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inbuxa-server: specification (draft)

inbuxa-server is the project. Whether the product it ships carries that name or another inside the INBUXA brand is still open (§8). Not published: no remote, and nothing public before the cutover in §7.

1. What this is

An AGPL-3.0-only fork of the Stalwart mail server that ships every feature under the AGPL, with nothing held back for a paid edition. ihasmail is built in as the product's web front end: webmail, account self-service and administration. Stalwart's own web interface is dropped.

Goals

  • Everything Stalwart's Enterprise Edition adds is available to everybody, under the AGPL, rebuilt clean-room.
  • One product: server, webmail and administration installed and versioned as a pair.
  • No web interface on the mail host. Administration happens over JMAP from ihasmail, which can run beside the server or on another machine.
  • Stay close enough to upstream that its releases can be taken quickly.

Non-goals

  • Carrying, adapting or reading Stalwart Enterprise code (see §3).
  • Using Stalwart's name or logo anywhere in the product (see §2.4).
  • Changing Stalwart's storage formats beyond what upstream changes. Existing Stalwart 0.16 data, including data written by Enterprise features, must open unchanged (see §7).

2. The fork itself

2.1 What is taken

Every upstream file licensed AGPL-3.0-only OR LicenseRef-SEL is taken under the AGPL. Nothing licensed only LicenseRef-SEL is taken.

Upstream marks Enterprise-only code two ways, and both must go:

  • Whole files whose SPDX header is LicenseRef-SEL alone. At upstream d9dee0a (2026-09-15) that is 63 files, about 21,000 lines, 5,500 of them tests.
  • Snippets inside dual-licensed files, between SPDX-SnippetBegin and SPDX-SnippetEnd, whose identifier is LicenseRef-SEL alone. At the same commit that is 117 snippets in 50 files, about 1,700 lines.

2.2 The strip step

Upstream publishes its own remover, resources/scripts/ossify.py, licensed AGPL-3.0-only. It deletes Enterprise-only files and snippets by their markers, which is this step's core. The fork runs it on every sync, wrapped by a script of its own that:

  1. Runs ossify.py over crates/ and tests/.
  2. Checks independently that no LicenseRef-SEL-only marker survives anywhere in the tree, not just in .rs files.
  3. Fails the sync if a marker is malformed, e.g. a snippet with no end, a file whose header can't be read, or a new license identifier.
  4. Writes a report listing what was removed and where, committed with the sync.

It reads only the SPDX markers, never the code between them. That keeps the people running it outside the clean room's restrictions. The removed code is never committed to any branch of the fork, including history.

The wrapper is tools/fork/strip.py. Beyond ossify.py it:

  • exports the release with git archive, never a checkout, so no upstream history comes with it;
  • checks every snippet's begin and end markers pair up before anything is stripped (ossify.py would swallow an unterminated snippet to the end of the file without saying so). Markers are matched anywhere on a line, because upstream often ends a snippet with a trailing } // SPDX-SnippetEnd;
  • turns the enterprise Cargo feature off where it's switched on. At v0.16.22 that's crates/main's default features and 13 dependencies in tests/Cargo.toml: 14 edits. ossify.py doesn't touch manifests, so without this the stripped tree can't build;
  • verifies the result across every text file, not just Rust, and reports what was removed, the Cargo edits, upstream's Enterprise flags, and the feature gates left for §2.3 to replace.

2.2a Snapshots, not a git fork

Upstream's git history contains the Enterprise code, so the fork can never share it. There's no git fork, and no upstream remote in the fork's repository. Instead:

  • An upstream branch holds one commit per upstream release: the stripped tree, and its strip report in the commit message (release tag, upstream commit, counts, verification result). Nothing else is ever committed there.
  • main is the fork. A new release arrives by stripping it onto upstream, then merging upstream into main. Git's three-way merge then does what a fork's rebase would, without the history.
  • The upstream clone the tool reads from lives outside the fork's repository and is never pushed anywhere.

2.3 Where the rebuilt features go

Upstream's published registry schema (resources/schema/schema.json.gz) flags every Enterprise object and field with "enterprise": true: 9 objects and 30 fields at d9dee0a. That list is the checklist for §4, and the wrapper in §2.2 reports it on every sync, so a newly flagged field is noticed.

Rebuilt features live in one new crate of the fork's own, licensed AGPL-3.0-only, plus the smallest possible hooks in upstream files. The hooks sit where upstream's enterprise Cargo feature and is_enterprise_edition() checks already are: 30 checks across 18 files at the commit above. That keeps each sync's conflicts few and predictable.

The enterprise Cargo feature and every edition check are removed. There is one edition.

