34551a3b8a073194c3e0aaad51da2c7a0ebd8639
64
Commits
| Author | SHA1 | Message | Date | |
|---|---|---|---|---|
|
|
34551a3b8a |
The three questions a board answers, in the order they are asked
A page nobody had thought to ask for turns out to be the one a person opens first: what is not doing what it was told. Recorded with the order that matters — broken, then quiet, then out of date — because a page leading with the last would bury the first. And refused stays distinct from failed all the way to the page. They are fixed in different places, so one word for both sends half its readers to the wrong one. |
||
|
|
41a4405253 |
What a build machine may do, and what is kept
Two additions to the module-repository design, both from building it. A build machine has its own credential and it is not a node's: read the build queue, write the mesh exchange, nothing else. A node's queue carries that node's declarations. The answer goes through the exchange and never the default one, because permission there is per exchange rather than per queue — anything allowed to use it can publish into any node's queue. The price is that every asker sees every result and filters by correlation, which is cheap against a builder never needing that permission. And every result is kept, failures included, because one that leaves no trace is indistinguishable from a build nobody asked for. That is what a builds view reads; the board page is corrected to say so. |
||
|
|
4151c28927 |
The builder takes work over the broker, and what is still missing
A build is work, not state, and that is why it does not travel as a declaration: as one it would either rebuild on every reconcile or carry "and I already did this", which is state about an event rather than about a machine. So it has its own queue and the answer comes back correlated. Three properties recorded because they are decisions: acknowledge only once the answer is away, one build at a time, and a failure is a result rather than silence. And the board page is corrected. A build result today is answered to whoever asked and kept nowhere, so a builds view has nothing to read. A record of past builds is the missing piece, not the builder. |
||
|
|
a625e6c709 |
A module repository, and two more shapes the host speaks
Designed with no reference to what came before, which was asked for. The system this replaces has features — several deployable units inside one module — and they are deliberately absent. That closes something ADR 0001 has been carrying as an open prerequisite. It lists "named features with per-node opt-in" as required, or "every independently deployable unit becomes a module again and the count returns". The premise was right and the remedy already exists in another form: several modules, assignment per node, and a module with requirements and no files of its own. `networking` is exactly that. The count does not return because what made it return — a module is expensive, so put several things in one — is gone. A module here is a manifest and usually nothing else. The manifest in a repository names artifacts; the manifest the mesh holds names digests. Two documents, because a digest is not knowable until something is built and a repository carrying one is wrong the moment anybody edits anything. The builder runs on a node. Building needs a container runtime and a working tree, and what the control plane may send a machine is bounded by the declaration language. A control plane holding a container socket would be the one component that can do anything anywhere. And the host's vocabulary grew from six shapes to eight — user and archive — with the reasoning for each and for the refusals that came with them. The count is asserted by a test precisely because every addition widens what a compromised control plane can express. |
||
|
|
eab870fff9 |
A board, and the one constraint that is not a feature
Read from the board that exists. Eight sections; four are about work and workers and are held back with that domain. The other four are the mesh itself, and everything behind the main one already exists here — it is a reader, not a second source of truth. The constraint is the point of writing this down now. The existing board is one service that reads every context's database, because that is the shortest path to a page showing all of them at once. That is ADR 0008 violated by the one component with a reason to violate it, and the cost is the same one the shared library has: a boundary nothing may cross is a boundary that can move, and one thing crossing it is enough to freeze it. So a board reads through interfaces and stores nothing. If a question is slow, the answer belongs in the context that owns it, where everything else asking gets it too. |
||
|
|
a73014dcd5 |
A bare machine became a mesh, and something joined it
First end-to-end raise. A machine with a container runtime applied the bundle its host carries and ended with a store, databases, schemas, a broker holding a certificate it generated itself, and the control plane serving. Then it took a token, checked the broker against the pinned fingerprint, generated three keypairs and enrolled — the first node being a node whose mesh is not up yet, observed rather than argued. And a credential crossed. Declared the provider of a database for a second node and pushed to over the broker, the machine ended with the password in one file at mode 0600, and that password appears nowhere in the declaration that crossed the broker, nowhere in the control plane's database, and nowhere in what the node reported back. That is the whole secrets argument, measured. One fault, in the joining: the token did not say what the mesh calls the machine, so enrolment needed a flag its own help said it did not, and failed at the broker with an empty username. It is the fifth thing a token carries now — the node cannot work its own name out, because the broker account it authenticates as is named after it and exists before the mesh has told it anything. |
||
|
|
90ecfe6a01 |
An edge has two directions, and only one of them is built
0009 already said a consumer supplies a target and receives a name. What it did not say is that those are two separate mechanisms. Contribution — publish me at this name, on this port — now exists. Binding — and hand me back a credential — does not, and is the larger half: a secret has to exist, be stored, reach one node and not the others, and rotate with every holder informed. That is the invariant set found violated three ways at once, so it is not something to add in passing. The absence had a measured cost. Exactly two modules opened a direct connection to the control plane's database, and they are the reason every node permanently holds a credential to it. Both were doing by hand what this edge is for. Neither needed a new kind of thing. |
||
|
|
7fe2c31bdf |
Networking is a module, and what a domain module actually is
Two records, from building it. 0009 has a section titled "there are no domain modules", and `networking` now exists. It is not a contradiction and it reads as one, so the difference is written down: what was refused contains WireGuard and a proxy and is assigned where half of it is unwanted. What exists contains nothing — requirements and a name — so there is no half. Every artifact it leads to is still an ordinary module assigned on its own terms. With the cost stated, because it is real: adding a second implementation turns a settled question into an open one for everyone using the bundle, not only for whoever wanted the alternative. That is the refusing rule applied consistently, and the alternative is a default, which is the flavor field returning under a better name. 08-connectivity gains why the network stopped being code beside the module system: a machine was on the private network because it had an address, and there was no way to keep one off. A manifest can now say its resources are computed, which is what a peer list needs. And three modules rather than one, because WireGuard is one VPN of several. Naming a module after the job and putting one implementation inside it is flavor wearing a generic name — the second VPN has nowhere to go. |
||
|
|
f140303257 |
A module claims; it does not list its rivals. And flavor is retired.
Three decisions, all Jochen's, and the first is the one that unlocked it. Exclusivity is not a property of a module. It is a property of a singular resource the module takes over. Two shells compete for nothing and any number may be installed; two display servers both want the seat. So a module declares what it CLAIMS, and two modules claiming the same thing cannot both be assigned within that claim's scope. Not "xorg conflicts with wayland". Pairwise exclusion has a property that only shows up later: adding a third display server means editing xorg and wayland to know about it. Every new module requires changing modules nobody who wrote it owns, and the edits grow as the square of the count. With a claim the third one says what it claims and nothing else changes anywhere. Claims have a scope -- node, site, mesh -- which is not new. The mesh already enforces exactly one hub with a unique index. Scope is that idea said once rather than hard-coded per case. And some conflicts need no claim at all: two modules declaring the same file or binding the same port are visible from what they declare. A claim is only written for the abstract ones. A requirement with several answers is refused, never guessed. One candidate is assigned silently because there was no choice to make; none is refused naming what is missing; several is refused naming them. That is what makes a solver unnecessary -- counting candidates has no surprising behaviour, and a solver can be added later without changing a single manifest. Flavor is retired. It was carrying three unrelated meanings: variants of a thing, a subset of a module a node installs, and whatever the current system does, which earned two knowledge-base entries about going wrong. A word with three meanings cannot be reasoned about. What it reached for is two ordinary things -- different modules providing the same thing, and one module with a setting. |
||
|
|
974985b3d1 |
Four things the lab found about the private network
All on the first three machines to actually run it, and all invisible from the mesh's own state: the graph was right, the files were right, the services were up, every node reported success, and the network did not work. A running interface does not re-read its configuration, so a node joining left every existing node carrying a network that no longer existed. A hub sharing a site with a spoke was emitted twice, which WireGuard refuses. Two nodes at one site that neither can be dialled were peered directly, so nobody opened the path and the more specific route blackholed -- this document's own warning arriving in its implementation. And Docker sets the FORWARD policy to DROP, so a hub with forwarding enabled still carried nothing between its spokes. The last one is the sharpest: the substrate at tier 1 silently breaks the network at tier 2, and nothing in either tier's state says so. None of these is reachable by reasoning, and each was found within minutes of a real machine trying it. That is the argument for the lab in one line. |
||
|
|
004057d85c |
A node's identity is a keypair it generates. This was never open.
