feat(tunnel): zero-touch tunnel enrollment — control-plane PKI, host agent, iOS, nginx isolation

Customers install one command / log in once; hardware-generated keys never leave the
device; CSRs return certs + subdomain; frpc + base-app run as durable services. No .p12,
no manual cert import. Implements the MVP fast-path of docs/PLAN_TUNNEL_AUTOMATION.md.

Control-plane / PKI (control-plane/):
- ca/x509-assembler.ts: single KMS-signed real X.509 issuance primitive (Ed25519 + P-256)
- ca/csr-ec.ts: P-256 PKCS#10 proof-of-possession (verifyCsrPoPEc) + CSR-key routing
- ca/frpclient-issue.ts, ca/device-issue.ts: P-256 frp-client + device leaf signers
- ca/rotate.ts + api/renew.ts: real-X.509 /renew + /device/:id/renew (mTLS current cert)
- registry/devices.ts: device registry + per-account cap/rate-limit
- auth/session.ts: device:enroll capability token mint/verify
- api/device-enroll.ts: POST /device/enroll (ownership-gated, deny-by-default)
- pairing/native-redeem.ts + shared gateAndConsumePairingCode; api/provision.ts native arm
- boot/native-ca.ts + main.ts: wire two P-256 CAs + issuers + routers (dev / KMS fail-fast)

Contracts: relay-contracts enroll right; relay-auth SPIFFE /device/ arm + spiffeIdFor(kind)

Host agent (agent/):
- transport/frpcToml.ts; provision/frpcBinary.ts + untar.ts (verify-download + traversal-safe extract)
- keys P-256 keygen/CSR/loadIdentity; service two-unit install + BIND_HOST loopback S-GATE
- net/loopbackLiteral.ts strict guard; health/probe.ts + transport/frpSupervise.ts; cli pair --install

iOS (ios/Packages/ClientTLS): SecureEnclaveKey + CertificateSigningRequest + DeviceEnrollmentClient
+ Keychain enroll refactor (SecKey/Security.framework end-to-end, avoids the -25300 trap)

Isolation (deploy/nginx): njs/getCertSub.js SAN parser + zone-anchored map -> 403

Verified: 758 tests green (control-plane 246, agent 267, relay-auth 133, relay-contracts 85,
iOS ClientTLS 27), all tsc clean; real nginx+njs docker 403/200/400; Swift CSR accepted by
the real control-plane verifier; frpc extract byte-identical to `tar -xO`. Cross-validation
caught + fixed 5 real defects (1 critical, 4 high). Remaining = infra (KMS, nginx deploy,
VPS frps, physical iPhone) per PROGRESS_LOG runbook.

Co-Authored-By: Claude Opus 4.8 (1M context) <noreply@anthropic.com>
This commit is contained in:
Yaojia Wang
2026-07-10 16:11:13 +02:00
parent 31054450fc
commit e7f3bd05f0
79 changed files with 9920 additions and 385 deletions

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@@ -0,0 +1,181 @@
import Foundation
/// C-iOS · Manual DER encoder for a P-256 PKCS#10 `CertificationRequest`.
///
/// Built by hand (no CryptoKit / SecCertificate helpers) so the exact bytes are
/// under our control and the request is signed with a Secure-Enclave `SecKey`
/// via `SecKeyCreateSignature(.ecdsaSignatureMessageX962SHA256)` see the
/// `[FIX C-native, ClientTLS trap]` note on `SecureEnclaveKey`.
///
/// The output must satisfy the control-plane `verifyCsrPoPEc` (A1): an EC P-256
/// `SubjectPublicKeyInfo` (algorithm `id-ecPublicKey` + namedCurve `prime256v1`),
/// a self-signature under `ecdsa-with-SHA256`, and a valid PoP. Encoding is
/// strictly canonical DER (minimal lengths) so the server's re-serialization of
/// `CertificationRequestInfo` matches the bytes we signed.
///
/// ```
/// CertificationRequest ::= SEQUENCE {
/// certificationRequestInfo CertificationRequestInfo,
/// signatureAlgorithm AlgorithmIdentifier, -- ecdsa-with-SHA256
/// signature BIT STRING } -- X9.62 DER ECDSA-Sig
///
/// CertificationRequestInfo ::= SEQUENCE {
/// version INTEGER { v1(0) },
/// subject Name,
/// subjectPKInfo SubjectPublicKeyInfo,
/// attributes [0] IMPLICIT SET OF Attribute } -- empty
/// ```
public enum CertificateSigningRequest {
public enum CSRError: Error, Equatable, Sendable {
/// The public key was not the expected 65-byte X9.63 uncompressed point.
case invalidPublicKey
/// The empty subject CN is not encodable.
case invalidSubject
}
/// P-256 uncompressed public point is `0x04 || X(32) || Y(32)` = 65 bytes.
private static let uncompressedP256PointLength = 65
/// Build and self-sign a P-256 PKCS#10 CSR DER for `signer`'s key.
///
/// - Parameters:
/// - subjectCommonName: the CSR subject CN. The device leaf's identity is
/// driven server-side by the ownership-verified subdomain SAN, so this is
/// descriptive only; it must be non-empty.
/// - signer: the P-256 hardware key that provides the public key and signs
/// the `CertificationRequestInfo`.
public static func der(
subjectCommonName: String, signer: any P256HardwareKey
) throws -> Data {
guard !subjectCommonName.isEmpty else { throw CSRError.invalidSubject }
let publicPoint = [UInt8](try signer.publicKeyX963())
guard publicPoint.count == uncompressedP256PointLength, publicPoint[0] == 0x04 else {
throw CSRError.invalidPublicKey
}
let requestInfo = certificationRequestInfo(
subjectCommonName: subjectCommonName, publicPoint: publicPoint
)
let signature = [UInt8](try signer.sign(Data(requestInfo)))
let request = DERWriter.sequence([
requestInfo,
ecdsaWithSHA256AlgorithmIdentifier,
DERWriter.bitString(signature),
])
return Data(request)
}
// MARK: - CertificationRequestInfo
private static func certificationRequestInfo(
subjectCommonName: String, publicPoint: [UInt8]
) -> [UInt8] {
DERWriter.sequence([
DERWriter.integer0, // version v1(0)
name(commonName: subjectCommonName),
subjectPublicKeyInfo(publicPoint: publicPoint),
DERWriter.emptyAttributesContext0, // [0] IMPLICIT SET OF Attribute (empty)
])
}
/// `Name ::= SEQUENCE OF RelativeDistinguishedName` with a single CN RDN.
