites, because they cost very different amounts of time:
//
// "ARM PXE rescue" NBP handoff -> rescue with SSH. ~25-30 min
// "ARM PXE install" discover -> install -> installed. ~75-95 min
//
// The rescue suite seeds the machine into state as an already-known aarch64 box rather
// than discovering it first. That is the DGX Spark situation exactly -- SSH-onboarded,
// never PXE-discovered, architecture known only from its record -- and it holds the test
// to one emulated boot. Each boot spends ~15 of its ~18 minutes downloading Anaconda's
// stage2 under TCG, so discovering first would double the runtime without touching any
// code path the rescue boot does not already exercise.
//
// The install suite only runs with ARM_PXE_FULL=1. No ARM machine in the lab is ever
// PXE-installed except the MS-R1, and an hour-plus test that runs by default is a test
// nobody runs.
//
// IMPORTANT: aarch64 has no KVM on an x86_64 host, so all of this is emulated and
// roughly 10x slower than native.
//
// A note for whoever debugs a failure here: if the VM panics with
// VFS: Unable to mount root fs on unknown-block(0,0)
// that is very likely iPXE silently dropping the initrd because the build lacks
// EFI_LOAD_FILE2_PROTOCOL -- on arm64 the kernel EFI stub fetches the initrd over
// LoadFile2, and an iPXE without it accepts the `initrd` line and does nothing. It is
// NOT a reproduction of the DGX Spark kernel bug that motivated this work, despite
// being the identical message. assertIpxeSupportsLoadFile2() below checks the build up
// front so that failure names itself; to check by hand:
// node -e 'const b=require("fs").readFileSync("/usr/share/ipxe/arm64-efi/snponly.efi");
// console.log(b.indexOf(Buffer.from("c1c00640b3fc3e40996d4a6c8724e06d","hex")))'
// Fedora's ipxe-bootimgs-aarch64-20240119 has it at 0x3bbf0.
//
// Prerequisites:
// - qemu-system-aarch64 (sudo dnf install qemu-system-aarch64)
// - edk2-aarch64 (sudo dnf install edk2-aarch64)
// - ipxe-bootimgs-aarch64 (sudo dnf install ipxe-bootimgs-aarch64)
// - libvirtd, sudo, internet access
//
// Run: sudo ./scripts/test-provision.sh arm-pxe
import { describe, it, expect, beforeAll, afterAll } from "vitest";
import { readFileSync, existsSync, mkdirSync, rmSync, copyFileSync, writeFileSync } from "node:fs";
import { execSync } from "node:child_process";
import { join } from "node:path";
import { homedir, tmpdir } from "node:os";
import { log, waitForSsh } from "./helpers/libvirt.js";
import { ensurePxeNetwork, destroyPxeNetwork, deleteNftablesRejectRules, PXE_NETWORK_NAME, PXE_GATEWAY, PXE_SUBNET } from "./helpers/pxe-network.js";
import { createPxeVm, destroyPxeVm, getVmMac, rebootPxeVm, readSerialLog } from "./helpers/pxe-vm.js";
import { sshExec } from "./helpers/ssh.js";
const IPXE_ARM64 = "/usr/share/ipxe/arm64-efi/snponly.efi";
const AAVMF = "/usr/share/edk2/aarch64/QEMU_EFI.fd";
const VM_MEMORY = 4096;
const VM_VCPUS = 2;
const VM_DISK_GB = 250;
const SSH_USER = "lab";
const BASTION_IP = PXE_GATEWAY;
const DHCP_RANGE_START = `${PXE_SUBNET}.100`;
const DHCP_RANGE_END = `${PXE_SUBNET}.200`;
const SERIAL_PORT = 4555;
// Emulated aarch64 -- generous timeouts throughout. Measured on an x86_64 host with no
// KVM for aarch64: a single PXE boot to a running Anaconda takes ~18 minutes, almost all
// of it downloading inst.stage2 over the network under TCG. Budget well above that;
// timing out just short of success wastes a whole run.
