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pansy/internal/service/ops_test.go
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steveandClaude Fable 5 bc14bbed0d
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Agent: what a day of live use asked for
Twenty-one prompts against the live assistant found one fabricated success,
a model that believed it was 2025, and a describe_garden that was ~450 plop
entries per turn. This is the set of fixes, each traceable to a finding:

- The gardener's LOCAL day travels with the turn (`today` on POST /agent/chat,
  sent by the UI like plantedAt) into the system prompt and every dated tool
  default. Left to guess, the model dated journal entries a year back; left to
  the server, a 9 pm fill landed on UTC's tomorrow.
- describe_garden groups plops by plant — count, where, planted date, days to
  maturity — and lists ids only for groups of ≤ 8; list_plantings spells a big
  group out on demand and remove_plantings acts on one plant in a bed ("take
  the beets out, leave the garlic"), which used to mean 116 single removals.
- New tools: move_planting (keeps the planting date; across beds via the new
  MovePlanting, which is why the store's UPDATE now writes object_id),
  update_plant, read_history, copy_garden (the "<garden> — <year>" plan
  convention). fill_region takes an explicit local rectangle and a seedLotId;
  place_planting's radius defaults to one plant (spacing/2) instead of a guess.
- The system prompt states the date and the gardener's units, forbids claiming
  a change no tool made, says it cannot undo and points at the Undo button,
  asks before clearing beds on an ambiguous sentence, and stops narrating its
  own plantings into the journal.
- A mutation aimed at ANOTHER garden inside a turn is recorded under that
  garden as its own change set, not filed into the open scope.
- UI: the thread scrolls inside the Assistant panel so the composer stays
  put; every tool has a step label; wide tables stay inside the bubble.

Co-Authored-By: Claude Fable 5 <[email protected]>
2026-08-23 00:14:41 -04:00

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package service
import (
"context"
"errors"
"fmt"
"math"
"sort"
"testing"
"gitea.stevedudenhoeffer.com/steve/pansy/internal/domain"
)
func TestNamedRegion(t *testing.T) {
o := &domain.GardenObject{WidthCM: 200, HeightCM: 100} // hw=100, hh=50
cases := []struct {
name string
minX, minY, maxX, maxY float64
}{
{"all", -100, -50, 100, 50},
{"north", -100, -50, 100, 0},
{"top half", -100, -50, 100, 0},
{"south", -100, 0, 100, 50},
{"bottom", -100, 0, 100, 50},
{"east", 0, -50, 100, 50},
{"right half", 0, -50, 100, 50},
{"west", -100, -50, 0, 50},
{"nw", -100, -50, 0, 0},
{"NE corner", 0, -50, 100, 0},
{"northeast", 0, -50, 100, 0},
{"sw", -100, 0, 0, 50},
{"se corner", 0, 0, 100, 50},
}
for _, c := range cases {
r, err := NamedRegion(o, c.name)
if err != nil {
t.Errorf("%q: unexpected error %v", c.name, err)
continue
}
if r.MinX != c.minX || r.MinY != c.minY || r.MaxX != c.maxX || r.MaxY != c.maxY {
t.Errorf("%q = [%v,%v,%v,%v], want [%v,%v,%v,%v]", c.name, r.MinX, r.MinY, r.MaxX, r.MaxY, c.minX, c.minY, c.maxX, c.maxY)
}
}
if _, err := NamedRegion(o, "middle-ish"); !errors.Is(err, domain.ErrInvalidInput) {
t.Errorf("unknown region err = %v, want ErrInvalidInput", err)
}
if _, err := NamedRegion(o, ""); !errors.Is(err, domain.ErrInvalidInput) {
t.Errorf("empty region err = %v, want ErrInvalidInput", err)
}
if _, err := NamedRegion(nil, "all"); !errors.Is(err, domain.ErrInvalidInput) {
t.Errorf("nil object err = %v, want ErrInvalidInput", err)
}
}
func TestFillRegionCappedForHugeArea(t *testing.T) {
ctx := context.Background()
s := newTestService(t, openConfig())
owner := seedUser(t, s, "[email protected]")
g, _ := s.CreateGarden(ctx, owner, GardenInput{Name: "Huge", WidthCM: 8000, HeightCM: 8000})
bed := seedFillBed(t, s, owner, g.ID, 6000, 6000) // ~46k lattice points at radius 15 → over the cap
plant := seedOwnPlant(t, s, owner, 10)
region, _ := NamedRegion(bed, "all")
if _, err := s.FillRegion(ctx, owner, bed.ID, region, plant.ID, nil, FillClump, nil); !errors.Is(err, domain.ErrInvalidInput) {
t.Errorf("oversized fill err = %v, want ErrInvalidInput (over maxFillPlops)", err)
}
}
func TestDefaultPlopRadius(t *testing.T) {
if got := defaultPlopRadius(4); got != 15 { // 1.5*4=6 → floored to 15
t.Errorf("radius(4) = %v, want 15", got)
}
if got := defaultPlopRadius(20); got != 30 { // 1.5*20
t.Errorf("radius(20) = %v, want 30", got)
}
}
// TestHexCentersEdgeInset pins the spacing rule the packing exists to honour:
// spacing is a constraint between neighbouring plants, so a bed edge — which is
// nobody's neighbour — is owed half a pitch, not a whole one.
