Files
casino/pkg/fees/fees_test.go
drjones e70258c54d feat(fees): disclosed rake and rounding, with generated disclosure
Two deductions on payouts: a percentage rake and flooring to whole
satoshis. Neither can be hidden — every millisatoshi is a double-entry
posting, so each appears as its own line in the player's history and the
conservation check fails if any amount goes unaccounted.

A rake makes the advertised 99% false, so EffectiveRTPBasisPoints
computes what players actually receive and the disclosure page is
rendered from it. A test simulates 200,000 rounds and asserts the
published figure matches what was really paid.

Fixes an overflow found by the tests: gross * RakeBP exceeds int64 for
large payouts, so the multiplication is split into whole and remainder
parts.

Co-Authored-By: Claude Opus 5 <noreply@anthropic.com>
2026-08-05 23:26:12 +00:00

196 lines
6.1 KiB
Go

package fees_test
import (
"math"
"testing"
"github.com/drjones/quantum-arcade/pkg/fees"
)
// The property that matters most: every millisatoshi is accounted for. If a
// split ever failed to balance, the ledger's conservation check would fail and
// the arcade would be reporting corrupt books.
func TestEveryMillisatoshiIsAccountedFor(t *testing.T) {
schedules := []fees.Schedule{
fees.DefaultSchedule(),
fees.NoFees(),
{RakeBP: 250, RoundToMsat: 1_000, MinPayoutMsat: 1_000},
{RakeBP: 1, RoundToMsat: 1, MinPayoutMsat: 0},
{RakeBP: 10000, RoundToMsat: 1_000, MinPayoutMsat: 0}, // 100% rake
}
amounts := []int64{0, 1, 999, 1_000, 1_001, 12_345, 1_000_000,
999_999_999, math.MaxInt64 / 4}
for _, sch := range schedules {
for _, gross := range amounts {
s := sch.Apply(gross)
if !s.Valid() {
t.Fatalf("schedule %+v on %d produced an unbalanced split: %+v",
sch, gross, s)
}
if s.NetMsat+s.HouseMsat() != gross {
t.Fatalf("schedule %+v on %d: net %d + house %d != %d",
sch, gross, s.NetMsat, s.HouseMsat(), gross)
}
}
}
}
func TestRakeIsExactPercentage(t *testing.T) {
sch := fees.Schedule{RakeBP: 100, RoundToMsat: 1, MinPayoutMsat: 0}
s := sch.Apply(1_000_000)
if s.RakeMsat != 10_000 {
t.Fatalf("1%% of 1000000 = %d, want 10000", s.RakeMsat)
}
if s.NetMsat != 990_000 {
t.Fatalf("net = %d, want 990000", s.NetMsat)
}
}
func TestRoundingFloorsToTheUnit(t *testing.T) {
sch := fees.Schedule{RakeBP: 0, RoundToMsat: 1_000, MinPayoutMsat: 0}
cases := []struct {
gross, net, rounding int64
}{
{1_000, 1_000, 0},
{1_999, 1_000, 999},
{2_000, 2_000, 0},
{999, 0, 999},
}
for _, c := range cases {
s := sch.Apply(c.gross)
if s.NetMsat != c.net || s.RoundingMsat != c.rounding {
t.Errorf("gross %d: net %d rounding %d, want net %d rounding %d",
c.gross, s.NetMsat, s.RoundingMsat, c.net, c.rounding)
}
}
}
// Rounding must never take more than one unit less one from a payout. That
// bound is what makes the disclosure checkable.
func TestRoundingIsBoundedByOneUnit(t *testing.T) {
sch := fees.DefaultSchedule()
for gross := int64(1_000); gross < 200_000; gross += 37 {
s := sch.Apply(gross)
if s.NetMsat > 0 && s.RoundingMsat >= sch.RoundToMsat {
t.Fatalf("gross %d lost %d msat to rounding, more than one unit (%d)",
gross, s.RoundingMsat, sch.RoundToMsat)
}
}
}
func TestNoFeesTakesNothing(t *testing.T) {
sch := fees.NoFees()
for _, gross := range []int64{1, 999, 1_000, 123_456} {
s := sch.Apply(gross)
if s.NetMsat != gross {
t.Fatalf("gross %d returned %d with fees disabled", gross, s.NetMsat)
}
if s.HouseMsat() != 0 {
t.Fatalf("house took %d with fees disabled", s.HouseMsat())
