/* 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 fission_cli import ( "bytes" "context" "fmt" "io/ioutil" "os" "path/filepath" "reflect" "strings" "time" "github.com/fsnotify/fsnotify" "github.com/ghodss/yaml" multierror "github.com/hashicorp/go-multierror" "github.com/mholt/archiver" "github.com/pkg/errors" uuid "github.com/satori/go.uuid" "github.com/urfave/cli" metav1 "k8s.io/apimachinery/pkg/apis/meta/v1" fv1 "github.com/fission/fission/pkg/apis/fission.io/v1" "github.com/fission/fission/pkg/controller/client" "github.com/fission/fission/pkg/fission-cli/log" "github.com/fission/fission/pkg/fission-cli/util" "github.com/fission/fission/pkg/types" ) const SPEC_API_VERSION = "fv1.io/v1" const ARCHIVE_URL_PREFIX string = "archive://" const SPEC_README = ` Fission Specs ============= This is a set of specifications for a Fission app. This includes functions, environments, and triggers; we collectively call these things "resources". How to use these specs ---------------------- These specs are handled with the 'fission spec' command. See 'fission spec --help'. 'fission spec apply' will "apply" all resources specified in this directory to your cluster. That means it checks what resources exist on your cluster, what resources are specified in the specs directory, and reconciles the difference by creating, updating or deleting resources on the cluster. 'fission spec apply' will also package up your source code (or compiled binaries) and upload the archives to the cluster if needed. It uses 'ArchiveUploadSpec' resources in this directory to figure out which files to archive. You can use 'fission spec apply --watch' to watch for file changes and continuously keep the cluster updated. You can add YAMLs to this directory by writing them manually, but it's easier to generate them. Use 'fission function create --spec' to generate a function spec, 'fission environment create --spec' to generate an environment spec, and so on. You can edit any of the files in this directory, except 'fission-deployment-config.yaml', which contains a UID that you should never change. To apply your changes simply use 'fission spec apply'. fission-deployment-config.yaml ------------------------------ fission-deployment-config.yaml contains a UID. This UID is what fission uses to correlate resources on the cluster to resources in this directory. All resources created by 'fission spec apply' are annotated with this UID. Resources on the cluster that are _not_ annotated with this UID are never modified or deleted by fv1. ` type ( FissionResources struct { deploymentConfig DeploymentConfig packages []fv1.Package functions []fv1.Function environments []fv1.Environment httpTriggers []fv1.HTTPTrigger kubernetesWatchTriggers []fv1.KubernetesWatchTrigger timeTriggers []fv1.TimeTrigger messageQueueTriggers []fv1.MessageQueueTrigger archiveUploadSpecs []ArchiveUploadSpec sourceMap sourceMap } resourceApplyStatus struct { created []*metav1.ObjectMeta updated []*metav1.ObjectMeta deleted []*metav1.ObjectMeta } location struct { path string line int } sourceMap struct { // kind -> namespace -> name -> location locations map[string](map[string](map[string]location)) } ) func getSpecDir(c *cli.Context) string { specDir := "" if c != nil { specDir = c.String("specdir") } if len(specDir) == 0 { specDir = "specs" } return specDir } // writeDeploymentConfig serializes the DeploymentConfig to YAML and writes it to a new // fission-config.yaml in specDir. func writeDeploymentConfig(specDir string, dc *DeploymentConfig) error { y, err := yaml.Marshal(dc) if err != nil { return err } msg := []byte("# This file is generated by the 'fission spec init' command.\n" + "# See the README in this directory for background and usage information.\n" + "# Do not edit the UID below: that will break 'fission spec apply'\n") err = ioutil.WriteFile(filepath.Join(specDir, "fission-deployment-config.yaml"), append(msg, y...), 0644) if err != nil { return err } return nil } // specInit just initializes an empty spec directory and adds some // sample YAMLs in there that might be useful. func specInit(c *cli.Context) error { // Figure out spec directory specDir := getSpecDir(c) name := c.String("name") if len(name) == 0 { // come up with a name using the current dir dir, err := filepath.Abs(".") util.CheckErr(err, "get current working directory") basename := filepath.Base(dir) name = util.KubifyName(basename) } // Create spec dir fmt.Printf("Creating fission spec directory '%v'\n", specDir) err := os.MkdirAll(specDir, 0755) util.CheckErr(err, fmt.Sprintf("create spec directory '%v'", specDir)) // Add a bit of documentation to the spec dir here err = ioutil.WriteFile(filepath.Join(specDir, "README"), []byte(SPEC_README), 0644) if err != nil { return err } // Write the deployment config dc := DeploymentConfig{ TypeMeta: TypeMeta{ APIVersion: SPEC_API_VERSION, Kind: "DeploymentConfig", }, Name: name, // All resources will be annotated with the UID when they're created. This allows // us to be idempotent, as well as to delete resources when their specs are // removed. UID: uuid.NewV4().String(), } err = writeDeploymentConfig(specDir, &dc) util.CheckErr(err, "write deployment config") // Other possible things to do here: // - add example specs to the dir to make it easy to manually // add new ones return nil } // validateFunctionReference checks a function reference func (fr *FissionResources) validateFunctionReference(functions map[string]bool, kind string, meta *metav1.ObjectMeta, funcRef fv1.FunctionReference) error { if funcRef.Type == fv1.FunctionReferenceTypeFunctionName { // triggers only reference functions in their own namespace namespace := meta.Namespace name := funcRef.Name m := &metav1.ObjectMeta{ Namespace: namespace, Name: name, } if _, ok := functions[mapKey(m)]; !ok { return