# Architecture `geth` is a single-binary local-first mesh runtime. One executable provides both daemon mode and control mode. The daemon owns local identity, metadata storage, the shared Iroh endpoint, resource registry, module routing, and local control socket. Control commands connect to the Unix socket and send typed JSONL requests. Service management is also exposed through the single binary. `geth daemon service ...` installs and controls a user-level service definition for the local daemon. The initial backends are systemd user units on Linux, launchd user agents on macOS, and per-user scheduled tasks on Windows. Geth does not install itself as a privileged system service. ## Iroh-Only Remote Communication Remote geth node-to-node communication is Iroh-only. The daemon will own one shared Iroh endpoint and register module protocols on ALPNs such as `/geth/cas/1`, `/geth/kv/1`, `/geth/pipe/1`, and `/geth/ssh-proxy/1`. The first pinned Iroh integration uses `iroh = 0.90.0`, because newer Rust-1.85-compatible candidates in the 0.93-0.95 range failed to compile through a transitive `ed25519-dalek` prerelease dependency. `geth-iroh` wraps `iroh::Endpoint::builder()`, configures geth ALPNs with `Builder::alpns`, uses `Builder::relay_mode`, persists an `iroh::SecretKey` as hex-encoded 32-byte key material, and shuts down through `Endpoint::close().await`. The default config uses Iroh's default relay policy; local-only/offline development can set `[iroh].relay_mode = "disabled"`. Named custom relay maps are configured under `[iroh.relay_maps.]`, selected with `relay_mode = "custom"` plus `relay_map = ""`, validated at config load, and reported in status as `custom:` without exposing relay URLs. Module ALPNs are registered through `geth-iroh`'s protocol router scaffold. The router owns the default protocol descriptors, rejects duplicate ALPN registrations, and returns explicit unknown-ALPN errors. It does not yet accept or dispatch remote streams; peer authentication and module handlers are later Phase 1 work. The target product should use Iroh relay support for practical internet connectivity and mDNS/LAN discovery for local networks. These are connectivity and candidate-discovery mechanisms only. They do not grant trust, mutate authorization state, or make EndpointID knowledge sufficient for access. The current daemon can enable Iroh's local-network discovery service through `[iroh].local_discovery = true`, which is the default. This publishes and discovers Iroh node addressing. `geth peer export/import/list` supports manual exchange of signed peer cards as untrusted candidates. Peer cards include the Iroh EndpointID plus relay/direct address candidates when the daemon can observe them. `geth peer ping ` dials an imported peer card over Iroh and exchanges signed peer-card metadata. `geth peer auth-check ` sends a protected Iroh control request that validates the caller's signed peer card against the actual Iroh EndpointID before evaluating resource-local capabilities. When local discovery is enabled, the daemon also advertises and discovers signed peer cards through a geth-specific mDNS service. The LAN payload is TXT-encoded signed metadata only; remote geth traffic still uses Iroh. Peer cards are the discovery payload. A peer card carries node ID, agent ID, endpoint candidates, timestamp, signing public key, and an Ed25519 signature over a canonical payload. Imported and ping-discovered peer cards are stored as untrusted metadata in `peer_cards`; trust reduction is future work. `auth explain` reports when a subject is only a discovered peer candidate and denies access. The peer ping path authenticates the Iroh endpoint and peer-card signature, but it does not authorize any resource module. Protected peer control requests must also prove that the signed peer card binds the observed Iroh EndpointID, then reduce resource auth ops; an EndpointID alone is not accepted as a resource principal. The daemon starts this endpoint during `geth daemon run` and keeps it alive for the daemon lifetime. When endpoint startup succeeds, the Iroh EndpointID is recorded as a transport binding for the stable geth node identity. If local UDP binding is unavailable, the daemon keeps local control running and reports the Iroh startup error through status output. SSH keys are not transport keys. They are admin trust anchors and signing identities for keychain and authorization operations. The bootstrap `geth ssh proxy ` command performs an authorized Iroh control-plane handshake: the remote daemon validates the caller's signed peer card against the observed Iroh EndpointID and requires `ssh_proxy.connect` on `resource:ssh-proxy:local`. It returns connection metadata only. Carrying SSH bytes over an Iroh stream and connecting to remote sshd or a restricted admin shell remain future work, and will not make SSH a geth transport backend. SSH certificate flows use the same split. Nodes can request new OpenSSH certificates or renewals through geth metadata. A machine with the CA key or YubiKey can approve the request and run an explicit `ssh-keygen -s ...