Public Access
Freeze DSH1 crypto specification and implement the core (M1)
docs/crypto.md is now the normative, frozen specification. This had to land before anything else in M1: the server holds ciphertext and no keys, so it can never re-encrypt, and a format change after users hold data is a coordinated client rewrite with no rollback. Specification: - DSH1 envelope layout, canonical 64-byte AAD encoding, SealTo construction, key hierarchy, Argon2id profiles, fingerprints, and the change rules for each version field. - AAD encoding is fixed-width binary rather than delimited string concatenation, so no field value can forge a field boundary. This supersedes the illustrative form sketched in ADR 0001, which now points here. - UUIDs are RFC 4122 big-endian. Guid.ToByteArray() emits the first three groups little-endian and would have made our ciphertext unreadable by any other implementation of this spec, failing only at a cross-implementation boundary. Verified rather than assumed: - PrimitiveAvailabilityTests proves X25519, Ed25519, XChaCha20-Poly1305, Argon2id and HKDF-SHA512 all function on net10.0. NSec 26.4.0 targets net9.0 and is consumed by forward compatibility; this closes one of the two package questions the plan flagged. - Argon2Profile exists because NSec's MemorySize is in KIBIBYTES, not bytes. Passing bytes gives either a 256 GiB allocation or a 256 KiB KDF that cracks instantly. The type takes mebibytes so the unit cannot be got wrong at a call site. Found by benchmarking: the first measurements were ~1000x too slow, which turned out to be 19 GiB of work. - Parameters measured, not guessed: 256 MiB/t=4 is 323 ms on this machine; the table of candidates is in the spec. Implementation and tests (83 total, up from 17): - AadDescriptor, DshEnvelope, DshCrypto (Seal/Open/SealTo/OpenSealed/fingerprints). - Decryption returns null rather than throwing: ciphertext comes from a server that is explicitly not trusted, so a failed tag is an expected outcome. - Envelope readers reject unknown algorithms and any non-zero flag bit, so an envelope that is not fully understood fails closed. - Executable form of the spec's substitution claims: a server cannot move ciphertext between resources, roll back a key generation or item version, repurpose a payload as metadata, or confuse the two constructions. - Golden vectors in tests/fixtures/crypto/vectors.json guard the format. Mutation-checked: a one-byte schema version change trips four tests including the guard. Two build-infrastructure bugs found and fixed along the way: - .editorconfig forced camelCase on const and static readonly fields. PascalCase is the .NET convention for both; the config was wrong, not the code. - The golden fixture was resolved with [CallerFilePath], which ContinuousIntegrationBuild rewrites to /_/... under deterministic source paths. It passed locally and would have failed only in CI. Now copied to the output directory and read from there.
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# DodoSSH cryptographic specification (DSH1)
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- Status: **frozen** as of 2026-07-28. Version `1`.
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- Normative. `DodoSSH.Crypto` must agree with this document exactly, and
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`tests/fixtures/crypto/vectors.json` pins the byte-level results.
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> **Why this is frozen before anything is built on it.** The server holds ciphertext and no
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> keys, so it cannot re-encrypt anything, ever. Only clients can. A change to the envelope
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> layout or to AAD derivation after users hold data is therefore not a server migration — it
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> is a coordinated rewrite of every client's local store, with no rollback. Additive change
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> is possible through the version fields in §8; changing the meaning of an existing field is
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> not.
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## 1. Primitives
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| Purpose | Algorithm | Source |
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| --- | --- | --- |
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| Passphrase KDF | Argon2id | NSec (libsodium) |
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| Subkey derivation | HKDF-SHA512 | BCL `System.Security.Cryptography.HKDF` |
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| Content AEAD | XChaCha20-Poly1305 | NSec (libsodium) |
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| Key wrapping | X25519 + HKDF-SHA256 + XChaCha20-Poly1305 | NSec (libsodium) |
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| Signatures | Ed25519 | NSec (libsodium) |
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| Hashing, fingerprints | SHA-256 | BCL |
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### Why not the BCL for everything
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- The BCL has **no X25519 and no Ed25519** as of .NET 10. `ECDiffieHellman` is NIST curves
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only. We do not substitute P-256 to avoid a native dependency: point validation, cofactor
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and encoding are all footguns that X25519 does not have.