2.4 Name and marks

  • No "Stalwart" in product names, binaries, images, UI text, packaging or domains.
  • Factual statements are allowed and required: "a fork of Stalwart", "compatible with Stalwart 0.16 data". Upstream copyright notices stay on every file they cover.
  • Protocol identifiers stay as upstream has them, for example the JMAP capability urn:stalwart:jmap and the x: object names. They're interoperability, not branding, and renaming them breaks every existing client. Anything the fork adds uses its own namespace (open: which one).

3. Clean room

INBUXA runs on a paid Stalwart Enterprise license, so its maintainer is a licensee with access to the Enterprise code. That license forbids publishing derivative works of it, so the burden of showing independent creation falls on this project. Rules:

  1. Spec writers may use Stalwart's public documentation, the RFCs and drafts, the published JMAP and registry schema (dual-licensed, so available under the AGPL), and the observed behavior of a running server. They may not use Enterprise source, snippets, private documentation, support correspondence or anything from the license portal.
  2. Implementers work only from the written specs in features/. They must never have read Enterprise-only files or snippets. An AI session that has seen Enterprise code (including the one that drafted this document) doesn't implement.
  3. Records. Each feature spec is dated and committed before its implementation starts, and names its sources. Implementation PRs link the spec they build from.
  4. Behavioral compatibility, not code compatibility. Where existing data has to keep working (masked addresses already handed out, archived items already held), the behavior is specified from stored records and observed results, not from how upstream implements it.
  5. Legal review before anything is published.

4. Features to rebuild

In order. Each gets its own clean-room spec under features/ before any code is written.

# Feature What an operator gets Notes
1 Multi-tenancy Tenants with their own domains, admins, quotas and queue visibility Needed for anybody hosting mail for others. ihasmail already has a Tenants screen.
2 Masked email Per-sender disposable addresses that deliver to the account Existing addresses must keep delivering (§3.4).
3 Undelete Deleted mail held for a set period and restorable Existing archived items must stay restorable.
4 Branding and templates Operator logo, and the text of calendar alarm and invitation emails INBUXA's branding is the default.
5 AI spam classification An optional model's opinion as one spam signal, and a Sieve function that asks a model Local and auditable model only: no hosted API by default.
6 Monitoring history, live tracing, alerts Stored metrics and traces, a live trace view, and threshold alerts ihasmail's dashboard shows them.
7 SCIM 2.0 provisioning Accounts and groups managed by an identity provider From RFC 7643 and RFC 7644. The largest piece.
8 Scale-out storage SQL read replicas; sharded blob and in-memory stores For large installs only.
Seat limits, license keys Nothing: there's no license Removed, not rebuilt.

5. ihasmail as the product's web front end

5.1 Shape

ihasmail stays a separate process: its Node server and its web app, run as a container. It can run:

  • on the same host, on a private network or loopback, which is the default the installer sets up; or
  • on another host, for operators who want no web front end near the mail store.

It isn't compiled into the server. Its server side (sessions, image and calendar-link proxies, push relay, rate limits, settings policy) would have to be rewritten in Rust and would put a web front end back on the mail host, which this design exists to avoid.

5.2 The contract between them

Versioned, and advertised in the JMAP session so either side can check it.

  • Discovery. The server's session names its webmail URL and the contract version it speaks. ihasmail refuses a server outside its supported range, with a clear message. Its current Stalwart 0.16 check becomes this check.
  • Sign-in by OAuth. The server pre-registers ihasmail as a first-party OAuth client (authorization code with PKCE). ihasmail holds tokens, never passwords. Today it signs in with Basic auth and keeps the password in its session.
  • Token revocation. The server can revoke individual tokens and every token for a client. Upstream's tokens are stateless and can only be revoked by changing the password. ihasmail's "sign out other sessions" relies on this.
  • Two-factor. Handled in the OAuth flow, not by appending codes to passwords.
  • Admin lane. Administrative JMAP calls can be limited to ihasmail's address or network, so an admin credential is useless from anywhere else.
  • Push. Unchanged: JMAP push with VAPID, as ihasmail uses today.

5.3 Stalwart's web interface is removed

Upstream installs its web interface at first boot, serving /admin and /account, by inserting a default web application that downloads a release of stalwartlabs/webui. The fork:

  • inserts no default web application, and never fetches webui;
  • keeps the generic web-application mechanism for operators who want it, documented as unsupported;
  • therefore carries no part of webui, which has its own Enterprise-only parts.

What the web interface did moves to ihasmail:

Was Becomes
/account: password, app passwords, two-factor ihasmail Settings: password and app passwords today; its two-factor work is written but backlogged
/admin: server administration ihasmail Administration (§5.4)
First-boot setup the installer and a setup screen in ihasmail (§6)
Fixing a server the web front end can't reach the host-side CLI (§6.3)

5.4 Administration at full coverage

The server's registry has about 125 object types. ihasmail Administration uses 18 today: accounts, domains, groups, mailing lists, roles, tenants, the dashboard, credentials and a few supporting types.