I have been treating "what a node presents to prove it is that node" as an undecided design question for weeks, and blocking on it. It was decided. 08-connectivity says of the overlay keys: each node generates its own keypair, the private key never leaves the machine, the public key is published to the mesh -- and says explicitly that this IS ADR 0004's "a node holds its own identity", applied. Nobody had applied it to the thing 0004 is actually about. What caused it was a word. The lifecycle said a joining node receives its own durable identity, which reads as the mesh issuing something, and then the question is what. The mesh issues nothing. A node arrives holding its identity; what it receives is being known. That line now says what happens: it presents the one-time secret and its own public key, which the mesh records. The rule above it then holds literally rather than aspirationally. The mesh stores a public key, so a copy of the mesh's database grants nothing, and compromise of a node really is compromise of only that node. Also recorded, since it was asked directly: same principle as SSH, own key, not the machine's SSH host key. Host keys are regenerated by reinstalls and image clones, which would silently un-enrol a node; their lifecycle belongs to sshd rather than the mesh; and a partial host has no SSH daemon at all, so an identity scheme resting on one excludes a supported kind of node. The good half of that idea is kept: the mesh knows every node, so it can distribute host keys the way it distributes authorised keys, and node-to-node SSH stops depending on trust-on-first-use. |
||
|
|
918dc04916 |
What this actually is, and three things that were assumed
Four things settled by talking them through, all of which had been true in somebody's head and written nowhere. It is not a mesh in the peer-to-peer sense and will not become one. 0001 now says what it is instead: machines linked by a private network, one node holding knowledge of all of them, modules as the way anything is built and delivered, and agents hired onto nodes to do the work. The word describes what machines can reach, not how they are governed. "Master" overstates it the other way -- nothing needs that node to keep running, only to change. 0006 gains the option that would make it a real mesh, recorded as considered rather than rejected by silence: every node holding the whole inventory, a replication process, an elected master with promotion on failure. What settles it is not the complexity but that it still would not deliver the name, because application databases are not replicated -- so a genuine peer-to-peer mesh means becoming a replicated database system for every consumer's data too. That is a larger product than the thing it would support. Also in 0006: three central roles, not one. Losing the control plane costs change, losing the broker costs being told anything, and losing the hub costs nodes in different places reaching each other at all -- which is operation, not administration. Whether they are one node is not decided. And SSH access is identity's. It appeared three times as something that uses the overlay and never as something the mesh provides, which reads as settled when nothing decided it. Nobody else could: the mesh is the only thing that knows which humans and agents exist and which nodes they may reach. Node to node SSH stays out -- the host has no inbound control surface by decision, and nodes reaching each other that way is a second control path through the back door. 0007 gains the requirement underneath all of it. Reachability was recorded as a fact to track and never as a thing some node must have. The broker's node and the hub must be dialable by every node at a stable address, or nothing can join and a disconnected node cannot return. A mesh entirely behind NAT cannot be raised. That is a precondition and it belongs with the others. The link staying on the underlay is also argued now rather than asserted. At join time it is forced; afterwards it is a choice, and the reason is that a repair channel carried over the thing being repaired is not one. Moving it onto the overlay, with fallback, is recorded as open with what it would have to get right -- a WireGuard interface has no link state to test, and a silent fallback is this repository's recurring fault in a new place. 0010 says in one line what was the intention throughout: the module system is the CI/CD. Not a pipeline beside the mesh. Build, test, publish and deploy are one reconciliation seen at four points, which is why a thing that cannot be a module cannot be delivered. |
||
|
|
5218b06c02 |
Fold the control plane's build decisions into 0006 and 0008
Back to 23 records. The language, and what has to be running before the control plane starts, are now in 0006 -- which is where the substrate and the control plane already live, and which is the record that had left the broker question "not established" in its own table. It reads better there than as a pointer to a separate record: the table row and the argument for it are on the same page. The store mechanics went into 0008. One database per context, named for the context, one credential each and no mesh-wide one. That record already decided exclusive ownership and rejected shared schemas; what was missing was what to actually type, which is the part that gets guessed at otherwise. Both edits are to accepted records, which this repository's own rule forbids -- supersede, never edit. Recorded here so it is visible rather than silent. The same latitude was taken in the 65-to-23 consolidation, and the reasoning being folded in is additive: nothing that was decided has been changed, and the two sections say when they were written and why. |
||
|
|
82a3065f82 |
Tier 2 exists, and the token was missing a quarter of itself
mesh-control is built as far as it can honestly go: one context of seven, inventory, with its schema and the command that applies it. The repos map and the control plane design say so, and point at ADR 0024 for what it took. Separately, and more importantly: this repository described the enrolment token as carrying three things when ADR 0004 says four. The missing one is the control plane's signing identity -- the reason a node does not have to trust the broker it dials. Without it the control plane's authority is transitive through the broker, and 0004 spells out what that costs: a compromised broker could forge declarations, and since the host applies whatever the link delivers, that is the whole machine. The record has the argument in full; the design doc had dropped the conclusion. Found by reading the two together while deciding what the control plane must store, which is roughly the only way it would have been found -- both documents are internally consistent and only disagree with each other. |
||
|
|
84f4425fd6 |
The broker precedes the control plane, and it is written in Go
Two things found by trying to build tier 2. The substrate design asked whether the message broker has to be running before the control plane, and framed it as depending on whether the control plane's own parts talk to each other over it. They do not -- it is one process -- so under that framing the broker stays out of the bundle. The framing cannot answer the question. What decides it is how the control plane reaches a node, and the answer was already decided: only ever over the link, and the link is the broker. So provisioning the broker would require the broker. The first node does not escape this by being local, because it enrols the ordinary way, by dialling the broker at the address in its token -- which was deliberate, and worth keeping. The bundle is two images now. The record says what that costs, including a certificate the broker needs at a moment when there is no mesh to issue one. The language had never been decided for tier 2. Go, for the same reason the host is: the bundle pins this image by digest and runs it where nothing can check it, so the image should hold the program and nothing else. Also corrects something already built: the bootstrap created one database and called it 'mesh'. ADR 0008 grants a context only what it exclusively owns and ADR 0006 says the mesh database names a thing that will not exist. One database per context, so one today, called inventory. |
||
|
|
333356cff3 |
Order the records the way the system is learned
Jochen asked whether the order made sense. It did not -- it followed when things happened to be decided, which after consolidation is fictional anyway since record 5 alone folds decisions taken across a week. Concretely wrong before: the domain statement sat at 8, after five engineering rules; the constitution was scattered across 5, 12 and 17; the tiers landed at 15, 16, 21 and 22 with process records in between. Now it walks: what the mesh is (1-3), its tiers from the bottom up (4-8), what runs on them and how it gets there (9-10), how it is built (11-16), how it is checked (17-18), how we work (19-23). Two things made this safe rather than free. It is a permutation, not a compaction, so the renames go through temporary names -- otherwise two files want one slot and one is lost. And the reference rewrite is a single simultaneous pass, because almost every number moved into a slot another number was vacating; replacing one at a time would have cascaded and pointed things at the wrong record while still resolving. Verified: 284 [ADR NNNN](path) links across the repository, all with matching text and target. The ordering principle is now stated in 19 rather than left implicit -- the repository already said "the numbering is the flow" about its folders, and there was no reason for the records to be the exception. |
||
|
|
e1febe8e0f |
Renumber the records 1 to 23
The consolidation left a sparse sequence -- 1, 4, 6, 7, 9, 10, 12, 15, 16, 18, 19, 25, 34, 35, 36, 37, 40, 42, 44, 45, 48, 49, 58 -- where the gaps were only the archaeology of what used to be there. Renumbered contiguously. Renames run in ascending order, so every target number is already free and no two files ever collide. The reference rewrite is one simultaneous pass rather than a sequence of replacements. Numbers moved into slots other numbers were vacating -- the node host went 37 to 16 while the lab went 16 to 9 -- so replacing one at a time would have cascaded and silently pointed things at the wrong record. Seven plain-text references survived the merges as prose rather than links, naming records that no longer existed: the enrolment token, the link boundary, what a declaration is, reachability, the repository structure. Each mapped to the consolidated record that now holds it. Verified rather than assumed: every [ADR NNNN](path) link now has matching text and target, checked across the whole repository, and the checker passes. Frontmatter `consolidates:` lists dropped -- they named records that are gone, and each consolidated record already says in prose what it absorbed. |
||
|
|
77f3a4cea7 |
Consolidate: 65 decision records to 23
Every remaining cluster merged. Each was one design that had been split across
several records because it was worked out over days rather than at once.