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- **`ChaCha20Poly1305.IsSupported` is false on macOS**, and on Windows builds before
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10.0.20142. That disqualifies the in-box AEAD for a cross-platform client.
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- NSec holds key material in libsodium's guarded, `mlock`ed allocations with
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`KeyExportPolicies.None`, which is real protection against heap scraping and core dumps.
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A `byte[]` cannot offer that.
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`AES-256-GCM` (`alg_id = 2`) is specified as a fallback for environments without
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XChaCha20-Poly1305. It is **not currently emitted**; readers must accept it.
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### Verified availability
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`tests/DodoSSH.Crypto.Tests/PrimitiveAvailabilityTests.cs` proves each primitive functions on
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the host running the suite. It is not ceremony: it is the guard that catches a platform where
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this specification is not implementable.
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## 2. Argon2id parameters
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| Purpose | Memory | Passes | Parallelism | Output |
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| --- | --- | --- | --- | --- |
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| Passphrase → master key | 256 MiB | 4 | 1 | 32 B |
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| Recovery code → KEK | 64 MiB | 3 | 1 | 32 B |
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| Invite secret → KEK | 64 MiB | 3 | 1 | 32 B |
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Salt is 16 bytes from a CSPRNG, fresh on every passphrase change.
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> ### `MemorySize` is in kibibytes
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>
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> `NSec.Cryptography.Argon2Parameters.MemorySize` is **KiB, not bytes**. Passing bytes gives
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> either a catastrophically weak KDF or an absurd allocation:
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>
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> | Intent | Correct | If bytes were assumed |
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> | --- | --- | --- |
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> | 256 MiB | `262144` | `268435456` → 256 GiB, allocation failure |
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> | | | `262144` bytes → 256 KiB, ~1 ms, trivially crackable |
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>
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> `DodoSSH.Crypto` therefore never accepts a raw integer here. `Argon2Profile` takes
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> `MemoryMebibytes` and converts, so the unit cannot be got wrong at a call site.
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**Parallelism is pinned to 1** because libsodium's Argon2id implementation supports only
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`p=1`. Memory cost compensates: 256 MiB at `t=4` is far above OWASP's 19 MiB/`t=2` floor.
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Measured on a fast desktop (see §2 note in the test suite for the harness):
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| Parameters | Time |
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| --- | --- |
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| 64 MiB, t=3 | 52 ms |
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| 128 MiB, t=3 | 114 ms |
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| **256 MiB, t=4 (default)** | **323 ms** |
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| 512 MiB, t=4 | 700 ms |
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A once-per-session unlock at roughly 0.3 s on fast hardware and an estimated 1–1.5 s on a
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low-end laptop is the intended trade. Clients expose a security level of 128 / 256 / 512 MiB.
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**KDF parameters are stored in plaintext per wrap row** (`kdf_alg`, `kdf_salt`, `kdf_m`,
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`kdf_t`, `kdf_p`). Salts are not secrets, and storing the parameters makes raising them later
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a per-user, unlock-time migration instead of a breaking change. An old client can still open
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its own wrap.
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**No passphrase verifier is stored server-side.** An `Argon2id(passphrase)` hash held by the
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server would be an offline-crackable target on the very machine being defended against, for
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no gain: the AEAD tag on the bundle wrap already proves the passphrase. Rate limiting is the
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OIDC access-token gate plus client-side backoff.