//
// The bug this guards against was visible to anyone who filled a bed: staggered
// rows began a full pitch in, leaving a bare strip a whole plop wide down one
// side of every other row, while the far edge had plops hanging off it.
func TestHexCentersEdgeInset(t *testing.T) {
for _, tc := range []struct {
name string
w, h, radius, spacing float64
wantRowStarts []float64 // x of the first plop in rows 0 and 1
}{
// 4ft × 8ft bed, garlic at 15cm spacing → radius 22.5, pitch 45. Three
// columns, the outer ones overhanging by 6.5cm — under the 7.5cm the rule
// allows. Anchored at the corner this row started at -38.5 and its
// staggered neighbour a full 45 further in still.
{"4ft bed of garlic", 122, 244, 22.5, 15, []float64{-45, -22.5}},
// An exact fit: 90 wide at pitch 30 → 3 columns, no overhang needed.
{"exact fit", 90, 90, 15, 10, []float64{-30, -15}},
} {
t.Run(tc.name, func(t *testing.T) {
r := rect(-tc.w/2, -tc.h/2, tc.w/2, tc.h/2)
pts, total := hexCenters(r, tc.radius, edgeInset(tc.radius, tc.spacing, FillClump), maxFillPlops)
if len(pts) == 0 {
t.Fatal("no centers")
}
// The count is derived up front so an oversized fill is refused without
// building its lattice — which only works if it matches what gets built.
if total != len(pts) {
t.Errorf("reported total %d, built %d", total, len(pts))
}
// A clump may cross the edge, but only by the half-spacing the rule
// allows — never enough to be mostly out in the path.
budget := tc.spacing / 2
for _, p := range pts {
over := math.Max(
math.Max(r.MinX-(p.x-tc.radius), (p.x+tc.radius)-r.MaxX),
math.Max(r.MinY-(p.y-tc.radius), (p.y+tc.radius)-r.MaxY),
)
if over > budget+1e-6 {
t.Errorf("plop at (%.1f,%.1f) overhangs by %.2f, budget %.2f", p.x, p.y, over, budget)
}
}
// The margins match on opposite edges: the leftover is shared, not piled
// against the far side.
minX, maxX, minY, maxY := pts[0].x, pts[0].x, pts[0].y, pts[0].y
for _, p := range pts {
minX, maxX = math.Min(minX, p.x), math.Max(maxX, p.x)
minY, maxY = math.Min(minY, p.y), math.Max(maxY, p.y)
}
if w, e := minX-r.MinX, r.MaxX-maxX; math.Abs(w-e) > 1e-6 {
t.Errorf("lopsided horizontally: west margin %.2f, east %.2f", w, e)
}
if n, s := minY-r.MinY, r.MaxY-maxY; math.Abs(n-s) > 1e-6 {
t.Errorf("lopsided vertically: north margin %.2f, south %.2f", n, s)
}
// The staggered row is offset by HALF a pitch, not a whole one.
starts := map[float64]float64{}
for _, p := range pts {
if x, ok := starts[p.y]; !ok || p.x < x {
starts[p.y] = p.x
}
}
ys := make([]float64, 0, len(starts))
for y := range starts {
ys = append(ys, y)
}
sort.Float64s(ys)
for i, want := range tc.wantRowStarts {
if i >= len(ys) {
t.Fatalf("only %d rows, want at least %d", len(ys), len(tc.wantRowStarts))
}
if got := starts[ys[i]]; math.Abs(got-want) > 1e-6 {
t.Errorf("row %d starts at x=%.2f, want %.2f", i, got, want)
}
}
})
}
}
// TestHexCentersTinyRegion covers a region too small to hold a plop at the
// half-pitch inset: planting one in the middle beats refusing to plant at all.
//
// The off-centre case earns its place — a region symmetric about the origin
// can't tell "the middle of the region" from "the origin", so on its own it
// would pass for an implementation that just returned (0,0).
func TestHexCentersTinyRegion(t *testing.T) {
for _, tc := range []struct {
name string
r Region
wantX, wantY float64
}{
{"centred on the origin", rect(-5, -5, 5, 5), 0, 0},
{"off in a corner", rect(20, -40, 30, -30), 25, -35},
} {
t.Run(tc.name, func(t *testing.T) {
pts, _ := hexCenters(tc.r, 15, edgeInset(15, 10, FillClump), maxFillPlops)
if len(pts) != 1 || pts[0].x != tc.wantX || pts[0].y != tc.wantY {
t.Errorf("got %+v, want one plop at (%v,%v)", pts, tc.wantX, tc.wantY)
}
})
}
}
// TestFillRegionRejectsNonFiniteRegion: non-finite bounds survive clamping and
// the inverted-region guard (NaN compares false both ways). Without the explicit
// check, NaN surfaced as a raw store error ("NOT NULL constraint failed") and
// +Inf as a silent success that planted nothing — neither of which tells the
// caller what it actually did wrong.
