mirror of https://github.com/k3s-io/k3s
extend fake clock
parent
92ec286ecc
commit
4a7d70aef1
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@ -113,7 +113,7 @@ func TestTTLPolicy(t *testing.T) {
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exactlyOnTTL := fakeTime.Add(-ttl)
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expiredTime := fakeTime.Add(-(ttl + 1))
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policy := TTLPolicy{ttl, &util.FakeClock{Time: fakeTime}}
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policy := TTLPolicy{ttl, util.NewFakeClock(fakeTime)}
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fakeTimestampedEntry := ×tampedEntry{obj: struct{}{}, timestamp: exactlyOnTTL}
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if policy.IsExpired(fakeTimestampedEntry) {
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t.Errorf("TTL cache should not expire entries exactly on ttl")
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@ -348,7 +348,7 @@ func TestEventf(t *testing.T) {
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eventBroadcaster := NewBroadcaster()
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sinkWatcher := eventBroadcaster.StartRecordingToSink(&testEvents)
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clock := &util.FakeClock{time.Now()}
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clock := util.NewFakeClock(time.Now())
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recorder := recorderWithFakeClock(api.EventSource{Component: "eventTest"}, eventBroadcaster, clock)
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for index, item := range table {
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clock.Step(1 * time.Second)
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@ -559,7 +559,7 @@ func TestEventfNoNamespace(t *testing.T) {
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eventBroadcaster := NewBroadcaster()
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sinkWatcher := eventBroadcaster.StartRecordingToSink(&testEvents)
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clock := &util.FakeClock{time.Now()}
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clock := util.NewFakeClock(time.Now())
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recorder := recorderWithFakeClock(api.EventSource{Component: "eventTest"}, eventBroadcaster, clock)
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for index, item := range table {
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@ -846,7 +846,7 @@ func TestMultiSinkCache(t *testing.T) {
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}
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eventBroadcaster := NewBroadcaster()
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clock := &util.FakeClock{time.Now()}
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clock := util.NewFakeClock(time.Now())
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recorder := recorderWithFakeClock(api.EventSource{Component: "eventTest"}, eventBroadcaster, clock)
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sinkWatcher := eventBroadcaster.StartRecordingToSink(&testEvents)
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@ -43,7 +43,7 @@ import (
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// NewFakeControllerExpectationsLookup creates a fake store for PodExpectations.
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func NewFakeControllerExpectationsLookup(ttl time.Duration) (*ControllerExpectations, *util.FakeClock) {
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fakeTime := time.Date(2009, time.November, 10, 23, 0, 0, 0, time.UTC)
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fakeClock := &util.FakeClock{Time: fakeTime}
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fakeClock := util.NewFakeClock(fakeTime)
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ttlPolicy := &cache.TTLPolicy{Ttl: ttl, Clock: fakeClock}
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ttlStore := cache.NewFakeExpirationStore(
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ExpKeyFunc, nil, ttlPolicy, fakeClock)
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@ -177,7 +177,7 @@ func TestControllerExpectations(t *testing.T) {
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}
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// Expectations have expired because of ttl
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fakeClock.Time = fakeClock.Time.Add(ttl + 1)
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fakeClock.Step(ttl + 1)
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if !e.SatisfiedExpectations(rcKey) {
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t.Errorf("Expectations should have expired but didn't")
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}
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@ -98,7 +98,7 @@ func TestPuller(t *testing.T) {
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}
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backOff := util.NewBackOff(time.Second, time.Minute)
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fakeClock := &util.FakeClock{Time: time.Now()}
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fakeClock := util.NewFakeClock(time.Now())
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backOff.Clock = fakeClock
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fakeRuntime := &FakeRuntime{}
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@ -98,7 +98,7 @@ func TestSerializedPuller(t *testing.T) {
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}
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backOff := util.NewBackOff(time.Second, time.Minute)
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fakeClock := &util.FakeClock{Time: time.Now()}
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fakeClock := util.NewFakeClock(time.Now())
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backOff.Clock = fakeClock
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fakeRuntime := &FakeRuntime{}
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@ -1160,7 +1160,7 @@ func TestGetAPIPodStatusWithLastTermination(t *testing.T) {
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}
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func TestSyncPodBackoff(t *testing.T) {
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var fakeClock = &util.FakeClock{Time: time.Now()}
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var fakeClock = util.NewFakeClock(time.Now())