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## 3. Key hierarchy
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```
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vault passphrase
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│ Argon2id(salt, m=256 MiB, t=4, p=1) → 32 B
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▼
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MK — master key, RAM only, never persisted, never transmitted
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│ HKDF-SHA512-Expand with domain-separated info labels
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├── KEK_pp info = "dsh1/kek/passphrase/v1" 32 B
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└── LocalCacheKey info = "dsh1/localcache/v1" 32 B
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▼
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UserSecretBundle — canonical CBOR, ~200 B
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{ v: 1, x25519_sk: 32 B, ed25519_sk: 32 B, created: <unix s>, keyGeneration: <u32> }
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stored server-side as N independent wraps of the SAME bundle:
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kind=passphrase → symmetric AEAD under KEK_pp
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kind=device → SealTo(device_x25519_pk) one row per enrolled device
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kind=recovery → symmetric AEAD under KEK_rc = Argon2id(recovery code)
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kind=escrow → SealTo(team_breakglass_pk) opt-in, M5
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▼
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VaultKey — 32 B CSPRNG, per vault, per key generation
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wrapped per member: SealTo(member_x25519_pk, VaultKey, aad)
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▼
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DataKey (DK) — 32 B CSPRNG, per item, per version
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wrapped: XChaCha20-Poly1305(VaultKey, DK, aad)
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▼
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item plaintext — password, private key, key passphrase, TOTP seed, encrypted metadata
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XChaCha20-Poly1305(DK, plaintext, aad)
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```
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### Why the bundle is wrapped many ways
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This is the load-bearing structural choice. Because every wrap protects the *same* bundle:
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- **Passphrase change** re-derives `KEK_pp` from a new salt, re-wraps ~200 bytes and updates
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one row. No vault data is re-encrypted and no other member is involved. This is the entire
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reason an identity keypair exists rather than encrypting vault keys under the passphrase key
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directly.
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- **New device** is one additional wrap row.
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- **Recovery** is one additional wrap row.
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### Why a per-item DataKey
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1. **Cheap rotation.** Rotating a vault key re-wraps N × 32-byte data keys and never touches
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content blobs. A 10,000-item vault rotates in a few hundred kilobytes of writes.
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2. **Narrow sharing.** A single item can be re-wrapped to another vault key or user key.
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3. **Nonce hygiene.** Each key encrypts about one message.
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4. **Versioning.** A new item version gets a new data key, so prior ciphertext stays
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independently decryptable for history and undo.
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Per-item keys wrapped *to individual users* — which is what would make per-item ACLs
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cryptographic rather than server-enforced — are deferred to M5. The `content_key_id` column
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exists from the first migration so that lands without a migration. Until then, **an item ACL
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is access control, not cryptographic isolation**: anyone holding the vault key can decrypt any
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ciphertext they obtain. Say so in the product.
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## 4. Canonical AAD
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Every AEAD operation binds its ciphertext to the identity of the row that holds it. The AAD is
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**not stored**; it is recomputed from that row's plaintext columns on both encrypt and decrypt.
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### 4.1 Encoding
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Fixed-width binary, 64 bytes, big-endian throughout:
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| Offset | Size | Field | Notes |
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| --- | --- | --- | --- |
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| 0 | 5 | magic | ASCII `dsh1\n` |
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| 5 | 1 | aadVersion | `u8`, currently `1` |
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| 6 | 1 | purpose | `u8`, §4.2 |
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| 7 | 1 | resourceType | `u8`, §4.3 |
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| 8 | 16 | resourceId | UUID, RFC 4122 big-endian byte order |
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| 24 | 16 | keyId | UUID, or 16 zero bytes when not applicable |
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| 40 | 4 | keyGeneration | `u32` |
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| 44 | 4 | itemVersion | `u32`, `0` when not applicable |
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| 48 | 2 | schemaVersion | `u16` |
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| 50 | 14 | reserved | zero |
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```
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AAD = SHA-256(canonical 64-byte encoding)
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```
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Fixed-width encoding is used rather than delimited string concatenation so that no field
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value can forge a field boundary. UUIDs must be serialised in RFC 4122 order —
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**not** .NET's `Guid.ToByteArray()`, which emits the first three groups little-endian. Use
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`Guid.TryWriteBytes(dest, bigEndian: true)`.
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> This supersedes the illustrative string form sketched in
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> [ADR 0001](adr/0001-e2ee-trust-model.md). The fields and intent are unchanged; only the
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> byte encoding is nailed down here.