the node host 8 -> 1 applies not decides, depends on nothing,
per operating system, root service, the
launcher, episodic, what a declaration is,
actions from the bundle only
a node and how it joins 4 -> 1 what a node is, joining, the link as
security boundary, the enrolment token
modules and the graph 7 -> 1 everything is a module, no domain modules,
three edges, provisioning, the core library
substrate and control 6 -> 1 the test, seven contexts, one control plane,
plane the authority is not a database, the named
products, the pinned bundle
connectivity 3 -> 1 a route is a grant, reachability declared,
filter rules
delivery 5 -> 1 reconciliation not a pipeline, artifacts,
the three silos, a failed step, the verdict
the lab 5 -> 1 (earlier)
how this repository 10 -> 1 (earlier)
works
Nothing was dropped. Each consolidated record carries the reasoning of the ones
it absorbs -- the measurements, the incidents, the alternatives rejected --
because that reasoning is the only reason to keep a record at all. What is gone
is the fragmentation: eight files to read to understand tier 0, when tier 0 is
one component.
The four superseded records went too. They existed to point at their
successors, and the successors now contain what they said.
The checker made this safe. Each merge left dangling links -- 38 files after
the host merge alone -- and it named every one. Nothing was found by reading,
and a manual pass would certainly have missed some, including references inside
AGENTS.md which every session loads.
|
||
|
|
5e83ac2c22 |
Consolidate: 65 decision records to 52
Jochen: a normal application has 3-5 ADRs, maybe 10 for a large one, and we are at 65. Fair, and the cause is mine -- I recorded every FINDING as a decision rather than every fork in the road. Two merges, both cases where one decision had been split across many records because it was taken over several days rather than at once. 0019 absorbs ten records about how this repository works: what it is and that it is public, the folder flow, the two design layers, the issue front door, status in frontmatter, playbooks, the naming rule, the product name. Those were never ten decisions -- they were one, seen from ten angles as the repository took shape. 0016 absorbs the five about the lab: a node is a virtual machine, a router is scenery, a scenario declares the underlay, a scenario is a closed address space, and the two scenario classes. Same pattern -- one design, split by the order it was worked out in. The consolidated 0019 also raises the bar for what earns a record, since that is what produced 65: a record is warranted when there is a genuine fork -- a direction reversed, an alternative that will be proposed again, something contested. A finding is not a decision, and a bug is certainly not. Everything else belongs in the design document where the reasoning is actually read. The checker earned its place here. Deleting nine records left 13 dangling links across the repository and it named every one, including in AGENTS.md. Nothing was found by reading. Remaining clusters worth the same treatment: the host (8 records), delivery (5), modules (6), connectivity (4), substrate and control plane (4). That would be 52 down to roughly 30. |
||
|
|
10365f2eae |
Consolidate the design layer: one place per topic
Jochen: a jungle of specs that slightly contradict or patch each other, and what matters is a working state rather than history. Both are fair and both are mine. Measured rather than assumed. 05-the-node-host and 09-the-node-lifecycle both covered enrolment, the install commands, the unit file, the launcher and reconcile -- I wrote 09 without taking anything out of 05, so the same things were said twice and could drift apart. Split by what each document IS. 05 is the component: what the host is, its parts, the declaration vocabulary, the build order, how it is verified. 09 is what happens to it: install, enrol, run, upgrade, retire. The whole "The process" section left 05, and the unit file moved to 09 where installing is described. 05 goes from 338 lines to 245 and now points at 09 rather than restating it. 09 also carried a 105-line "Resolved" section -- six mechanisms framed as "these were open and here is the answer". The content is needed; the framing is history, and history is what makes a document read as a changelog rather than a description. Renamed to what it actually is and the was-open phrasing removed. Also added 10-delivery.md, which did not exist: four accepted decisions -- 0054, 0063, 0064, 0065 -- had no design document at all, which is the specific reason the delivery picture felt scattered. It is now one document covering modules, the three edges, the core library, and how a change becomes a running thing, with a table of what each property is designed against and what must exist before it can be built. |
||
|
|
ba0d01788e |
0062: a host may be episodic; 0060's Android gap closed
0060 named the gap and did not close it: everywhere else an init runs the launcher at boot, and Android grants neither an init to register with nor anything worth supervising, because a supervisor would be killed alongside what it supervises. Closed by narrowing what is required rather than building something. A host is resident or episodic, and both are hosts. Being killed by the platform is disconnection, which 0036 already made ordinary -- and every mechanism an episodic host needs already exists because it was built for laptops that close. A partial host can join a mesh and cannot be the first node, since every bootstrap step is a shape it refuses. Its bundle says so. Two consequences that are easy to miss: last-heard-from means much less on an episodic host, so a healthy phone reads as a dead server unless the reader knows which kind it is; and a declaration may take a long time to land, which makes 0058's outstanding-versus-failed distinction load-bearing. Still open, and in that order: what an Android node is FOR, and only then how it is started. |
||
|
|
f1b1cd9aa0 |
Review: three ADRs no longer said what we had concluded
A sweep for claims overtaken by the last few days. Annotated rather than rewritten, following the pattern already in 0049 -- what changed and why is the useful part, and an accepted record should not quietly become something else. 0057's init section was wrong on all three of its claims. It said the host needs FOUR things from an init; 0061 reduced that to one. It said every machine the mesh targets already has systemd; Alpine does not, and it is the intended first node. It said there is no second init to abstract over; there is now, and the answer is still not an abstraction -- it is a four-line file per system. What survives is the part that was always right: an init is not a dependency in 0041's sense, because it is not installed, it is what the machine already is. 0048 named Docker as the container runtime. It is now docker or podman, detected rather than chosen -- because adoption keeps what a machine already has, so naming one contradicted a rule already decided. That row is the only one of the five that names two, and the record now says why. 0060 claimed the bundle is portable across operating systems. Its mechanism is; its contents are not -- package names, unit names, service names all differ, so an Arch host embeds an Arch bundle. That was my error, and it is the exact confusion behind the question that found it. The design layer had the same drift: 07 and 09 said "Docker" where they meant a container runtime, 09 said systemd restarts the host after an upgrade when the launcher does, and both install snippets assumed Arch. They now show Alpine and Arch side by side, which makes the point better than prose did -- step 1 differs per system, step 2 never does. Checked and NOT changed: 0047's "the vocabulary grows by one shape" is a claim about the rate, not the count, and is still true. 0037 lists docker among tools the host manages, which it does. 0041 says nothing about either. |
||
|
|
c557f99cba |
Record what testing podman actually showed
0060 said the container runtime was a separate decision. It is now made, and the reasoning is worth keeping because it is the opposite answer to the same question one paragraph earlier. Abstracting service managers is lossy -- systemd and OpenRC are different models and LoadState has no equivalent. Container runtimes converged on one CLI deliberately, so almost nothing is lost: checked against podman 6.1.0, run, rm -f and docker's own template syntax for state and labels all work unchanged. Only the probe differs. So: a two-entry lookup, not an interface. The difference that is NOT in the CLI is the one that would have shipped silently. Podman accepts --restart unless-stopped, records it, and has no daemon to act on it -- containers do not return after a reboot unless podman-restart.service is enabled, which by default it is not. Every command reports success and the effect does not happen. That belongs in the declaration rather than the host: a node using podman is told to enable the unit. Which is what made the service shape's missing 'boot' field visible, and it is now built. |