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startTime := fakeClock.Now()
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dm, fakeDocker := newTestDockerManager()
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@ -1232,7 +1232,7 @@ func TestSyncPodBackoff(t *testing.T) {
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backOff.Clock = fakeClock
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for _, c := range tests {
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fakeDocker.SetFakeContainers(dockerContainers)
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fakeClock.Time = startTime.Add(time.Duration(c.tick) * time.Second)
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fakeClock.SetTime(startTime.Add(time.Duration(c.tick) * time.Second))
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runSyncPod(t, dm, fakeDocker, pod, backOff, c.expectErr)
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verifyCalls(t, fakeDocker, c.result)
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@ -431,8 +431,8 @@ func TestGarbageCollectImageNotOldEnough(t *testing.T) {
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},
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}
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fakeClock := util.FakeClock{Time: time.Now()}
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fmt.Println(fakeClock.Now())
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fakeClock := util.NewFakeClock(time.Now())
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t.Log(fakeClock.Now())
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require.NoError(t, manager.detectImages(fakeClock.Now()))
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require.Equal(t, manager.imageRecordsLen(), 2)
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// no space freed since one image is in used, and another one is not old enough
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@ -171,7 +171,7 @@ func newTestKubelet(t *testing.T) *TestKubelet {
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LowThresholdPercent: 80,
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}
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kubelet.imageManager, err = newImageManager(fakeRuntime, mockCadvisor, fakeRecorder, fakeNodeRef, fakeImageGCPolicy)
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fakeClock := &util.FakeClock{Time: time.Now()}
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fakeClock := util.NewFakeClock(time.Now())
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kubelet.backOff = util.NewBackOff(time.Second, time.Minute)
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kubelet.backOff.Clock = fakeClock
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kubelet.podKillingCh = make(chan *kubecontainer.Pod, 20)
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@ -26,7 +26,7 @@ import (
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)
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func newTestBasicWorkQueue() (*basicWorkQueue, *util.FakeClock) {
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fakeClock := &util.FakeClock{Time: time.Now()}
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fakeClock := util.NewFakeClock(time.Now())
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wq := &basicWorkQueue{
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clock: fakeClock,
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queue: make(map[types.UID]time.Time),
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@ -37,32 +37,32 @@ func TestSecondsSinceSync(t *testing.T) {
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tunneler.lastSync = time.Date(2015, time.January, 1, 1, 1, 1, 1, time.UTC).Unix()
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// Nano Second. No difference.
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tunneler.clock = &util.FakeClock{Time: time.Date(2015, time.January, 1, 1, 1, 1, 2, time.UTC)}
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tunneler.clock = util.NewFakeClock(time.Date(2015, time.January, 1, 1, 1, 1, 2, time.UTC))
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assert.Equal(int64(0), tunneler.SecondsSinceSync())
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// Second
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tunneler.clock = &util.FakeClock{Time: time.Date(2015, time.January, 1, 1, 1, 2, 1, time.UTC)}
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tunneler.clock = util.NewFakeClock(time.Date(2015, time.January, 1, 1, 1, 2, 1, time.UTC))
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assert.Equal(int64(1), tunneler.SecondsSinceSync())
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// Minute
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tunneler.clock = &util.FakeClock{Time: time.Date(2015, time.January, 1, 1, 2, 1, 1, time.UTC)}
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tunneler.clock = util.NewFakeClock(time.Date(2015, time.January, 1, 1, 2, 1, 1, time.UTC))
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assert.Equal(int64(60), tunneler.SecondsSinceSync())
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// Hour
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tunneler.clock = &util.FakeClock{Time: time.Date(2015, time.January, 1, 2, 1, 1, 1, time.UTC)}
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tunneler.clock = util.NewFakeClock(time.Date(2015, time.January, 1, 2, 1, 1, 1, time.UTC))
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assert.Equal(int64(3600), tunneler.SecondsSinceSync())
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// Day
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tunneler.clock = &util.FakeClock{Time: time.Date(2015, time.January, 2, 1, 1, 1, 1, time.UTC)}
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tunneler.clock = util.NewFakeClock(time.Date(2015, time.January, 2, 1, 1, 1, 1, time.UTC))
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assert.Equal(int64(86400), tunneler.SecondsSinceSync())
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// Month
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tunneler.clock = &util.FakeClock{Time: time.Date(2015, time.February, 1, 1, 1, 1, 1, time.UTC)}
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tunneler.clock = util.NewFakeClock(time.Date(2015, time.February, 1, 1, 1, 1, 1, time.UTC))
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assert.Equal(int64(2678400), tunneler.SecondsSinceSync())
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// Future Month. Should be -Month.