fmt.Errorf("%v: %v '%v' references unknown function '%v'", fr.sourceMap.locations[kind][meta.Namespace][meta.Name], kind, meta.Name, name) } else { functions[mapKey(m)] = true } } return nil } // specValidate parses a set of specs and checks for references to // resources that don't exist. func specValidate(c *cli.Context) error { // this will error on parse errors and on duplicates specDir := getSpecDir(c) fr, err := readSpecs(specDir) util.CheckErr(err, "read specs") // this does the rest of the checks, like dangling refs err = fr.validate() if err != nil { fmt.Printf("Error validating specs: %v", err) } return nil } func (fr *FissionResources) validate() error { var result *multierror.Error // check references: both dangling refs + garbage // packages -> archives // functions -> packages // functions -> environments + shared environments between functions [TODO] // functions -> secrets + configmaps (same ns) [TODO] // triggers -> functions // index archives archives := make(map[string]bool) for _, a := range fr.archiveUploadSpecs { archives[a.Name] = false } // index packages, check outgoing refs, mark archives that are referenced packages := make(map[string]bool) for _, p := range fr.packages { packages[mapKey(&p.Metadata)] = false // check archive refs from package aname := strings.TrimPrefix(p.Spec.Source.URL, ARCHIVE_URL_PREFIX) if len(aname) > 0 { if _, ok := archives[aname]; !ok { result = multierror.Append(result, fmt.Errorf( "%v: package '%v' references unknown source archive %v%v", fr.sourceMap.locations["Package"][p.Metadata.Namespace][p.Metadata.Name], p.Metadata.Name, ARCHIVE_URL_PREFIX, aname)) } else { archives[aname] = true } } aname = strings.TrimPrefix(p.Spec.Deployment.URL, ARCHIVE_URL_PREFIX) if len(aname) > 0 { if _, ok := archives[aname]; !ok { result = multierror.Append(result, fmt.Errorf( "%v: package '%v' references unknown deployment archive %v%v", fr.sourceMap.locations["Package"][p.Metadata.Namespace][p.Metadata.Name], p.Metadata.Name, ARCHIVE_URL_PREFIX, aname)) } else { archives[aname] = true } } result = multierror.Append(result, p.Validate()) } // error on unreferenced archives for name, referenced := range archives { if !referenced { result = multierror.Append(result, fmt.Errorf( "%v: archive '%v' is not used in any package", fr.sourceMap.locations["ArchiveUploadSpec"][""][name], name)) } } // index functions, check function package refs, mark referenced packages functions := make(map[string]bool) for _, f := range fr.functions { functions[mapKey(&f.Metadata)] = false pkgMeta := &metav1.ObjectMeta{ Name: f.Spec.Package.PackageRef.Name, Namespace: f.Spec.Package.PackageRef.Namespace, } // check package ref from function packageRefExists := func() bool { _, ok := packages[mapKey(pkgMeta)] return ok } // check that the package referenced by each function is in the same ns as the function packageRefInFuncNs := func(f *fv1.Function) bool { return f.Spec.Package.PackageRef.Namespace == f.Metadata.Namespace } if !packageRefInFuncNs(&f) { result = multierror.Append(result, fmt.Errorf( "%v: function '%v' references a package outside of its namespace %v/%v", fr.sourceMap.locations["Function"][f.Metadata.Namespace][f.Metadata.Name], f.Metadata.Name, f.Spec.Package.PackageRef.Namespace, f.Spec.Package.PackageRef.Name)) } else if !packageRefExists() { result = multierror.Append(result, fmt.Errorf( "%v: function '%v' references unknown package %v/%v", fr.sourceMap.locations["Function"][f.Metadata.Namespace][f.Metadata.Name], f.Metadata.Name, pkgMeta.Namespace, pkgMeta.Name)) } else { packages[mapKey(pkgMeta)] = true } result = multierror.Append(result, f.Validate()) } // error on unreferenced packages for key, referenced := range packages { ks := strings.Split(key, ":") namespace, name := ks[0], ks[1] if !referenced { result = multierror.Append(result, fmt.Errorf( "%v: package '%v' is not used in any function", fr.sourceMap.locations["Package"][namespace][name], name)) } } // check function refs from triggers for _, t := range fr.httpTriggers { err := fr.validateFunctionReference(functions, t.Kind, &t.Metadata, t.Spec.FunctionReference) if err != nil { result = multierror.Append(result, err) } result = multierror.Append(result, t.Validate()) } for _, t := range fr.kubernetesWatchTriggers { err := fr.validateFunctionReference(functions, t.Kind, &t.Metadata, t.Spec.FunctionReference) if err != nil { result = multierror.Append(result, err) } result = multierror.Append(result, t.Validate()) } for _, t := range fr.timeTriggers { err := fr.validateFunctionReference(functions, t.Kind, &t.Metadata, t.Spec.FunctionReference) if err != nil { result = multierror.Append(result, err) } result = multierror.Append(result, t.Validate()) } for _, t := range fr.messageQueueTriggers { err := fr.validateFunctionReference(functions, t.Kind, &t.Metadata, t.Spec.FunctionReference) if err != nil { result = multierror.Append(result, err) } result = multierror.Append(result, t.Validate()) } // we do not error on unreferenced functions (you can call a function through workflows, // `fission function test`, etc.) // Index envs, warn on functions referencing an environment for which spes does not exist environments := make(map[string]struct{}) for _, e := range fr.environments { environments[fmt.Sprintf("%s:%s", e.Metadata.Name, e.Metadata.Namespace)] = struct{}{} if (e.Spec.Runtime.Container != nil) && (e.Spec.Runtime.PodSpec != nil) { log.Warn("You have provided both - container spec and pod spec and while merging the pod spec will take precedence.") } // Unlike CLI can change the environment version silently, // we have to warn the user to modify spec file when this takes place. if e.Spec.Version < 3 && e.Spec.Poolsize != 0 { log.Warn("Poolsize can only be configured when environment version equals to 3, default poolsize 3 will