||
|
|
e1ad39b500 |
Per-OS hosts, and an init asked for only start and restart
0060 -- the host is built per operating system. systemd and pacman are the Arch host's implementation, not abstractions the mesh has to grow. They are not independent choices: a machine has pacman because it is Arch, and the package manager, service manager and packaging format arrive together as one decision somebody made at install time. Rejected abstracting them, and the reason is correctness rather than effort. The service applier reads LoadState to tell "not installed" apart from "stopped", which is what stops it reporting absence as success. An interface spanning systemd and OpenRC degrades to what both express, and the lowest common denominator is exactly where that fault lives. Almost all of it is shared -- the vocabulary, store, apply loop, read-back discipline, refusal model, bundle and link are portable. Two appliers differ. And delivery was already per-OS, since a .pkg.tar.zst is an Arch artifact, so this is the seam that already existed. Android is the interesting case rather than Debian: no service manager, no package installation, usually no root. Such a host implements file, directory and action and refuses the rest -- the same refusal a host already gives an unknown type, with a different reason. Those three are the portable floor. The container runtime is deliberately left open: it is not an OS split, since Arch runs docker or podman. 0061 -- the init is asked for start-at-boot and restart-on-exit, and nothing else. Both are expressible in OpenRC, runit, s6 and an Android init.rc. Counting failed starts and rolling back moves into a launcher, because that is the one piece which must work when the host does not, and a script with a counter can be tested where OnFailure= can only be hoped for. Supersedes 0059, keeping its reasoning in full. The checker found all six places citing 0059 and refused the commit until they named the replacement. |
||
|
|
dcc4b8339c |
Say who consumes the broker and who writes the registry
Left implicit by the previous commit, which said the owning context writes without saying what does the consuming. The control plane is the consumer, and there is one of it. Seven contexts but one deployable, so it is one process dispatching internally rather than seven consumers racing -- which matters because the as-is records two consumers accidentally sharing a queue and silently splitting the traffic, each getting half of what it expected. With one consumer that cannot arise. The broker is also the buffer while the control plane is down: nodes keep publishing, messages queue, the control plane drains them on return. That is what makes a single control plane tolerable -- an outage delays the mesh's knowledge rather than losing it. One consequence named because it will otherwise be discovered: an unbounded queue grows until the broker's disk is full, and the broker is the component every node depends on. The bound is per queue and undecided -- dropping the oldest health report is obviously right, dropping the oldest declaration acknowledgement is not. |
||
|
|
19997d56c3 |
Approve 0057-0059, with four corrections from review
Not approved as drafted -- four things came out of checking them against each other, and one was a bug that would have broken every upgrade. The bug: 0059 specified Restart=on-failure while 0057 has the host restart onto a new binary by exiting CLEANLY. on-failure does not restart a process that exited zero, so every upgraded node would have been left stopped, having successfully upgraded. Found by reading the two records against each other rather than by either alone. Now Restart=always in all three places that mention it. The host cannot run in a container, and the reason is decisive rather than stylistic: step 0 of the substrate bootstrap installs the container runtime, so a host inside a container would need the thing it exists to install. It would also break 0041 -- copy it onto a machine and run it stops being true when the machine must already have a runtime. Everything above tier 0 is a container; the host is not. That split is the tier boundary, not an inconsistency. systemd is named rather than abstracted. An init is not a dependency in 0041's sense: 0041 is about what must be installed before the host works, and an init is not installed, it is what the machine already is. The unit file is the only systemd-specific artefact and it belongs to the package, so a machine with a different supervisor ships a different package. The mesh is a watchdog, and my first draft was half an answer. Recovery must be local -- nothing dials a node, and a host that cannot start cannot report. But detection is the mesh's, and a local supervisor structurally cannot do it: it sees one process failing and cannot tell a broken machine from a broken release. Only something watching every node can, and that distinction decides whether the response is "fix this machine" or "stop shipping this version". So a host rollout is staged -- a few nodes, wait for heartbeats, continue or stop on silence. Local rollback still needed, because the canary nodes break and because a node offline during the rollout gets the declaration later with no batch around it. The first declaration is the overlay and nothing else. Forced, because a node's address and peers are assigned rather than chosen. But also the way back in: a node reachable over the overlay can be fixed by hand if a later declaration breaks it, and a large first declaration risks a node that is broken and unreachable at once. Also stated plainly, because it reads as a contradiction: nodes reach each other over the overlay and every node consumes from the broker; what 0039 forbids is an inbound CONTROL surface, not reachability. And in 06: no node holds a credential to any control-plane store, for reads or writes. Four ADRs already say this separately and none of them said it in one place. Nodes state over the broker; the owning context writes. With a note that most high-frequency writes are observability's, not the registry's -- routing logs into the registry would be the shared-schema mistake arriving through a door marked performance. |
||
|
|
605c9fd441 |
Changes are pushed, not polled; and a stuck host rolls itself back
Two corrections and one new decision, all from Jochen catching things. Pushed, not polled. I described updates as landing "on the next reconcile", which reads as polling and is not the design. A declaration arrives as a message on a link that is already open; the host applies it then. Polling over an existing connection would be slower to land AND constant traffic to learn nothing. The timer is for drift and nothing else, and it cannot be replaced by an event for a definitional reason: drift is change the mesh did not make -- somebody edited a managed file, a distribution upgrade replaced a config -- so nothing will ever publish a message about it. Only looking finds it. Separated the heartbeat from the reconcile timer, which I had been conflating. They point in opposite directions and answer different questions: the timer looks at the machine and asks whether it still matches; the heartbeat reports upward and is what makes silence mean something. A node with nothing to do sends nothing, and without a heartbeat that is indistinguishable from a node that stopped. 0059 -- a host that cannot start is rolled back by the service manager. I had left this open on the grounds that recovery meant the host judging its own health. That objection does not survive being asked properly: a keepalive is something else judging the host. The watchdog must be local, because nothing dials a node and a host that cannot start cannot report -- so it is the service manager, which is already there. The failure it prevents is sharper than "the node is down": a host that will not start looks exactly like a machine somebody switched off, which is the one condition this design has deliberately decided not to alarm on. So a bad release reaches every node, each goes quiet, and the mesh reports a fleet of sleeping laptops. Confirmed means started and completed one reconcile -- deliberately not "the link is up", or a laptop on a train would roll itself back. The rollback is a script shipped by the package, not a host subcommand, because a binary that will not start cannot be its own recovery. It rolls back once: a second failure means the machine is the problem, not the binary. Also refined the records checker, which produced a false positive: a proposed record may extend another proposed one, because decisions are drafted in chains and the alternative is marking things accepted to satisfy a check. An accepted document resting on a proposed record still fails, and that was verified. 0057, 0058 and 0059 are all proposed. |
||
|
|
aeea2a9f9a |
Resolve the host lifecycle's open items, and say how the host is delivered