private static func name(commonName: String) -> [UInt8] {
let attribute = DERWriter.sequence([
DERWriter.oid(OID.commonName),
DERWriter.utf8String(commonName),
])
let rdn = DERWriter.set([attribute])
return DERWriter.sequence([rdn])
}
/// `SubjectPublicKeyInfo` for an EC P-256 key: `id-ecPublicKey` +
/// `prime256v1` named curve, then the uncompressed point as a BIT STRING.
private static func subjectPublicKeyInfo(publicPoint: [UInt8]) -> [UInt8] {
let algorithm = DERWriter.sequence([
DERWriter.oid(OID.ecPublicKey),
DERWriter.oid(OID.prime256v1),
])
return DERWriter.sequence([
algorithm,
DERWriter.bitString(publicPoint),
])
}
/// `AlgorithmIdentifier` for `ecdsa-with-SHA256` no parameters (absent, per
/// RFC 5758), which is exactly what the server's verifier expects.
private static let ecdsaWithSHA256AlgorithmIdentifier: [UInt8] =
DERWriter.sequence([DERWriter.oid(OID.ecdsaWithSHA256)])
}
// MARK: - Object identifiers (DER content bytes, tag/length added by DERWriter.oid)
private enum OID {
/// 1.2.840.10045.2.1 id-ecPublicKey.
static let ecPublicKey: [UInt8] = [0x2A, 0x86, 0x48, 0xCE, 0x3D, 0x02, 0x01]
/// 1.2.840.10045.3.1.7 prime256v1 / secp256r1.
static let prime256v1: [UInt8] = [0x2A, 0x86, 0x48, 0xCE, 0x3D, 0x03, 0x01, 0x07]
/// 1.2.840.10045.4.3.2 ecdsa-with-SHA256.
static let ecdsaWithSHA256: [UInt8] = [0x2A, 0x86, 0x48, 0xCE, 0x3D, 0x04, 0x03, 0x02]
/// 2.5.4.3 id-at-commonName.
static let commonName: [UInt8] = [0x55, 0x04, 0x03]
}
// MARK: - Minimal canonical DER writer
/// A tiny DER encoder. Every helper returns a fully-formed TLV so callers just
/// concatenate children canonical minimal-length encoding throughout.
enum DERWriter {
private static let tagInteger: UInt8 = 0x02
private static let tagBitString: UInt8 = 0x03
private static let tagOID: UInt8 = 0x06
private static let tagUTF8String: UInt8 = 0x0C
private static let tagSequence: UInt8 = 0x30
private static let tagSet: UInt8 = 0x31
private static let tagContext0Constructed: UInt8 = 0xA0
/// `INTEGER 0` the fixed PKCS#10 version v1(0).
static let integer0: [UInt8] = [tagInteger, 0x01, 0x00]
/// `[0] IMPLICIT SET OF Attribute`, empty `A0 00`.
static let emptyAttributesContext0: [UInt8] = [tagContext0Constructed, 0x00]
static func sequence(_ children: [[UInt8]]) -> [UInt8] {
tlv(tagSequence, children.flatMap { $0 })
}
static func set(_ children: [[UInt8]]) -> [UInt8] {
tlv(tagSet, children.flatMap { $0 })
}
static func oid(_ content: [UInt8]) -> [UInt8] {
tlv(tagOID, content)
}
static func utf8String(_ value: String) -> [UInt8] {
tlv(tagUTF8String, [UInt8](Data(value.utf8)))
}
/// BIT STRING with zero unused bits (all our bit strings are byte-aligned).
static func bitString(_ content: [UInt8]) -> [UInt8] {
tlv(tagBitString, [0x00] + content)
}
/// Tag-Length-Value with canonical DER length encoding.
private static func tlv(_ tag: UInt8, _ value: [UInt8]) -> [UInt8] {
[tag] + length(value.count) + value
}
/// DER length: short form (<128) or long form (0x80 | byteCount, big-endian).
private static func length(_ count: Int) -> [UInt8] {
if count < 0x80 { return [UInt8(count)] }
var value = count
var bytes: [UInt8] = []
while value > 0 {
bytes.insert(UInt8(value & 0xFF), at: 0)
value >>= 8
}
return [0x80 | UInt8(bytes.count)] + bytes
}
}

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@@ -0,0 +1,210 @@
import Foundation
/// C-iOS · Talks to the control-plane device-enrollment API (A4):
///
/// `POST /device/enroll` [Bearer device:enroll]
/// body { csr, keyAlg:'ec-p256', subdomain, deviceName, attestation? }
/// 201 { deviceId, cert, caChain, notBefore, notAfter, renewAfter }
///
/// `POST /device/attest/challenge` [Bearer device:enroll] { challenge, expires_in }
/// `POST /device/:id/renew` [Bearer device:enroll] (A6 seam)
///
/// Deliberately logic-free about TLS: it only builds requests and maps responses.
/// The `EnrollmentTransport` seam (same `send(_:)` shape as the app's
/// `HTTPTransport`) lets the App inject `URLSessionHTTPTransport` in production
/// and a stub in tests. The `csr` is sent as standard base64(DER), which the
/// server's `decodeCsrWire` accepts directly.
public struct DeviceEnrollmentClient: Sendable {
private let baseURL: URL
/// The one-time account `device:enroll` bearer obtained at login.
private let bearerToken: String
private let transport: any EnrollmentTransport
public init(baseURL: URL, bearerToken: String, transport: any EnrollmentTransport) {
self.baseURL = baseURL
self.bearerToken = bearerToken
self.transport = transport
}
/// Enroll a freshly-generated hardware key: POST the CSR, receive the leaf.
public func enroll(
csrDER: Data, subdomain: String, deviceName: String, attestation: String? = nil
) async throws -> EnrollmentResult {
var body: [String: String] = [
"csr": csrDER.base64EncodedString(),
"keyAlg": "ec-p256",
"subdomain": subdomain,
"deviceName": deviceName,
]
if let attestation { body["attestation"] = attestation }
let request = try makeJSONRequest(path: "/device/enroll", jsonObject: body)
return try await sendExpectingLeaf(request)
}
/// Renew against the SAME hardware key (A6 seam): a fresh CSR to
/// `/device/:id/renew`. Server support lands in A6; the client shape is here
/// so the rotation scheduler has an endpoint to drive.
public func renew(deviceId: String, csrDER: Data) async throws -> EnrollmentResult {
let body = ["csr": csrDER.base64EncodedString(), "keyAlg": "ec-p256"]
let path = "/device/\(deviceId)/renew"
let request = try makeJSONRequest(path: path, jsonObject: body)
return try await sendExpectingLeaf(request)
}
/// Fetch a short-TTL attestation challenge (stub server-side; shapes the
/// keygenattestCSR flow so App Attest can layer in later build order C·4).
