An instance decides what it is at startup instead of being told: it generates its own identity, registers a heartbeat, and campaigns for each game. Exactly one instance drives a game's rounds and publishes frames; the rest relay them and forward mutations to the leader. Clone the VM, boot it, done. Sessions and the scratch nonce move to Redis. Both were per-instance state that would have broken behind a load balancer: a token minted by one clone was unknown to the others, and two clones would have handed the same nonce to different players, which for the same key means the same outcome. Fixes a bug found by running two instances: /api/games read the local room object, so a follower reported a permanently settled game and its clients never saw a betting window. Hubs now serve the last frame they saw, produced or relayed. Failover measured at 6s after kill -9 on an instance leading two games. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
Quantum Arcade
A private physics arcade for one Linux box and the people on your network. Drop-in crash rounds, instant scratch tickets, a real double-entry ledger, and outcomes any player can verify on their own phone.
What it is
Three shared crash games — a rocket fighting gravity, a decaying orbit, and a stacking tower — plus instant scratch tickets to play between rounds. Set an auto cash-out target before the round and it closes at exactly your number, or ride it and tap out by hand. Identity is a keypair your browser generates; there is no account, no email, and no password.
The house edge is 1% on everything. That is better than essentially anything commercial, and it is deliberate: this is a game among friends, not a revenue stream.
Everything is API-first — the browser client uses the same endpoints anyone else can. Write a bot in twenty lines; see docs/API.md.
Everything runs on one machine: one Go binary with the client embedded, PostgreSQL, and Redis.
Running it
docker compose up -d
Then open http://<your-box>:8080 from any phone on the network.
To play with test funds before Lightning is wired up:
ARCADE_DEV_FAUCET=1 docker compose up -d
The faucet mints through the same ledger path a real deposit uses, so the code under test is the production code. Leave it off otherwise.
Development
docker compose up -d postgres
go test ./...
go run ./cmd/arcade
End-to-end tests need a live server:
ARCADE_DEV_FAUCET=1 go run ./cmd/arcade &
ARCADE_E2E=http://localhost:8080 go test ./cmd/arcade/ -v
How fairness works
Before betting opens, the server generates a random seed and publishes
SHA-256(seed). It is now committed and cannot change its mind.
The client seed is built from the public keys of everyone who joined the round. The operator does not choose who plays, so it cannot steer the outcome even knowing its own seed.
The crash point is HMAC-SHA256(serverSeed, clientSeed || nonce), run through
the simulation. After settlement the seed is published, and the Verify tab
recomputes the whole chain in your browser — it asks the server only for the
published values, never for a verdict.
Scratch tickets use the identical pipeline, and their odds tables are generated from the same data structure that produces outcomes, so the published odds cannot drift from reality. A test asserts observed frequencies and empirical return against the published figures across two million plays.
Architecture
One binary, with enforced internal boundaries:
| Package | Responsibility |
|---|---|
pkg/fixed |
Q32.32 fixed-point arithmetic; no floats, so results are identical everywhere |
pkg/sim |
Deterministic RNG and the crash curve |
pkg/fair |
Commit-reveal protocol and verification proofs |
pkg/ledger |
Append-only double-entry accounting |
pkg/scratch |
Scratch tickets and their published odds |
pkg/identity |
Keypair sign-in via signed challenge |
pkg/room |
Round lifecycle, auto cash-out, live broadcast |
Nine services on one machine would buy latency and 3am debugging, so this is one process. Modules talk through interfaces only; extracting one into its own service later is a transport change, not a rewrite.
Ledger invariants
Enforced in the application and again by database constraints and triggers:
- every transaction's postings sum to exactly zero
- no account may go negative, except the Lightning bridge, whose negative balance is by definition what is owed to players
- rows are never updated or deleted; corrections are compensating entries
GET /api/health sums every account. It must return zero. Anything else means
the books are corrupt.
Round timing
The multiplier follows m(t) = 1/(1 - t/T)², which diverges at exactly 60
seconds. No round can run longer, however extreme the crash point, and the
climb visibly accelerates as it goes — which is where the tension comes from.
Testing
make test # unit and integration
make test-race # under the race detector
make cover # coverage per package
make db-reset # wipe the ledger; it is append-only and accumulates
Coverage sits around 85%, and the tests found and pinned three real money bugs: a posting set that minted 18 quintillion millisatoshis by wrapping the zero-sum check, a crash point that overflowed negative at the rarest seed, and scratch tables that advertised 98% while paying 56%.
Scaling
The app is stateless: clone the VM and boot it. An instance generates its own identity, finds its peers through Redis, and campaigns for the games it will drive. Exactly one instance runs a given game's rounds; the rest relay its frames and forward bets to it.
An instance dying is not a special case — its lease expires and a survivor
takes over. Measured at six seconds, unattended, after a kill -9.
Clone the app VM only. PostgreSQL and Redis stay on one shared machine; cloning those gives every instance its own ledger and they share nothing. Full topology in docs/SCALING.md.
Status
Built and tested:
- fixed-point deterministic core, ledger, commit-reveal fairness
- three crash games with live multiplayer rounds
- two scratch tickets with verified-honest odds
- keypair identity, peer-to-peer transfers, transaction history
- auto cash-out targets that pay your exact number
- in-browser verifier
- a documented public API, good enough to write bots against
Not yet built:
- Lightning deposits and withdrawals. The bridge account and ledger paths exist; the node integration does not. The dev faucet stands in for now.
- Tournaments and scheduled events
- Operator dashboard
Scope
This is built to run on a private network among people who know each other. It is not hardened for, and should not be exposed to, the public internet. Doing so would make it a public real-money gambling service, which carries licensing, KYC, and AML obligations this codebase does not address.