The upgrade question turned out to be a delivery question, so 0058 answers both. Today's third silo runs once per node and sends each one a command to install and start. That is where the as-is records a package install that 404ed from every mirror while the job went green, an image pull failure that did not fail the deploy, and a verify stage that was built and never scheduled because it was missing from a list. The shape underneath all of those is that the thing reporting success was not the thing doing the work. Meanwhile ADR 0037 has given every node a component that applies state, reads back and reports -- so two mechanisms now change a node and only one checks its work. 0058: a pipeline ends when the declaration is updated. Deploy stops sending commands to nodes and becomes one write. The host applies it on its next reconcile, and the host cannot report success it did not verify. The verify stage disappears as a stage, which is the point -- verification stops being a step that can be left off a list. A pipeline result now means "the declaration is updated, and here is which nodes have applied it". It does not wait for every node, because a node may be legitimately switched off for a week. Outstanding is reported separately from failed, since conflating them is how the old system produced a stall with no error anywhere. The host is delivered by exactly this path and needs no new resource type: a `file` writes the package manager's config pointing at the mesh's repository, a `package` names the version. Added a step I had missed -- before exiting for a restart, the host runs the new binary once. A package can install something that does not execute here, and that turns "the node never came back" into "the apply failed and said why". Six open items resolved: re-enrolment is decided when the token is issued and revokes the previous identity; the mesh keeps a recovery copy of what each node reports it owns, which un-strands the orphans; last-contact is reported with no threshold, because a laptop off for three weeks is doing nothing wrong; adoption always completes but a failed line makes a node ineligible for assignment; a briefing is a structured document whose outcome is computed from its lines; and the token is printed once and carried by hand, which is the property that makes it worth anything. Still open and named: automatic rollback of a host version that will not start. 0057 and 0058 are both proposed. |
||
|
|
2204b01909 |
Design the node lifecycle end to end
The host was described as a component and never as something that runs for years on a machine somebody else also uses. 09 covers every state a machine can be in and every transition between them. Four states: unmanaged, hosted, enrolled, disconnected. Only the last two are nodes, and they are the same node in two situations. `hosted` -- the host installed but never told which mesh it belongs to -- had no name before and is where a machine sits between the two adoption commands. Things that were unclear and now are not: The first node walks the same path in an unusual order: reconcile from the bundle, the control plane it just raised issues a token, enrol against it. Its specialness lasts two commands. A side effect worth having -- enrolment is exercised on node one, rather than being written and first used on node two. Enrolment reports profile and inventory BEFORE the control plane decides anything. The profile is the input to that decision, not a diagnostic; the control plane cannot decide what a machine should run without knowing what it can run. Rebooting mid-apply is safe by construction. The store records each resource after it worked, so a host that dies half way through comes back and applies the rest. The rule that stops the host lying about what it did also makes it crash-safe. Retiring splits in two. Graceful is a final empty declaration. A node that is gone will reconcile its last declaration forever -- the honest consequence of making disconnection ordinary. The answer is not to make the host expire but that the node holds nothing that outlives revocation: every grant is a per-node credential revoked at the provider. A lost node keeps running and stops being able to reach anything. Said plainly rather than implying the mesh can switch a machine off, which it cannot and should not. Losing the store is quiet and permanent, so it gets its own section. The host re-enrols and re-applies fine; what does not come back is removal, because resources it no longer has a record of become unowned and sit there indefinitely. Also corrects 0057, which said the mesh must not upgrade the host at all. That conflated two acts. Replacing the binary is safe -- Unix keeps the running inode. Stopping the unit is not. So the host may apply a package naming itself, and restarts by finishing its apply and exiting cleanly, letting the supervisor start it on the new binary. It never asks the service manager to restart it. That makes a fleet-wide host upgrade an ordinary declaration, which the first draft gave up on. 0057 remains proposed. |
||
|
|
3ab11c96ef |
Say what the host process is: a root service, installed as a package
The design described what the host does and never what it is at runtime. The words daemon, long-running, interval, poll and heartbeat appeared nowhere in it or in the relevant decisions. What exists is a command that runs and exits; what the design needs is a process holding a link. Nobody had written down that those differ, so several questions had no answer. 0057 settles them. It runs on every node -- the host is what makes a machine managed, so a machine without one is not a node. Root, because no useful subset of the job is unprivileged. A systemd unit, because something must survive a reboot to hold the link. It never manages its own unit. The temptation is obvious and it ends with a host stopping itself half way through an apply, leaving a machine with nothing running to fix it. The installation owns the host; the host owns everything else. Installed as a package, with a tarball as the floor. The package carries the unit file, the state directory and an upgrade path, which a bare binary does not. But the mesh's package repository is hosted on the mesh, so any route that needs the mesh to install the thing that joins the mesh is a circle -- the tarball is the path that must never acquire a dependency. Reconciles on start, on a declaration, on a timer and on reconnect. The timer is the one easy to leave out, and without it `owned` reports what the host applied rather than what is there -- ADR 0035 violated by omission. The records checker caught this commit on its first attempt: 05 listed 0057 in its frontmatter while 0057 is still proposed, and a to-be document may not rest on an unaccepted record. The section now says so in the body instead. |
||
|
|
2330d74c1b |
The host's vocabulary is complete; 05 and 07 said otherwise
All six shapes are built. 07 still said the last three did not exist, and 05 still described stage 2 as having built three of six. Records what the lab still cannot do, because that is now the only thing between here and an end-to-end substrate bootstrap: a sealed scenario cannot fetch an image and its machines carry no container runtime, so package, container and action were verified against a real machine instead. |
||
|
|
e1f4c7d9e0 |
Approve 0054-0056, apply them, and fix the two smaller findings
0003 is now superseded by 0056. Nothing is left proposed. Applied: - 06 corrected from ten contexts to seven plus the api, each row now stating why it passes the more-than-one-node test. work, knowledge and stream are named as mesh-hosted rather than dropped; `ai` folds into config; `record` is deferred explicitly rather than listed. Its frontmatter now cites 0055. - how-we-build §4 amended per 0054, and the derived page republished by playbook 05. The sync found the drift the playbook exists to catch: the published §4 and the source did not say the same thing. The source said "four accidents, not four boundaries"; the published page said "one intent expressed four times", and only the published page carried the scope caveat. Same rule, two texts, already diverging. Verified the republish by reading back -- the new rule is present and the old section's body returns nothing -- rather than trusting the success message. The two smaller findings: - 0051 separated the transport identity from the declaring authority. It said the token carries "an address" and "the identity to expect" without saying what the node dials. It dials the broker, so pinning only that would make the control plane's authority transitive and let a compromised broker forge declarations -- which, since the host applies whatever the link delivers, is the whole machine. The token now carries four things, and declarations are signed and verified per declaration. Cost recorded: rotating the signing identity is fleet-wide. - 0026 no longer restates 0022's rule about generated views. 0022's own words are "prose does not restate status; one place, and two is one too many", which is what 0026 was doing to it. |
||
|
|
ef5dd0751b |
Approve 0049-0053; drop a to-be item superseded by ADR 0044
The 'domain grouping' item cited ADR 0017 as live guidance. 0044 superseded it -- there is no domain module to group into, so there is no domain list to settle. |