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### 4.2 `purpose`
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| Value | Name | Binds |
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| --- | --- | --- |
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| 1 | `UserSecretBundle` | a bundle wrap |
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| 2 | `VaultKeyGrant` | a vault key sealed to a member |
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| 3 | `ItemDataKey` | a data key wrapped under a vault key |
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| 4 | `ItemPayload` | item plaintext under its data key |
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| 5 | `ItemMetadata` | encrypted host metadata under its data key |
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| 6 | `LocalCache` | a client's on-disk cache record |
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### 4.3 `resourceType`
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`1` User, `2` Device, `3` Vault, `4` Host, `5` Credential, `6` SshKey, `7` HostGroup,
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`8` Tag, `9` Snippet, `10` PortForward, `11` KnownHostKey.
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`0` means not applicable and is legal only where the table in §4.2 implies no resource.
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### 4.4 What this prevents
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A malicious or compromised server, holding every ciphertext and every plaintext column:
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- **cannot move** credential A's payload onto host B — `resourceId` differs, tag fails;
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- **cannot roll back** a row to an earlier key generation — `keyGeneration` differs;
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- **cannot replay** a revoked grant blob — `keyGeneration` and `resourceId` differ;
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- **cannot repurpose** a bundle wrap as a vault grant — `purpose` differs;
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- **cannot substitute** an item's metadata blob for its payload blob — `purpose` differs.
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None of that follows from ACLs. It is the single most valuable structural property here, and
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it is why AAD derivation is frozen ahead of everything else.
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## 5. DSH1 envelope
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Binary layout. All multi-byte integers big-endian.
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```
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offset size field
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0 4 magic ASCII "DSH1"
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4 1 alg_id 1 XChaCha20-Poly1305 | 2 AES-256-GCM | 3 SealTo(X25519)
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5 1 flags reserved, must be 0, readers must reject non-zero
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[alg_id = 3 only]
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6 32 ephemeral_pk X25519 ephemeral public key
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— — nonce 24 B for alg 1 and 3, 12 B for alg 2
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— n ciphertext includes the trailing 16-byte AEAD tag
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```
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- Header is 6 bytes, plus 32 for `alg_id = 3`.
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- Nonces are drawn from a CSPRNG per message. A 192-bit nonce is why no counter is needed;
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this is a concrete reason to prefer XChaCha20 over AES-GCM's 96-bit nonce.
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- `flags` exists so a reader can fail closed on an envelope it does not fully understand.
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- Minimum lengths: 46 bytes for `alg_id = 1`, 34 for `2`, 78 for `3`. Shorter is malformed.
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## 6. `SealTo` — anonymous-sender wrapping (`alg_id = 3`)
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Specified explicitly rather than using libsodium's sealed box, because the sealed-box KDF is
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Blake2b over the ephemeral and recipient keys only and we require the AAD binding of §4.
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```
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Seal(recipient_pk, plaintext, aad):
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(e_sk, e_pk) = X25519.GenerateKeyPair()
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dh = X25519(e_sk, recipient_pk) reject all-zero output
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prk = HKDF-SHA256-Extract(salt = e_pk || recipient_pk, ikm = dh)
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k = HKDF-SHA256-Expand(prk, info = "dsh1/sealto/v1|" || aad, L = 32)
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nonce = CSPRNG(24)
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ct = XChaCha20-Poly1305-Encrypt(k, nonce, aad, plaintext)
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wipe(e_sk, dh, prk, k)
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return e_pk || nonce || ct
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Open(recipient_sk, envelope, aad):
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parse e_pk, nonce, ct
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dh = X25519(recipient_sk, e_pk) reject all-zero output
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prk = HKDF-SHA256-Extract(salt = e_pk || X25519_public(recipient_sk), ikm = dh)
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k = HKDF-SHA256-Expand(prk, info = "dsh1/sealto/v1|" || aad, L = 32)
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return XChaCha20-Poly1305-Decrypt(k, nonce, aad, ct) null on tag failure
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```
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`SealTo` is **anonymous-sender by construction** — it proves nothing about who created the
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envelope. Every grant record therefore additionally carries a **detached Ed25519 signature**
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from the granter (§7). Without that, a server could fabricate a grant and the recipient could
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not tell.