const LEASE_TIMEOUT_MS = 10 * 60_000;
const DISCOVERY_TIMEOUT_MS = 35 * 60_000;
const INSTALL_TIMEOUT_MS = 75 * 60_000;
const SSH_TIMEOUT_MS = 35 * 60_000;
const RUN_FULL_INSTALL = process.env["ARM_PXE_FULL"] === "1";
function sleep(ms: number): Promise<void> {
return new Promise((r) => setTimeout(r, ms));
}
function findSshKey(): { pubKey: string; keyPath: string } {
const candidates: string[] = [];
if (process.env["SSH_KEY_PATH"]) candidates.push(process.env["SSH_KEY_PATH"]);
const homes = [homedir()];
const sudoUser = process.env["SUDO_USER"];
if (sudoUser) homes.push(join("/home", sudoUser));
for (const home of homes) {
for (const name of ["id_ed25519", "id_ecdsa", "id_rsa"]) {
candidates.push(join(home, ".ssh", name));
}
}
for (const keyPath of candidates) {
if (existsSync(keyPath) && existsSync(`${keyPath}.pub`)) {
return { pubKey: readFileSync(`${keyPath}.pub`, "utf-8").trim(), keyPath };
}
}
throw new Error("No SSH key found — set SSH_KEY_PATH or ensure keys exist in ~/.ssh/");
}
async function pollApi<T>(
url: string,
check: (data: T) => boolean,
timeoutMs: number,
intervalMs = 10_000,
): Promise<T> {
const start = Date.now();
while (Date.now() - start < timeoutMs) {
try {
const res = await fetch(url);
if (res.ok) {
const data = (await res.json()) as T;
if (check(data)) return data;
}
} catch { /* bastion not up yet, or a network hiccup */ }
await sleep(intervalMs);
}
throw new Error(`Timeout after ${timeoutMs}ms polling ${url}`);
}
function requirePrerequisites(): void {
if (!existsSync("/usr/bin/qemu-system-aarch64")) {
throw new Error("qemu-system-aarch64 not installed. Run: sudo dnf install qemu-system-aarch64");
}
if (!existsSync(AAVMF)) {
throw new Error(`AAVMF firmware not found at ${AAVMF}. Run: sudo dnf install edk2-aarch64`);
}
if (!existsSync(IPXE_ARM64)) {
throw new Error(`arm64 iPXE not found at ${IPXE_ARM64}. Run: sudo dnf install ipxe-bootimgs-aarch64`);
}
}
/**
* Confirm the arm64 iPXE binary implements EFI_LOAD_FILE2_PROTOCOL.
*
* Without it the `initrd` line is accepted and silently ignored, and the kernel panics
* with unknown-block(0,0). Checking here turns a confusing 30-minute boot failure into
* an immediate, explanatory one.
*
* GUID 4006c0c1-fcb3-403e-996d-4a6c8724e06d, little-endian in the binary's GUID table.
*/
function assertIpxeSupportsLoadFile2(): void {
const LOAD_FILE2_GUID = Buffer.from("c1c00640b3fc3e40996d4a6c8724e06d", "hex");
const binary = readFileSync(IPXE_ARM64);
if (binary.indexOf(LOAD_FILE2_GUID) < 0) {
throw new Error(
`${IPXE_ARM64} does not reference EFI_LOAD_FILE2_PROTOCOL. On arm64 the kernel ` +
`EFI stub fetches the initrd over LoadFile2; without it iPXE drops the initrd ` +
`silently and the kernel panics with "unknown-block(0,0)". Rebuild iPXE with ` +
`LoadFile2, or chainload grubaa64.efi for aarch64 instead.`,
);
}
log(`iPXE arm64 implements LoadFile2 — initrd will be delivered to the EFI stub`);
}
interface Harness {
testDir: string;
app: { close: () => Promise<void> };
stopDnsmasq: () => void;
state: { update: (fn: (s: BastionStateLike) => void) => void };
vmMac: string;
httpPort: number;
}
/** Just the parts of BastionState this test seeds. */
interface BastionStateLike {
discovered: Record<string, Record<string, unknown>>;
installed: Record<string, Record<string, unknown>>;
install_queue: Record<string, Record<string, unknown>>;
debug: Record<string, Record<string, unknown>>;
}
/** Bring up an isolated network, a bastion with both arch payloads, and an arm64 VM. */
async function startHarness(vmName: string, httpPort: number, pubKey: string): Promise<Harness> {
requirePrerequisites();
assertIpxeSupportsLoadFile2();
log("Setting up PXE test network...");
ensurePxeNetwork();
const testDir = join(tmpdir(), `lab-arm-pxe-test-${Date.now()}`);
for (const sub of ["tftp", "http", "logs"]) {
mkdirSync(join(testDir, sub), { recursive: true });
}
const { createApp } = await import("../../src/bastion/src/server.js");
const { loadConfig } = await import("../../src/bastion/src/config.js");
const { generateDnsmasqConf, startDnsmasq, stopDnsmasq } = await import("../../src/bastion/src/services/dnsmasq.js");
const { generateDiscoverKickstart } = await import("../../src/bastion/src/services/kickstart-generator.js");
const { renderBootIpxe, kernelPath, initrdPath } = await import("../../src/bastion/src/templates/boot.ipxe.js");
// Relative, not "@lab/shared": these tests run from the repo root against sources,
// where the workspace package alias is not resolvable.
