mirror of
https://github.com/TECHNOFAB11/zfs-localpv.git
synced 2025-12-12 06:20:11 +01:00
Fixes several go lint cases reported by go report. Signed-off-by: wiwen <shenggxhz@gmail.com>
257 lines
7.7 KiB
Go
257 lines
7.7 KiB
Go
/*
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Copyright 2019 The OpenEBS Authors
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Licensed under the Apache License, Version 2.0 (the "License");
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you may not use this file except in compliance with the License.
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You may obtain a copy of the License at
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http://www.apache.org/licenses/LICENSE-2.0
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Unless required by applicable law or agreed to in writing, software
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distributed under the License is distributed on an "AS IS" BASIS,
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WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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See the License for the specific language governing permissions and
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limitations under the License.
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*/
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package volume
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import (
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"fmt"
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"time"
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"github.com/Sirupsen/logrus"
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apis "github.com/openebs/zfs-localpv/pkg/apis/openebs.io/zfs/v1"
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zfs "github.com/openebs/zfs-localpv/pkg/zfs"
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k8serror "k8s.io/apimachinery/pkg/api/errors"
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"k8s.io/apimachinery/pkg/util/runtime"
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"k8s.io/apimachinery/pkg/util/wait"
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"k8s.io/client-go/tools/cache"
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)
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// isDeletionCandidate checks if a zfs volume is a deletion candidate.
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func (c *ZVController) isDeletionCandidate(zv *apis.ZFSVolume) bool {
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return zv.ObjectMeta.DeletionTimestamp != nil
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}
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// syncHandler compares the actual state with the desired, and attempts to
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// converge the two.
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func (c *ZVController) syncHandler(key string) error {
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// Convert the namespace/name string into a distinct namespace and name
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namespace, name, err := cache.SplitMetaNamespaceKey(key)
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if err != nil {
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runtime.HandleError(fmt.Errorf("invalid resource key: %s", key))
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return nil
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}
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// Get the zv resource with this namespace/name
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zv, err := c.zvLister.ZFSVolumes(namespace).Get(name)
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if k8serror.IsNotFound(err) {
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runtime.HandleError(fmt.Errorf("zfsvolume '%s' has been deleted", key))
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return nil
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}
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if err != nil {
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return err
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}
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zvCopy := zv.DeepCopy()
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err = c.syncZV(zvCopy)
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return err
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}
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// enqueueZV takes a ZFSVolume resource and converts it into a namespace/name
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// string which is then put onto the work queue. This method should *not* be
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// passed resources of any type other than ZFSVolume.
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func (c *ZVController) enqueueZV(obj interface{}) {
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var key string
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var err error
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if key, err = cache.MetaNamespaceKeyFunc(obj); err != nil {
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runtime.HandleError(err)
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return
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}
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c.workqueue.Add(key)
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}
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// synZV is the function which tries to converge to a desired state for the
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// ZFSVolume
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func (c *ZVController) syncZV(zv *apis.ZFSVolume) error {
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var err error
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// ZFS Volume should be deleted. Check if deletion timestamp is set
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if c.isDeletionCandidate(zv) {
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err = zfs.DestroyVolume(zv)
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if err == nil {
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zfs.RemoveZvolFinalizer(zv)
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}
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} else {
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// if finalizer is not set then it means we are creating
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// the volume. And if it is set then volume has already been
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// created and this event is for property change only.