public func attestChallenge() async throws -> AttestChallenge {
let request = try makeJSONRequest(path: "/device/attest/challenge", jsonObject: [:])
let (data, response) = try await transport.send(request)
guard response.statusCode == 200 else {
throw DeviceEnrollmentError.http(status: response.statusCode, code: errorCode(in: data))
}
guard let dto = try? JSONDecoder().decode(AttestChallengeDTO.self, from: data) else {
throw DeviceEnrollmentError.malformedResponse
}
return AttestChallenge(challenge: dto.challenge, expiresIn: dto.expires_in)
}
// MARK: - Request/response plumbing
private func makeJSONRequest(path: String, jsonObject: [String: String]) throws -> URLRequest {
guard let url = URL(string: path, relativeTo: baseURL) else {
throw DeviceEnrollmentError.malformedResponse
}
var request = URLRequest(url: url)
request.httpMethod = "POST"
request.setValue("Bearer \(bearerToken)", forHTTPHeaderField: "Authorization")
request.setValue("application/json", forHTTPHeaderField: "Content-Type")
request.httpBody = try JSONSerialization.data(withJSONObject: jsonObject)
return request
}
private func sendExpectingLeaf(_ request: URLRequest) async throws -> EnrollmentResult {
let (data, response) = try await transport.send(request)
guard response.statusCode == 201 else {
throw DeviceEnrollmentError.http(status: response.statusCode, code: errorCode(in: data))
}
guard let dto = try? JSONDecoder().decode(EnrollResponseDTO.self, from: data) else {
throw DeviceEnrollmentError.malformedResponse
}
return try dto.toResult()
}
private func errorCode(in data: Data) -> String? {
(try? JSONDecoder().decode(ErrorDTO.self, from: data))?.error
}
}
// MARK: - Transport seam
/// The one exchange the enrollment client needs identical in shape to the
/// app's `HTTPTransport.send`, so the production `URLSessionHTTPTransport` slots
/// in via a one-line adapter and tests inject a stub. Kept local so `ClientTLS`
/// stays a leaf package (no dependency on the WireProtocol transport contract).
public protocol EnrollmentTransport: Sendable {
func send(_ request: URLRequest) async throws -> (Data, HTTPURLResponse)
}
// MARK: - Results & errors
public struct EnrollmentResult: Equatable, Sendable {
public let deviceId: String
/// Leaf certificate DER (decoded from the response's base64).
public let certificate: Data
/// Issuer chain DERs (device-CA etc.), leaf excluded.
public let caChain: [Data]
public let notBefore: Date?
public let notAfter: Date?
/// When to renew from the same hardware key (~2/3 of the lifetime).
public let renewAfter: Date?
public init(
deviceId: String, certificate: Data, caChain: [Data],
notBefore: Date?, notAfter: Date?, renewAfter: Date?
) {
self.deviceId = deviceId
self.certificate = certificate
self.caChain = caChain
self.notBefore = notBefore
self.notAfter = notAfter
self.renewAfter = renewAfter
}
/// The rotation seam: is the leaf due for renewal as of `now`?
/// A missing `renewAfter` never triggers (fail-safe the TLS stack is the
/// real gate; the scheduler only pre-empts expiry).
public func isRenewalDue(asOf now: Date = Date()) -> Bool {
guard let renewAfter else { return false }
return now >= renewAfter
}
}
public struct AttestChallenge: Equatable, Sendable {
public let challenge: String
public let expiresIn: Int
}
public enum DeviceEnrollmentError: Error, Equatable, Sendable {
/// Non-success HTTP status with the server's uniform `{ error }` code, if any
/// (401 missing/rejected token, 403 subdomain-not-owned, 429 rate_limited,
/// 400 rejected CSR/subdomain).
case http(status: Int, code: String?)
/// 2xx body that did not decode to the expected shape.
case malformedResponse
}
// MARK: - Wire DTOs (base64 + ISO-8601 strings, mapped to typed values)
private struct EnrollResponseDTO: Decodable {
let deviceId: String
let cert: String
let caChain: [String]
let notBefore: String?
let notAfter: String?
let renewAfter: String?
func toResult() throws -> EnrollmentResult {
guard let certificate = Data(base64Encoded: cert) else {
throw DeviceEnrollmentError.malformedResponse
}
let chain = try caChain.map { entry -> Data in
guard let der = Data(base64Encoded: entry) else {
throw DeviceEnrollmentError.malformedResponse
}
return der
}
return EnrollmentResult(
deviceId: deviceId,
certificate: certificate,
caChain: chain,
notBefore: ISO8601.date(notBefore),
notAfter: ISO8601.date(notAfter),
renewAfter: ISO8601.date(renewAfter)
)
}
}
private struct AttestChallengeDTO: Decodable {
let challenge: String
let expires_in: Int // swiftlint:disable:this identifier_name wire field name
}
private struct ErrorDTO: Decodable {
let error: String
}
/// The server emits `Date.toISOString()` (fractional-second UTC). Parse with and
/// without fractional seconds so both `...T00:00:00.000Z` and `...T00:00:00Z`
/// decode; an unparseable/absent value degrades to `nil` (dates are advisory).
private enum ISO8601 {
static func date(_ text: String?) -> Date? {
guard let text else { return nil }
// Formatters are created per call: ISO8601DateFormatter is not Sendable,
// so it cannot be a shared static under Swift 6 strict concurrency. Date
// parsing here is rare (once per enroll/renew), so the cost is immaterial.
let withFractional = ISO8601DateFormatter()
withFractional.formatOptions = [.withInternetDateTime, .withFractionalSeconds]
if let date = withFractional.date(from: text) { return date }
return ISO8601DateFormatter().date(from: text)
}
}

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@@ -50,6 +50,18 @@ private struct StoredP12Blob: Codable {
let passphrase: String
}
/// C-iOS · The enrolled-identity record stored beside the Secure-Enclave leaf:
/// the issuer chain (presented on the handshake), the `deviceId` (drives renew),
/// and the rotation timing. The private key itself never lives here it stays
/// non-exportable in the Secure Enclave.
private struct StoredEnrollment: Codable {
let deviceId: String
let deviceName: String
let caChain: [Data]
let notAfter: Date?
let renewAfter: Date?