}
}
}
func TestZeroAndNegativeGrossAreNoOps(t *testing.T) {
sch := fees.DefaultSchedule()
for _, gross := range []int64{0, -1, -100_000} {
s := sch.Apply(gross)
if s.NetMsat != 0 || s.HouseMsat() != 0 {
t.Fatalf("gross %d produced %+v", gross, s)
}
}
}
// The published effective RTP must match what players actually receive over a
// long run. This is the claim the disclosure page makes, so it gets checked
// against simulated play rather than trusted.
func TestPublishedEffectiveRTPMatchesReality(t *testing.T) {
sch := fees.DefaultSchedule()
const gameRTP = 9900 // the games' own 99%
published := sch.EffectiveRTPBasisPoints(gameRTP)
// Simulate: players stake, the games return 99% of stakes as gross
// winnings, and the rake applies to those winnings.
const rounds = 200_000
const stake = int64(100_000) // 100 sats, large enough that rounding is noise
var staked, received int64
for i := 0; i < rounds; i++ {
staked += stake
gross := stake * gameRTP / 10000
received += sch.Apply(gross).NetMsat
}
observed := received * 10000 / staked
if observed < published-20 || observed > published+20 {
t.Fatalf("published effective RTP %d bp, players actually received %d bp",
published, observed)
}
}
// A rake must reduce the advertised return. Publishing the game's own RTP
// while taking a cut would be a false claim.
func TestRakeReducesTheAdvertisedReturn(t *testing.T) {
const gameRTP = 9900
withFees := fees.DefaultSchedule().EffectiveRTPBasisPoints(gameRTP)
withoutFees := fees.NoFees().EffectiveRTPBasisPoints(gameRTP)
if withoutFees != gameRTP {
t.Fatalf("with no fees the effective RTP should equal the game RTP, got %d", withoutFees)
}
if withFees >= gameRTP {
t.Fatalf("effective RTP %d is not below the game's %d despite a rake",
withFees, gameRTP)
}
}
// Small payouts must not be silently swallowed: whatever is suppressed has to
// show up on the house side of the split.
func TestSuppressedPayoutIsStillAccounted(t *testing.T) {
sch := fees.Schedule{RakeBP: 0, RoundToMsat: 1_000, MinPayoutMsat: 10_000}
s := sch.Apply(5_000)
if s.NetMsat != 0 {
t.Fatalf("net = %d, want 0 below the minimum", s.NetMsat)
}
if s.HouseMsat() != 5_000 {
t.Fatalf("house = %d, want the full 5000 that was suppressed", s.HouseMsat())
}
if !s.Valid() {
t.Fatal("suppressed payout produced an unbalanced split")
}
}
// The disclosure must be generated from the same values that are charged, so
// the published terms cannot drift from the code.
func TestDisclosureReflectsTheSchedule(t *testing.T) {
sch := fees.Schedule{RakeBP: 250, RoundToMsat: 1_000, MinPayoutMsat: 1_000}
d := sch.Describe(9900)
if d.RakePercent != "2.50%" {
t.Errorf("rake disclosed as %q, want 2.50%%", d.RakePercent)
}
// 99% game RTP with a 2.5% rake leaves 96.52%.
if d.EffectiveRTP != "96.52%" {
t.Errorf("effective RTP disclosed as %q, want 96.52%%", d.EffectiveRTP)
}
if d.WorstCaseRounding != "999 msat (0.999 sats)" {
t.Errorf("worst-case rounding disclosed as %q", d.WorstCaseRounding)
}
}
// Extreme configurations must not overflow or produce nonsense.
func TestExtremeSchedulesAreSafe(t *testing.T) {
huge := int64(math.MaxInt64 / 2)
for _, sch := range []fees.Schedule{
{RakeBP: 10000, RoundToMsat: 1, MinPayoutMsat: 0},
{RakeBP: 0, RoundToMsat: huge, MinPayoutMsat: 0},
{RakeBP: 0, RoundToMsat: 0, MinPayoutMsat: 0}, // unit floor of 1
} {
s := sch.Apply(1_000_000)
if !s.Valid() {
t.Fatalf("schedule %+v produced %+v", sch, s)
}
}
}