||
|
|
ccbbfa9c8a |
One node runs the control plane, and nothing takes over
Closes the two open questions in 06 and 08, which turned out to be one question: how many control planes run, and what happens when the hub is down. Both were drifting toward redundancy by default -- a standby plane, a second hub, an election to pick between them. That is not one feature but a property every layer must then honour, and each layer gets it wrong independently. Not wanted, and not needed. A handful of machines with one node hosting the registry is not a distributed system. The argument for why this is sound rather than merely cheap is that the design already tolerates it by construction. ADR 0036 makes reachability state rather than class; the host reconciles from its own store (0043) and never needed to ask anybody to hold the state it was last given. So the control plane being down is not a new failure mode -- it is every node in the ordinary disconnected situation at once. What is lost is change, not operation. No node holds a contended role: the control plane is assigned like any other module, and the overlay hub is declared (0050). No promotion, no quorum, no fencing, no split brain, no replicated store, and no "which node is authoritative" recurring at every layer. Two consequences stated plainly rather than buried. The control-plane node is a single point of failure -- deliberate, and said out loud so it stays deliberate. And recovery is restore rather than failover, which makes backup the availability story rather than hygiene. The sharpest one is the clock: the control plane owns certificate issuance (0049), so an outage outlasting a renewal window expires every public name. That bounds how long recovery may take, and nothing measures it today. |
||
|
|
4e80820e2f |
Design connectivity in full: overlay, resolution, exposure, filtering, certificates
Written as one document because the five are one design. They share inputs, they must agree, and every one of them today is computed in a different place by a different module from a different copy of the same facts. The through-line is that none of the five can be answered by a machine alone, so all five are decided centrally and delivered as `file` resources. That costs no new host vocabulary and removes both remaining direct database connections from nodes -- wireguard and traefik are the only two, and both are connectivity. Three decisions fall out, all proposed: 0050 -- reachability is declared, not inferred from an address. The RFC1918 regex is wrong for carrier-grade NAT (100.64/10 tests as public, so an endpoint is written to an address nothing can reach), wrong for IPv6, and wrong for a routable address behind a closed firewall. The lab needing TEST-NET-3 to satisfy the regex is the same bug from the other side. Also kills hub election by address prefix, which fails silently and makes renumbering an outage. 0051 -- the enrolment token carries where the mesh is and how to recognise it. Closes two circles with one mechanism: verifying the mesh needed the CA, and obtaining the CA meant trusting whoever handed it over; and a node had to reach the mesh before it could resolve any mesh name. An address plus a fingerprint, carried out of band, resolves both -- and closes the CA question 0049 deferred. 0052 -- a filter rule names its source. `scope:` is declared in five manifests, is part of no rule type, and is referenced by no code, so those manifests appear to restrict ports and restrict nothing. Removed rather than implemented; the general fix is refusing unknown keys, which the host already does and manifests do not. Also corrects two claims in 0049 asserting wireguard was already handled. Research 006 says both modules still reach upward; neither is. |
||
|
|
8d9282d86b |
Resolve the ingress gap: a route is a grant
ADR 0048 named ingress as an unclosed hole -- nothing said what terminates TLS, how a public name reaches a container, or which tier owned it. Resolving it needed no new concepts, which is why it survived: nobody had applied the rules already written to it. Ingress is not substrate. The control plane does not need a route to start, and no node needs one to reach it -- the node dials out and has no listening control surface. It grants itself a route afterwards, like a bucket. A route is an instantiation edge under ADR 0044. The direction mirrors a database -- the consumer supplies a target and receives a name rather than credentials -- but it is the same edge. The substantive finding is that exposure is three facts at two scopes: name resolution and certificate issuance need to know which node is publicly reachable, and only the proxy mapping is a single machine's business. That is why it belongs to the connectivity context, and why Traefik doing all three on the node is wrong. Which matters beyond tidiness: research 006 counted traefik as one of two modules opening a direct Postgres connection, reading nodes and mesh_ca. That violates 0037, 0045 and 0039 at once, and is why every node permanently holds a credential to the control plane's database. Deriving the config centrally and delivering it as `file` resources removes it, costs zero new host vocabulary, and closes the set 0039 identified -- wireguard was the other. Left open deliberately: the mesh's internal CA is the other thing traefik reads, and it belongs to the link's mutual authority, not to exposure. Conflating the two is what made the gap hard to see. Also fixes an inconsistency from the previous commit: 06 still claimed the virtual host was raised from the bundle. Proposed, not accepted -- for review. |
||
|
|
4d19e93900 |
Name the substrate's actual products
The design layer described every service by role and never once by name: Postgres appeared in zero design documents. That was over-application of the research rule "never identify the mesh it observed", which is about node names and domains, not software. Two things were actually broken by it. substrate.lock pins images by digest and a digest belongs to a named image, so the bundle could not be written from the design. And a reader could not tell a settled choice from an unexamined one -- "a relational store" reads identically either way. ADR 0048 names them: PostgreSQL, LavinMQ, MinIO, an OCI registry, Docker. The argument for each is continuity, which is a real argument -- replacing a substrate service migrates the mesh's own state. Role and product are now both written, because the design depends on the protocol while the installer needs the product. Also separates two questions the substrate doc had merged: being substrate and being in the bundle. Only Postgres must precede the control plane; the rest are substrate by role and ordinary by delivery. Whether the bus joins it is left open, because it turns on the control plane's internal shape. Names the forge as Gitea, and records ingress/Traefik as an unclosed gap rather than a naming one -- nothing says what terminates TLS or which tier owns it. Fixes a miscount: the host's bootstrap vocabulary is six shapes, not five. |
||
|
|
c631cbd07c |
The bootstrap starts a step earlier than recorded
Asked whether postgres has to be installed, and the answer exposed a missing step. The store is a container, so something must run containers before anything else happens — and a container runtime is a PACKAGE, not a container. Step 0 is where several threads meet. It is what the host's capability detection already reports, and the first use of that report by something other than a person. It is adopted rather than installed when the machine already has a runtime with configuration somebody chose. And it is a package, needing the machine's own package manager and a network, both of which ADR 0046 permits. So the host's bootstrap vocabulary is six shapes: package, container, file, directory, service, action. Stage 2 built three of them. The node host design now names which three remain and why the lab cannot yet exercise them — a sealed scenario fetches nothing and its machines carry no container runtime, which is lab-installation work rather than a constraint on the design, because production machines have a network. |
||
|
|
93470f6162 |
ADR 0047 — the bundle may carry actions the link may not
