/* Copyright 2016 The Fission Authors. Licensed under the Apache License, Version 2.0 (the "License"); you may not use this file except in compliance with the License. You may obtain a copy of the License at http://www.apache.org/licenses/LICENSE-2.0 Unless required by applicable law or agreed to in writing, software distributed under the License is distributed on an "AS IS" BASIS, WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. See the License for the specific language governing permissions and limitations under the License. */ package poolmgr import ( "bytes" "encoding/json" "errors" "fmt" "log" "math/rand" "net" "net/http" "net/url" "os" "path/filepath" "strconv" "strings" "time" "github.com/dchest/uniuri" metav1 "k8s.io/apimachinery/pkg/apis/meta/v1" "k8s.io/apimachinery/pkg/labels" "k8s.io/apimachinery/pkg/util/intstr" "k8s.io/client-go/kubernetes" "k8s.io/client-go/pkg/api" apiv1 "k8s.io/client-go/pkg/api/v1" "k8s.io/client-go/pkg/apis/extensions/v1beta1" "github.com/fission/fission" "github.com/fission/fission/crd" "github.com/fission/fission/environments/fetcher" fetcherClient "github.com/fission/fission/environments/fetcher/client" "github.com/fission/fission/executor/fscache" "github.com/fission/fission/executor/util" ) const POD_PHASE_RUNNING string = "Running" type ( GenericPool struct { env *crd.Environment replicas int32 // num idle pods deployment *v1beta1.Deployment // kubernetes deployment namespace string // namespace to keep our resources podReadyTimeout time.Duration // timeout for generic pods to become ready idlePodReapTime time.Duration // pods unused for idlePodReapTime are deleted fsCache *fscache.FunctionServiceCache // cache funcSvc's by function, address and podname useSvc bool // create k8s service for specialized pods useIstio bool poolInstanceId string // small random string to uniquify pod names fetcherImage string fetcherImagePullPolicy apiv1.PullPolicy runtimeImagePullPolicy apiv1.PullPolicy // pull policy for generic pool to created env deployment kubernetesClient *kubernetes.Clientset fissionClient *crd.FissionClient instanceId string // poolmgr instance id labelsForPool map[string]string requestChannel chan *choosePodRequest sharedMountPath string // used by generic pool when creating env deployment to specify the share volume path for fetcher & env sharedSecretPath string sharedCfgMapPath string } // serialize the choosing of pods so that choices don't conflict choosePodRequest struct { newLabels map[string]string responseChannel chan *choosePodResponse } choosePodResponse struct { pod *apiv1.Pod error } ) func getImagePullPolicy(policy string) apiv1.PullPolicy { switch policy { case "Always": return apiv1.PullAlways case "Never": return apiv1.PullNever default: return apiv1.PullIfNotPresent } } func MakeGenericPool( fissionClient *crd.FissionClient, kubernetesClient *kubernetes.Clientset, env *crd.Environment, initialReplicas int32, namespace string, fsCache *fscache.FunctionServiceCache, instanceId string) (*GenericPool, error) { log.Printf("Creating pool for environment %v", env.Metadata) fetcherImage := os.Getenv("FETCHER_IMAGE") if len(fetcherImage) == 0 { fetcherImage = "fission/fetcher" } fetcherImagePullPolicy := os.Getenv("FETCHER_IMAGE_PULL_POLICY") if len(fetcherImagePullPolicy) == 0 { fetcherImagePullPolicy = "IfNotPresent" } runtimeImagePullPolicy := os.Getenv("RUNTIME_IMAGE_PULL_POLICY") if len(runtimeImagePullPolicy) == 0 { runtimeImagePullPolicy = "IfNotPresent" } enableIstio := false if len(os.Getenv("ENABLE_ISTIO")) > 0 { istio, err := strconv.ParseBool(os.Getenv("ENABLE_ISTIO")) if err != nil { log.Println("Failed to parse ENABLE_ISTIO") } enableIstio = istio } // TODO: in general we need to provide the user a way to configure pools. Initial // replicas, autoscaling params, various timeouts, etc. gp := &GenericPool{ env: env, replicas: initialReplicas, // TODO make this an env param instead? requestChannel: make(chan *choosePodRequest), fissionClient: fissionClient, kubernetesClient: kubernetesClient, namespace: namespace, podReadyTimeout: 5 * time.Minute, // TODO make this an env param? idlePodReapTime: 3 * time.Minute, // TODO make this configurable fsCache: fsCache, poolInstanceId: uniuri.NewLen(8), instanceId: instanceId, fetcherImage: fetcherImage, useSvc: false, // defaults off -- svc takes a second or more to become routable, slowing cold start useIstio: enableIstio, // defaults off -- istio integration requires pod relabeling and it takes a second or more to become routable, slowing cold start sharedMountPath: "/userfunc", // change this may break v1 compatibility, since most of the v1 environments have hard-coded "/userfunc" in loading path sharedSecretPath: "/secrets", sharedCfgMapPath: "/configs", } gp.runtimeImagePullPolicy = getImagePullPolicy(runtimeImagePullPolicy) gp.fetcherImagePullPolicy = getImagePullPolicy(fetcherImagePullPolicy) log.Printf("fetcher image: %v, pull policy: %v", gp.fetcherImage, gp.fetcherImagePullPolicy) // Labels for generic deployment/RS/pods. gp.labelsForPool = map[string]string{ "environmentName": gp.env.Metadata.Name, "environmentUid": string(gp.env.Metadata.UID), fission.EXECUTOR_INSTANCEID_LABEL: gp.instanceId, "executorType": fission.ExecutorTypePoolmgr, } // create the pool err := gp.createPool() if err != nil { return nil, err } log.Printf("[%v] Deployment created", env.Metadata) go gp.choosePodService() return gp, nil } // choosePodService serializes the choosing of pods func (gp *GenericPool) choosePodService() { for { select { case req := <-gp.requestChannel: pod, err := gp._choosePod(req.newLabels) if err != nil { req.responseChannel <- &choosePodResponse{error: err} continue } req.responseChannel <- &choosePodResponse{pod: pod} } } } // choosePod picks a ready pod from the pool and relabels it, waiting if necessary. // returns the pod API object. func (gp *GenericPool) choosePod(newLabels map[string]string) (*apiv1.Pod, error) { req := &choosePodRequest{ newLabels: newLabels, responseChannel: make(chan *choosePodResponse), } gp.requestChannel <- req resp := <-req.responseChannel return resp.pod, resp.error } // _choosePod is called serially by choosePodService func (gp *GenericPool) _choosePod(newLabels map[string]string) (*apiv1.Pod, error) { startTime := time.Now() for { // Retries took too long, error out. if time.Since(startTime) > gp.podReadyTimeout { log.Printf("[%v] Erroring out, timed out", newLabels) return nil, errors.New("timeout: waited too long to get a ready pod") } // Get pods; filter the ones that are ready podList, err := gp.kubernetesClient.CoreV1().Pods(gp.namespace).List( metav1.ListOptions{ LabelSelector: labels.Set( gp.deployment.Spec.Selector.MatchLabels).AsSelector().String(), }) if err != nil { return nil, err } readyPods := make([]*apiv1.Pod, 0, len(podList.Items)) for i := range podList.Items { pod := podList.Items[i] // If a pod has no IP it's not ready if len(pod.Status.PodIP) == 0 || string(pod.Status.Phase) != POD_PHASE_RUNNING { continue } // Wait for all containers in the pod to be ready podReady := true for _, cs := range pod.Status.ContainerStatuses { podReady = podReady && cs.Ready } // add it to the list of ready pods if podReady { readyPods = append(readyPods, &pod) } } log.Printf("[%v] found %v ready pods of %v total", newLabels, len(readyPods), len(podList.Items)) // If there are no ready pods, wait and retry. if len(readyPods) == 0 { err = gp.waitForReadyPod() if err != nil { return nil, err } continue } // Pick a ready pod. For now just choose randomly; // ideally we'd care about which node it's running on, // and make a good scheduling decision. chosenPod := readyPods[rand.Intn(len(readyPods))] if