const { SUPPORTED_ARCHES, fedoraMirrorFor } = await import("../../src/shared/src/hardware/index.js");
const config = loadConfig({
bastionDir: testDir,
httpPort,
iface: "virbr-pxe",
serverIp: BASTION_IP,
network: `${PXE_SUBNET}.0`,
gateway: BASTION_IP,
dhcpMode: "full",
dhcpRangeStart: DHCP_RANGE_START,
dhcpRangeEnd: DHCP_RANGE_END,
domain: "arm-pxe-test.local",
sshKeys: [pubKey],
adminUser: SSH_USER,
});
// iPXE binaries. The arm64 one is the whole point: dnsmasq hands it out on DHCP
// option 93 -- 11 for UEFI PXE (TFTP) and 19 for UEFI HTTP Boot.
//
// They go in BOTH directories, exactly as main.ts stages them. AAVMF prefers HTTP
// Boot, so it is served an http:// URL and fetches from httpDir; a firmware that
// takes the TFTP path reads the same file from tftpDir. Staging only tftpDir gives a
// 404 and "No bootable option or device was found" on the console.
log("Staging iPXE binaries...");
const ipxeX86 = "/usr/share/ipxe/ipxe-snponly-x86_64.efi";
copyFileSync(IPXE_ARM64, join(config.tftpDir, "ipxe-arm64.efi"));
copyFileSync(IPXE_ARM64, join(config.httpDir, "ipxe-arm64.efi"));
if (existsSync(ipxeX86)) {
copyFileSync(ipxeX86, join(config.tftpDir, "ipxe.efi"));
copyFileSync(ipxeX86, join(config.httpDir, "ipxe.efi"));
}
// Fedora kernel + initrd for both architectures, cached across runs.
const cacheDir = "/var/lib/libvirt/images/lab-pxe-cache";
execSync(`mkdir -p "${cacheDir}"`, { stdio: "pipe" });
for (const arch of SUPPORTED_ARCHES) {
const mirror = fedoraMirrorFor(config.fedoraVersion, arch);
const kernelCache = join(cacheDir, `vmlinuz-${arch}`);
const initrdCache = join(cacheDir, `initrd-${arch}.img`);
if (!existsSync(kernelCache)) {
log(`Downloading Fedora ${config.fedoraVersion} ${arch} kernel...`);
execSync(`curl -# -L -f -o "${kernelCache}" "${mirror}/images/pxeboot/vmlinuz"`, { stdio: "inherit", timeout: 600_000 });
}
if (!existsSync(initrdCache)) {
log(`Downloading Fedora ${config.fedoraVersion} ${arch} initrd...`);
execSync(`curl -# -L -f -o "${initrdCache}" "${mirror}/images/pxeboot/initrd.img"`, { stdio: "inherit", timeout: 600_000 });
}
// Staged under the exact names the iPXE templates will ask for.