func TestFillRegionRejectsNonFiniteRegion(t *testing.T) {
ctx := context.Background()
s := newTestService(t, openConfig())
owner := seedUser(t, s, "[email protected]")
g, _ := s.CreateGarden(ctx, owner, GardenInput{Name: "Big", WidthCM: 2000, HeightCM: 2000})
bed := seedFillBed(t, s, owner, g.ID, 100, 100)
plant := seedOwnPlant(t, s, owner, 10)
nan := math.NaN()
for _, r := range []Region{
{MinX: nan, MinY: -50, MaxX: 50, MaxY: 50},
{MinX: -50, MinY: -50, MaxX: 50, MaxY: math.Inf(1)},
} {
created, err := s.FillRegion(ctx, owner, bed.ID, r, plant.ID, nil, FillClump, nil)
if !errors.Is(err, domain.ErrInvalidInput) {
t.Errorf("FillRegion(%+v) err = %v, want ErrInvalidInput", r, err)
}
for _, p := range created {
if !isFinite(p.XCM) || !isFinite(p.YCM) {
t.Errorf("persisted a plop with non-finite coordinates: %+v", p)
}
}
}
}
// TestFillRegionOutsideObjectPlantsNothing covers a region that misses the object
// entirely. clampTo inverts such a region rather than emptying it, and an
// inverted region must plant nothing — not one plop at some point off the bed.
func TestFillRegionOutsideObjectPlantsNothing(t *testing.T) {
ctx := context.Background()
s := newTestService(t, openConfig())
owner := seedUser(t, s, "[email protected]")
g, _ := s.CreateGarden(ctx, owner, GardenInput{Name: "Big", WidthCM: 2000, HeightCM: 2000})
bed := seedFillBed(t, s, owner, g.ID, 100, 100) // local bounds ±50
plant := seedOwnPlant(t, s, owner, 10)
// Wholly east of the bed: clampTo gives MinX=500, MaxX=50.
created, err := s.FillRegion(ctx, owner, bed.ID, rect(500, -50, 600, 50), plant.ID, nil, FillClump, nil)
if err != nil {
t.Fatalf("FillRegion: %v", err)
}
if len(created) != 0 {
t.Errorf("filled %d plops for a region outside the bed, want 0: %+v", len(created), created)
}
}
// seedFillBed makes a plantable bed of the given size centered in a big garden.
func seedFillBed(t *testing.T, s *Service, owner, gardenID int64, w, h float64) *domain.GardenObject {
t.Helper()
o, err := s.CreateObject(context.Background(), owner, gardenID, ObjectInput{
Kind: domain.KindBed, XCM: 1000, YCM: 1000, WidthCM: w, HeightCM: h,
})
if err != nil {
t.Fatalf("seed bed %vx%v: %v", w, h, err)
}
return o
}
func TestFillRegionDeterministicPacking(t *testing.T) {
ctx := context.Background()
s := newTestService(t, openConfig())
owner := seedUser(t, s, "[email protected]")
g, err := s.CreateGarden(ctx, owner, GardenInput{Name: "Big", WidthCM: 2000, HeightCM: 2000})
if err != nil {
t.Fatalf("garden: %v", err)
}
bed := seedFillBed(t, s, owner, g.ID, 60, 60) // hw=hh=30
plant := seedOwnPlant(t, s, owner, 10) // radius = max(15,15) = 15
region, _ := NamedRegion(bed, "all")
created, err := s.FillRegion(ctx, owner, bed.ID, region, plant.ID, nil, FillClump, nil)
if err != nil {
t.Fatalf("FillRegion: %v", err)
}
// Hex lattice on [-30,30]² at pitch 30, rows ~26 apart, centered: a row of 2
// (x=±15), then a staggered row of 1 (x=0) → 3 plops.
//
// This was 4 while the lattice was anchored at the min corner, and the fourth
// sat at x=30 — centred ON the east edge, so half of it lay outside the bed,
// well past the half-spacing (5cm here) the rule allows. Packing one fewer
// plop is the point of the fix, not a regression in it.
if len(created) != 3 {
t.Fatalf("filled %d plops, want 3 (60×60 bed, radius 15)", len(created))
}
for _, p := range created {
if p.RadiusCM != 15 || p.PlantedAt == nil || p.DerivedCount < 1 {
t.Errorf("unexpected created plop: %+v", p)
}
// This bed fits its lattice exactly, so nothing should need to overhang.