be used for creating environment pool.") } } for _, f := range fr.functions { if _, ok := environments[fmt.Sprintf("%s:%s", f.Spec.Environment.Name, f.Spec.Environment.Namespace)]; !ok { log.Warn(fmt.Sprintf("Environment %s is referenced in function %s but not declared in specs", f.Spec.Environment.Name, f.Metadata.Name)) } } // (ErrorOrNil returns nil if there were no errors appended.) return result.ErrorOrNil() } func (loc location) String() string { return fmt.Sprintf("%v:%v", loc.path, loc.line) } // Keep track of source location of resources, and track duplicates func (fr *FissionResources) trackSourceMap(kind string, newobj *metav1.ObjectMeta, loc *location) error { if _, exists := fr.sourceMap.locations[kind]; !exists { fr.sourceMap.locations[kind] = make(map[string](map[string]location)) } if _, exists := fr.sourceMap.locations[kind][newobj.Namespace]; !exists { fr.sourceMap.locations[kind][newobj.Namespace] = make(map[string]location) } // check for duplicate resources oldloc, exists := fr.sourceMap.locations[kind][newobj.Namespace][newobj.Name] if exists { return fmt.Errorf("%v: Duplicate %v '%v', first defined in %v", loc, kind, newobj.Name, oldloc) } // track new resource fr.sourceMap.locations[kind][newobj.Namespace][newobj.Name] = *loc return nil } // parseYaml takes one yaml document, figures out its type, parses it, and puts it in // the right list in the given fission resources set. func (fr *FissionResources) parseYaml(b []byte, loc *location) error { var m *metav1.ObjectMeta // Figure out the object type by unmarshaling into the TypeMeta struct; then // unmarshal again into the "real" struct once we know the type. var tm TypeMeta err := yaml.Unmarshal(b, &tm) switch tm.Kind { case "Package": var v fv1.Package err = yaml.Unmarshal(b, &v) if err != nil { return errors.Wrap(err, fmt.Sprintf("Failed to parse %v in %v", tm.Kind, loc)) } m = &v.Metadata fr.packages = append(fr.packages, v) case "Function": var v fv1.Function err = yaml.Unmarshal(b, &v) if err != nil { return errors.Wrap(err, fmt.Sprintf("Failed to parse %v in %v", tm.Kind, loc)) } m = &v.Metadata fr.functions = append(fr.functions, v) case "Environment": var v fv1.Environment err = yaml.Unmarshal(b, &v) if err != nil { return errors.Wrap(err, fmt.Sprintf("Failed to parse %v in %v", tm.Kind, loc)) } m = &v.Metadata fr.environments = append(fr.environments, v) case "HTTPTrigger": var v fv1.HTTPTrigger err = yaml.Unmarshal(b, &v) if err != nil { return errors.Wrap(err, fmt.Sprintf("Failed to parse %v in %v", tm.Kind, loc)) } // TODO move to validator if !strings.HasPrefix(v.Spec.RelativeURL, "/") { v.Spec.RelativeURL = fmt.Sprintf("/%s", v.Spec.RelativeURL) } m = &v.Metadata fr.httpTriggers = append(fr.httpTriggers, v) case "KubernetesWatchTrigger": var v fv1.KubernetesWatchTrigger err = yaml.Unmarshal(b, &v) if err != nil { return errors.Wrap(err, fmt.Sprintf("Failed to parse %v in %v", tm.Kind, loc)) } m = &v.Metadata fr.kubernetesWatchTriggers = append(fr.kubernetesWatchTriggers, v) case "TimeTrigger": var v fv1.TimeTrigger err = yaml.Unmarshal(b, &v) if err != nil { return errors.Wrap(err, fmt.Sprintf("Failed to parse %v in %v", tm.Kind, loc)) } m = &v.Metadata fr.timeTriggers = append(fr.timeTriggers, v) case "MessageQueueTrigger": var v fv1.MessageQueueTrigger err = yaml.Unmarshal(b, &v) if err != nil { return errors.Wrap(err, fmt.Sprintf("Failed to parse %v in %v", tm.Kind, loc)) } m = &v.Metadata fr.messageQueueTriggers = append(fr.messageQueueTriggers, v) // The following are not CRDs case "DeploymentConfig": var v DeploymentConfig err = yaml.Unmarshal(b, &v) if err != nil { return errors.Wrap(err, fmt.Sprintf("Failed to parse %v in %v", tm.Kind, loc)) } fr.deploymentConfig = v case "ArchiveUploadSpec": var v ArchiveUploadSpec err = yaml.Unmarshal(b, &v) if err != nil { return errors.Wrap(err, fmt.Sprintf("Failed to parse %v in %v", tm.Kind, loc)) } m = &metav1.ObjectMeta{ Name: v.Name, Namespace: "", } fr.archiveUploadSpecs = append(fr.archiveUploadSpecs, v) default: // no need to error out just because there's some extra files around; // also good for compatibility. log.Warn(fmt.Sprintf("Ignoring unknown type %v in %v", tm.Kind, loc)) } // add to source map, check for duplicates if m != nil { err = fr.trackSourceMap(tm.Kind, m, loc) if err != nil { return err } } return nil } // readSpecs reads all specs in the specified directory and returns a parsed set of // fission resources. func readSpecs(specDir string) (*FissionResources, error) { // make sure spec directory exists before continue if _, err := os.Stat(specDir); os.IsNotExist(err) { log.Fatal(fmt.Sprintf("Spec directory %v doesn't exist. "+ "Please check directory path or run \"fission spec init\" to create it.", specDir)) } fr := FissionResources{ packages: make([]fv1.Package, 0), functions: make([]fv1.Function, 0), environments: make([]fv1.Environment, 0), httpTriggers: make([]fv1.HTTPTrigger, 0), kubernetesWatchTriggers: make([]fv1.KubernetesWatchTrigger, 0), timeTriggers: make([]fv1.TimeTrigger, 0), messageQueueTriggers: make([]fv1.MessageQueueTrigger, 0), sourceMap: sourceMap{ locations: make(map[string](map[string](map[string]location))), }, } var result *multierror.Error // Users can organize the specdir into subdirs if they want to. err := filepath.Walk(specDir, func(path string, info os.FileInfo, err error) error { // For now just read YAML files. We'll add jsonnet at some point. Skip // unsupported files. if !