` command, or pass `--sign` to execute that command immediately and import the resulting certificate into local metadata for distribution. This relies on the local OpenSSH ecosystem, so hardware-backed keys remain mediated by `ssh-keygen` and the host's agent/security-key flow. Certificate and key revocations are stored as signed-list-ready records. The bootstrap can pull certificate-flow metadata over Iroh with `geth ssh cert sync ` when the peer grants `ssh_cert.sync` on `resource:ssh:certs`, and revocation metadata with `geth ssh revocation sync ` when the peer grants `ssh_revocation.sync` on `resource:ssh:revocations`. The daemon also runs a configurable background live-sync tick for known peers and records per-peer high-water cursors in `module_state`, so repeated ticks request only records at or beyond the last remote cursor. The default interval is 30 seconds and can be changed under `[sync]` in `config.toml`. Boundary duplicates are harmless because records are keyed by stable IDs and inserted with replace semantics. Before issuing per-module pulls, the daemon can request an authorized sync status summary over the same protected Iroh control ALPN. The serving peer validates endpoint/card binding and returns only watermarks for streams where the caller already has the required resource capability, which reduces blind polling without letting discovery reveal private resource names. ## Resource Model Everything meaningful is modeled as a resource. Resources have a kind, name, authority reference, local role, replication policy, retention policy, and status. Authorization is resource-scoped and capability-based. Resource kinds: - `db`: cr-sqlite-backed SQLite synchronization - `kv`: Iroh Documents backed key-value data - `pipe`: authorized byte streams and forwarding - `document`: Automerge CRDT documents - `pubsub`: lossy notifications and presence - `cas`: content-addressed blobs - `ssh-proxy`: SSH/admin proxying over Iroh ## Module Overview `geth-cas` is implemented locally first using BLAKE3 hashes and filesystem blob storage. Local pin/unpin metadata is tracked in SQLite and surfaced in `cas list`. `cas cleanup` removes unpinned local blobs while retaining pinned blobs. The CAS crate can build deterministic tree objects that describe directories, files, executable bits, and file blob hashes; those tree objects are stored as CAS blobs. The daemon can register local file roots and scan them into CAS tree objects while reporting create/update/delete/rename changes. These scans are local metadata only and never overwrite the working tree. A peer can pull authorized remote file-root tree metadata with `geth cas root sync ` when it has `cas.fetch` on `resource:cas-tree:`; sync imports the remote CAS tree bytes and records a peer-qualified remote root whose path is `remote::` without applying files. File roots also participate in the daemon background live-sync loop through authorized `cas-tree:` watermarks. Repeated remote file-root syncs retain the previous imported remote tree as the base and compare base/local/remote tree state. When both local and remote roots changed, geth records durable concurrent edit, delete/edit, or divergent rename conflicts instead of applying remote content. `geth cas root apply --to ` is the first conservative materialization path: it creates missing files and directories from the CAS tree, does not delete extra local files, does not overwrite differing local files, and records conflicts for manual resolution. The daemon also has durable local file-conflict records with explicit resolution choices; richer three-way apply will extend those records instead of silently applying ambiguous remote changes. As a bootstrap network path, `geth cas fetch ` dials an imported signed peer card over the daemon-owned Iroh control ALPN. The serving daemon validates the caller's peer-card signature and observed Iroh EndpointID, then reduces local auth ops and requires `cas.fetch` on `resource:cas:local` before returning blob bytes. The requester verifies that the returned bytes hash to the requested BLAKE3 CAS hash before storing them. Successful fetches update durable local provider metadata keyed by CAS hash and peer node, which can be inspected through `geth cas providers `. Iroh-blobs provider/fetch integration and richer three-way file application are future work. `geth-db` currently registers local SQLite paths as DB resources and reports local-only sync status plus a read-only SQLite schema summary/hash. It also inspects `crsql_changes` metadata when that table or view exists, reporting change count, columns, and max `db_version`. The crate and local daemon can extract read-only typed change batches from `crsql_changes` with schema metadata through `db changes`. As a staged network path, `geth db sync ` uses the protected Iroh control ALPN to request remote typed change batches when the caller has `db.sync` on the remote `resource:db:`. The requester checks remote schema metadata against its local DB before applying changes and advancing its per-peer/per-DB cursor. Compatible remote batches are inserted into the local `crsql_changes` table or view before the cursor advances. Loading/configuring the cr-sqlite extension for real application databases remains the database owner's responsibility; the bootstrap tests use deterministic fixture tables. `geth-kv` currently provides a SQLite-backed local fallback for named KV stores through `kv create/set/get`. `kv set --subject ` evaluates local auth ops for `kv.write_key:` so prefix grants can be tested before networked callers exist. The local node/agent