if p.XCM-p.RadiusCM < -30 || p.XCM+p.RadiusCM > 30 ||
p.YCM-p.RadiusCM < -30 || p.YCM+p.RadiusCM > 30 {
t.Errorf("plop overhangs a bed it fits inside: %+v", p)
}
}
// Re-filling the same region skips everything (each candidate sits exactly on
// an existing plop → entirely inside it).
again, err := s.FillRegion(ctx, owner, bed.ID, region, plant.ID, nil, FillClump, nil)
if err != nil {
t.Fatalf("second FillRegion: %v", err)
}
if len(again) != 0 {
t.Errorf("re-fill created %d plops, want 0 (all covered)", len(again))
}
}
// TestFillGridLaysOutIndividualPlants is the #77 grid mode: a grid fill packs one
// plant per plop at true spacing, so a bed becomes rows of plants rather than a
// few fat clumps. On the same bed it produces many more, smaller plops, each a
// single plant.
func TestFillGridLaysOutIndividualPlants(t *testing.T) {
ctx := context.Background()
s := newTestService(t, openConfig())
owner := seedUser(t, s, "[email protected]")
g, _ := s.CreateGarden(ctx, owner, GardenInput{Name: "Big", WidthCM: 2000, HeightCM: 2000})
bed := seedFillBed(t, s, owner, g.ID, 60, 60)
plant := seedOwnPlant(t, s, owner, 10) // spacing 10
region, _ := NamedRegion(bed, "all")
clump, err := s.FillRegion(ctx, owner, bed.ID, region, plant.ID, nil, FillClump, nil)
if err != nil {
t.Fatalf("clump: %v", err)
}
if _, err := s.ClearObject(ctx, owner, bed.ID); err != nil {
t.Fatalf("clear: %v", err)
}
grid, err := s.FillRegion(ctx, owner, bed.ID, region, plant.ID, nil, FillGrid, nil)
if err != nil {
t.Fatalf("grid: %v", err)
}
// Grid packs at spacing 10 (radius 5, pitch 10); clump at radius 15 (pitch 30).
// Grid must produce many more plops.
if len(grid) <= len(clump) {
t.Errorf("grid produced %d plops, clump %d — grid should be denser", len(grid), len(clump))
}
// Each grid plop is one plant at radius spacing/2 = 5.
maxAbs := 0.0
for _, p := range grid {
if p.RadiusCM != 5 {
t.Errorf("grid plop radius = %v, want 5 (spacing/2)", p.RadiusCM)
}
if p.DerivedCount != 1 {
t.Errorf("grid plop derived count = %d, want 1 (one plant per plop)", p.DerivedCount)
}
maxAbs = math.Max(maxAbs, math.Max(math.Abs(p.XCM), math.Abs(p.YCM)))
}
// The half-spacing edge rule: a grid plant sits AT the plop centre, so the
// outer row is inset a half-spacing (spacing/2 = 5) — at ±25 on this 60cm bed,
// not flush on ±30. Regression guard: the clump inset formula (radius half)
// collapses to 0 for grid and would plant one on the very edge.
if edge := 30.0; maxAbs > edge-5+1e-6 {
t.Errorf("outermost grid plop at |coord|=%.2f — only %.2fcm from the edge; want a half-spacing (5cm) in", maxAbs, edge-maxAbs)
}
}
// TestFillRejectsUnknownLayout: a layout that isn't clump/grid is ErrInvalidInput.
func TestFillRejectsUnknownLayout(t *testing.T) {
ctx := context.Background()
s := newTestService(t, openConfig())
owner := seedUser(t, s, "[email protected]")
g, _ := s.CreateGarden(ctx, owner, GardenInput{Name: "Big", WidthCM: 2000, HeightCM: 2000})
bed := seedFillBed(t, s, owner, g.ID, 60, 60)
plant := seedOwnPlant(t, s, owner, 10)
region, _ := NamedRegion(bed, "all")
if _, err := s.FillRegion(ctx, owner, bed.ID, region, plant.ID, nil, FillLayout("spiral"), nil); !errors.Is(err, domain.ErrInvalidInput) {
t.Errorf("unknown layout err = %v, want ErrInvalidInput", err)
}
}
func TestFillRegionRotatedBedUsesLocalFrame(t *testing.T) {
ctx := context.Background()
s := newTestService(t, openConfig())
owner := seedUser(t, s, "[email protected]")
g, _ := s.CreateGarden(ctx, owner, GardenInput{Name: "Big", WidthCM: 2000, HeightCM: 2000})
bed := seedFillBed(t, s, owner, g.ID, 400, 400)
// Rotate the bed 45°; the fill must still target the LOCAL NE corner.
rot := 45.0
bed, _ = s.UpdateObject(ctx, owner, bed.ID, ObjectPatch{RotationDeg: &rot}, bed.Version)
plant := seedOwnPlant(t, s, owner, 20)
region, _ := NamedRegion(bed, "ne")
created, err := s.FillRegion(ctx, owner, bed.ID, region, plant.ID, nil, FillClump, nil)
if err != nil {
t.Fatalf("FillRegion: %v", err)
}
if len(created) == 0 {
t.Fatal("expected some plops in the NE corner")
}
for _, p := range created {
// NE corner in local coords: x ≥ 0 (east), y ≤ 0 (north).