}
/// Keychain-backed store: one `kSecClassGenericPassword` item holding the
/// JSON-encoded `StoredP12Blob` in `kSecValueData`, protected with
/// `kSecAttrAccessibleAfterFirstUnlockThisDeviceOnly` (available after the first
@@ -77,6 +89,10 @@ public struct KeychainClientIdentityStore: ClientIdentityStore {
}
public func loadIdentity() throws -> ClientIdentity? {
// C-iOS · Prefer the Secure-Enclave-backed enrolled identity (the .p12-free
// path). During the dual-trust migration window a device may still carry a
// legacy imported `.p12`; fall back to it so existing installs keep working.
if let enrolled = try loadDeviceIdentity() { return enrolled }
guard let blob = try readBlob() else { return nil }
return try PKCS12Importer.importIdentity(
data: blob.p12, passphrase: blob.passphrase
@@ -88,6 +104,9 @@ public struct KeychainClientIdentityStore: ClientIdentityStore {
}
public func remove() throws {
// Clear BOTH paths so removal is unconditional: the SE key + enrolled leaf
// and the legacy `.p12` blob.
try removeEnrolled()
let status = SecItemDelete(baseQuery() as CFDictionary)
guard status == errSecSuccess || status == errSecItemNotFound else {
throw ClientIdentityStoreError.keychain(status)
@@ -95,12 +114,196 @@ public struct KeychainClientIdentityStore: ClientIdentityStore {
}
public func hasInstalledIdentity() -> Bool {
if hasEnrolledLeaf() { return true }
var query = baseQuery()
query[kSecReturnData as String] = false
query[kSecMatchLimit as String] = kSecMatchLimitOne
return SecItemCopyMatching(query as CFDictionary, nil) == errSecSuccess
}
// MARK: - C-iOS · Secure-Enclave enrollment (the .p12-free path)
/// Keychain tag of the device's Secure-Enclave private key. The enrolled leaf
/// binds to this key so `SecItemCopyMatching(kSecClassIdentity)` can assemble
/// the `SecIdentity` presented on the existing mTLS path (unchanged).
private var deviceKeyTag: Data { Data("\(service).device-key".utf8) }
/// Label under which the enrolled leaf certificate is stored.
private var leafLabel: String { "\(service).device-leaf" }
/// Account of the generic-password item holding the enrollment record
/// (deviceId + issuer chain + rotation timing) alongside the leaf.
private var enrollmentAccount: String { "\(account).enrollment" }
/// One-time enrollment: generate a NON-EXPORTABLE Secure-Enclave P-256 key,
/// self-sign a CSR with it, POST it, and store the returned leaf against that
/// key. Returns the installed cert's summary. `keyProvider` is injectable so
/// non-device builds can supply a software key; production defaults to the SE.
public func enroll(
using client: DeviceEnrollmentClient,
subdomain: String,
deviceName: String,
keyProvider: (@Sendable () throws -> any P256HardwareKey)? = nil
) async throws -> ClientCertificateSummary? {
let key = try keyProvider?()
?? SecureEnclaveKeyFactory.generateSecureEnclave(tag: deviceKeyTag)
let csr = try CertificateSigningRequest.der(subjectCommonName: deviceName, signer: key)
let result = try await client.enroll(
csrDER: csr, subdomain: subdomain, deviceName: deviceName
)
try storeEnrolledLeaf(result, deviceName: deviceName)
return try loadSummary()
}
/// Rotation: re-CSR from the SAME Secure-Enclave key and replace the leaf.
/// The caller (rotation scheduler) tears down live connections afterward so
/// the new cert is presented on the next handshake (plan §3.3).
public func renew(
using client: DeviceEnrollmentClient
) async throws -> ClientCertificateSummary? {
guard let record = try readEnrollment(),
let key = try SecureEnclaveKeyFactory.load(tag: deviceKeyTag)
else {
throw ClientIdentityStoreError.corruptStoredBlob // nothing to renew
}
let csr = try CertificateSigningRequest.der(
subjectCommonName: record.deviceName, signer: key
)
let result = try await client.renew(deviceId: record.deviceId, csrDER: csr)
try storeEnrolledLeaf(result, deviceName: record.deviceName)
return try loadSummary()
}
/// The Secure-Enclave-backed identity: the assembled `SecIdentity` (leaf bound
/// to the SE key) plus the stored issuer chain. `nil` when not enrolled.
func loadDeviceIdentity() throws -> ClientIdentity? {
let query: [String: Any] = [
kSecClass as String: kSecClassIdentity,
kSecAttrApplicationTag as String: deviceKeyTag,
kSecReturnRef as String: true,
kSecMatchLimit as String: kSecMatchLimitOne,
]
var result: CFTypeRef?
let status = SecItemCopyMatching(query as CFDictionary, &result)
if status == errSecItemNotFound { return nil }
guard status == errSecSuccess, let value = result else {
throw ClientIdentityStoreError.keychain(status)
}
// Safe: the query pins kSecClassIdentity, so a match is a SecIdentity.
let identity = value as! SecIdentity
let issuers = ((try? readEnrollment())?.caChain ?? []).compactMap {
SecCertificateCreateWithData(nil, $0 as CFData)
}
return ClientIdentity(secIdentity: identity, issuerCertificates: issuers)
}
/// Cheap check: is a Secure-Enclave identity installed? (No cert re-parse.)
private func hasEnrolledLeaf() -> Bool {
let query: [String: Any] = [
kSecClass as String: kSecClassIdentity,
kSecAttrApplicationTag as String: deviceKeyTag,
kSecMatchLimit as String: kSecMatchLimitOne,
]
return SecItemCopyMatching(query as CFDictionary, nil) == errSecSuccess
}
/// Persist the enrolled leaf (delete-then-add so rotation replaces the prior
/// one) plus the enrollment record. The leaf binds to the permanent SE key,
/// letting the keychain form the identity on load.
private func storeEnrolledLeaf(_ result: EnrollmentResult, deviceName: String) throws {
guard let certificate = SecCertificateCreateWithData(nil, result.certificate as CFData)
else {
throw ClientIdentityStoreError.corruptStoredBlob // not a valid DER cert
}
let deleteLeaf: [String: Any] = [
kSecClass as String: kSecClassCertificate,
kSecAttrLabel as String: leafLabel,
]
let deleteStatus = SecItemDelete(deleteLeaf as CFDictionary)
guard deleteStatus == errSecSuccess || deleteStatus == errSecItemNotFound else {
throw ClientIdentityStoreError.keychain(deleteStatus)
}
let addLeaf: [String: Any] = [
kSecClass as String: kSecClassCertificate,
kSecValueRef as String: certificate,
kSecAttrLabel as String: leafLabel,
]
let addStatus = SecItemAdd(addLeaf as CFDictionary, nil)
guard addStatus == errSecSuccess else {
throw ClientIdentityStoreError.keychain(addStatus)
}
try writeEnrollment(
StoredEnrollment(
deviceId: result.deviceId,
deviceName: deviceName,
caChain: result.caChain,
notAfter: result.notAfter,
renewAfter: result.renewAfter
)
)
}
/// Delete the SE key, the enrolled leaf, and the enrollment record. Idempotent.