retains owner access for administration. Iroh Documents namespaces remain the target backend, but the bootstrap can sync named KV stores over the protected Iroh control ALPN. `geth kv sync ` requires `kv.read` on the remote `resource:kv:`, transfers entries at or beyond a per-peer/per-KV high-water cursor, and imports only values that are at least as new as the local entry timestamp. The daemon background live-sync loop runs the same KV sync for local KV stores and known peers. Private value encryption should use resource secret epochs before payloads are exposed to remote peers. `geth-document` currently registers local document resources and stores validated JSON state in the local SQLite metadata store through `document create/status/set/get`. This is a bootstrap editing surface, not yet Automerge CRDT state. `geth document sync ` can pull remote JSON state over the protected Iroh control ALPN when the peer grants `document.read` on `resource:document:`. The daemon background live-sync loop runs the same sync for local documents and known peers using per-peer/per-document cursors. The import rule is last-writer-wins by document timestamp. Automerge state encoding and sync are future work. `geth-pubsub` currently supports local publish/subscribe snapshots through the daemon control protocol. Messages live in a bounded in-memory ring buffer and are lost when the daemon stops. This is deliberate: pubsub is a lossy wakeup and presence channel, not authoritative storage. Durable facts must be written to CAS, KV, document, or DB resources before pubsub is used as a wakeup. `geth pubsub pub --node ` can publish to an imported peer over the protected Iroh control ALPN. The remote daemon validates endpoint/card binding and requires `pubsub.publish` on `resource:pubsub:` before recording the message in its local ring buffer. `geth pubsub sub --node ` can read an authorized peer's current snapshot for that topic over the same protected path when the caller has `pubsub.subscribe` on `resource:pubsub:`. Iroh-gossip replication and private topics are future work. `geth-pipe` currently supports `pipe listen/connect/send/recv` against a daemon-lifetime runtime. `geth pipe connect --node ` sends an authorized remote connect request over the protected Iroh control ALPN. The remote daemon validates endpoint/card binding and requires `pipe.connect` on `resource:pipe:` before recording the connection attempt and reporting whether a listener exists. `geth pipe send [message|--in |--in -] --node ` uses the dedicated `/geth/pipe/1` ALPN to write a byte message to a peer listener after the same endpoint/card and capability checks. `geth pipe recv ` drains local daemon-lifetime messages. `geth pipe listen --node ` can also ask a peer to register a daemon-lifetime listener after checking `pipe.listen` on the same resource. `geth pipe forward-tcp --listen 127.0.0.1: --node --target 127.0.0.1:` runs a local loopback listener and opens one authorized `/geth/pipe/1` byte stream per accepted connection. The remote daemon validates endpoint/card binding and requires `pipe.forward` on `resource:pipe-tcp:` before connecting to the remote loopback TCP target. TCP forwarding is loopback-only in the prototype; `geth pipe forward-unix --listen --node --target ` uses the same authorized Iroh pipe stream and requires `pipe.forward` on `resource:pipe-unix:` before connecting to an absolute remote Unix socket path. `geth-ssh-proxy` defines proxy target and connection metadata. `geth ssh proxy ` is a streaming command intended for OpenSSH `ProxyCommand`: the CLI streams stdin/stdout through the local daemon, the local daemon dials the remote daemon with `/geth/ssh-proxy/1`, the remote daemon validates the signed peer card against the observed Iroh EndpointID, reduces `ssh_proxy.connect` on `resource:ssh-proxy:local`, and only then connects the Iroh stream to `127.0.0.1:22`. OpenSSH still performs its normal login authentication over the resulting byte stream. SSH is not used as a geth transport backend. `geth-ssh-identity` defines SSH trust namespaces plus certificate request, approval, certificate import, and revocation-list data models. The bootstrap persists these flows locally and exports revocations as JSONL or OpenSSH KRL specification text. Certificate approval normally emits the exact `ssh-keygen -s ...` command, and `approve --sign` can run that command, import the resulting OpenSSH certificate, and mark the request signed. It can also invoke `ssh-keygen -k` to produce a binary OpenSSH KRL; serial and key-ID KRL entries require a CA public key via `--ca-public`, matching OpenSSH behavior. It can import geth JSONL revocation exports and OpenSSH KRL specification source files. Binary OpenSSH KRL files are not enumerable through OpenSSH tooling, so geth treats binary import as unsupported and asks for JSONL or the spec source. Revocation lists are not yet full CRDT-replicated resources, but the daemon can already pull cert-flow and revocation metadata from authorized peers over the protected Iroh control ALPN. Manual sync commands and the background live-sync loop share the same capability checks and cursor state. Sync import rejects conflicting records with ids that already exist locally instead of replacing local metadata. Local SSH certificate and revocation metadata commands also accept an optional subject principal for authorization testing: non-owner subjects must hold `ssh_cert.