copyFileSync(kernelCache, join(config.httpDir, kernelPath(arch)));
copyFileSync(initrdCache, join(config.httpDir, initrdPath(arch)));
log(`Staged ${arch}: ${kernelPath(arch)} + ${initrdPath(arch)}`);
}
writeFileSync(join(config.httpDir, "discover.ks"), generateDiscoverKickstart(config));
writeFileSync(
join(config.httpDir, "boot.ipxe"),
renderBootIpxe({ serverIp: config.serverIp, httpPort: config.httpPort }),
);
generateDnsmasqConf(config);
const { app, state, syslog } = createApp(config);
await app.listen({ port: config.httpPort, host: "0.0.0.0" });
syslog.start();
log(`Bastion HTTP listening on :${config.httpPort}`);
log("Starting dnsmasq (full DHCP)...");
startDnsmasq(config).catch((err) => {
log(`dnsmasq failed: ${err instanceof Error ? err.message : String(err)}`);
});
await sleep(1500);
log("Creating aarch64 PXE VM (emulated — this is slow)...");
createPxeVm({
name: vmName,
memory: VM_MEMORY,
vcpus: VM_VCPUS,
diskSize: VM_DISK_GB,
network: PXE_NETWORK_NAME,
arch: "aarch64",
});
const vmMac = getVmMac(vmName);
if (!vmMac) throw new Error("Could not determine VM MAC address");
log(`ARM VM MAC: ${vmMac}`);
return {
testDir,
app,
stopDnsmasq,
state: state as unknown as Harness["state"],
vmMac,
httpPort: config.httpPort,
};
}
async function stopHarness(vmName: string, harness: Harness | undefined): Promise<void> {
// KEEP_VM=1 leaves the VM, network and bastion up so a failure can be inspected on
// the console. Emulated aarch64 runs cost half an hour; tearing the evidence down
// automatically means paying that again to see what happened.
if (process.env["KEEP_VM"] === "1") {
log(`KEEP_VM=1 — leaving ${vmName} running for inspection.`);
log(` console: sudo virsh screenshot ${vmName} /tmp/vm.ppm`);
log(` serial: socat - TCP:127.0.0.1:${SERIAL_PORT}`);
if (harness) log(` bastion: ${harness.testDir} (still serving on :${harness.httpPort})`);
log(` cleanup: sudo virsh destroy ${vmName}; sudo virsh undefine ${vmName} --remove-all-storage --nvram`);
return;
}
log("Cleaning up...");
if (harness) {
await harness.app.close().catch(() => {});
harness.stopDnsmasq();
}
destroyPxeVm(vmName);
destroyPxeNetwork();
if (harness) rmSync(harness.testDir, { recursive: true, force: true });
}
/** Read the DHCP lease the bastion handed a MAC. Rescue mode reports no IP itself. */
function leaseIpFor(testDir: string, mac: string): string | null {
const leaseFile = join(testDir, "dnsmasq.leases");
if (!existsSync(leaseFile)) return null;
for (const line of readFileSync(leaseFile, "utf-8").split("\n")) {
// <expiry> <mac> <ip> <hostname> <clientid>
const parts = line.trim().split(/\s+/);
if (parts.length >= 3 && parts[1]?.toLowerCase() === mac.toLowerCase()) {
return parts[2] ?? null;
}
}
return null;
}
async function waitForLease(testDir: string, mac: string, timeoutMs: number): Promise<string> {
const start = Date.now();
while (Date.now() - start < timeoutMs) {
const ip = leaseIpFor(testDir, mac);
if (ip !== null) return ip;
await sleep(5000);
}
throw new Error(`No DHCP lease for ${mac} within ${timeoutMs}ms`);
}
// ---------------------------------------------------------------------------
// Rescue path -- what the DGX Sparks need.