gp.env.Spec.AllowedFunctionsPerContainer != fission.AllowedFunctionsPerContainerInfinite { // Relabel. If the pod already got picked and // modified, this should fail; in that case just // retry. chosenPod.ObjectMeta.Labels = newLabels log.Printf("relabeling pod: [%v]", chosenPod.ObjectMeta.Name) _, err = gp.kubernetesClient.CoreV1().Pods(gp.namespace).Update(chosenPod) if err != nil { log.Printf("failed to relabel pod [%v]: %v", chosenPod.ObjectMeta.Name, err) continue } } log.Printf("Chosen pod: %v (in %v)", chosenPod.ObjectMeta.Name, time.Since(startTime)) return chosenPod, nil } } func (gp *GenericPool) labelsForFunction(metadata *metav1.ObjectMeta) map[string]string { return map[string]string{ "functionName": metadata.Name, "functionUid": string(metadata.UID), "unmanaged": "true", // this allows us to easily find pods not managed by the deployment fission.EXECUTOR_INSTANCEID_LABEL: gp.instanceId, } } func (gp *GenericPool) scheduleDeletePod(name string) { go func() { // The sleep allows debugging or collecting logs from the pod before it's // cleaned up. (We need a better solutions for both those things; log // aggregation and storage will help.) log.Printf("Error in pod '%v', scheduling cleanup", name) // Ignore sleep here if istio feature is enabled, function pod // will be deleted after 6 mins (terminationGracePeriodSeconds). if !gp.useIstio { time.Sleep(5 * time.Minute) } gp.kubernetesClient.CoreV1().Pods(gp.namespace).Delete(name, nil) }() } func IsIPv6(podIP string) bool { ip := net.ParseIP(podIP) return ip != nil && strings.Contains(podIP, ":") } func (gp *GenericPool) getFetcherUrl(podIP string) string { testUrl := os.Getenv("TEST_FETCHER_URL") if len(testUrl) != 0 { // it takes a second or so for the test service to // become routable once a pod is relabeled. This is // super hacky, but only runs in unit tests. time.Sleep(5 * time.Second) return testUrl } isv6 := IsIPv6(podIP) var baseUrl string if isv6 == false { baseUrl = fmt.Sprintf("http://%v:8000/", podIP) } else if isv6 == true { // We use bracket if the IP is in IPv6. baseUrl = fmt.Sprintf("http://[%v]:8000/", podIP) } return baseUrl } func (gp *GenericPool) getSpecializeUrl(podIP string, version int) string { u := os.Getenv("TEST_SPECIALIZE_URL") isv6 := IsIPv6(podIP) var baseUrl string if len(u) != 0 { return u } if isv6 == false { baseUrl = fmt.Sprintf("http://%v:8888", podIP) } else if isv6 == true { // We use bracket if the IP is in IPv6. baseUrl = fmt.Sprintf("http://[%v]:8888", podIP) } if version == 1 { return fmt.Sprintf("%v/specialize", baseUrl) } else { return fmt.Sprintf("%v/v%v/specialize", baseUrl, version) } } // specializePod chooses a pod, copies the required user-defined function to that pod // (via fetcher), and calls the function-run container to load it, resulting in a // specialized pod. func (gp *GenericPool) specializePod(pod *apiv1.Pod, metadata *metav1.ObjectMeta) error { // for fetcher we don't need to create a service, just talk to the pod directly podIP := pod.Status.PodIP if len(podIP) == 0 { return errors.New("Pod has no IP") } // specialize pod with service if gp.useIstio { svc := fission.GetFunctionIstioServiceName(metadata.Name, metadata.Namespace) podIP = fmt.Sprintf("%v.%v", svc, gp.namespace) } // tell fetcher to get the function. fetcherUrl := gp.getFetcherUrl(podIP) log.Printf("[%v] calling fetcher to copy function with fetcher url: %v", metadata.Name, fetcherUrl) fn, err := gp.fissionClient. Functions(metadata.Namespace). Get(metadata.Name) if err != nil { return err } // for backward compatibility, since most v1 env // still try to load user function from hard coded // path /userfunc/user targetFilename := "user" if gp.env.Spec.Version == 2 { targetFilename = string(fn.Metadata.UID) } err = fetcherClient.MakeClient(fetcherUrl).Fetch(&fetcher.FetchRequest{ FetchType: fetcher.FETCH_DEPLOYMENT, Package: metav1.ObjectMeta{ Namespace: fn.Spec.Package.PackageRef.Namespace, Name: fn.Spec.Package.PackageRef.Name, }, Filename: targetFilename, Secrets: fn.Spec.Secrets, ConfigMaps: fn.Spec.ConfigMaps, }) if err != nil { return err } // get function run container to specialize log.Printf("[%v] specializing pod", metadata.Name) // retry the specialize call a few times in case the env server hasn't come up yet maxRetries := 20 loadReq := fission.FunctionLoadRequest{ FilePath: filepath.Join(gp.sharedMountPath, targetFilename), FunctionName: fn.Spec.Package.FunctionName, FunctionMetadata: &fn.Metadata, } body, err := json.Marshal(loadReq) if err != nil { return err } for i := 0; i < maxRetries; i++ { var resp2 *http.Response if gp.env.Spec.Version == 2 { specializeUrl := gp.getSpecializeUrl(podIP, 2) log.Printf("specialize url: %v", specializeUrl) resp2, err = http.Post(specializeUrl, "application/json", bytes.NewReader(body)) } else { specializeUrl := gp.getSpecializeUrl(podIP, 1) resp2, err = http.Post(specializeUrl, "text/plain", bytes.NewReader([]byte{})) } if err == nil && resp2.StatusCode < 300 { // Success resp2.Body.Close() return nil } retry := false // Only retry for the specific case of a connection error. if urlErr, ok := err.(*url.Error); ok { if netErr, ok := urlErr.Err.(*net.OpError); ok { if netErr.Op == "dial" { if i < maxRetries-1 { retry = true } } } } // Receive response with non-200 http code if err == nil { err = fission.MakeErrorFromHTTP(resp2) // The istio-proxy block all http requests until it's ready // to serve traffic. Retry if istio feature is enabled. if gp.useIstio { retry = true } } if retry { time.Sleep(500 * time.Duration(2*i) * time.Millisecond) log.Printf("Error connecting to pod (%v), retrying", err) continue } log.Printf("Failed to specialize pod: %v", err) return err } return nil } // A pool is a deployment of generic containers for an env. This // creates the pool but doesn't wait for any pods to be ready. func (gp *GenericPool) createPool() error { poolDeploymentName := fmt.Sprintf("%v-%v-%v", gp.env.Metadata.Name, gp.env.Metadata.UID, strings.ToLower(gp.poolInstanceId)) fetcherResources, err := util.GetFetcherResources() if err != nil { return err } // Use long terminationGracePeriodSeconds for connection draining in case that // pod still runs user functions. var gracePeriodSeconds int64 = 6 * 60 podAnnotation := make(map[string]string) if gp.useIstio && gp.env.Spec.AllowAccessToExternalNetwork { podAnnotation["sidecar.istio.io/inject"] = "false" } deployment := &v1beta1.Deployment{ ObjectMeta: metav1.ObjectMeta{ Name: poolDeploymentName, Labels: gp.labelsForPool, }, Spec: v1beta1.DeploymentSpec{ Replicas: &gp.replicas, Selector: &metav1.LabelSelector{ MatchLabels: gp.labelsForPool, }, Template: apiv1.PodTemplateSpec{ ObjectMeta: metav1.ObjectMeta{ Labels: gp.labelsForPool, Annotations: podAnnotation, }, Spec: apiv1.PodSpec{ Volumes: []apiv1.Volume{ { Name: "userfunc", VolumeSource: apiv1.VolumeSource{ EmptyDir: &apiv1.EmptyDirVolumeSource{}, }, }, { Name: "secrets", VolumeSource: apiv1.VolumeSource{ EmptyDir: &apiv1.EmptyDirVolumeSource{}, }, }, { Name: "config", VolumeSource: apiv1.VolumeSource{ EmptyDir: &apiv1.EmptyDirVolumeSource{}, }, }, }, Containers: []apiv1.Container{ { Name: gp.env.Metadata.Name, Image: gp.env.Spec.Runtime.Image, ImagePullPolicy: gp.runtimeImagePullPolicy, TerminationMessagePath: "/dev/termination-log", VolumeMounts: []apiv1.VolumeMount{ { Name: "userfunc", MountPath: gp.sharedMountPath, }, { Name: "secrets", MountPath: gp.sharedSecretPath, }, { Name: "config", MountPath: gp.sharedCfgMapPath, }, }, Resources: gp.env.Spec.Resources, // Pod is removed from endpoints list for service when it's // state became "Termination". We used preStop hook as the // workaround for connection