*` capabilities on `resource:ssh:certs` or `ssh_revocation.*` capabilities on `resource:ssh:revocations` before requests, approval/import/read operations, or revocation publish/read/import operations are accepted. The live-sync loop first asks for authorized stream watermarks and skips module pulls whose remote high-water value has not advanced. File-root live-sync uses only sync-status-advertised `cas-tree:` streams, because the local node otherwise does not know which roots the peer is willing to expose. ## Keychain, Auth, And Secrets The identity plane is `geth-keychain`: admin keys, users, devices, nodes, agents, and endpoint bindings. Endpoint rotation must not destroy higher-level node identity. Keychain operations reduce into an active view containing current admin keys, users, devices, node records, agent bindings, and endpoint-to-node bindings. Revoked identity subtrees are excluded from that active view. The daemon persists local keychain init/admin-key operations and `keychain status` reports the reduced local view. `keychain init --signing-key ` writes the canonical keychain signing payloads, runs `ssh-keygen -Y sign` with the explicit `geth.keychain.v1@geth.local` namespace, and stores the resulting OpenSSH signatures in local SQLite. `keychain status` reports the stored signature count and verifies stored signatures against their canonical payloads with OpenSSH when possible. Rejection of unsigned or invalid replicated keychain operations is still future work. The authorization plane is `geth-auth`: resource-local signed operation logs, grants, revocations, groups, and `auth explain`. Auth operations reduce into a current permission view for resources, grants, groups, and bearer access. The library can explain direct and group grants. The daemon persists local auth grant/revoke operations and `geth auth explain` evaluates that local operation log. Signature validation, replication, and module enforcement are still future work. Capability evaluation supports exact matches plus explicit scoped forms. For KV, `kv.write_prefix:` grants writes requested as `kv.write_key:` only when the key is under that prefix; `kv.write` remains the broad write capability. Command-level KV enforcement is still future work. Both keychain and auth operations use `geth-codec` canonical envelopes for signature payloads. The envelope includes a version, an explicit signature namespace, and the operation payload encoded with postcard. JSON remains useful for CLI/control output, but it is not the signed representation. The payload access plane is `geth-secrets`: resource master secrets, epochs, key envelopes, bearer secrets, and rotation. Revocation for private data is modeled initially as secret epoch rotation. The daemon persists resource secret epoch metadata through `secret create/rotate/status`. Bearer access is recorded as resource-scoped auth operations and rejects trust-mutation capabilities such as `auth.delegate`, `auth.revoke`, and `node.enroll`. Bearer creation returns a private bearer token once and stores a separate public bearer id plus token verifier in the auth log. Bearer challenge/proof commands derive deterministic BLAKE3 keyed responses from the private token, resource, nonce, and requested capabilities, then verify them against active resource-scoped bearer grants. Remote resource operations can carry optional bearer proofs over the protected Iroh control path; a valid proof authorizes only the requested resource capability and does not create node trust. The daemon does not yet store payload key material, encrypt resource data, or distribute key envelopes. ## Multi-User Direction The project is structured for future multi-user local-first authorization: - authorization is replicated data, not one mutable ACL blob - resources can carry or delegate to their own auth state - users, devices, nodes, agents, and endpoints are separate principals - capabilities are the underlying permission unit - bearer access is resource-scoped and does not mutate the trust graph - offline revocation is eventual - encryption key distribution is part of authorization ## Keyhive/BeeKEM Roadmap Resource secret epochs are the v0/v1 approximation for private payload access. Later designs can add Keyhive-like convergent capabilities and BeeKEM/CGKA-style group key evolution. The bootstrap does not implement BeeKEM and does not claim strong forward secrecy or post-compromise security. ## Security Invariants - All remote node-to-node communication is over Iroh. - SSH is not a geth transport. - SSH keys are admin trust anchors and signing identities. - Agent/node keys handle routine local identity. - Discovery is untrusted. - Knowing an EndpointID does not grant access. - Bearer secrets are resource-scoped capabilities. - Bearer access does not imply trust graph mutation rights. - Authorization is capability-based and resource-scoped. - SSH certificate issuance must be explicitly approved by an authorized principal before signing. - SSH certificate and key revocations are durable metadata that should be distributed over Iroh, not fetched through unauthenticated discovery. - Network and control decoders treat input as untrusted. - Service installation targets user service managers, not system service managers.