if p.XCM < 0 || p.YCM > 0 {
t.Errorf("plop not in local NE corner: %+v", p)
}
}
}
func TestClearObject(t *testing.T) {
ctx := context.Background()
s := newTestService(t, openConfig())
owner := seedUser(t, s, "[email protected]")
g := seedGarden(t, s, owner)
bed := seedBed(t, s, owner, g.ID)
plant := seedOwnPlant(t, s, owner, 10)
region, _ := NamedRegion(bed, "all")
if _, err := s.FillRegion(ctx, owner, bed.ID, region, plant.ID, nil, FillClump, nil); err != nil {
t.Fatalf("fill: %v", err)
}
n, err := s.ClearObject(ctx, owner, bed.ID)
if err != nil {
t.Fatalf("ClearObject: %v", err)
}
if n < 1 {
t.Fatalf("cleared %d, want ≥ 1", n)
}
full, _ := s.GardenFull(ctx, owner, g.ID, nil)
if len(full.Plantings) != 0 {
t.Errorf("plantings after clear = %d, want 0", len(full.Plantings))
}
// Clearing an already-empty object clears 0.
if again, _ := s.ClearObject(ctx, owner, bed.ID); again != 0 {
t.Errorf("second clear = %d, want 0", again)
}
}
func TestOpsForbiddenForViewer(t *testing.T) {
ctx := context.Background()
s := newTestService(t, openConfig())
owner := seedUser(t, s, "[email protected]")
viewer := seedUser(t, s, "[email protected]")
g := seedGarden(t, s, owner)
bed := seedBed(t, s, owner, g.ID)
plant := seedOwnPlant(t, s, owner, 10)
if _, err := s.AddShare(ctx, owner, g.ID, "[email protected]", domain.RoleViewer); err != nil {
t.Fatalf("share: %v", err)
}
region, _ := NamedRegion(bed, "all")
if _, err := s.FillRegion(ctx, viewer, bed.ID, region, plant.ID, nil, FillClump, nil); !errors.Is(err, domain.ErrForbidden) {
t.Errorf("viewer fill = %v, want ErrForbidden", err)
}
if _, err := s.ClearObject(ctx, viewer, bed.ID); !errors.Is(err, domain.ErrForbidden) {
t.Errorf("viewer clear = %v, want ErrForbidden", err)
}
// But a viewer can DescribeGarden (read).
if _, err := s.DescribeGarden(ctx, viewer, g.ID); err != nil {
t.Errorf("viewer describe = %v, want ok", err)
}
}
// TestFillScenario is the DESIGN scenario: garlic in the NE corner, basil in the
// NW, beans across the south — three distinct groups in the right places.
func TestFillScenario(t *testing.T) {
ctx := context.Background()
s := newTestService(t, openConfig())
owner := seedUser(t, s, "[email protected]")
g, _ := s.CreateGarden(ctx, owner, GardenInput{Name: "Plot", WidthCM: 2000, HeightCM: 2000})
bed := seedFillBed(t, s, owner, g.ID, 400, 400)
garlic := seedNamedPlant(t, s, owner, "Garlic", 15)
basil := seedNamedPlant(t, s, owner, "Basil", 25)
beans := seedNamedPlant(t, s, owner, "Beans", 10)
fill := func(name string, plantID int64) {
t.Helper()
region, err := NamedRegion(bed, name)
if err != nil {
t.Fatalf("region %q: %v", name, err)
}
if _, err := s.FillRegion(ctx, owner, bed.ID, region, plantID, nil, FillClump, nil); err != nil {
t.Fatalf("fill %q: %v", name, err)
}
}
fill("ne", garlic.ID)
fill("nw", basil.ID)
fill("south", beans.ID)
desc, err := s.DescribeGarden(ctx, owner, g.ID)
if err != nil {
t.Fatalf("DescribeGarden: %v", err)
}
if len(desc.Objects) != 1 {
t.Fatalf("objects = %d, want 1", len(desc.Objects))
}
// Tally plant → the set of rough locations it appears in.
