08-connectivity keeps two authorities apart on purpose: a public one for names the outside world reaches, and the mesh's own for names only the mesh knows. Nothing implemented the second, so anything between machines was plaintext or trust-on-first-use — which the design refuses everywhere else. A node now generates a fourth key at enrolment and reports the public half. A fourth, because a key used for two purposes is one rotation away from breaking the other: the identity key signs messages to the mesh and would do for TLS, and reusing it would mean rotating a node's identity every time its certificate is replaced. **Nothing secret travels and nothing is sealed.** A certificate authority says "this name belongs to the holder of this key", so the mesh signs a public half it cannot use, and the certificate it issues is public. A module asks for one and is given the certificate and, if it wants, the mesh's own — the private key is a path to a file the machine already has, the same arrangement the private network's key uses. Asserted by verifying rather than inspecting, because a certificate that parses and does not chain fails at the moment something connects: - what the mesh issues verifies against the mesh, for the name asked for - the name is in the subject alternative names, since a certificate carrying it only in the common name is refused by every modern client - it certifies the key the node generated and no other - another mesh's certificate does not verify, which is the whole point of two authorities being separate - the authority cannot sign another authority — one that could is one that can be delegated without anybody deciding to - two control planes starting together agree on one authority, or a mesh has certificates half its machines refuse Certificates last ten years, which is a choice: a short life needs something to renew it, and a renewal that fails silently is a mesh that stops trusting itself on a date nobody wrote down. What makes one replaceable is that the mesh reissues on demand, not that it expires.
118 lines
5.2 KiB
Go
118 lines
5.2 KiB
Go
// Package link is the control plane's side of the connection nodes hold open.
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//
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// novox/hq ADR 0002: nodes communicate over a message broker, not over HTTP. One exchange, and
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// the control plane is the single consumer behind it — ADR 0006 makes that a property worth
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// having rather than an accident, because two consumers sharing a queue silently split the
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// traffic between them, each receiving half of what it expects. That has happened here before.
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package link
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// Exchange is where nodes publish everything they have to say.
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const Exchange = "mesh"
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// ControlQueue is what the control plane consumes. One queue, one consumer.
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const ControlQueue = "control"
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// Routing keys. A node may publish these; it may not publish anything else, because its broker
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// account is scoped to this exchange and its own queue.
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const (
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KeyEnrol = "enrol"
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KeyReport = "report"
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KeyAlive = "alive"
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)
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// QueueFor is the queue a node consumes from — the only one it may read.
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func QueueFor(node string) string { return "node." + node }
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// EnrolRequest is what a joining node says.
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//
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// It arrives on a connection the broker has already authenticated, because the account was
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// created when the token was issued and the token's secret is its password. So this message is
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// not how a node gets in — it is what it says once it is in.
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type EnrolRequest struct {
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// Node is what this machine believes it is called. Checked against the token, never trusted.
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Node string `json:"node"`
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// Secret is the one-time right to join. The account password and this are the same string,
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// which is deliberate: the broker proves somebody holds the token, and this proves the same
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// thing to the control plane without the control plane having to ask the broker who connected.
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Secret string `json:"secret"`
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// PublicKey is what the mesh will believe from now on. The node generated it; the private
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// half has never left that machine (novox/hq ADR 0004).
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PublicKey []byte `json:"public_key"`
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// OverlayKey is the public half of this node's key on the private network — a different key
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// from PublicKey, and the mesh only ever sees this half.
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OverlayKey string `json:"overlay_key,omitempty"`
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// SealingKey is the public half of the key this node's secrets are sealed to. A third key,
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// and the reasoning is the same one twice over: the mesh must be able to send this node
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// something nothing else can read, and it must never be able to read it either.
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SealingKey string `json:"sealing_key,omitempty"`
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// ServingKey is the public half of the key this node serves TLS with on its internal name.
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// The mesh signs a certificate binding it; the private half never leaves the machine, so
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// there is nothing to seal and a copy of what the mesh holds certifies nothing new.
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ServingKey string `json:"serving_key,omitempty"`
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// Profile is what this machine can be asked to do. The control plane cannot decide what a
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// node should run without it, so it arrives with enrolment rather than being asked for after.
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Profile map[string]any `json:"profile,omitempty"`
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}
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// Signed is a declaration and the signature over it.
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//
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// The signature is over Declaration exactly as it will arrive, bytes unchanged — a node verifies
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// what it received rather than what it re-encoded, because any difference in key order or spacing
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// would break a signature over the same meaning.
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type Signed struct {
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Declaration []byte `json:"declaration"`
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Signature []byte `json:"signature"`
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}
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// Alive is a node saying nothing except that it is there.
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//
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// How long a node has been out of touch is a fact only the mesh can hold — nobody else is
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// watching — and without it a node running last month's assignments looks exactly like one that
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// is current.
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type Alive struct {
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Node string `json:"node"`
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}
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// Report is what a node states after applying. It states; the owning context writes.
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type Report struct {
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Node string `json:"node"`
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Applied []string `json:"applied,omitempty"`
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Failed map[string]string `json:"failed,omitempty"`
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Refused string `json:"refused,omitempty"`
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}
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// EnrolReply is what the mesh says back.
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type EnrolReply struct {
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// Accepted says whether the node is now known.
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Accepted bool `json:"accepted"`
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// Node is the name the mesh has for this machine, which settles any disagreement: the token
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// was issued for a node record, and that record's name wins over what the machine called
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// itself.
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Node string `json:"node,omitempty"`
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// Queue is where this node listens from now on.
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Queue string `json:"queue,omitempty"`
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// Password is this node's own broker account from now on, replacing the token's secret.
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// A credential that lives for as long as the node should not be the same string as one that
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// was meant to be used once.
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Password string `json:"password,omitempty"`
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// Fingerprint and Signer are what the node keeps so it can reconnect and keep verifying
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// without a person and a new token.
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Fingerprint string `json:"fingerprint,omitempty"`
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Signer []byte `json:"signer,omitempty"`
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Broker string `json:"broker,omitempty"`
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// Refusal says why not, in words for a person. Deliberately the same for every reason a
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// token can fail — unknown, spent, expired — so that guessing learns nothing.
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Refusal string `json:"refusal,omitempty"`
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}
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