(strings.HasSuffix(path, ".yaml") || strings.HasSuffix(path, ".yml")) { return nil } // read b, err := ioutil.ReadFile(path) if err != nil { result = multierror.Append(result, err) return nil } // handle the case where there are multiple YAML docs per file. go-yaml // doesn't support this directly, yet. docs := bytes.Split(b, []byte("\n---")) lines := 1 for _, doc := range docs { d := []byte(strings.TrimSpace(string(doc))) if len(d) != 0 { // parse this document and add whatever is in it to fr err = fr.parseYaml(d, &location{ path: path, line: lines, }) if err != nil { // collect all errors so user can fix them all result = multierror.Append(result, err) } } // the separator occupies one line, hence the +1 lines += strings.Count(string(doc), "\n") + 1 } return nil }) if err != nil { return nil, err } if err := result.ErrorOrNil(); err != nil { return nil, err } return &fr, nil } func ignoreFile(path string) bool { return (strings.Contains(path, "/.#") || // editor autosave files strings.HasSuffix(path, "~")) // editor backups, usually } func waitForFileWatcherToSettleDown(watcher *fsnotify.Watcher) error { // Wait a bit for things to settle down in case a bunch of // files changed; also drain all events that queue up during // the wait interval. time.Sleep(500 * time.Millisecond) for { select { case _ = <-watcher.Events: time.Sleep(200 * time.Millisecond) continue case err := <-watcher.Errors: return err default: return nil } } } // specApply compares the specs in the spec/config/ directory to the // deployed resources on the cluster, and reconciles the differences // by creating, updating or deleting resources on the cluster. // // specApply is idempotent. // // specApply is *not* transactional -- if the user hits Ctrl-C, or their laptop dies // etc, while doing an apply, they will get a partially applied deployment. However, // they can retry their apply command once they're back online. func specApply(c *cli.Context) error { fclient := util.GetApiClient(c.GlobalString("server")) specDir := getSpecDir(c) deleteResources := c.Bool("delete") watchResources := c.Bool("watch") waitForBuild := c.Bool("wait") var watcher *fsnotify.Watcher var pbw *packageBuildWatcher if watchResources || waitForBuild { // init package build watcher pbw = makePackageBuildWatcher(fclient) } if watchResources { var err error watcher, err = fsnotify.NewWatcher() util.CheckErr(err, "create file watcher") // add watches rootDir := filepath.Clean(specDir + "/..") err = filepath.Walk(rootDir, func(path string, info os.FileInfo, err error) error { util.CheckErr(err, "scan project files") if ignoreFile(path) { return nil } err = watcher.Add(path) util.CheckErr(err, fmt.Sprintf("watch path %v", path)) return nil }) util.CheckErr(err, "scan files to watch") } for { // read all specs fr, err := readSpecs(specDir) util.CheckErr(err, "read specs") // validate err = fr.validate() util.CheckErr(err, "validate specs") // make changes to the cluster based on the specs pkgMetas, as, err := applyResources(fclient, specDir, fr, deleteResources) util.CheckErr(err, "apply specs") printApplyStatus(as) if watchResources || waitForBuild { // watch package builds pbw.addPackages(pkgMetas) } ctx, pkgWatchCancel := context.WithCancel(context.Background()) if watchResources { // if we're watching for files, we don't need to wait for builds to complete go pbw.watch(ctx) } else if waitForBuild { // synchronously wait for build if --wait was specified pbw.watch(ctx) } if !watchResources { pkgWatchCancel() break } // listen for file watch events fmt.Println("Watching files for changes...") waitloop: for { select { case e := <-watcher.Events: if ignoreFile(e.Name) { continue waitloop } fmt.Printf("Noticed a file change, reapplying specs...\n") // Builds that finish after this cancellation will be // printed in the next watchPackageBuildStatus call. pkgWatchCancel() err = waitForFileWatcherToSettleDown(watcher) util.CheckErr(err, "watching files") break waitloop case err := <-watcher.Errors: util.CheckErr(err, "watching files") } } } return nil } // printApplyStatus prints a summary of what changed on the cluster as the result of a spec apply // operation. func printApplyStatus(applyStatus map[string]resourceApplyStatus) { changed := false for typ, ras := range applyStatus { n := len(ras.created) if n > 0 { changed = true fmt.Printf("%v %v created: %v\n", n, pluralize(n, typ), strings.Join(metadataNames(ras.created), ", ")) } n = len(ras.updated) if n > 0 { changed = true fmt.Printf("%v %v updated: %v\n", n, pluralize(n, typ), strings.Join(metadataNames(ras.updated), ", ")) } n = len(ras.deleted) if n > 0 { changed = true fmt.Printf("%v %v deleted: %v\n", n, pluralize(n, typ), strings.Join(metadataNames(ras.deleted), ", ")) } } if !changed { fmt.Println("Everything up to date.") } } // metadataNames extracts a slice of names from a slice of object metadata. func metadataNames(ms []*metav1.ObjectMeta) []string { s := make([]string, len(ms)) for i, m := range ms { s[i] = m.Name } return s } // pluralize returns the plural of word if num is zero or more than one. func pluralize(num int, word string) string { if num == 1 { return word } return word + "s" } // specDestroy destroys everything in the spec. func specDestroy(c *cli.Context) error { fclient := util.GetApiClient(c.GlobalString("server")) // get specdir specDir := getSpecDir(c) // read everything fr, err := readSpecs(specDir) util.CheckErr(err, "read specs") // set desired state to nothing, but keep the UID so "apply" can find it emptyFr := FissionResources{} emptyFr.deploymentConfig = fr.deploymentConfig // "apply" the empty state _, _, err = applyResources(fclient, specDir, &emptyFr, true) util.CheckErr(err, "delete resources") return nil } // applyArchives figures out the set of archives that need to be uploaded, and uploads them. func applyArchives(fclient *client.Client, specDir string, fr *FissionResources) error { // archive:// URL -> archive map. archiveFiles := make(map[string]fv1.Archive) // We'll first populate archiveFiles with references to local files, and then modify it to // point at archive URLs. // create archives locally and calculate checksums for _, aus := range fr.archiveUploadSpecs { ar, err := localArchiveFromSpec(specDir, &aus) if err != nil { return err } archiveUrl := fmt.Sprintf("%v%v", ARCHIVE_URL_PREFIX, aus.Name) archiveFiles[archiveUrl] = *ar } // get list of packages, make content-indexed map of available archives availableArchives := make(map[string]string) // (sha256 -> url) pkgs, err := fclient.PackageList(metav1.NamespaceAll) if err != nil { return err } for _, pkg := range pkgs { for _, ar := range []fv1.Archive{pkg.Spec.Source, pkg.Spec.Deployment} { if ar.Type == fv1.ArchiveTypeUrl && len(ar.URL) > 0 { availableArchives[ar.Checksum.Sum] = ar.URL } } } // upload archives that we need to, updating the map for name, ar := range archiveFiles { if ar.Type == fv1.ArchiveTypeLiteral { continue } // does the archive exist already? if url, ok := availableArchives[ar.Checksum.Sum]; ok { fmt.Printf("archive %v exists, not uploading\n", name) ar.URL = url archiveFiles[name] = ar } else { // doesn't exist, upload fmt.Printf("uploading archive %v\n", name) // ar.URL is actually a local filename at this stage ctx := context.Background() uploadedAr := uploadArchive(ctx, fclient, ar.URL) archiveFiles[name] = *uploadedAr } } // resolve references to urls in packages to be applied for i := range fr.packages { for _, ar := range []*fv1.Archive{&fr.packages[i].Spec.Source, &fr.packages[i].Spec.Deployment} { if strings.HasPrefix(ar.URL, ARCHIVE_URL_PREFIX) { availableAr, ok := archiveFiles[ar.URL] if !ok { return fmt.Errorf("Unknown archive name %v", strings.TrimPrefix(ar.URL, ARCHIVE_URL_PREFIX)) } ar.Type = availableAr.Type ar.Literal = availableAr.Literal ar.URL = availableAr.URL ar.Checksum = availableAr.Checksum } } } return nil } // applyResources applies the given set of fission resources. func applyResources(fclient *client.Client, specDir string, fr *FissionResources, delete bool) (map[string]metav1.ObjectMeta, map[string]resourceApplyStatus, error) { applyStatus := make(map[string]resourceApplyStatus) // upload archives that need to be uploaded. Changes archive references in fr.packages. err := applyArchives(fclient, specDir, fr) if err != nil { return nil, nil, err } _, ras, err := applyEnvironments(fclient, fr, delete) if err != nil { return nil, nil, errors.Wrap(err, "environment apply failed") } applyStatus["environment"] = *ras pkgMeta, ras, err := applyPackages(fclient, fr, delete) if err != nil { return nil, nil, errors.Wrap(err, "package apply failed") } applyStatus["package"] = *ras // Each reference to a package from a function must contain the resource version // of the package. This ensures that various caches can invalidate themselves // when the package changes. for i, f := range fr.functions { k := mapKey(&metav1.ObjectMeta{ Namespace: f.Spec.Package.PackageRef.Namespace, Name: f.Spec.Package.PackageRef.Name, }) m, ok := pkgMeta[k] if !ok { // the function references a package that doesn't exist in the // spec. It may exist outside the spec, but we're going to treat // that as an error, so that we encourage self-contained specs. // Is there a good use case for non-self contained specs? return nil, nil, fmt.Errorf("Function %v/%v references package %v/%v, which doesn't exist in the specs", f.Metadata.Namespace, f.Metadata.Name, f.Spec.Package.PackageRef.Namespace, f.Spec.Package.PackageRef.Name) } fr.functions[i].Spec.Package.PackageRef.ResourceVersion = m.ResourceVersion } _, ras, err = applyFunctions(fclient, fr, delete) if err != nil { return nil, nil, errors.Wrap(err, "function apply failed") } applyStatus["function"] = *ras _, ras, err = applyHTTPTriggers(fclient, fr, delete) if err != nil { return nil, nil, errors.Wrap(err, "HTTPTrigger apply failed") } applyStatus["HTTPTrigger"] = *ras _, ras, err = applyKubernetesWatchTriggers(fclient, fr, delete) if err != nil { return nil, nil, errors.Wrap(err, "KubernetesWatchTrigger apply failed") } applyStatus["KubernetesWatchTrigger"] = *ras _, ras, err = applyTimeTriggers(fclient, fr, delete) if err != nil { return nil, nil, errors.Wrap(err, "TimeTrigger apply failed") } applyStatus["TimeTrigger"] = *ras _, ras, err = applyMessageQueueTriggers(fclient, fr, delete) if err != nil { return nil, nil, errors.Wrap(err, "MessageQueueTrigger apply failed") } applyStatus["MessageQueueTrigger"] = *ras return pkgMeta, applyStatus, nil } // localArchiveFromSpec creates an archive on the local filesystem from the given spec, // and returns its path and checksum. func localArchiveFromSpec(specDir string, aus *ArchiveUploadSpec) (*fv1.Archive, error) { // get root dir var rootDir string if len(aus.RootDir) == 0 { rootDir = filepath.Clean(specDir + "/..") } else { rootDir = aus.RootDir } // get a list of files from the include/exclude globs. // // XXX if there are lots of globs it's probably more efficient // to do a filepath.Walk and call path.Match on each path... files := make([]string, 0) if len(aus.IncludeGlobs) == 1 && archiver.Zip.Match(aus.IncludeGlobs[0]) { files = append(files, aus.IncludeGlobs[0]) } else { for _, relativeGlob := range aus.IncludeGlobs { absGlob := rootDir + "/" + relativeGlob f, err := filepath.Glob(absGlob) if err != nil { log.Info(fmt.Sprintf("Invalid glob in archive %v: %v", aus.Name, relativeGlob)) return nil, err } files = append(files, f...) // xxx handle excludeGlobs here } } if len(files) == 0 { return nil, fmt.Errorf("Archive '%v' is empty", aus.Name) } // if it's just one file, use its path directly var archiveFileName string var isSingleFile bool if len(files) == 1 { // check whether a path destination is file or directory f, err := os.Stat(files[0]) if err != nil { return nil, err } if !f.IsDir() { isSingleFile = true archiveFileName = files[0] } } if len(files) > 1 || !isSingleFile { // zip up the file list archiveFile, err := ioutil.TempFile("", fmt.Sprintf("fission-archive-%v", aus.Name)) if