// ---------------------------------------------------------------------------
describe("ARM PXE rescue", () => {
const VM_NAME = "lab-arm-pxe-rescue";
const HTTP_PORT = 8096;
let harness: Harness | undefined;
let sshKeyPath: string;
let rescueIp: string;
beforeAll(async () => {
const { pubKey, keyPath } = findSshKey();
sshKeyPath = keyPath;
harness = await startHarness(VM_NAME, HTTP_PORT, pubKey);
const { testDir, vmMac, state } = harness;
// Seed the machine as an already-known aarch64 box queued for rescue. This is the
// DGX Spark situation exactly: SSH-onboarded, never PXE-discovered, architecture
// known only from its record -- and it also keeps the test to a SINGLE emulated
// boot. Each boot spends ~15 minutes pulling Anaconda's stage2 over the network
// under TCG, so discovering first and rescuing second doubles the runtime for no
// extra coverage of the path being tested. Discovery is covered by the full suite.
log(`Seeding ${vmMac} as a known aarch64 machine queued for rescue...`);
state.update((s) => {
s.discovered[vmMac] = {
mac: vmMac,
product: "Test ARM64 Machine",
board: "virt",
serial: "SN-ARM64",
manufacturer: "QEMU",
cpu_model: "cortex-a57",
cpu_cores: VM_VCPUS,
memory_gb: 4,
arch: "aarch64",
disks: [],
nics: [],
first_seen: new Date().toISOString(),
last_seen: new Date().toISOString(),
};
s.debug[vmMac] = { hostname: "arm-rescue-test", queued_at: new Date().toISOString() };
});
// Restart so the VM boots against the seeded state. createPxeVm already started it.
rebootPxeVm(VM_NAME);
await sleep(5_000);
deleteNftablesRejectRules();
// The whole chain now runs once: DHCP option 93 -> arm64 iPXE -> /boot.ipxe ->
// /dispatch (architecture from the record, not the query) -> aarch64 kernel +
// initrd -> Anaconda rescue -> sshd. Reaching a shell at all proves iPXE handed
// the initrd to the EFI stub over LoadFile2; without it the kernel panics first.
log("Waiting for the rescue environment's DHCP lease...");
rescueIp = await waitForLease(testDir, vmMac, LEASE_TIMEOUT_MS);
log(`Rescue IP: ${rescueIp}`);
log("Waiting for SSH into the rescue shell (started by inst.sshd)...");
log("(emulated aarch64 — Anaconda's stage2 download dominates; be patient)");
await waitForSsh(rescueIp, "root", SSH_TIMEOUT_MS, sshKeyPath).catch(async (err) => {
log("Rescue SSH timed out. Serial console:");
try {
log(await readSerialLog(SERIAL_PORT, { lastLines: 100, timeoutMs: 15_000 }));
} catch { /* console unavailable */ }
throw err;
});
log("ARM PXE rescue reached.");
}, LEASE_TIMEOUT_MS + SSH_TIMEOUT_MS + 300_000);
afterAll(async () => { await stopHarness(VM_NAME, harness); });
it("resolved the architecture from the machine record", async () => {
const res = await fetch(`http://${BASTION_IP}:${HTTP_PORT}/api/machines`);
const data = (await res.json()) as { discovered: Record<string, { arch: string }> };
expect(data.discovered[harness!.vmMac]?.arch).toBe("aarch64");
});
it("rescue shell is reachable over SSH and is aarch64", () => {
const result = sshExec(rescueIp, "root", "uname -m", { keyPath: sshKeyPath, timeout: 60_000 });
expect(result.exitCode).toBe(0);
expect(result.stdout.trim()).toBe("aarch64");
});
it("booted an initramfs — the LoadFile2 path worked", () => {
// If iPXE had dropped the initrd the kernel would never have reached userspace at
// all, but assert it explicitly so a regression names itself.
const result = sshExec(rescueIp, "root", "cat /proc/cmdline; ls /run/install", {
keyPath: sshKeyPath, timeout: 60_000,
});
expect(result.exitCode).toBe(0);
expect(result.stdout).toContain("inst.rescue");
});
it("rescue kernel came from the bastion over HTTP", () => {
const result = sshExec(rescueIp, "root", "cat /proc/cmdline", { keyPath: sshKeyPath, timeout: 60_000 });
expect(result.stdout).toContain(`${BASTION_IP}:${HTTP_PORT}`);
// arm64 gets serial console arguments, never nomodeset.
expect(result.stdout).toContain("console=ttyAMA0");
expect(result.stdout).not.toContain("nomodeset");
});
it("has LVM tools available for inspecting an installed system", () => {
const result = sshExec(rescueIp, "root", "command -v vgchange && command -v lsblk", {
keyPath: sshKeyPath, timeout: 60_000,
});
expect(result.exitCode).toBe(0);
});
});
// ---------------------------------------------------------------------------
// Full install -- opt-in, ~60-90 minutes emulated.
