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volumen/internal/totp/totp_test.go
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Initial commit
Assisted-by: GLM 5.3
2026-09-29 10:03:32 +02:00

100 lines
2.8 KiB
Go

// Copyright (c) 2026 Petr Balvín <opensource@petrbalvin.org> (https://petrbalvin.org)
// SPDX-License-Identifier: PolyForm-Noncommercial-1.0.0
package totp
import (
"testing"
"time"
)
// rfcSecret is the RFC 6238 appendix B seed for SHA-1.
var rfcSecret = []byte("12345678901234567890")
func at(unix int64) time.Time { return time.Unix(unix, 0).UTC() }
// TestRFCVectors checks the truncation against the appendix B table,
// reduced to the six digits the URI format promises.
func TestRFCVectors(t *testing.T) {
vectors := []struct {
unix int64
code string
}{
{59, "287082"},
{1111111109, "081804"},
{1111111111, "050471"},
{1234567890, "005924"},
{2000000000, "279037"},
{20000000000, "353130"},
}
for _, v := range vectors {
if got := Code(rfcSecret, at(v.unix)); got != v.code {
t.Fatalf("Code(%d) = %q, want %q", v.unix, got, v.code)
}
}
}
func TestValidateAcceptsWindow(t *testing.T) {
codeTime := at(1_000_000_000)
code := Code(rfcSecret, codeTime)
for _, drift := range []time.Duration{-Step, 0, Step} {
ok, step := Validate(rfcSecret, code, codeTime.Add(drift), 0)
if !ok {
t.Fatalf("drift %v rejected", drift)
}
if step != counter(codeTime) {
t.Fatalf("drift %v: step = %d, want the code's counter %d",
drift, step, counter(codeTime))
}
}
}
func TestValidateRefusesOutsideWindow(t *testing.T) {
code := Code(rfcSecret, at(1_000_000_000))
if ok, _ := Validate(rfcSecret, code, at(1_000_000_000).Add(2*Step), 0); ok {
t.Fatal("two steps ahead accepted")
}
if ok, _ := Validate(rfcSecret, code, at(1_000_000_000).Add(-2*Step), 0); ok {
t.Fatal("two steps behind accepted")
}
}
func TestValidateGuardsReplay(t *testing.T) {
now := at(1_000_000_000)
code := Code(rfcSecret, now)
ok, step := Validate(rfcSecret, code, now, 0)
if !ok || step == 0 {
t.Fatalf("first use failed: ok=%v step=%d", ok, step)
}
if ok, _ := Validate(rfcSecret, code, now, step); ok {
t.Fatal("same counter accepted twice")
}
if ok, _ := Validate(rfcSecret, code, now.Add(Step), step); ok {
t.Fatal("older drifting code accepted after a newer one")
}
// The next step's code stays valid: the floor is the counter, not
// a blanket cooldown.
next := Code(rfcSecret, now.Add(2*Step))
if ok, newer := Validate(rfcSecret, next, now.Add(2*Step), step); !ok || newer <= step {
t.Fatalf("fresh code refused: ok=%v step=%d", ok, newer)
}
}
func TestNormalise(t *testing.T) {
for in, want := range map[string]string{
"123456": "123456",
" 123 456 ": "123456",
"123-456": "123456",
"004203": "004203",
} {
if got := normalise(in); got != want {
t.Fatalf("normalise(%q) = %q, want %q", in, got, want)
}
}
for _, in := range []string{"", "12345", "1234567", "12345a", "12 34 56 78", "12345\n"} {
if got := normalise(in); got != "" {
t.Fatalf("normalise(%q) = %q, want empty", in, got)
}
}
}