err != nil { return nil, err } archiveFileName = archiveFile.Name() err = archiver.Zip.Make(archiveFileName, files) if err != nil { return nil, err } } // figure out if we're making a literal or a URL-based archive if fileSize(archiveFileName) < types.ArchiveLiteralSizeLimit { contents := getContents(archiveFileName) return &fv1.Archive{ Type: fv1.ArchiveTypeLiteral, Literal: contents, }, nil } else { // checksum csum, err := fileChecksum(archiveFileName) if err != nil { return nil, fmt.Errorf("failed to calculate archive checksum for %v (%v): %v", aus.Name, archiveFileName, err) } // archive object return &fv1.Archive{ Type: fv1.ArchiveTypeUrl, // we should be actually be adding a "file://" prefix, but this archive is only an // intermediate step, so just the path works fine. URL: archiveFileName, Checksum: *csum, }, nil } } // specHelm creates a helm chart from a spec directory and a // deployment config. func specHelm(c *cli.Context) error { return nil } func mapKey(m *metav1.ObjectMeta) string { return fmt.Sprintf("%v:%v", m.Namespace, m.Name) } func applyDeploymentConfig(m *metav1.ObjectMeta, fr *FissionResources) { if m.Annotations == nil { m.Annotations = make(map[string]string) } m.Annotations[FISSION_DEPLOYMENT_NAME_KEY] = fr.deploymentConfig.Name m.Annotations[FISSION_DEPLOYMENT_UID_KEY] = fr.deploymentConfig.UID } func hasDeploymentConfig(m *metav1.ObjectMeta, fr *FissionResources) bool { if m.Annotations == nil { return false } uid, ok := m.Annotations[FISSION_DEPLOYMENT_UID_KEY] if ok && uid == fr.deploymentConfig.UID { return true } return false } func waitForPackageBuild(fclient *client.Client, pkg *fv1.Package) (*fv1.Package, error) { start := time.Now() for { if pkg.Status.BuildStatus != fv1.BuildStatusRunning { return pkg, nil } if time.Since(start) > 5*time.Minute { return nil, fmt.Errorf("Package %v has been building for a while. Giving up on waiting for it.", pkg.Metadata.Name) } // TODO watch instead time.Sleep(time.Second) var err error pkg, err = fclient.PackageGet(&pkg.Metadata) if err != nil { return nil, err } } } func applyPackages(fclient *client.Client, fr *FissionResources, delete bool) (map[string]metav1.ObjectMeta, *resourceApplyStatus, error) { // get list allObjs, err := fclient.PackageList(metav1.NamespaceAll) if err != nil { return nil, nil, err } // filter objs := make([]fv1.Package, 0) for _, o := range allObjs { if hasDeploymentConfig(&o.Metadata, fr) { objs = append(objs, o) } } // index existent := make(map[string]fv1.Package) for _, obj := range objs { existent[mapKey(&obj.Metadata)] = obj } metadataMap := make(map[string]metav1.ObjectMeta) // desired set. used to compute the set to delete. desired := make(map[string]bool) var ras resourceApplyStatus // create or update desired state for _, o := range fr.packages { // apply deploymentConfig so we can find our objects on future apply invocations applyDeploymentConfig(&o.Metadata, fr) // index desired state desired[mapKey(&o.Metadata)] = true // exists? existingObj, ok := existent[mapKey(&o.Metadata)] if ok { // ok, a resource with the same name exists, is it the same? keep := false if reflect.DeepEqual(existingObj.Spec, o.Spec) { keep = true } else if reflect.DeepEqual(existingObj.Spec.Environment, o.Spec.Environment) && !reflect.DeepEqual(existingObj.Spec.Source, fv1.Archive{}) && reflect.DeepEqual(existingObj.Spec.Source, o.Spec.Source) && existingObj.Spec.BuildCommand == o.Spec.BuildCommand { keep = true } if keep { // nothing to do on the server metadataMap[mapKey(&o.Metadata)] = existingObj.Metadata } else { // update o.Metadata.ResourceVersion = existingObj.Metadata.ResourceVersion // We may be racing against the package builder to update the // package (a previous version might have been getting built). So, // wait for the package to have a non-running build status. pkg, err := waitForPackageBuild(fclient, &o) if err != nil { // log and ignore fmt.Printf("Error waiting for package '%v' build, ignoring\n", o.Metadata.Name) } newmeta, err := fclient.PackageUpdate(pkg) if err != nil { return nil, nil, err // TODO check for resourceVersion conflict errors and retry } ras.updated = append(ras.updated, newmeta) // keep track of metadata in case we need to create a reference to it metadataMap[mapKey(&o.Metadata)] = *newmeta } } else { // create newmeta, err := fclient.PackageCreate(&o) if err != nil { return nil, nil, err } ras.created = append(ras.created, newmeta) metadataMap[mapKey(&o.Metadata)] = *newmeta } } // deletes if delete { // objs is already filtered with our UID for _, o := range objs { _, wanted := desired[mapKey(&o.Metadata)] if !wanted { err := fclient.PackageDelete(&o.Metadata) if err != nil { return nil, nil, err } ras.deleted = append(ras.deleted, &o.Metadata) fmt.Printf("Deleted %v %v/%v\n", o.TypeMeta.Kind, o.Metadata.Namespace, o.Metadata.Name) } } } return metadataMap, &ras, nil } func applyFunctions(fclient *client.Client, fr *FissionResources, delete bool) (map[string]metav1.ObjectMeta, *resourceApplyStatus, error) { // get list allObjs, err := fclient.FunctionList(metav1.NamespaceAll) if err != nil { return nil, nil, err } // filter objs := make([]fv1.Function, 0) for _, o := range allObjs { if hasDeploymentConfig(&o.Metadata, fr) { objs = append(objs, o) } } // index existent := make(map[string]fv1.Function) for _, obj := range objs { existent[mapKey(&obj.Metadata)] = obj } metadataMap := make(map[string]metav1.ObjectMeta) // desired set. used to compute the set to delete. desired := make(map[string]bool) var ras resourceApplyStatus // create or update desired state for _, o := range fr.functions { // apply deploymentConfig so we can find our objects on future apply invocations applyDeploymentConfig(&o.Metadata, fr) // index desired state desired[mapKey(&o.Metadata)] = true // exists? existingObj, ok := existent[mapKey(&o.Metadata)] if ok { // ok, a resource with the same name exists, is it the same? if reflect.DeepEqual(existingObj.Spec, o.Spec) { // nothing to do on the server metadataMap[mapKey(&o.Metadata)] = existingObj.Metadata } else { // update o.Metadata.ResourceVersion = existingObj.Metadata.ResourceVersion newmeta, err := fclient.FunctionUpdate(&o) if err != nil { return nil, nil, err } ras.updated = append(ras.updated, newmeta) // keep track of metadata in case we need to create a reference to it metadataMap[mapKey(&o.Metadata)] = *newmeta } } else { // create newmeta, err := fclient.FunctionCreate(&o) if err != nil { return nil, nil, err } ras.created = append(ras.created, newmeta) metadataMap[mapKey(&o.Metadata)] = *newmeta } } // deletes if delete { // objs is already filtered with our UID for _, o := range objs { _, wanted := desired[mapKey(&o.Metadata)] if !wanted { err := fclient.FunctionDelete(&o.Metadata) if err != nil { return nil, nil, err } ras.deleted = append(ras.deleted, &o.Metadata) fmt.Printf("Deleted %v %v/%v\n", o.TypeMeta.Kind, o.Metadata.Namespace, o.Metadata.Name) } } } return metadataMap, &ras, nil } func applyEnvironments(fclient *client.Client, fr *FissionResources, delete bool) (map[string]metav1.ObjectMeta, *resourceApplyStatus, error) { // get list allObjs, err := fclient.EnvironmentList(metav1.NamespaceAll) if err != nil { return nil, nil, err } // filter objs := make([]fv1.Environment, 0) for _, o := range allObjs { if hasDeploymentConfig(&o.Metadata, fr) { objs = append(objs, o) } } // index existent := make(map[string]fv1.Environment) for _, obj := range objs { existent[mapKey(&obj.Metadata)] = obj } metadataMap := make(map[string]metav1.ObjectMeta) // desired set. used to compute the set to delete. desired := make(map[string]bool) var ras resourceApplyStatus // create or update desired state for _, o := range fr.environments { // apply deploymentConfig so we can find our objects on future apply invocations applyDeploymentConfig(&o.Metadata, fr) // index desired state desired[mapKey(&o.Metadata)] = true // exists? existingObj, ok := existent[mapKey(&o.Metadata)] if ok { // ok, a resource with the same name exists, is it the same? if reflect.DeepEqual(existingObj.Spec, o.Spec) { // nothing to do on the server metadataMap[mapKey(&o.Metadata)] = existingObj.Metadata } else { // update o.Metadata.ResourceVersion = existingObj.Metadata.ResourceVersion newmeta, err := fclient.EnvironmentUpdate(&o) if err != nil { return nil, nil, err } ras.updated = append(ras.updated, newmeta) // keep track of metadata in case we need to create a reference to it metadataMap[mapKey(&o.Metadata)] = *newmeta } } else { // create newmeta, err := fclient.EnvironmentCreate(&o) if err != nil { return nil, nil, err } ras.created = append(ras.created, newmeta) metadataMap[mapKey(&o.Metadata)] = *newmeta } } // deletes if delete { // objs is already filtered with our UID for _, o := range objs { _, wanted := desired[mapKey(&o.Metadata)] if !wanted { err := fclient.EnvironmentDelete(&o.Metadata) if err != nil { return nil, nil, err } ras.deleted = append(ras.deleted, &o.Metadata) fmt.Printf("Deleted %v %v/%v\n", o.TypeMeta.Kind, o.Metadata.Namespace, o.Metadata.Name) } } } return metadataMap, &ras, nil } func applyHTTPTriggers(fclient *client.Client, fr *FissionResources, delete bool) (map[string]metav1.ObjectMeta, *resourceApplyStatus, error) { // get list allObjs, err := fclient.HTTPTriggerList(metav1.NamespaceAll) if err != nil { return nil, nil, err } // filter objs := make([]fv1.HTTPTrigger, 0) for _, o := range allObjs { if hasDeploymentConfig(&o.Metadata, fr) { objs = append(objs, o) } } // index existent := make(map[string]fv1.HTTPTrigger) for _, obj := range objs { existent[mapKey(&obj.Metadata)] = obj } metadataMap := make(map[string]metav1.ObjectMeta) // desired set. used to compute the set to delete. desired := make(map[string]bool) var ras resourceApplyStatus // create or update desired state for _, o := range fr.httpTriggers { // apply deploymentConfig so we can find our objects on future apply invocations applyDeploymentConfig(&o.Metadata, fr) // index desired state desired[mapKey(&o.Metadata)] = true // exists? existingObj, ok := existent[mapKey(&o.Metadata)] if ok { // ok, a resource with the same name exists, is it the same? if reflect.DeepEqual(existingObj.Spec, o.Spec) { // nothing to do on the server metadataMap[mapKey(&o.Metadata)] = existingObj.Metadata } else { // update o.Metadata.ResourceVersion = existingObj.Metadata.ResourceVersion newmeta, err := fclient.HTTPTriggerUpdate(&o) if err != nil { return nil, nil, err } ras.updated = append(ras.updated, newmeta) // keep track of metadata in case we need to create a reference to it metadataMap[mapKey(&o.Metadata)] = *newmeta } } else { // create newmeta, err := fclient.HTTPTriggerCreate(&o) if err != nil { return nil, nil, err } ras.created = append(ras.created, newmeta) metadataMap[mapKey(&o.Metadata)] = *newmeta } } // deletes if delete { // objs is already filtered with our UID for _, o := range objs { _, wanted := desired[mapKey(&o.Metadata)] if !wanted { err := fclient.HTTPTriggerDelete(&o.Metadata) if err != nil { return nil, nil, err } ras.deleted = append(ras.deleted, &o.Metadata) fmt.Printf("Deleted %v %v/%v\n", o.TypeMeta.Kind, o.Metadata.Namespace, o.Metadata.Name) } } } return metadataMap, &ras, nil } func applyKubernetesWatchTriggers(fclient *client.Client, fr *FissionResources, delete bool) (map[string]metav1.ObjectMeta, *resourceApplyStatus, error) { // get list allObjs, err := fclient.WatchList(metav1.NamespaceAll) if err != nil { return nil, nil, err } // filter objs := make([]fv1.KubernetesWatchTrigger, 0) for _, o := range allObjs { if hasDeploymentConfig(&o.Metadata, fr) { objs = append(objs, o) } } // index