private func removeEnrolled() throws {
let deleteLeaf: [String: Any] = [
kSecClass as String: kSecClassCertificate,
kSecAttrLabel as String: leafLabel,
]
let leafStatus = SecItemDelete(deleteLeaf as CFDictionary)
guard leafStatus == errSecSuccess || leafStatus == errSecItemNotFound else {
throw ClientIdentityStoreError.keychain(leafStatus)
}
try SecureEnclaveKeyFactory.delete(tag: deviceKeyTag)
let recordStatus = SecItemDelete(enrollmentQuery() as CFDictionary)
guard recordStatus == errSecSuccess || recordStatus == errSecItemNotFound else {
throw ClientIdentityStoreError.keychain(recordStatus)
}
}
private func enrollmentQuery() -> [String: Any] {
[
kSecClass as String: kSecClassGenericPassword,
kSecAttrService as String: service,
kSecAttrAccount as String: enrollmentAccount,
]
}
private func writeEnrollment(_ record: StoredEnrollment) throws {
let data: Data
do {
data = try JSONEncoder().encode(record)
} catch {
throw ClientIdentityStoreError.corruptStoredBlob
}
let deleteStatus = SecItemDelete(enrollmentQuery() as CFDictionary)
guard deleteStatus == errSecSuccess || deleteStatus == errSecItemNotFound else {
throw ClientIdentityStoreError.keychain(deleteStatus)
}
var attributes = enrollmentQuery()
attributes[kSecValueData as String] = data
attributes[kSecAttrAccessible as String] =
kSecAttrAccessibleAfterFirstUnlockThisDeviceOnly
let addStatus = SecItemAdd(attributes as CFDictionary, nil)
guard addStatus == errSecSuccess else {
throw ClientIdentityStoreError.keychain(addStatus)
}
}
private func readEnrollment() throws -> StoredEnrollment? {
var query = enrollmentQuery()
query[kSecReturnData as String] = true
query[kSecMatchLimit as String] = kSecMatchLimitOne
var result: CFTypeRef?
let status = SecItemCopyMatching(query as CFDictionary, &result)
if status == errSecItemNotFound { return nil }
guard status == errSecSuccess, let data = result as? Data else {
throw ClientIdentityStoreError.keychain(status)
}
do {
return try JSONDecoder().decode(StoredEnrollment.self, from: data)
} catch {
throw ClientIdentityStoreError.corruptStoredBlob
}
}
// MARK: - Keychain plumbing
private func baseQuery() -> [String: Any] {

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import Foundation
import os
import Security
/// C-iOS · A P-256 signing key that lives ENTIRELY inside SecKey /
/// Security.framework never CryptoKit.
///
/// **`[FIX C-native, ClientTLS trap]`** the enrollment path deliberately avoids
/// `CryptoKit.SecureEnclave.P256.Signing.PrivateKey` and `SecKeyCreateWithData`
/// over a Secure-Enclave token: either route mints a key the keychain cannot
/// later match to a stored certificate, so `SecItemCopyMatching(kSecClassIdentity)`
/// fails with `errSecItemNotFound (-25300)` and the whole mTLS identity silently
/// never assembles. Staying on `SecKeyCreateRandomKey` + `SecKeyCreateSignature`
/// keeps the private key a first-class, permanent keychain resident that the leaf
/// certificate binds to automatically.
public protocol P256HardwareKey: Sendable {
/// The public key in ANSI X9.63 uncompressed form: `0x04 || X || Y`
/// (65 bytes for P-256). This is exactly what wraps into a SubjectPublicKeyInfo.
func publicKeyX963() throws -> Data
/// ECDSA sign `message` over SHA-256, returning the X9.62 DER signature
/// (`SEQUENCE { r INTEGER, s INTEGER }`) the exact shape a PKCS#10
/// `signature` BIT STRING and `verifyCsrPoPEc` expect. The digest is computed
/// by the algorithm (`.ecdsaSignatureMessageX962SHA256`), so callers pass the
/// raw message (the DER of `CertificationRequestInfo`), NOT a pre-hash.
func sign(_ message: Data) throws -> Data
}
public enum SecureEnclaveKeyError: Error, Equatable, Sendable {
/// The Secure Enclave is absent (Simulator) or the app lacks the entitlement.
/// Carries the underlying `SecKeyCreateRandomKey` failure for diagnostics.
case secureEnclaveUnavailable(String)
/// Key generation failed for a reason other than SE-unavailability.
case keyGenerationFailed(String)
/// The public key could not be derived from the private key.
case publicKeyUnavailable
/// Exporting the public key to X9.63 bytes failed.
case exportFailed(String)
/// Signing failed (algorithm unsupported, user-presence denied, ).
case signatureFailed(String)
/// A keychain `SecItem*` lookup/delete failed with this status.
case keychain(OSStatus)
}
/// A `SecKey`-backed P-256 key. The wrapped `SecKey` is a Secure-Enclave key in
/// production (via `SecureEnclaveKeyFactory.generate`) and an in-process software
/// key on Simulator/tests (via `.generateSoftware`) both drive the SAME
/// `SecKeyCreateSignature` path, so the CSR encoder is exercised identically.
///
/// `@unchecked Sendable`: `SecKey` is an immutable, thread-safe CoreFoundation
/// handle once created; this wrapper only ever reads it.
public final class SecureEnclaveKey: P256HardwareKey, @unchecked Sendable {
/// The (non-exportable, in production) private key. Never leaves the device.
private let privateKey: SecKey
/// Wrap an existing `SecKey`. Public so tests can inject a software P-256 key
/// created via `SecKeyCreateRandomKey` without the SE token.
public init(privateKey: SecKey) {
self.privateKey = privateKey
}
public func publicKeyX963() throws -> Data {
guard let publicKey = SecKeyCopyPublicKey(privateKey) else {
throw SecureEnclaveKeyError.publicKeyUnavailable
}
var error: Unmanaged<CFError>?
guard let data = SecKeyCopyExternalRepresentation(publicKey, &error) as Data? else {
throw SecureEnclaveKeyError.exportFailed(Self.describe(error))
}
return data
}
public func sign(_ message: Data) throws -> Data {
var error: Unmanaged<CFError>?
guard
let signature = SecKeyCreateSignature(
privateKey,
.ecdsaSignatureMessageX962SHA256,
message as CFData,
&error
) as Data?
else {
throw SecureEnclaveKeyError.signatureFailed(Self.describe(error))
}
return signature
}
static func describe(_ error: Unmanaged<CFError>?) -> String {
guard let error else { return "unknown" }
return String(describing: error.takeRetainedValue())
}
}
/// Creates / loads / deletes the device's P-256 key.