// Plantings come grouped by plant: a group's Where names the region when the
// whole group sits in one, and a small group also lists its plops.
locs := map[string]map[string]bool{}
for _, g := range desc.Objects[0].Plantings {
if locs[g.Plant] == nil {
locs[g.Plant] = map[string]bool{}
}
locs[g.Plant][g.Where] = true
for _, p := range g.Each {
locs[g.Plant][p.Location] = true
}
}
if len(locs["Garlic"]) == 0 || !locs["Garlic"]["NE corner"] {
t.Errorf("garlic locations = %v, want NE corner", locs["Garlic"])
}
if !locs["Basil"]["NW corner"] {
t.Errorf("basil locations = %v, want NW corner", locs["Basil"])
}
// Beans fill the south half → their plops read as "south" (and possibly the
// SE/SW corners at the edges), never north.
for loc := range locs["Beans"] {
if loc == "north" || loc == "NE corner" || loc == "NW corner" || loc == "center" {
t.Errorf("beans appeared in %q, want only southern locations", loc)
}
}
if len(locs["Beans"]) == 0 {
t.Error("beans produced no plops")
}
}
// seedNamedPlant creates a custom plant with a specific name + spacing.
func seedNamedPlant(t *testing.T, s *Service, owner int64, name string, spacingCM float64) *domain.Plant {
t.Helper()
p, err := s.CreatePlant(context.Background(), owner, PlantInput{
Name: name, Category: domain.CategoryVegetable, SpacingCM: spacingCM, Color: "#4a7c3f", Icon: "🌱",
})
if err != nil {
t.Fatalf("seed plant %s: %v", name, err)
}
return p
}
// TestFillRegionPlantedAt: a fill dates its plops as told and refuses a date
// that isn't one. The UI sends its local day, so an evening fill isn't stamped
// with UTC's tomorrow; API and agent callers that omit it still get UTC today.
func TestFillRegionPlantedAt(t *testing.T) {
ctx := context.Background()
s := newTestService(t, openConfig())
owner := seedUser(t, s, "[email protected]")
g, _ := s.CreateGarden(ctx, owner, GardenInput{Name: "Dated", WidthCM: 2000, HeightCM: 2000})
bed := seedFillBed(t, s, owner, g.ID, 200, 100)
plant := seedOwnPlant(t, s, owner, 30)
day := "2026-04-01"
created, err := s.FillNamedRegion(ctx, owner, bed.ID, "all", plant.ID, nil, FillClump, &day)
if err != nil {
t.Fatalf("fill: %v", err)
}
if len(created) == 0 {
t.Fatal("fill created nothing")
}
for _, p := range created {
if p.PlantedAt == nil || *p.PlantedAt != day {
t.Errorf("planting %d plantedAt = %v, want %s", p.ID, p.PlantedAt, day)
}
}
bad := "April 1st"
if _, err := s.FillNamedRegion(ctx, owner, bed.ID, "all", plant.ID, nil, FillClump, &bad); !errors.Is(err, domain.ErrInvalidInput) {
t.Errorf("bad date err = %v, want ErrInvalidInput", err)
}
}
// TestDescribeGardenGroupsByPlant — describe_garden is what the assistant reads
// at the start of every turn, and the live one's first describe of a grid-filled
// garden was ~450 plop entries. A group per plant says what a person would say
// ("beans across the north half, sown in May"), spells out its plops only when
// there are few, and carries the dates the model had no way to know before.
func TestDescribeGardenGroupsByPlant(t *testing.T) {
ctx := context.Background()
s := newTestService(t, openConfig())
owner := seedUser(t, s, "[email protected]")
g, err := s.CreateGarden(ctx, owner, GardenInput{Name: "Grouped", WidthCM: 2000, HeightCM: 2000})
if err != nil {
t.Fatalf("garden: %v", err)
}
bed := seedFillBed(t, s, owner, g.ID, 400, 400)
beans := seedNamedPlant(t, s, owner, "Beans", 10)
basil := seedNamedPlant(t, s, owner, "Basil", 25)
may, june := "2026-05-01", "2026-06-01"
// A grid fill of the north half: far more plops than get listed, all May.
if _, err := s.Fill(ctx, owner, bed.ID, FillSpec{RegionName: "north", PlantID: beans.ID, Layout: FillGrid, PlantedAt: &may}); err != nil {
t.Fatalf("fill beans: %v", err)
}
// Three basil plops in the south half, on two dates, one with an explicit count.