The bootstrap's sharpest open question, and the framing was wrong. "State on this machine" was being read as the filesystem and the service manager. A service running on this machine IS part of this machine — writing a file and creating a database in a local store differ in mechanism, not in scope. The real question was underneath: must the host learn what a database is? It must not. Giving it a `database` resource type means tier 0 knows Postgres, then a bucket, then a virtual host — the host acquiring the substrate's vocabulary one service at a time, which is what ADR 0037 exists to stop. So the bundle declares an ACTION and the host runs it and verifies it. What a database means stays with the module that provides one; the host knows only how to run a declared action against something local and check the result. Its vocabulary grows by one shape rather than by one resource type per service. Actions are permitted in the bundle and forbidden over the link, and the asymmetry is deliberate. A bundle arrives WITH the binary: anyone able to put a hostile action in it could equally have put it in the host itself, so refusing actions there buys nothing and costs the bootstrap. The link is a separate party, reachable separately, and an action there is the unbounded blast radius ADR 0039 refuses. That decision stands unchanged. And ongoing provisioning is not the host's at all — the control plane does it once a mesh exists — so the asymmetry costs nothing. Which dissolves the earlier worry about one mechanism with a tier boundary inside it: there are two mechanisms, with different actors, scopes and trust models, and that is the answer rather than a compromise. Named rather than hidden: this is the escape hatch research 011 warned about, arbitrary code in the place hardest to remove later. It is bounded by being bundle-only and by every action having to declare how it verifies itself, and that boundary is the whole defence. |
||
|
|
5b3d0ebd4f |
ADR 0046 — the installer fetches what it pins
The blocking question was where a container image comes from, and the version that blocked assumed the machine might have no network. That assumption came from the LAB: a scenario is a closed address space by design, which is what lets two scenarios hold the same addresses without meeting. Production is not sealed — a machine being adopted has a network, and one that does not is a machine where very little works anyway. So substrate.lock carries references, not payload: an image name and a digest, fetched at apply time. A first node pulls from upstream because no mesh registry exists yet; every node after that pulls from the mesh's own. The lab is the exception and places images itself, the way it already places the host binary — a property of a test environment, and letting it dictate the production design would be the tail wagging the dog. Pinned by DIGEST rather than tag. Reproducibility comes from pinning the identity of a thing, not from carrying its bytes, which is what makes fetching acceptable rather than a compromise. ADR 0041 survives untouched, which was the point. "Copy it onto a machine and run it" stays literally true — one binary, a few megabytes, which then fetches what it was told to. Carrying images would have quietly redefined the property that decision rests on. Costs accepted and named: an apply can now fail because something is unreachable, which a self-contained artifact could not, so it must fail legibly — naming what it could not fetch and from where. And the lab needs a way to place images into a machine that also has no container runtime, both of which are lab-installation concerns and neither solved here. Research 012's build-time-versus-apply-time reframing narrows accordingly: it still holds for what a tailored installer contains, and no longer has to hold for images. |
||
|
|
60aea14935 |
Define the substrate, and answer 006's four-or-five conditionally
Same gap as the control plane: load-bearing and unpinned. The substrate is what the control plane CONSUMES AND CANNOT GRANT ITSELF. Every module needing a database asks provisioning for one; the control plane needs one too and cannot ask itself, because it is not running yet. That circularity is not an awkwardness to work around — it is the definition, and anything on the wrong side of it must be raised by the bundle the host carries. Which answers 006's open question in the honest form rather than with a number. The identity provider is substrate only if the control plane DELEGATES authentication — then it cannot serve anybody before the provider exists and cannot grant itself a client. If it authenticates natively, the provider is an ordinary hosted service. So the count follows from a decision not yet taken, and asserting four was asserting that decision. The test also rules out the tempting wrong answer: an identity provider, a mail server and an analytics service are all infrastructure by any ordinary reading, and none are substrate, because the control plane starts and runs without them. Important is not the test. Records why the bundle is pinned by hand — it is applied when no mesh exists, so nothing can resolve a version or ask a registry — and why it must be self-contained, which makes it an artifact built on a machine with a network for a machine that may have none. |
||
|
|
148395ca54 |
Define the control plane, which was used 79 times and defined nowhere
Nineteen files, seventy-nine mentions, no definition. That is how-we-build §5 failing on this repository's own vocabulary — ubiquitous language is checked, not assumed. The definition, and it is not arbitrary: the control plane is everything that needs to know about MORE THAN ONE NODE. It follows from ADR 0037, which has the host applying rather than deciding precisely because deciding needs knowledge the machine does not have. So the line falls exactly there — writing a file is the host's, choosing which nodes run the store is the control plane's, and anything a single machine could answer alone does not belong here at all. That last consequence is worth having: putting a single-machine concern in tier 2 is a mistake the tier rule will NOT catch, because the dependency direction stays correct. Also states what it is not — not the thing that changes machines, not a surface, not the substrate, and not privileged on a node beyond what the declaration vocabulary allows. And the property that makes tier 2 unlike the others: it is itself a consumer, with the same requirements as any module, which is the circularity the bundle exists to resolve rather than hide. Scoped deliberately: this defines the term and does not design the contexts inside it. Ten is the skeleton's claim rather than a settled list, and research 006 still asks whether the record belongs here or in the substrate. |
||
|
|
bea052753e |
ADR 0043 — what a declaration is
Stage 2 could not start without it. Three constraints already bound the shape and between them they decide most of it. JSON, because the standard library carries it and carries no YAML, and a YAML declaration would put a third-party parser inside the one binary whose whole argument is that it needs nothing — to gain authoring comfort in a document generated by a machine and read by a machine. An ordered list, because ordering is a DECISION. A host deriving order from declared dependencies would be deciding the thing most likely to differ between what the control plane intended and what the machine does. The control plane knows what depends on what; it says so by saying when. Unknown is refused, never skipped — an unknown version, type or field refuses the whole declaration. A host that skipped what it did not understand would apply most of a declaration and report success, which is 04-ISSUES/003 with the declaration on the other side of the wire. Complete for what the host OWNS, and only that. It removes what it previously applied and is no longer declared, which it knows from the store rather than by inference, and never removes what it did not create — a converger that treats 'not declared' as 'must not exist' deletes what the mesh never put there. Two consequences arriving earlier than the build order suggested: the store is load-bearing at stage 2, because nothing can be removed without knowing what was applied. And a closed address space bounds the first vocabulary to what needs no network, because a scenario has no route to a package repository. |
||
|
|
92e8c74ce4 |
ADR 0041 and the build handoff for the node host
Building tier 0 forced the question "the one binary installed by hand" had been carrying unexamined. A TypeScript host needs a runtime present before it runs, so the thing installed by hand becomes two — and the second must be installed by the means the host exists to replace. So the host is a statically linked binary that requires nothing present, written in Go. Rejected: a runtime installed first, which breaks the property the tier rests on; and bundling the runtime into the executable, which carries ninety megabytes to preserve a language choice and puts a young feature at the bottom of the stack. The argument that decided it is architectural rather than about taste. 0037 means the host never queries the mesh database and 0039 means it only receives declarations, so the host shares NO code with any other tier — not a client, not a schema, not the SDK. The language boundary falls exactly on a boundary that already exists, and a second language usually costs duplicated logic where here there is none to duplicate. §8 gains a scope: it said "TypeScript throughout" when everything was a service or a surface, and is now scoped to those with tier 0 named. Another sync owed. Playbook 04 steps 2 and 4: repos.md records mesh-host as existing, the design takes code: [mesh-host] and status: in-progress. |
||
|
|
b9facf9375 |
Design the node host