///
/// Production generation is **Secure-Enclave, non-exportable, permanent** so the
/// private key never leaves hardware and survives relaunch as a keychain
/// resident. `generateSoftware` is the documented **non-device fallback** (the SE
/// is unavailable on the Simulator and per plan §3.3 desktop is explicitly
/// downgraded to a best-effort OS-keychain key); it is the SAME `SecKey` API
/// minus the SE token, so the CSR/signature code path is unchanged.
public enum SecureEnclaveKeyFactory {
private static let log = Logger(subsystem: "com.yaojia.webterm", category: "se-key")
/// Generate a NON-EXPORTABLE P-256 key inside the Secure Enclave, marked
/// permanent + tagged so the keychain can later bind the enrolled leaf to it.
/// Throws `.secureEnclaveUnavailable` on Simulator / missing entitlement so
/// callers can fall back to `generateSoftware` for non-device builds.
public static func generateSecureEnclave(tag: Data) throws -> SecureEnclaveKey {
try generate(tag: tag, inSecureEnclave: true, permanent: true)
}
/// Software P-256 key (NO Secure Enclave token). Simulator / desktop
/// best-effort / unit tests. `permanent == false` keeps it in-process only.
public static func generateSoftware(tag: Data? = nil, permanent: Bool = false) throws
-> SecureEnclaveKey {
try generate(tag: tag, inSecureEnclave: false, permanent: permanent)
}
private static func generate(
tag: Data?, inSecureEnclave: Bool, permanent: Bool
) throws -> SecureEnclaveKey {
var privateKeyAttrs: [String: Any] = [kSecAttrIsPermanent as String: permanent]
if let tag {
privateKeyAttrs[kSecAttrApplicationTag as String] = tag
}
if inSecureEnclave {
var accessError: Unmanaged<CFError>?
guard
let access = SecAccessControlCreateWithFlags(
kCFAllocatorDefault,
kSecAttrAccessibleAfterFirstUnlockThisDeviceOnly,
.privateKeyUsage,
&accessError
)
else {
throw SecureEnclaveKeyError.keyGenerationFailed(
"access control: \(SecureEnclaveKey.describe(accessError))"
)
}
privateKeyAttrs[kSecAttrAccessControl as String] = access
}
var attributes: [String: Any] = [
kSecAttrKeyType as String: kSecAttrKeyTypeECSECPrimeRandom,
kSecAttrKeySizeInBits as String: 256,
kSecPrivateKeyAttrs as String: privateKeyAttrs,
]
if inSecureEnclave {
attributes[kSecAttrTokenID as String] = kSecAttrTokenIDSecureEnclave
}
var error: Unmanaged<CFError>?
guard let key = SecKeyCreateRandomKey(attributes as CFDictionary, &error) else {
let description = SecureEnclaveKey.describe(error)
if inSecureEnclave {
log.error(
"Secure Enclave keygen failed (simulator / no entitlement?): \(description, privacy: .public)"
)
throw SecureEnclaveKeyError.secureEnclaveUnavailable(description)
}
throw SecureEnclaveKeyError.keyGenerationFailed(description)
}
return SecureEnclaveKey(privateKey: key)
}
/// Load a previously-generated key (SE or software) by its keychain tag.
/// `nil` if none exists (the normal pre-enroll state).
public static func load(tag: Data) throws -> SecureEnclaveKey? {
let query: [String: Any] = [
kSecClass as String: kSecClassKey,
kSecAttrKeyType as String: kSecAttrKeyTypeECSECPrimeRandom,
kSecAttrApplicationTag as String: tag,
kSecReturnRef as String: true,
]
var result: CFTypeRef?
let status = SecItemCopyMatching(query as CFDictionary, &result)
if status == errSecItemNotFound { return nil }
guard status == errSecSuccess, let value = result else {
throw SecureEnclaveKeyError.keychain(status)
}
// Safe: the query pins kSecClassKey, so a match is always a SecKey.
let key = value as! SecKey
return SecureEnclaveKey(privateKey: key)
}
/// Delete the device key by tag. Idempotent.
public static func delete(tag: Data) throws {
let query: [String: Any] = [
kSecClass as String: kSecClassKey,
kSecAttrKeyType as String: kSecAttrKeyTypeECSECPrimeRandom,
kSecAttrApplicationTag as String: tag,
]
let status = SecItemDelete(query as CFDictionary)
guard status == errSecSuccess || status == errSecItemNotFound else {
throw SecureEnclaveKeyError.keychain(status)
}
}
}

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import Foundation
import Security
import Testing
@testable import ClientTLS
// C-iOS · Proves the manual PKCS#10 encoder produces a well-formed, self-signed
// P-256 CSR that the control-plane `verifyCsrPoPEc` (id-ecPublicKey + prime256v1
// SPKI, ecdsa-with-SHA256 self-signature) would accept. Runs headless with a
// SOFTWARE P-256 SecKey (SecKeyCreateRandomKey WITHOUT the Secure-Enclave token)
// so no hardware/entitlement is needed the signing path is byte-identical to
// the on-device SE key. Real SE keygen + SecIdentity roundtrip are device-only.
/// Software P-256 key via the SAME SecKey API used on-device (no SE token).
private func makeSoftwareKey() throws -> SecureEnclaveKey {
try SecureEnclaveKeyFactory.generateSoftware(tag: nil, permanent: false)
}
@Test("CSR is a canonical PKCS#10 SEQUENCE of exactly three elements")
func csrOuterStructure() throws {
// Arrange
let signer = try makeSoftwareKey()
// Act
let der = try CertificateSigningRequest.der(
subjectCommonName: "web-terminal-device", signer: signer
)
// Assert outer CertificationRequest ::= SEQUENCE { info, algId, sig }.
let bytes = [UInt8](der)
let outer = try #require(TestDER.read(bytes, at: 0))
#expect(outer.tag == 0x30)
#expect(outer.end == bytes.count) // no trailing garbage
let parts = TestDER.children(bytes, outer)
#expect(parts.count == 3)
#expect(parts[0].tag == 0x30) // certificationRequestInfo
#expect(parts[1].tag == 0x30) // signatureAlgorithm
#expect(parts[2].tag == 0x03) // signature BIT STRING
}
@Test("CSR self-signature verifies against the embedded P-256 public key")
func csrSelfSignatureVerifies() throws {
// Arrange
let signer = try makeSoftwareKey()
let expectedPoint = try signer.publicKeyX963()
// Act
let der = try CertificateSigningRequest.der(
subjectCommonName: "web-terminal-device", signer: signer
)
let bytes = [UInt8](der)
// Extract the exact CertificationRequestInfo bytes that were signed and the
// ECDSA signature (the same crypto check `verifyCsrPoPEc`'s req.verify() runs).