three := 3
for _, in := range []PlantingInput{
{PlantID: basil.ID, XCM: -100, YCM: 100, RadiusCM: 20, PlantedAt: &may},
{PlantID: basil.ID, XCM: 0, YCM: 150, RadiusCM: 20, PlantedAt: &june, Count: &three},
{PlantID: basil.ID, XCM: 100, YCM: 100, RadiusCM: 20, PlantedAt: &june},
} {
if _, err := s.CreatePlanting(ctx, owner, bed.ID, in); err != nil {
t.Fatalf("place basil: %v", err)
}
}
desc, err := s.DescribeGarden(ctx, owner, g.ID)
if err != nil {
t.Fatalf("DescribeGarden: %v", err)
}
groups := map[string]DescribeGroup{}
for _, gr := range desc.Objects[0].Plantings {
groups[gr.Plant] = gr
}
if len(groups) != 2 {
t.Fatalf("groups = %d (%+v), want one per plant", len(groups), desc.Objects[0].Plantings)
}
b := groups["Beans"]
if b.Plops <= maxListedPlops {
t.Fatalf("the beans fill made %d plops; the test needs more than %d to exercise the listing cap", b.Plops, maxListedPlops)
}
if b.Each != nil {
t.Errorf("a %d-plop group listed its plops individually", b.Plops)
}
if b.Where != "north half" {
t.Errorf("beans where = %q, want %q", b.Where, "north half")
}
if b.PlantedAt != may {
t.Errorf("beans plantedAt = %q, want %q", b.PlantedAt, may)
}
if b.Plants != b.Plops {
t.Errorf("grid beans: plants %d ≠ plops %d (one plant per grid plop)", b.Plants, b.Plops)
}
ba := groups["Basil"]
if ba.Plops != 3 || len(ba.Each) != 3 {
t.Errorf("basil: plops %d, each %d; want 3 and 3 (a small group lists its plops)", ba.Plops, len(ba.Each))
}
if ba.Where != "south half" {
t.Errorf("basil where = %q, want %q", ba.Where, "south half")
}
if ba.PlantedAt != may+"…"+june {
t.Errorf("basil plantedAt = %q, want the range %q", ba.PlantedAt, may+"…"+june)
}
// Two derived counts (π·20²/25² ≈ 2 each) plus the explicit 3.
if want := 2*derivedCount(20, 25) + 3; ba.Plants != want {
t.Errorf("basil plants = %d, want %d", ba.Plants, want)
}
for _, e := range ba.Each {
if e.PlantedAt == "" || e.Version == 0 || e.ID == 0 {
t.Errorf("listed plop %+v is missing id, version or date", e)
}
}
// The big group's ids are a call away, narrowed to one plant.
listed, err := s.ListObjectPlantings(ctx, owner, bed.ID, &beans.ID)
if err != nil {
t.Fatalf("ListObjectPlantings: %v", err)
}
if len(listed) != b.Plops {
t.Errorf("listed %d beans, want %d", len(listed), b.Plops)
}
for _, p := range listed {
if p.PlantID != beans.ID || p.PlantedAt != may || p.Plant != "Beans" {
t.Errorf("listed plop %+v, want a May bean", p)
break
}
}
// A stranger gets not-found, like everything else behind the garden ACL.
stranger := seedUser(t, s, "[email protected]")
if _, err := s.ListObjectPlantings(ctx, stranger, bed.ID, nil); !errors.Is(err, domain.ErrNotFound) {
t.Errorf("stranger ListObjectPlantings err = %v, want ErrNotFound", err)
}
}
// TestSummarizeWhere pins the words a group's location comes out in: the
// compass names NamedRegion understands when the group fits one, "throughout"
// for a whole-bed fill, a short list for a few scattered plops, and a bounding
// box for anything else — never a column down the middle called a "half".
func TestSummarizeWhere(t *testing.T) {
o := &domain.GardenObject{WidthCM: 200, HeightCM: 100}
at := func(pts ...[2]float64) []domain.Planting {
out := make([]domain.Planting, 0, len(pts))
for _, p := range pts {
out = append(out, domain.Planting{XCM: p[0], YCM: p[1]})
}
return out
}
for _, tc := range []struct {
name string
in []domain.Planting
want string
}{
{"single", at([2]float64{0, -10}), "north"},
{"ne corner", at([2]float64{10, -10}, [2]float64{80, -40}), "NE corner"},
{"south half", at([2]float64{-80, 10}, [2]float64{80, 40}), "south half"},
{"column down the middle", at([2]float64{0, -40}, [2]float64{0, 0}, [2]float64{0, 40}), "north, center, south"},
{"whole bed", at([2]float64{-90, -40}, [2]float64{90, -40}, [2]float64{-90, 40}, [2]float64{90, 40}, [2]float64{0, 0}), "throughout"},
{"middle third", at([2]float64{-30, -40}, [2]float64{30, -40}, [2]float64{-30, 0}, [2]float64{30, 0}, [2]float64{-30, 40}, [2]float64{30, 40}), "x -30…30, y -40…40 cm from the centre"},
} {
if got := summarizeWhere(o, tc.in); got != tc.want {
t.Errorf("%s: summarizeWhere = %q, want %q", tc.name, got, tc.want)
}
}
}
// TestClearPlantingsOnePlantOnTheDayTold — "take the beets out, leave the
// garlic", dated the gardener's day: the whole-bed clear's narrower sibling, and
// what the assistant needed instead of 116 single removals.