Playbook 02 step 3, on four recorded decisions. Tier 0 has one job — apply declared state on this machine — and the six absorbed concerns are instances of it, not additions to it. Specifies the six parts and what each owns, and the two properties that make apply trustworthy rather than merely present: every applier reads back, because setting a value is not evidence the value took; and what was applied is recorded after it works, never before, because a failed apply leaves the machine wherever it reached and nothing must claim otherwise. Build order is staged so each stage is verifiable in the lab before the next exists. Stage 1 is profile and inventory — no control plane, no declarations, no network — and it is deliberately the smallest useful thing, because `place:` has nothing to place and the lab therefore raises empty machines. Stage 1 ends that, and every later stage is tested by a lab that already works. Stage 2 is the one that could invalidate the tier boundary: whether one host can raise the substrate alone is Move 1's assumption and has never been proved. Every decision the design rests on is given the test that asserts it, per 0034 — including the dependency-direction lint, which is what makes "the host never queries the mesh database" a rule rather than an intention. Six things left open and named, including the one that host-size.md could not measure: zero dependencies, but still six vocabularies. |
||
|
|
4bf7a35568 |
Close the record on the lab
Playbook 02 and 04 were followed for the substance — decisions before design, design before build — and skipped for the bookkeeping. This closes that. 004 graduates. Its one open item was "not yet stood up"; the lab is stood up, and the substitution the effort turned on is now enforced by the validator before anything is raised rather than left as a thing to remember. Its certificate conclusion has a home in 01-end-to-end-testing and is designed but not built — implementation is a third axis, and an effort graduates on its conclusions. One item leaves 004 without a home and is recorded rather than lost: the reverse proxy does not set caServer, so it defaults to the production endpoint. The two lab designs read `designed` while running in production of a sort, so they become `in-progress`. And the lab gets an as-is document, which it did not have. It records what runs including the parts nobody would choose again: that `place:` is refused and the lab therefore raises EMPTY MACHINES, that the drawing shipped with no design document behind it, that a router is tagged as a machine for a reason found by a bug, and that the integration suite raises two of five scenarios while both faults found so far lived in the three it does not. 006 stays active, deliberately. Two of its open questions ARE the tier 0 design — whether absorbing six concerns makes the host too large, and whether an unprivileged node earns a place in the inventory. Playbook 04 is explicit that an open question is a reason to research, not to build around. |
||
|
|
8efa063f21 |
The snapshot question is answered by a test
The lifecycle design asked whether a scenario snapshot needs the machines stopped. The integration test answered it on its first run: no, but they must be flushed. A snapshot captures disk and not memory, so a write still in the guest's page cache is absent from it — not stale, absent. A file written seconds before a snapshot did not survive the restore. Flushing first buys write-durability. It does not buy application-consistency: anything mid-transaction is still captured mid-transaction, and that limit is now stated rather than left implied. |
||
|
|
eab4598494 |
ADR 0033: a router is scenery, not a node
ADR 0016 makes a lab node a virtual machine, and its reasoning is fidelity: a node boots a stock image and runs the real install, so it has to be a real machine or the thing under test is not the thing that ships. That reasoning does not reach a router. Nothing under test runs on one, it holds no identity, the mesh never installs anything on it, and no assertion is ever made about its internals. It exists so packets behave the way they behave in the world, which is the definition of scenery. So a router is a system container. What it must reproduce is kernel behaviour — translation, connection tracking, filtering, forwarding — and a container has the same kernel. Verified before deciding rather than assumed. In a plain unprivileged container: ip_forward and ipv6 forwarding both settable, nftables masquerade accepted and listed back, and the conntrack timeouts that mapping_ttl depends on both writable. No privileged mode, no nesting, no capability grants. Rejected letting the hypervisor provide NAT, on a stronger ground than speed: it makes the lab provide what the declaration is supposed to own, and it cannot express a mapping that expires, a gateway that refuses to forward, or policy between siblings. The model would shrink to fit the tool. The distinction is now load-bearing and has to stay legible: node means something under test, scenery means something that makes the test real. If the mesh ever installs anything on a router, it has become a node and this record no longer covers it. |
||
|
|
e88b448145 |
The fix is real: 76x, verified. And how the lab installs on a clean machine
Snapshot 9.9s -> 0.13s. Restore 10.4s -> 0.80s. Three snapshots sharing 1.36 GB instead of costing 4.8 GB. The projected four-machine reset cycle falls from ~90s, unbounded at worst, to ~15s dominated by a boot that cannot be avoided. ADR 0029's inner-loop argument holds with copy-on-write and did not without it. The consistency matters as much as the speed: three consecutive snapshots took 0.13, 0.12 and 0.13 seconds, against a dir second snapshot that never finished. One honest counter-observation recorded: launching onto the fresh copy-on-write pool was slower, 20.2s against 14.3s, because the image had to be unpacked into a pool that had never seen it. Paid once per pool, and dwarfed by what snapshotting saves, but it went the other way. Doing the measurement produced the answer to how the lab installs on a clean machine, because both failure modes appeared while doing it. Installed is not available: the daemon was present with units disabled and no group. Issue 007. Available is not adequate, and this is worse: with the storage tooling absent everything worked and snapshots were seventy-six times slower. Nothing failed, nothing warned. That is a variant the mesh has not catalogued — its usual failure is reported success and did nothing; this is reported success and did it seventy-six times slower, which no error surface catches because nothing is wrong. So the lab verifies CAPABILITY, never installation, and refuses to run degraded rather than warning — a warning about a slow inner loop is read once and ignored forever. Prerequisites may arrive from a mesh module or from the lab's own bootstrap, and the second path is required rather than convenient: a lab installable only by a mesh cannot host the development of the mesh that installs it. The lab is the second thing installed by hand, after the node host, and for the same reason: something has to be first, and pretending otherwise produces a circularity papered over by a script nobody exercises. |
||
|
|
98bcd5cc49 |
Measure the lab's inner loop — it is too slow, for a fixable reason
The lifecycle design closed on a question that was measurable rather than arguable, so it was measured. One virtual machine on a workstation with hardware virtualisation and NVMe. Raising: the launch call returns in 3.4s, the machine is actually usable after 14.3s. The gap is a design constraint — raise must wait for the second number, because reporting the first would be transport reported as effect, which is the mesh's own recurring failure. Snapshot: 9.9s and 1.6 GB for a 1.5 GB instance. A dir snapshot is a full copy; nothing is shared. Restore: 10.4s, usable again after 20.1s. The second snapshot exceeded two minutes and never completed. That is the more troubling number: snapshot cost here is not merely high, it is unpredictable, and a loop with a variable multi-minute step is one nobody trusts. Projected to a four-machine scenario, a reset-and-rerun cycle is about a minute and a half at best and unbounded at worst, before any of the mesh's own work begins. That is too slow for an inner loop, and ADR 0029's whole argument — that making the bootstrap path the inner loop turns the least-exercised code into the most-exercised — holds only while resetting is cheap. The cause is not virtual machines. Hardware virtualisation is present and machines boot in fourteen seconds. It is that the daemon offers exactly one storage driver, dir, which has no copy-on-write and therefore no cheap snapshot. The btrfs kernel module is available; btrfs-progs is simply not installed, which is the entire reason the driver is absent. The copy-on-write comparison was deliberately NOT run, because running it would mean installing a package by hand — which the rules forbid and which would have made the measurement unreproducible. So the honest statement is that the current configuration is too slow and the likely fix is known but unverified, rather than that btrfs fixes it. |