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tunneler.lastSync = time.Date(2015, time.February, 1, 1, 1, 1, 1, time.UTC).Unix()
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tunneler.clock = &util.FakeClock{Time: time.Date(2015, time.January, 1, 1, 1, 1, 1, time.UTC)}
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tunneler.clock = util.NewFakeClock(time.Date(2015, time.January, 1, 1, 1, 1, 1, time.UTC))
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assert.Equal(int64(-2678400), tunneler.SecondsSinceSync())
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}
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@ -89,12 +89,12 @@ func TestIsTunnelSyncHealthy(t *testing.T) {
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// Pass case: 540 second lag
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tunneler.lastSync = time.Date(2015, time.January, 1, 1, 1, 1, 1, time.UTC).Unix()
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tunneler.clock = &util.FakeClock{Time: time.Date(2015, time.January, 1, 1, 9, 1, 1, time.UTC)}
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tunneler.clock = util.NewFakeClock(time.Date(2015, time.January, 1, 1, 9, 1, 1, time.UTC))
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err := master.IsTunnelSyncHealthy(nil)
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assert.NoError(err, "IsTunnelSyncHealthy() should not have returned an error.")
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// Fail case: 720 second lag
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tunneler.clock = &util.FakeClock{Time: time.Date(2015, time.January, 1, 1, 12, 1, 1, time.UTC)}
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tunneler.clock = util.NewFakeClock(time.Date(2015, time.January, 1, 1, 12, 1, 1, time.UTC))
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err = master.IsTunnelSyncHealthy(nil)
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assert.Error(err, "IsTunnelSyncHealthy() should have returned an error.")
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}
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@ -32,7 +32,7 @@ func NewFakeBackOff(initial, max time.Duration, tc *FakeClock) *Backoff {
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func TestSlowBackoff(t *testing.T) {
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id := "_idSlow"
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tc := &FakeClock{Time: time.Now()}
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tc := NewFakeClock(time.Now())
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step := time.Second
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maxDuration := 50 * step
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@ -58,7 +58,7 @@ func TestSlowBackoff(t *testing.T) {
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func TestBackoffReset(t *testing.T) {
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id := "_idReset"
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tc := &FakeClock{Time: time.Now()}
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tc := NewFakeClock(time.Now())
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step := time.Second
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maxDuration := step * 5
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b := NewFakeBackOff(step, maxDuration, tc)
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@ -84,7 +84,7 @@ func TestBackoffReset(t *testing.T) {
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func TestBackoffHightWaterMark(t *testing.T) {
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id := "_idHiWaterMark"
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tc := &FakeClock{Time: time.Now()}
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tc := NewFakeClock(time.Now())
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step := time.Second
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maxDuration := 5 * step
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b := NewFakeBackOff(step, maxDuration, tc)
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@ -106,7 +106,7 @@ func TestBackoffHightWaterMark(t *testing.T) {
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func TestBackoffGC(t *testing.T) {
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id := "_idGC"
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tc := &FakeClock{Time: time.Now()}
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tc := NewFakeClock(time.Now())
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step := time.Second
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maxDuration := 5 * step
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@ -134,7 +134,7 @@ func TestBackoffGC(t *testing.T) {
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func TestIsInBackOffSinceUpdate(t *testing.T) {
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id := "_idIsInBackOffSinceUpdate"
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tc := &FakeClock{Time: time.Now()}
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tc := NewFakeClock(time.Now())
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step := time.Second
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maxDuration := 10 * step
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b := NewFakeBackOff(step, maxDuration, tc)
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@ -186,7 +186,7 @@ func TestIsInBackOffSinceUpdate(t *testing.T) {
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}
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for _, c := range cases {
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tc.Time = startTime.Add(c.tick * step)
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tc.SetTime(startTime.Add(c.tick * step))
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if c.inBackOff != b.IsInBackOffSinceUpdate(id, tc.Now()) {
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t.Errorf("expected IsInBackOffSinceUpdate %v got %v at tick %s", c.inBackOff, b.IsInBackOffSinceUpdate(id, tc.Now()), c.tick*step)
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}
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@ -17,6 +17,7 @@ limitations under the License.