let outer = try #require(TestDER.read(bytes, at: 0))
let parts = TestDER.children(bytes, outer)
let infoBytes = Data(bytes[parts[0].start..<parts[0].end])
let sigContent = parts[2] // BIT STRING: first content byte is unused-bits (0x00)
let signature = Data(bytes[(sigContent.valueStart + 1)..<sigContent.valueEnd])
// Rebuild the public SecKey from the X9.63 point and verify.
let publicKey = try #require(makePublicKey(fromX963: expectedPoint))
var error: Unmanaged<CFError>?
let ok = SecKeyVerifySignature(
publicKey,
.ecdsaSignatureMessageX962SHA256,
infoBytes as CFData,
signature as CFData,
&error
)
#expect(ok, "self-signature must verify: \(String(describing: error?.takeRetainedValue()))")
}
@Test("CSR embeds a P-256 SubjectPublicKeyInfo the server verifier accepts")
func csrEmbedsP256Spki() throws {
// Arrange
let signer = try makeSoftwareKey()
let point = [UInt8](try signer.publicKeyX963())
// Act
let der = try CertificateSigningRequest.der(
subjectCommonName: "web-terminal-device", signer: signer
)
let bytes = [UInt8](der)
// certificationRequestInfo { version, subject, subjectPKInfo, [0] attrs }
let outer = try #require(TestDER.read(bytes, at: 0))
let info = TestDER.children(bytes, outer)[0]
let infoChildren = TestDER.children(bytes, info)
#expect(infoChildren.count == 4)
#expect(Array(bytes[infoChildren[0].start..<infoChildren[0].end]) == [0x02, 0x01, 0x00]) // v1(0)
#expect(infoChildren[3].tag == 0xA0) // [0] IMPLICIT attributes
#expect(infoChildren[3].valueEnd - infoChildren[3].valueStart == 0) // empty SET
// subjectPublicKeyInfo ::= SEQUENCE { AlgorithmIdentifier, BIT STRING point }
let spki = infoChildren[2]
let spkiChildren = TestDER.children(bytes, spki)
#expect(spkiChildren.count == 2)
let algIdChildren = TestDER.children(bytes, spkiChildren[0])
// AlgorithmIdentifier { id-ecPublicKey, prime256v1 } the exact OIDs
// verifyCsrPoPEc pins.
#expect(Array(bytes[algIdChildren[0].start..<algIdChildren[0].end])
== [0x06, 0x07, 0x2A, 0x86, 0x48, 0xCE, 0x3D, 0x02, 0x01])
#expect(Array(bytes[algIdChildren[1].start..<algIdChildren[1].end])
== [0x06, 0x08, 0x2A, 0x86, 0x48, 0xCE, 0x3D, 0x03, 0x01, 0x07])
// BIT STRING content = 0x00 unused-bits + the exact 65-byte point.
let bitString = spkiChildren[1]
#expect(bitString.tag == 0x03)
#expect(bytes[bitString.valueStart] == 0x00)
#expect(Array(bytes[(bitString.valueStart + 1)..<bitString.valueEnd]) == point)
}
@Test("signatureAlgorithm is ecdsa-with-SHA256")
func csrSignatureAlgorithm() throws {
let signer = try makeSoftwareKey()
let der = try CertificateSigningRequest.der(
subjectCommonName: "web-terminal-device", signer: signer
)
let bytes = [UInt8](der)
let outer = try #require(TestDER.read(bytes, at: 0))
let algId = TestDER.children(bytes, outer)[1]
let oid = TestDER.children(bytes, algId)[0]
#expect(Array(bytes[oid.start..<oid.end])
== [0x06, 0x08, 0x2A, 0x86, 0x48, 0xCE, 0x3D, 0x04, 0x03, 0x02])
}
@Test("empty subject CN is rejected")
func csrRejectsEmptySubject() throws {
let signer = try makeSoftwareKey()
#expect(throws: CertificateSigningRequest.CSRError.invalidSubject) {
_ = try CertificateSigningRequest.der(subjectCommonName: "", signer: signer)
}
}
// MARK: - helpers
/// Reconstruct a public SecKey from an X9.63 uncompressed point for verification.
private func makePublicKey(fromX963 point: Data) -> SecKey? {
let attributes: [String: Any] = [
kSecAttrKeyType as String: kSecAttrKeyTypeECSECPrimeRandom,
kSecAttrKeyClass as String: kSecAttrKeyClassPublic,
kSecAttrKeySizeInBits as String: 256,
]
return SecKeyCreateWithData(point as CFData, attributes as CFDictionary, nil)
}
/// A throwaway DER reader for assertions (production parsing lives in
/// CertificateSummary's X509 walk; this mirrors it for tests).
enum TestDER {
struct Element {
let tag: UInt8
let start: Int // index of the tag byte
let valueStart: Int
let valueEnd: Int
var end: Int { valueEnd }
}
static func read(_ bytes: [UInt8], at start: Int) -> Element? {
guard start >= 0, start + 1 < bytes.count else { return nil }
let tag = bytes[start]
var index = start + 1
let first = bytes[index]
index += 1
var length = 0
if first & 0x80 == 0 {
length = Int(first)
} else {
let count = Int(first & 0x7F)
guard count > 0, count <= 4, index + count <= bytes.count else { return nil }
for _ in 0..<count {
length = (length << 8) | Int(bytes[index])
index += 1
}
}
let valueEnd = index + length
guard valueEnd <= bytes.count else { return nil }
return Element(tag: tag, start: start, valueStart: index, valueEnd: valueEnd)
}
static func children(_ bytes: [UInt8], _ parent: Element) -> [Element] {
var elements: [Element] = []
var index = parent.valueStart
while index < parent.valueEnd, let element = read(bytes, at: index) {
elements.append(element)
index = element.valueEnd
}
return elements
}
}

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import Foundation
import Testing
@testable import ClientTLS
// C-iOS · DeviceEnrollmentClient request-building + response-mapping, driven by a
// stub transport (no network). Mirrors the A4 contract exactly.
private let baseURL = URL(string: "https://cp.terminal.yaojia.wang")!
private let bearer = "device-enroll-token-abc"
/// Records the last request and replays a canned response. `@unchecked Sendable`:
/// the mutable capture is guarded by a lock.
private final class StubTransport: EnrollmentTransport, @unchecked Sendable {
private let lock = NSLock()
private var _lastRequest: URLRequest?
private let status: Int
private let body: Data
init(status: Int, body: Data) {
self.status = status
self.body = body
}
var lastRequest: URLRequest? { lock.withLock { _lastRequest } }
func send(_ request: URLRequest) async throws -> (Data, HTTPURLResponse) {
lock.withLock { _lastRequest = request }
let response = HTTPURLResponse(
url: request.url!, statusCode: status, httpVersion: "HTTP/1.1", headerFields: nil
)!