func TestClearPlantingsOnePlantOnTheDayTold(t *testing.T) {
ctx := context.Background()
s := newTestService(t, openConfig())
owner := seedUser(t, s, "[email protected]")
g, err := s.CreateGarden(ctx, owner, GardenInput{Name: "Mixed", WidthCM: 2000, HeightCM: 2000})
if err != nil {
t.Fatalf("garden: %v", err)
}
bed := seedFillBed(t, s, owner, g.ID, 400, 200)
garlic := seedNamedPlant(t, s, owner, "Garlic", 15)
beet := seedNamedPlant(t, s, owner, "Beet", 10)
if _, err := s.Fill(ctx, owner, bed.ID, FillSpec{RegionName: "west", PlantID: garlic.ID}); err != nil {
t.Fatalf("fill garlic: %v", err)
}
beets, err := s.Fill(ctx, owner, bed.ID, FillSpec{RegionName: "east", PlantID: beet.ID})
if err != nil {
t.Fatalf("fill beets: %v", err)
}
day := "2026-08-22"
n, err := s.ClearPlantings(ctx, owner, bed.ID, ClearOptions{PlantID: &beet.ID, RemovedAt: &day})
if err != nil {
t.Fatalf("ClearPlantings: %v", err)
}
if n != len(beets) {
t.Errorf("cleared %d, want the %d beets", n, len(beets))
}
rows, err := s.store.ListPlantingsForObject(ctx, bed.ID)
if err != nil {
t.Fatalf("list: %v", err)
}
for _, r := range rows {
switch {
case r.PlantID == beet.ID && (r.RemovedAt == nil || *r.RemovedAt != day):
t.Errorf("beet %d removedAt = %v, want %q", r.ID, r.RemovedAt, day)
case r.PlantID == garlic.ID && r.RemovedAt != nil:
t.Errorf("garlic %d was removed by a clear aimed at the beets", r.ID)
}
}
sets, _, err := s.GardenHistory(ctx, owner, g.ID, 0, 0)
if err != nil {
t.Fatalf("history: %v", err)
}
if want := fmt.Sprintf("Removed Beet from %s (%d plantings)", objectLabel(bed), n); sets[0].Summary != want {
t.Errorf("summary = %q, want %q", sets[0].Summary, want)
}
// Nothing left of that plant clears nothing, cleanly; a bad date is refused
// before anything is touched.
if n, err := s.ClearPlantings(ctx, owner, bed.ID, ClearOptions{PlantID: &beet.ID}); err != nil || n != 0 {
t.Errorf("second clear = (%d, %v), want (0, nil)", n, err)
}
bad := "22/08/2026"
if _, err := s.ClearPlantings(ctx, owner, bed.ID, ClearOptions{RemovedAt: &bad}); !errors.Is(err, domain.ErrInvalidInput) {
t.Errorf("bad date err = %v, want ErrInvalidInput", err)
}
}
// TestFillByRectangleAttributesSeed — a fill can be aimed at any rectangle of the
// object's local frame (the middle third, a strip along one edge), not only a
// compass name, and can charge its plops to a seed lot so the lot's "remaining"
// means something.
func TestFillByRectangleAttributesSeed(t *testing.T) {
ctx := context.Background()
s := newTestService(t, openConfig())
owner := seedUser(t, s, "[email protected]")
g, err := s.CreateGarden(ctx, owner, GardenInput{Name: "Rect", WidthCM: 2000, HeightCM: 2000})
if err != nil {
t.Fatalf("garden: %v", err)
}
bed := seedFillBed(t, s, owner, g.ID, 240, 120)
beet := seedNamedPlant(t, s, owner, "Beet", 10)
lot, err := s.CreateSeedLot(ctx, owner, SeedLotInput{PlantID: beet.ID, Quantity: 500, Unit: "seeds"})
if err != nil {
t.Fatalf("lot: %v", err)
}
created, err := s.Fill(ctx, owner, bed.ID, FillSpec{
Region: Region{MinX: -40, MinY: -60, MaxX: 40, MaxY: 60}, PlantID: beet.ID, Layout: FillGrid, SeedLotID: &lot.ID,
})
if err != nil {
t.Fatalf("Fill: %v", err)
}
if len(created) == 0 {
t.Fatal("the rectangle fill planted nothing")
}
for _, p := range created {
if p.XCM < -40 || p.XCM > 40 || p.YCM < -60 || p.YCM > 60 {
t.Errorf("plop at (%v,%v) is outside the rectangle", p.XCM, p.YCM)
}
if p.SeedLotID == nil || *p.SeedLotID != lot.ID {
t.Errorf("plop %d seedLotId = %v, want the lot", p.ID, p.SeedLotID)
}
}
got, err := s.GetSeedLot(ctx, owner, lot.ID)
if err != nil {
t.Fatalf("GetSeedLot: %v", err)
}
if got.Used != float64(len(created)) || got.Remaining != 500-float64(len(created)) {
t.Errorf("lot used/remaining = %v/%v, want %d/%v", got.Used, got.Remaining, len(created), 500-float64(len(created)))
}
// Someone else's lot, or a lot of another plant, refuses the whole fill.
garlic := seedNamedPlant(t, s, owner, "Garlic", 15)
if _, err := s.Fill(ctx, owner, bed.ID, FillSpec{RegionName: "all", PlantID: garlic.ID, SeedLotID: &lot.ID}); err == nil {
t.Error("a fill charged to a lot of a different plant succeeded")
}
}