draining since pod maybe shutdown // before grace period expires. // https://kubernetes.io/docs/concepts/workloads/pods/pod/#termination-of-pods // https://github.com/kubernetes/kubernetes/issues/47576#issuecomment-308900172 Lifecycle: &apiv1.Lifecycle{ PreStop: &apiv1.Handler{ Exec: &apiv1.ExecAction{ Command: []string{ "sleep", fmt.Sprintf("%v", gracePeriodSeconds), }, }, }, }, }, { Name: "fetcher", Image: gp.fetcherImage, ImagePullPolicy: gp.fetcherImagePullPolicy, TerminationMessagePath: "/dev/termination-log", VolumeMounts: []apiv1.VolumeMount{ { Name: "userfunc", MountPath: gp.sharedMountPath, }, { Name: "secrets", MountPath: gp.sharedSecretPath, }, { Name: "config", MountPath: gp.sharedCfgMapPath, }, }, Resources: fetcherResources, Command: []string{"/fetcher", "-secret-dir", gp.sharedSecretPath, "-cfgmap-dir", gp.sharedCfgMapPath, gp.sharedMountPath}, // Pod is removed from endpoints list for service when it's // state became "Termination". We used preStop hook as the // workaround for connection draining since pod maybe shutdown // before grace period expires. // https://kubernetes.io/docs/concepts/workloads/pods/pod/#termination-of-pods // https://github.com/kubernetes/kubernetes/issues/47576#issuecomment-308900172 Lifecycle: &apiv1.Lifecycle{ PreStop: &apiv1.Handler{ Exec: &apiv1.ExecAction{ Command: []string{ "sleep", fmt.Sprintf("%v", gracePeriodSeconds), }, }, }, }, ReadinessProbe: &apiv1.Probe{ InitialDelaySeconds: 1, PeriodSeconds: 1, FailureThreshold: 30, Handler: apiv1.Handler{ HTTPGet: &apiv1.HTTPGetAction{ Path: "/healthz", Port: intstr.IntOrString{ Type: intstr.Int, IntVal: 8000, }, }, }, }, LivenessProbe: &apiv1.Probe{ InitialDelaySeconds: 35, PeriodSeconds: 5, Handler: apiv1.Handler{ HTTPGet: &apiv1.HTTPGetAction{ Path: "/healthz", Port: intstr.IntOrString{ Type: intstr.Int, IntVal: 8000, }, }, }, }, }, }, ServiceAccountName: "fission-fetcher", // TerminationGracePeriodSeconds should be equal to the // sleep time of preStop to make sure that SIGTERM is sent // to pod after 6 mins. TerminationGracePeriodSeconds: &gracePeriodSeconds, }, }, }, } depl, err := gp.kubernetesClient.ExtensionsV1beta1().Deployments(gp.namespace).Create(deployment) if err != nil { log.Printf("Error creating deployment for %s in kubernetes, err: %v", deployment.Name, err) return err } gp.deployment = depl return nil } func (gp *GenericPool) waitForReadyPod() error { startTime := time.Now() for { // TODO: for now we just poll; use a watch instead depl, err := gp.kubernetesClient.ExtensionsV1beta1().Deployments(gp.namespace).Get( gp.deployment.ObjectMeta.Name, metav1.GetOptions{}) if err != nil { log.Printf("err: %v", err) return err } gp.deployment = depl if gp.deployment.Status.AvailableReplicas > 0 { return nil } if time.Since(startTime) > gp.podReadyTimeout { return errors.New("timeout: waited too long for pod to be ready") } time.Sleep(1000 * time.Millisecond) } } func (gp *GenericPool) createSvc(name string, labels map[string]string) (*apiv1.Service, error) { service := apiv1.Service{ ObjectMeta: metav1.ObjectMeta{ Name: name, }, Spec: apiv1.ServiceSpec{ Type: apiv1.ServiceTypeClusterIP, Ports: []apiv1.ServicePort{ { Protocol: apiv1.ProtocolTCP, Port: 80, TargetPort: intstr.FromInt(8888), }, }, Selector: labels, }, } svc, err := gp.kubernetesClient.CoreV1().Services(gp.namespace).Create(&service) return svc, err } func (gp *GenericPool) GetFuncSvc(m *metav1.ObjectMeta) (*fscache.FuncSvc, error) { log.Printf("[%v] Choosing pod from pool", m.Name) newLabels := gp.labelsForFunction(m) if gp.useIstio { // Istio only allows accessing pod through k8s service, and requests come to // service are not always being routed to the same pod. For example: // If there is only one pod (podA) behind the service svcX. // svcX -> podA // All requests (specialize request & function access