  • Hand-built screens for what operators change often: domains and DNS, DKIM, certificates and ACME, spam settings, the queue, tenants and quotas, reports.
  • Schema-generated forms for the rest. Upstream already publishes a complete UI schema, resources/schema/schema.json.gz, with objects, fields (with descriptions), forms, lists, enums, dashboards and layouts. It's what Stalwart's own web interface draws from, and it ships under the repository's dual license, so the fork has it under the AGPL. The fork serves it over JMAP, and ihasmail renders a correct, if plain, editor for any object type from it. New types upstream adds then appear without an ihasmail release.
  • Everything stays permission-gated, as Administration is today.

6. First boot, setup and recovery

6.1 The installer

ihasmail-oneshot is the starting point: a Go binary using only the standard library, which drives docker compose. Its commands and options carry over.

Commands: deploy, certs, destroy, version.

deploy options:

Option Default Meaning
--domain (required; example.test with --local) Mail domain
--mail-host mail.DOMAIN Mail server's hostname
--webmail-host webmail.DOMAIN Webmail's hostname
--email postmaster@DOMAIN ACME contact
--local off Loopback-only evaluation: no mail ports, no Caddy, no certificates
--dir ./PROJECT Deployment directory, new or empty
--project ihasmail-DOMAIN Compose project name
--stalwart-image pinned Server image; renamed for the fork
--ihasmail-image newest release, written as its dated tag Webmail image
--caddy-image pinned Caddy image
--webmail-bind 127.0.0.1:8080 Host address for ihasmail's port
--stalwart-bind 127.0.0.1:8081 Host address for the server's plain HTTP. Renamed; it no longer carries an admin UI
--subnet 172.31.253.0/24 Private network for the stack
--acme-directory, --acme-ca-root Let's Encrypt Private CA for ACME
--yes off Skip confirmation

6.2 What first boot does

Oneshot's sequence, all over JMAP, with no web interface involved:

  1. Start the server with an empty configuration, which puts it in bootstrap mode with a temporary admin pinned by environment variable.
  2. Check it really is in bootstrap mode. A configured server refuses bootstrap credentials, and oneshot stops.
  3. Complete bootstrap through x:Bootstrap, which returns the permanent administrator.
  4. Look up the domain; turn on ACME explicitly (upstream's certificate flag alone creates no ACME provider); retry certificates.
  5. Trust forwarded addresses from the reverse proxy, and allow its IP, so the auto-ban doesn't ban the proxy.
  6. Create the first user; write the credentials file and the DNS zone file.

Additions for the fork:

  • Register ihasmail as the first-party OAuth client (§5.2).
  • Behavior fixes where upstream's first boot needs workarounds: an ACME order that fails isn't retried on restart, some network settings need a restart, and the default log path doesn't exist in the image. Each is a candidate for fixing in the fork, and oneshot's workaround drops out once it is.
  • A setup screen in ihasmail for operators who install without the installer. It performs the same steps against a server in bootstrap mode.

6.3 Recovery without a web front end

When a settings change cuts ihasmail off from the server (a bad listener, a bad certificate, a lockout), there has to be a way back in on the host:

  • A CLI subcommand of the server binary that runs locally and edits the registry directly, or starts the server in upstream's recovery mode with only a loopback listener.
  • Minimum it covers: list and edit listeners and certificates, reset an administrator's password, lift IP bans, and export or import the configuration.
  • Upstream documents a CLI with get, describe and snapshot commands (public docs, management/cli). Check how much of the above it already covers before building anything.
  • Open: whether this lives in the server binary or in the installer as oneshot recover.

7. INBUXA cutover

INBUXA moves to the fork before the fork is announced. Its Enterprise subscription can be ended at 30 days' notice, and the server falls back to the Community Edition 15 days later. So the fork must be carrying INBUXA before anything that could prompt that notice happens.

  1. Fork builds and passes upstream's test suite, minus the removed Enterprise tests, plus the fork's own.
  2. INBUXA's data opens in the fork on a copy: tenants, masked addresses, archived items, every account.
  3. Masked addresses already handed out still deliver; archived items still restore.
  4. Cutover on the running host, with the Enterprise build kept for rollback.
  5. Only then: public repository, announcement, and ihasmail accepting the fork.

8. Open decisions

  • Product name: whether the shipped product is called inbuxa-server or something else inside the INBUXA brand.
  • The namespace for the fork's own JMAP capabilities.
  • Whether the recovery CLI lives in the server binary or in the installer.
  • Whether the installer stays its own repository or joins the fork's.
  • Governance: solo, or set up for outside contributors from the start (contributing guide, sign-off on contributions).
  • Whether the fork follows upstream's version numbers or has its own.