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## 7. Signatures
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Ed25519 over a canonical, length-prefixed encoding. Each signature is domain-separated by a
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context string so a signature in one role can never be replayed in another:
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| Context | Signs |
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| --- | --- |
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| `dsh1/sig/keystatement/v1` | an enrollment key statement |
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| `dsh1/sig/grant/v1` | `(vaultId, keyGeneration, granteeUserId, granteeKeyFingerprint, SHA-256(wrappedKey), grantKind, granterUserId, granterKeyFingerprint, keyLogHead, timestamp)` |
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| `dsh1/sig/attestation/v1` | an admin's attestation of another user's key statement |
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A grant signature covers `SHA-256(wrappedKey)` rather than the wrapped key itself, so
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signature verification does not require the verifier to hold the vault key.
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**The server stores signatures opaquely and clients verify them.** Server-side verification
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would be a convenience, never the security boundary, and would drag an asymmetric
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implementation onto a machine that is supposed to have none.
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## 8. Fingerprints and versioning
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```
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fingerprint = SHA-256( "dsh1/fp/v1" || x25519_pk || ed25519_pk ) 32 bytes
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```
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Displayed as lowercase hex in groups of four. The 6-word safety number for out-of-band
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verification derives from the first 48 bits of the sorted concatenation of both parties'
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fingerprints, so both sides compute the same words regardless of who initiates.
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SSH **host** key fingerprints are a different thing and follow OpenSSH:
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`SHA256:` + unpadded base64 of `SHA-256(host key blob)`. Compute from the raw host key blob;
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do not use SSH.NET's MD5 property.
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### Change rules
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| Field | Widening | Meaning change |
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| --- | --- | --- |
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| `alg_id` | new value, readers reject unknown | never |
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| `flags` | new bit, readers reject unknown bits | never |
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| `aadVersion` | new value; rows carry `payload_aad_version` | never |
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| `keyGeneration` | monotonic per vault | never |
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| `purpose`, `resourceType` | append only | never |
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`alg_id = 4` is **reserved** for a hybrid X25519 + ML-KEM-768 seal. The identifier is claimed
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now, before it is needed, because store-now-decrypt-later is a genuine threat against
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long-lived SSH private keys and the value must not be reused. .NET 10 ships `MLKem`; the
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construction concatenates both shared secrets into HKDF-Extract. Deferred, not forgotten.
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Raising `aadVersion` or `alg_id` requires a **client-side lazy re-encrypt-on-write path** to
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exist first. The server cannot participate.
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## 9. Test vectors
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`tests/fixtures/crypto/vectors.json` is generated by
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`DodoSSH.Crypto.Tests.VectorGenerator` and asserted by `GoldenVectorTests`. It pins:
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- canonical AAD encodings and their SHA-256, including UUID byte order;
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- envelope framing for each `alg_id`, with fixed key, nonce and plaintext;
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- Argon2id and HKDF outputs for fixed inputs;
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- the negative cases of §4.4 — each must fail to decrypt.
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Deterministic operations are pinned to exact bytes. `SealTo` and signature generation use
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fresh randomness, so those are verified by round-trip plus fixed-input `Open` vectors.
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**A failing golden vector is never to be "fixed" by regenerating the file.** It means either a
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genuine regression or an intentional, versioned format change that requires a client migration
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path first.
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## 10. Threat model boundaries
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This specification protects the confidentiality and integrity of vault contents against the
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server, its operators, its backups and the network. It does **not** address:
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- a compromised client endpoint — past the endpoint, E2EE is irrelevant;
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- a malicious authorized member — an authorization and rotation problem;
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- retroactive revocation — impossible; rotate the SSH credential itself;
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- public-key substitution — mitigated but not eliminated; see
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[ADR 0001 §Consequences](adr/0001-e2ee-trust-model.md);
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- metadata — item counts, sizes, timestamps, access patterns and the sharing graph are
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visible, as are host addresses for relay-enabled hosts;
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- a weak passphrase — §2 parameters and passphrase entropy are the whole defence;
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- supply chain — a server can serve a backdoored client. Sign releases with a key the server
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does not hold. In a self-hosted E2EE product this is the largest practical hole.
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Reference in New Issue
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