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package util
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import (
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"sync"
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"time"
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)
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@ -25,39 +26,115 @@ import (
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type Clock interface {
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Now() time.Time
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Since(time.Time) time.Duration
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After(d time.Duration) <-chan time.Time
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}
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var (
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_ = Clock(RealClock{})
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_ = Clock(&FakeClock{})
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_ = Clock(&IntervalClock{})
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)
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// RealClock really calls time.Now()
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type RealClock struct{}
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// Now returns the current time.
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func (r RealClock) Now() time.Time {
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func (RealClock) Now() time.Time {
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return time.Now()
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}
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// Since returns time since the specified timestamp.
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func (r RealClock) Since(ts time.Time) time.Duration {
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func (RealClock) Since(ts time.Time) time.Duration {
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return time.Since(ts)
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}
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// Same as time.After(d).
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func (RealClock) After(d time.Duration) <-chan time.Time {
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return time.After(d)
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}
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// FakeClock implements Clock, but returns an arbitrary time.
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type FakeClock struct {
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Time time.Time
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lock sync.RWMutex
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time time.Time
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// waiters are waiting for the fake time to pass their specified time
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waiters []fakeClockWaiter
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}
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type fakeClockWaiter struct {
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targetTime time.Time
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destChan chan<- time.Time
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}
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func NewFakeClock(t time.Time) *FakeClock {
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return &FakeClock{
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time: t,
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}
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}
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// Now returns f's time.
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func (f *FakeClock) Now() time.Time {
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return f.Time
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f.lock.RLock()
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defer f.lock.RUnlock()
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return f.time
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}
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// Since returns time since the time in f.
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func (f *FakeClock) Since(ts time.Time) time.Duration {
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return f.Time.Sub(ts)
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f.lock.RLock()
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defer f.lock.RUnlock()
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return f.time.Sub(ts)
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}
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// Move clock by Duration
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// Fake version of time.After(d).
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func (f *FakeClock) After(d time.Duration) <-chan time.Time {
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f.lock.Lock()
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defer f.lock.Unlock()
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stopTime := f.time.Add(d)
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ch := make(chan time.Time, 1) // Don't block!
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f.waiters = append(f.waiters, fakeClockWaiter{
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targetTime: stopTime,
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destChan: ch,
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})
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return ch
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}
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// Move clock by Duration, notify anyone that's called After
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func (f *FakeClock) Step(d time.Duration) {
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f.Time = f.Time.Add(d)
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f.lock.Lock()
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defer f.lock.Unlock()
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f.setTimeLocked(f.time.Add(d))
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}
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// Sets the time.
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func (f *FakeClock) SetTime(t time.Time) {
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f.lock.Lock()
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defer f.lock.Unlock()
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f.setTimeLocked(t)
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}
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// Actually changes the time and checks any waiters. f must be write-locked.
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func (f *FakeClock) setTimeLocked(t time.Time) {
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f.time = t
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newWaiters := make([]fakeClockWaiter, 0, len(f.waiters))
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for i := range f.waiters {
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w := &f.waiters[i]
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if !w.targetTime.After(t) {
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w.destChan <- t
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} else {
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newWaiters = append(newWaiters, f.waiters[i])
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}
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}
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f.waiters = newWaiters
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}
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// Returns true if After has been called on f but not yet satisfied (so you can
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// write race-free tests).
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func (f *FakeClock) HasWaiters() bool {
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f.lock.RLock()
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defer f.lock.RUnlock()
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return len(f.waiters) > 0
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}
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// IntervalClock implements Clock, but each invocation of Now steps the clock forward the specified duration
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@ -76,3 +153,9 @@ func (i *IntervalClock) Now() time.Time {
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func (i *IntervalClock) Since(ts time.Time) time.Duration {
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return i.Time.Sub(ts)
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}
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// Unimplemented, will panic.
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// TODO: make interval clock use FakeClock so this can be implemented.