requests) // will be routed to podA without any problem. // If podA and podB are behind svcX. // svcX -> podA (specialized) // -> podB (non-specialized) // The specialize request may be routed to podA and the function access // requests may go to podB. In this case, the function cannot be served // properly. // To prevent such problem, we need to delete old versions function pods // and make sure that there is only one pod behind the service sel := map[string]string{ "functionName": m.Name, "functionUid": string(m.UID), } podList, err := gp.kubernetesClient.CoreV1().Pods(gp.namespace).List(metav1.ListOptions{ LabelSelector: labels.Set(sel).AsSelector().String(), }) if err != nil { return nil, err } // Remove old versions function pods for _, pod := range podList.Items { // Delete pod no matter what status it is gp.kubernetesClient.CoreV1().Pods(gp.namespace).Delete(pod.ObjectMeta.Name, nil) } } pod, err := gp.choosePod(newLabels) if err != nil { return nil, err } err = gp.specializePod(pod, m) if err != nil { gp.scheduleDeletePod(pod.ObjectMeta.Name) return nil, err } log.Printf("Specialized pod: %v", pod.ObjectMeta.Name) var svcHost string if gp.useSvc { svcName := fmt.Sprintf("svc-%v", m.Name) if len(m.UID) > 0 { svcName = fmt.Sprintf("%s-%v", svcName, m.UID) } labels := gp.labelsForFunction(m) svc, err := gp.createSvc(svcName, labels) if err != nil { gp.scheduleDeletePod(pod.ObjectMeta.Name) return nil, err } if svc.ObjectMeta.Name != svcName { gp.scheduleDeletePod(pod.ObjectMeta.Name) return nil, errors.New(fmt.Sprintf("sanity check failed for svc %v", svc.ObjectMeta.Name)) } // the fission router isn't in the same namespace, so return a // namespace-qualified hostname svcHost = fmt.Sprintf("%v.%v", svcName, gp.namespace) } else if gp.useIstio { svc := fission.GetFunctionIstioServiceName(m.Name, m.Namespace) svcHost = fmt.Sprintf("%v.%v:8888", svc, gp.namespace) } else { log.Printf("Using pod IP for specialized pod") svcHost = fmt.Sprintf("%v:8888", pod.Status.PodIP) } kubeObjRefs := []api.ObjectReference{ { Kind: "pod", Name: pod.ObjectMeta.Name, APIVersion: pod.TypeMeta.APIVersion, Namespace: pod.ObjectMeta.Namespace, ResourceVersion: pod.ObjectMeta.ResourceVersion, UID: pod.ObjectMeta.UID, }, } fsvc := &fscache.FuncSvc{ Name: pod.ObjectMeta.Name, Function: m, Environment: gp.env, Address: svcHost, KubernetesObjects: kubeObjRefs, Executor: fscache.POOLMGR, Ctime: time.Now(), Atime: time.Now(), } _, err = gp.fsCache.Add(*fsvc) if err != nil { return nil, err } return fsvc, nil } // destroys the pool -- the deployment, replicaset and pods func (gp *GenericPool) destroy() error { // Destroy deployment err := gp.kubernetesClient.ExtensionsV1beta1().Deployments(gp.namespace).Delete(gp.deployment.ObjectMeta.Name, nil) if err != nil { log.Printf("Error destroying deployment: %v", err) return err } // Destroy ReplicaSet. Pre-1.6 K8s versions don't do this // automatically but post-1.6 K8s will, and may beat us to it, // so don't error out if we fail. rsList, err := gp.kubernetesClient.ExtensionsV1beta1().ReplicaSets(gp.namespace).List(metav1.ListOptions{ LabelSelector: labels.Set(gp.labelsForPool).AsSelector().String(), }) if len(rsList.Items) >= 0 { for _, rs := range rsList.Items { err = gp.kubernetesClient.ExtensionsV1beta1().ReplicaSets(gp.namespace).Delete(rs.ObjectMeta.Name, nil) if err != nil { log.Printf("Error deleting replicaset, ignoring: %v", err) } } } // Destroy Pods. See note above. podList, err := gp.kubernetesClient.CoreV1().Pods(gp.namespace).List(metav1.ListOptions{ LabelSelector: labels.Set(gp.labelsForPool).AsSelector().String(), }) if len(podList.Items) >= 0 { for _, pod := range podList.Items { err = gp.kubernetesClient.CoreV1().Pods(gp.namespace).Delete(pod.ObjectMeta.Name, nil) if err != nil { log.Printf("Error deleting pod, ignoring: %v", err) } } } return nil }