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if zv.Finalizers != nil {
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err = zfs.SetVolumeProp(zv)
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} else {
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if len(zv.Spec.SnapName) > 0 {
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err = zfs.CreateClone(zv)
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} else {
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err = zfs.CreateVolume(zv)
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}
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if err == nil {
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err = zfs.UpdateZvolInfo(zv)
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}
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}
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}
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return err
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}
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// addZV is the add event handler for ZFSVolume
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func (c *ZVController) addZV(obj interface{}) {
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zv, ok := obj.(*apis.ZFSVolume)
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if !ok {
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runtime.HandleError(fmt.Errorf("Couldn't get zv object %#v", obj))
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return
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}
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if zfs.NodeID != zv.Spec.OwnerNodeID {
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return
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}
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logrus.Infof("Got add event for ZV %s/%s", zv.Spec.PoolName, zv.Name)
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c.enqueueZV(zv)
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}
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// updateZV is the update event handler for ZFSVolume
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func (c *ZVController) updateZV(oldObj, newObj interface{}) {
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newZV, ok := newObj.(*apis.ZFSVolume)
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if !ok {
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runtime.HandleError(fmt.Errorf("Couldn't get zv object %#v", newZV))
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return
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}
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if zfs.NodeID != newZV.Spec.OwnerNodeID {
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return
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}
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oldZV, _ := oldObj.(*apis.ZFSVolume)
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if zfs.PropertyChanged(oldZV, newZV) ||
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c.isDeletionCandidate(newZV) {
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logrus.Infof("Got update event for ZV %s/%s", newZV.Spec.PoolName, newZV.Name)
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c.enqueueZV(newZV)
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}
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}
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// deleteZV is the delete event handler for ZFSVolume
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func (c *ZVController) deleteZV(obj interface{}) {
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zv, ok := obj.(*apis.ZFSVolume)
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if !ok {
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tombstone, ok := obj.(cache.DeletedFinalStateUnknown)
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if !ok {
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runtime.HandleError(fmt.Errorf("Couldn't get object from tombstone %#v", obj))
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return
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}
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zv, ok = tombstone.Obj.(*apis.ZFSVolume)
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if !ok {
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runtime.HandleError(fmt.Errorf("Tombstone contained object that is not a zfsvolume %#v", obj))
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return
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}
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}
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if zfs.NodeID != zv.Spec.OwnerNodeID {
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return
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}
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logrus.Infof("Got delete event for ZV %s/%s", zv.Spec.PoolName, zv.Name)
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c.enqueueZV(zv)
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}
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// Run will set up the event handlers for types we are interested in, as well
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// as syncing informer caches and starting workers. It will block until stopCh
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// is closed, at which point it will shutdown the workqueue and wait for
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// workers to finish processing their current work items.
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func (c *ZVController) Run(threadiness int, stopCh <-chan struct{}) error {
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defer runtime.HandleCrash()
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defer c.workqueue.ShutDown()
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// Start the informer factories to begin populating the informer caches
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logrus.Info("Starting ZV controller")
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// Wait for the k8s caches to be synced before starting workers
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logrus.Info("Waiting for informer caches to sync")
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if ok := cache.WaitForCacheSync(stopCh, c.zvSynced); !ok {
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return fmt.Errorf("failed to wait for caches to sync")
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}
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logrus.Info("Starting ZV workers")
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// Launch worker to process ZV resources
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// Threadiness will decide the number of workers you want to launch to process work items from queue
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for i := 0; i < threadiness; i++ {
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go wait.Until(c.runWorker, time.Second, stopCh)
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}
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logrus.Info("Started ZV workers")
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<-stopCh
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logrus.Info("Shutting down ZV workers")
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return nil
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}
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// runWorker is a long-running function that will continually call the
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// processNextWorkItem function in order to read and process a message on the
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// workqueue.
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func (c *ZVController) runWorker() {
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for c.processNextWorkItem() {
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}
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}
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// processNextWorkItem will read a single work item off the workqueue and
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// attempt to process it, by calling the syncHandler.
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func (c *ZVController) processNextWorkItem() bool {
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obj, shutdown := c.workqueue.Get()
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if shutdown {
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return false
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}
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// We wrap this block in a func so we can defer c.workqueue.Done.
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err := func(obj interface{}) error {
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// We call Done here so the workqueue knows we have finished
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// processing this item. We also must remember to call Forget if we
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// do not want this work item being re-queued. For example, we do
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// not call Forget if a transient error occurs, instead the item is
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// put back on the workqueue and attempted again after a back-off
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// period.
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defer c.workqueue.Done(obj)
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var key string
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var ok bool
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// We expect strings to come off the workqueue. These are of the
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// form namespace/name. We do this as the delayed nature of the
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// workqueue means the items in the informer cache may actually be
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// more up to date that when the item was initially put onto the
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// workqueue.
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if key, ok = obj.(string); !ok {
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// As the item in the workqueue is actually invalid, we call
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// Forget here else we'd go into a loop of attempting to
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// process a work item that is invalid.
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c.workqueue.Forget(obj)
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runtime.HandleError(fmt.Errorf("expected string in workqueue but got %#v", obj))
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return nil
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}
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// Run the syncHandler, passing it the namespace/name string of the
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// ZV resource to be synced.
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if err := c.syncHandler(key); err != nil {
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// Put the item back on the workqueue to handle any transient errors.
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c.workqueue.AddRateLimited(key)
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return fmt.Errorf("error syncing '%s': %s, requeuing", key, err.Error())
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}
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// Finally, if no error occurs we Forget this item so it does not
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// get queued again until another change happens.
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c.workqueue.Forget(obj)
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logrus.Infof("Successfully synced '%s'", key)
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return nil
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}(obj)
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if err != nil {
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runtime.HandleError(err)
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return true
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}
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return true
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}
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