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func (*IntervalClock) After(d time.Duration) <-chan time.Time {
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panic("IntervalClock doesn't implement After")
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}
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@ -23,7 +23,7 @@ import (
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func TestFakeClock(t *testing.T) {
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startTime := time.Now()
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tc := &FakeClock{Time: startTime}
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tc := NewFakeClock(startTime)
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tc.Step(time.Second)
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now := tc.Now()
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if now.Sub(startTime) != time.Second {
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@ -31,8 +31,66 @@ func TestFakeClock(t *testing.T) {
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}
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tt := tc.Now()
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tc.Time = tt.Add(time.Hour)
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tc.SetTime(tt.Add(time.Hour))
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if tc.Now().Sub(tt) != time.Hour {
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t.Errorf("input: %s now=%s gap=%s expected=%s", tt, tc.Now(), tc.Now().Sub(tt), time.Hour)
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}
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}
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func TestFakeAfter(t *testing.T) {
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tc := NewFakeClock(time.Now())
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if tc.HasWaiters() {
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t.Errorf("unexpected waiter?")
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}
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oneSec := tc.After(time.Second)
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if !tc.HasWaiters() {
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t.Errorf("unexpected lack of waiter?")
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}
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oneOhOneSec := tc.After(time.Second + time.Millisecond)
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twoSec := tc.After(2 * time.Second)
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select {
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case <-oneSec:
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t.Errorf("unexpected channel read")
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case <-oneOhOneSec:
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t.Errorf("unexpected channel read")
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case <-twoSec:
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t.Errorf("unexpected channel read")
|
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default:
|
||||
}
|
||||
|
||||
tc.Step(999 * time.Millisecond)
|
||||
select {
|
||||
case <-oneSec:
|
||||
t.Errorf("unexpected channel read")
|
||||
case <-oneOhOneSec:
|
||||
t.Errorf("unexpected channel read")
|
||||
case <-twoSec:
|
||||
t.Errorf("unexpected channel read")
|
||||
default:
|
||||
}
|
||||
|
||||
tc.Step(time.Millisecond)
|
||||
select {
|
||||
case <-oneSec:
|
||||
// Expected!
|
||||
case <-oneOhOneSec:
|
||||
t.Errorf("unexpected channel read")
|
||||
case <-twoSec:
|
||||
t.Errorf("unexpected channel read")
|
||||
default:
|
||||
t.Errorf("unexpected non-channel read")
|
||||
}
|
||||
tc.Step(time.Millisecond)
|
||||
select {
|
||||
case <-oneSec:
|
||||
// should not double-trigger!
|
||||
t.Errorf("unexpected channel read")
|
||||
case <-oneOhOneSec:
|
||||
// Expected!
|
||||
case <-twoSec:
|
||||
t.Errorf("unexpected channel read")
|
||||
default:
|
||||
t.Errorf("unexpected non-channel read")
|
||||
}
|
||||
}
|
||||
|
|
|
@ -176,7 +176,7 @@ func TestSchedulerForgetAssumedPodAfterDelete(t *testing.T) {
|
|||
// all entries inserted with fakeTime will expire.
|
||||
ttl := 30 * time.Second
|
||||
fakeTime := time.Date(2009, time.November, 10, 23, 0, 0, 0, time.UTC)
|
||||
fakeClock := &util.FakeClock{Time: fakeTime}
|
||||
fakeClock := util.NewFakeClock(fakeTime)
|
||||
ttlPolicy := &cache.TTLPolicy{Ttl: ttl, Clock: fakeClock}
|
||||
assumedPodsStore := cache.NewFakeExpirationStore(
|
||||
cache.MetaNamespaceKeyFunc, nil, ttlPolicy, fakeClock)
|
||||
|
@ -274,7 +274,7 @@ func TestSchedulerForgetAssumedPodAfterDelete(t *testing.T) {
|
|||
// Second scheduling pass will fail to schedule if the store hasn't expired
|
||||
// the deleted pod. This would normally happen with a timeout.
|
||||
//expirationPolicy.NeverExpire = util.NewStringSet()
|
||||
fakeClock.Time = fakeClock.Time.Add(ttl + 1)
|
||||
fakeClock.Step(ttl + 1)
|
||||
|
||||
called = make(chan struct{})
|
||||
events = eventBroadcaster.StartEventWatcher(func(e *api.Event) {
|
||||
|
|
Loading…
Reference in New Issue