Files
wickra/bindings/go/golden_test.go
T

251 lines
6.0 KiB
Go
Raw Normal View History

package wickra
import (
"bufio"
"math"
"os"
"strconv"
"strings"
"testing"
)
// Golden-fixture parity: replay the shared testdata/golden input series through
// the Go FFI and assert every value matches the Rust reference output. Where the
// archetype test only checks finiteness, this pins exact values, catching wiring
// bugs (swapped params, wrong multi-output field). Fixtures are generated by
// `cargo run -p wickra-examples --bin gen_golden`.
const goldenTol = 1e-6
func readGolden(t *testing.T, name string) [][]string {
t.Helper()
f, err := os.Open("../../testdata/golden/" + name + ".csv")
if err != nil {
t.Fatalf("open %s: %v", name, err)
}
defer f.Close()
var rows [][]string
sc := bufio.NewScanner(f)
first := true
for sc.Scan() {
line := sc.Text()
if first {
first = false
continue
}
if line == "" {
continue
}
rows = append(rows, strings.Split(line, ","))
}
return rows
}
func goldenCell(s string) float64 {
if s == "nan" {
return math.NaN()
}
v, _ := strconv.ParseFloat(s, 64)
return v
}
func goldenInput(t *testing.T) [][]float64 {
rows := readGolden(t, "input")
out := make([][]float64, len(rows))
for i, r := range rows {
vals := make([]float64, len(r))
for j, c := range r {
vals[j] = goldenCell(c)
}
out[i] = vals
}
return out
}
func assertGoldenClose(t *testing.T, got, want float64, row int, field string) {
t.Helper()
if math.IsNaN(want) {
if !math.IsNaN(got) {
t.Errorf("row %d %s: expected warmup/NaN, got %v", row, field, got)
}
return
}
tol := goldenTol * math.Max(1.0, math.Abs(want))
if math.Abs(got-want) > tol {
t.Errorf("row %d %s: got %v want %v", row, field, got, want)
}
}
func TestGoldenScalar(t *testing.T) {
input := goldenInput(t)
sma, err := NewSma(14)
if err != nil {
t.Fatal(err)
}
defer sma.Close()
ema, err := NewEma(14)
if err != nil {
t.Fatal(err)
}
defer ema.Close()
rsi, err := NewRsi(14)
if err != nil {
t.Fatal(err)
}
defer rsi.Close()
cases := []struct {
name string
upd func(close float64) float64
}{
{"sma", sma.Update},
{"ema", ema.Update},
{"rsi", rsi.Update},
}
for _, tc := range cases {
exp := readGolden(t, tc.name)
for i := range input {
assertGoldenClose(t, tc.upd(input[i][3]), goldenCell(exp[i][0]), i, tc.name)
}
}
}
func TestGoldenAtr(t *testing.T) {
input := goldenInput(t)
exp := readGolden(t, "atr")
atr, err := NewAtr(14)
if err != nil {
t.Fatal(err)
}
defer atr.Close()
for i := range input {
got := atr.Update(input[i][0], input[i][1], input[i][2], input[i][3], input[i][4], int64(i))
assertGoldenClose(t, got, goldenCell(exp[i][0]), i, "atr")
}
}
func TestGoldenBeta(t *testing.T) {
input := goldenInput(t)
exp := readGolden(t, "beta")
beta, err := NewBeta(20)
if err != nil {
t.Fatal(err)
}
defer beta.Close()
for i := range input {
// generator fed (close, open)
assertGoldenClose(t, beta.Update(input[i][3], input[i][0]), goldenCell(exp[i][0]), i, "beta")
}
}
func TestGoldenMacd(t *testing.T) {
input := goldenInput(t)
exp := readGolden(t, "macd")
macd, err := NewMacdIndicator(12, 26, 9)
if err != nil {
t.Fatal(err)
}
defer macd.Close()
for i := range input {
out, ok := macd.Update(input[i][3])
if exp[i][0] == "nan" {
if ok {
t.Errorf("row %d macd: expected warmup, got %+v", i, out)
}
continue
}
if !ok {
t.Errorf("row %d macd: expected value, got warmup", i)
continue
}
assertGoldenClose(t, out.Macd, goldenCell(exp[i][0]), i, "macd.macd")
assertGoldenClose(t, out.Signal, goldenCell(exp[i][1]), i, "macd.signal")
assertGoldenClose(t, out.Histogram, goldenCell(exp[i][2]), i, "macd.histogram")
}
}
func TestGoldenAdx(t *testing.T) {
input := goldenInput(t)
exp := readGolden(t, "adx")
adx, err := NewAdx(14)
if err != nil {
t.Fatal(err)
}
defer adx.Close()
for i := range input {
out, ok := adx.Update(input[i][0], input[i][1], input[i][2], input[i][3], input[i][4], int64(i))
if exp[i][0] == "nan" {
if ok {
t.Errorf("row %d adx: expected warmup, got %+v", i, out)
}
continue
}
if !ok {
t.Errorf("row %d adx: expected value, got warmup", i)
continue
}
assertGoldenClose(t, out.PlusDi, goldenCell(exp[i][0]), i, "adx.plus_di")
assertGoldenClose(t, out.MinusDi, goldenCell(exp[i][1]), i, "adx.minus_di")
assertGoldenClose(t, out.Adx, goldenCell(exp[i][2]), i, "adx.adx")
}
}
// The four de-duplicated indicators: pin their corrected definitions against
// the Rust reference so the Go FFI stays bit-identical.
func TestGoldenAdOscillator(t *testing.T) {
input := goldenInput(t)
exp := readGolden(t, "ad_oscillator")
ad, err := NewAdOscillator()
if err != nil {
t.Fatal(err)
}
defer ad.Close()
for i := range input {
got := ad.Update(input[i][0], input[i][1], input[i][2], input[i][3], input[i][4], int64(i))
assertGoldenClose(t, got, goldenCell(exp[i][0]), i, "ad_oscillator")
}
}
func TestGoldenIntradayIntensity(t *testing.T) {
input := goldenInput(t)
exp := readGolden(t, "intraday_intensity")
ii, err := NewIntradayIntensity()
if err != nil {
t.Fatal(err)
}
defer ii.Close()
for i := range input {
got := ii.Update(input[i][0], input[i][1], input[i][2], input[i][3], input[i][4], int64(i))
assertGoldenClose(t, got, goldenCell(exp[i][0]), i, "intraday_intensity")
}
}
func TestGoldenAwesomeOscillatorHistogram(t *testing.T) {
input := goldenInput(t)
exp := readGolden(t, "awesome_oscillator_histogram")
aoh, err := NewAwesomeOscillatorHistogram(5, 34, 1)
if err != nil {
t.Fatal(err)
}
defer aoh.Close()
for i := range input {
got := aoh.Update(input[i][0], input[i][1], input[i][2], input[i][3], input[i][4], int64(i))
assertGoldenClose(t, got, goldenCell(exp[i][0]), i, "awesome_oscillator_histogram")
}
}
func TestGoldenAverageDrawdown(t *testing.T) {
input := goldenInput(t)
exp := readGolden(t, "average_drawdown")
avg, err := NewAverageDrawdown(20)
if err != nil {
t.Fatal(err)
}
defer avg.Close()
for i := range input {
// generator fed the close column as the equity-curve sample.
assertGoldenClose(t, avg.Update(input[i][3]), goldenCell(exp[i][0]), i, "average_drawdown")
}
}