// ---------------------------------------------------------------------------
describe.runIf(RUN_FULL_INSTALL)("ARM PXE install", () => {
const VM_NAME = "lab-arm-pxe-install";
const HTTP_PORT = 8095;
let harness: Harness | undefined;
let sshKeyPath: string;
let vmIp: string;
beforeAll(async () => {
const { pubKey, keyPath } = findSshKey();
sshKeyPath = keyPath;
harness = await startHarness(VM_NAME, HTTP_PORT, pubKey);
const { vmMac } = harness;
log("Waiting for aarch64 discovery...");
await pollApi<{ discovered: Record<string, unknown> }>(
`http://${BASTION_IP}:${HTTP_PORT}/api/machines`,
(data) => vmMac in data.discovered,
DISCOVERY_TIMEOUT_MS,
);
log("Discovered. Queueing install...");
const installRes = await fetch(`http://${BASTION_IP}:${HTTP_PORT}/api/install`, {
method: "POST",
headers: { "Content-Type": "application/json" },
body: JSON.stringify({ mac: vmMac, hostname: VM_NAME, disk: "", role: "vanilla" }),
});
expect(installRes.status).toBe(200);
await sleep(30_000);
rebootPxeVm(VM_NAME);
log("Waiting for the emulated aarch64 install (60-90 min)...");
type LogsResponse = { status: string; progress: string; ip?: string };
const final = await pollApi<LogsResponse>(
`http://${BASTION_IP}:${HTTP_PORT}/api/logs/${encodeURIComponent(vmMac)}`,
(d) => d.status === "installed" || d.progress === "error",
INSTALL_TIMEOUT_MS,
30_000,
);
if (final.progress === "error") {
const logs = await (await fetch(`http://${BASTION_IP}:${HTTP_PORT}/api/logs/${encodeURIComponent(vmMac)}`)).json();
log(`ARM install FAILED: ${JSON.stringify(logs, null, 2)}`);
throw new Error("ARM PXE install failed — see logs above");
}
vmIp = final.ip ?? "";
log(`ARM install complete. IP: ${vmIp}`);
await sleep(30_000);
rebootPxeVm(VM_NAME);
await sleep(5_000);
deleteNftablesRejectRules();
await waitForSsh(vmIp, SSH_USER, SSH_TIMEOUT_MS, sshKeyPath);
}, DISCOVERY_TIMEOUT_MS + INSTALL_TIMEOUT_MS + SSH_TIMEOUT_MS + 600_000);
afterAll(async () => { await stopHarness(VM_NAME, harness); });
it("machine reached installed state", async () => {
const res = await fetch(`http://${BASTION_IP}:${HTTP_PORT}/api/machines`);
const data = (await res.json()) as { installed: Record<string, { hostname: string }> };
expect(data.installed[harness!.vmMac]?.hostname).toBe(VM_NAME);
});
it("installed system is aarch64", () => {
const result = sshExec(vmIp, SSH_USER, "uname -m", { keyPath: sshKeyPath, timeout: 60_000 });
expect(result.stdout.trim()).toBe("aarch64");
});
it("SSH works with the admin user", () => {
const result = sshExec(vmIp, SSH_USER, "whoami", { keyPath: sshKeyPath, timeout: 60_000 });
expect(result.stdout.trim()).toBe(SSH_USER);
});
it("LVM layout is correct", () => {
const result = sshExec(vmIp, SSH_USER, "sudo lvs labvg --noheadings -o lv_name", {
keyPath: sshKeyPath, timeout: 60_000,
});
expect(result.exitCode).toBe(0);
const lvs = result.stdout.trim().split("\n").map((l) => l.trim());
for (const expected of ["root", "var", "varlog", "swap", "home", "srv"]) {
expect(lvs).toContain(expected);
}
});
});