return (body, response)
}
}
private func enrollBody(
deviceId: String = "dev-1",
cert: Data = Data([0x30, 0x01, 0x02]),
caChain: [Data] = [Data([0x30, 0xAA])],
notBefore: String = "2026-07-08T00:00:00.000Z",
notAfter: String = "2026-10-06T00:00:00.000Z",
renewAfter: String = "2026-09-05T00:00:00.000Z"
) -> Data {
let json: [String: Any] = [
"deviceId": deviceId,
"cert": cert.base64EncodedString(),
"caChain": caChain.map { $0.base64EncodedString() },
"notBefore": notBefore,
"notAfter": notAfter,
"renewAfter": renewAfter,
]
return try! JSONSerialization.data(withJSONObject: json)
}
@Test("enroll builds a bearer-authenticated POST /device/enroll with the A4 body")
func enrollBuildsRequest() async throws {
// Arrange
let stub = StubTransport(status: 201, body: enrollBody())
let client = DeviceEnrollmentClient(baseURL: baseURL, bearerToken: bearer, transport: stub)
let csr = Data([0xDE, 0xAD, 0xBE, 0xEF])
// Act
_ = try await client.enroll(csrDER: csr, subdomain: "alice", deviceName: "Alice iPhone")
// Assert
let request = try #require(stub.lastRequest)
#expect(request.httpMethod == "POST")
#expect(request.url?.absoluteString == "https://cp.terminal.yaojia.wang/device/enroll")
#expect(request.value(forHTTPHeaderField: "Authorization") == "Bearer \(bearer)")
#expect(request.value(forHTTPHeaderField: "Content-Type") == "application/json")
let sent = try #require(request.httpBody)
let object = try #require(
try JSONSerialization.jsonObject(with: sent) as? [String: Any]
)
#expect(object["csr"] as? String == csr.base64EncodedString())
#expect(object["keyAlg"] as? String == "ec-p256")
#expect(object["subdomain"] as? String == "alice")
#expect(object["deviceName"] as? String == "Alice iPhone")
#expect(object["attestation"] == nil) // omitted when not provided
}
@Test("enroll maps a 201 response into a typed EnrollmentResult")
func enrollMapsResponse() async throws {
// Arrange
let cert = Data([0x30, 0x82, 0x01, 0x23])
let ca = Data([0x30, 0x82, 0x02, 0x00])
let stub = StubTransport(status: 201, body: enrollBody(deviceId: "dev-xyz", cert: cert, caChain: [ca]))
let client = DeviceEnrollmentClient(baseURL: baseURL, bearerToken: bearer, transport: stub)
// Act
let result = try await client.enroll(csrDER: Data([0x01]), subdomain: "alice", deviceName: "iPhone")
// Assert
#expect(result.deviceId == "dev-xyz")
#expect(result.certificate == cert)
#expect(result.caChain == [ca])
#expect(result.notAfter != nil)
#expect(result.renewAfter != nil)
// renewAfter (2026-09-05) is before notAfter (2026-10-06).
#expect(result.renewAfter! < result.notAfter!)
}
@Test("isRenewalDue flips at renewAfter")
func renewalDueSeam() async throws {
let stub = StubTransport(status: 201, body: enrollBody())
let client = DeviceEnrollmentClient(baseURL: baseURL, bearerToken: bearer, transport: stub)
let result = try await client.enroll(csrDER: Data([0x01]), subdomain: "a", deviceName: "d")
let before = ISO8601DateFormatter().date(from: "2026-09-04T00:00:00Z")!
let after = ISO8601DateFormatter().date(from: "2026-09-06T00:00:00Z")!
#expect(result.isRenewalDue(asOf: before) == false)
#expect(result.isRenewalDue(asOf: after) == true)
}
@Test("attestation passphrase is forwarded when provided")
func enrollForwardsAttestation() async throws {
let stub = StubTransport(status: 201, body: enrollBody())
let client = DeviceEnrollmentClient(baseURL: baseURL, bearerToken: bearer, transport: stub)
_ = try await client.enroll(
csrDER: Data([0x01]), subdomain: "a", deviceName: "d", attestation: "attest-blob"
)
let object = try JSONSerialization.jsonObject(
with: stub.lastRequest!.httpBody!
) as! [String: Any]
#expect(object["attestation"] as? String == "attest-blob")
}
@Test("a non-201 response throws http with the server error code")
func enrollRejectSurfacesStatus() async throws {
// 403 subdomain-not-owned { error: "rejected" }.
let body = try! JSONSerialization.data(withJSONObject: ["error": "rejected"])
let stub = StubTransport(status: 403, body: body)
let client = DeviceEnrollmentClient(baseURL: baseURL, bearerToken: bearer, transport: stub)
await #expect(throws: DeviceEnrollmentError.http(status: 403, code: "rejected")) {
_ = try await client.enroll(csrDER: Data([0x01]), subdomain: "bob", deviceName: "d")
}
}
@Test("a malformed 201 body throws malformedResponse")
func enrollMalformedBody() async throws {
let stub = StubTransport(status: 201, body: Data("not json".utf8))
let client = DeviceEnrollmentClient(baseURL: baseURL, bearerToken: bearer, transport: stub)
await #expect(throws: DeviceEnrollmentError.malformedResponse) {
_ = try await client.enroll(csrDER: Data([0x01]), subdomain: "a", deviceName: "d")
}
}
@Test("attestChallenge maps a 200 challenge response")
func attestChallengeMaps() async throws {
let body = try! JSONSerialization.data(
withJSONObject: ["challenge": "Y2hhbGxlbmdl", "expires_in": 120]
)
let stub = StubTransport(status: 200, body: body)
let client = DeviceEnrollmentClient(baseURL: baseURL, bearerToken: bearer, transport: stub)
let challenge = try await client.attestChallenge()
#expect(challenge.challenge == "Y2hhbGxlbmdl")
#expect(challenge.expiresIn == 120)
#expect(stub.lastRequest?.url?.absoluteString
== "https://cp.terminal.yaojia.wang/device/attest/challenge")
}
@Test("renew targets POST /device/:id/renew (A6 seam)")
func renewTargetsRenewEndpoint() async throws {
let stub = StubTransport(status: 201, body: enrollBody())
let client = DeviceEnrollmentClient(baseURL: baseURL, bearerToken: bearer, transport: stub)
_ = try await client.renew(deviceId: "dev-9", csrDER: Data([0x02]))
#expect(stub.lastRequest?.url?.absoluteString
== "https://cp.terminal.yaojia.wang/device/dev-9/renew")
}