existent := make(map[string]fv1.KubernetesWatchTrigger) for _, obj := range objs { existent[mapKey(&obj.Metadata)] = obj } metadataMap := make(map[string]metav1.ObjectMeta) // desired set. used to compute the set to delete. desired := make(map[string]bool) var ras resourceApplyStatus // create or update desired state for _, o := range fr.kubernetesWatchTriggers { // apply deploymentConfig so we can find our objects on future apply invocations applyDeploymentConfig(&o.Metadata, fr) // index desired state desired[mapKey(&o.Metadata)] = true // exists? existingObj, ok := existent[mapKey(&o.Metadata)] if ok { // ok, a resource with the same name exists, is it the same? if reflect.DeepEqual(existingObj.Spec, o.Spec) { // nothing to do on the server metadataMap[mapKey(&o.Metadata)] = existingObj.Metadata } else { // update o.Metadata.ResourceVersion = existingObj.Metadata.ResourceVersion newmeta, err := fclient.WatchUpdate(&o) if err != nil { return nil, nil, err } ras.updated = append(ras.updated, newmeta) // keep track of metadata in case we need to create a reference to it metadataMap[mapKey(&o.Metadata)] = *newmeta } } else { // create newmeta, err := fclient.WatchCreate(&o) if err != nil { return nil, nil, err } ras.created = append(ras.created, newmeta) metadataMap[mapKey(&o.Metadata)] = *newmeta } } // deletes if delete { // objs is already filtered with our UID for _, o := range objs { _, wanted := desired[mapKey(&o.Metadata)] if !wanted { err := fclient.WatchDelete(&o.Metadata) if err != nil { return nil, nil, err } ras.deleted = append(ras.deleted, &o.Metadata) fmt.Printf("Deleted %v %v/%v\n", o.TypeMeta.Kind, o.Metadata.Namespace, o.Metadata.Name) } } } return metadataMap, &ras, nil } func applyTimeTriggers(fclient *client.Client, fr *FissionResources, delete bool) (map[string]metav1.ObjectMeta, *resourceApplyStatus, error) { // get list allObjs, err := fclient.TimeTriggerList(metav1.NamespaceAll) if err != nil { return nil, nil, err } // filter objs := make([]fv1.TimeTrigger, 0) for _, o := range allObjs { if hasDeploymentConfig(&o.Metadata, fr) { objs = append(objs, o) } } // index existent := make(map[string]fv1.TimeTrigger) for _, obj := range objs { existent[mapKey(&obj.Metadata)] = obj } metadataMap := make(map[string]metav1.ObjectMeta) // desired set. used to compute the set to delete. desired := make(map[string]bool) var ras resourceApplyStatus // create or update desired state for _, o := range fr.timeTriggers { // apply deploymentConfig so we can find our objects on future apply invocations applyDeploymentConfig(&o.Metadata, fr) // index desired state desired[mapKey(&o.Metadata)] = true // exists? existingObj, ok := existent[mapKey(&o.Metadata)] if ok { // ok, a resource with the same name exists, is it the same? if reflect.DeepEqual(existingObj.Spec, o.Spec) { // nothing to do on the server metadataMap[mapKey(&o.Metadata)] = existingObj.Metadata } else { // update o.Metadata.ResourceVersion = existingObj.Metadata.ResourceVersion newmeta, err := fclient.TimeTriggerUpdate(&o) if err != nil { return nil, nil, err } ras.updated = append(ras.updated, newmeta) // keep track of metadata in case we need to create a reference to it metadataMap[mapKey(&o.Metadata)] = *newmeta } } else { // create newmeta, err := fclient.TimeTriggerCreate(&o) if err != nil { return nil, nil, err } ras.created = append(ras.created, newmeta) metadataMap[mapKey(&o.Metadata)] = *newmeta } } // deletes if delete { // objs is already filtered with our UID for _, o := range objs { _, wanted := desired[mapKey(&o.Metadata)] if !wanted { err := fclient.TimeTriggerDelete(&o.Metadata) if err != nil { return nil, nil, err } ras.deleted = append(ras.deleted, &o.Metadata) fmt.Printf("Deleted %v %v/%v\n", o.TypeMeta.Kind, o.Metadata.Namespace, o.Metadata.Name) } } } return metadataMap, &ras, nil } func applyMessageQueueTriggers(fclient *client.Client, fr *FissionResources, delete bool) (map[string]metav1.ObjectMeta, *resourceApplyStatus, error) { // get list allObjs, err := fclient.MessageQueueTriggerList("", metav1.NamespaceAll) if err != nil { return nil, nil, err } // filter objs := make([]fv1.MessageQueueTrigger, 0) for _, o := range allObjs { if hasDeploymentConfig(&o.Metadata, fr) { objs = append(objs, o) } } // index existent := make(map[string]fv1.MessageQueueTrigger) for _, obj := range objs { existent[mapKey(&obj.Metadata)] = obj } metadataMap := make(map[string]metav1.ObjectMeta) // desired set. used to compute the set to delete. desired := make(map[string]bool) var ras resourceApplyStatus // create or update desired state for _, o := range fr.messageQueueTriggers { // apply deploymentConfig so we can find our objects on future apply invocations applyDeploymentConfig(&o.Metadata, fr) // index desired state desired[mapKey(&o.Metadata)] = true // exists? existingObj, ok := existent[mapKey(&o.Metadata)] if ok { // ok, a resource with the same name exists, is it the same? if reflect.DeepEqual(existingObj.Spec, o.Spec) { // nothing to do on the server metadataMap[mapKey(&o.Metadata)] = existingObj.Metadata } else { // update o.Metadata.ResourceVersion = existingObj.Metadata.ResourceVersion newmeta, err := fclient.MessageQueueTriggerUpdate(&o) if err != nil { return nil, nil, err } ras.updated = append(ras.updated, newmeta) // keep track of metadata in case we need to create a reference to it metadataMap[mapKey(&o.Metadata)] = *newmeta } } else { // create newmeta, err := fclient.MessageQueueTriggerCreate(&o) if err != nil { return nil, nil, err } ras.created = append(ras.created, newmeta) metadataMap[mapKey(&o.Metadata)] = *newmeta } } // deletes if delete { // objs is already filtered with our UID for _, o := range objs { _, wanted := desired[mapKey(&o.Metadata)] if !wanted { err := fclient.MessageQueueTriggerDelete(&o.Metadata) if err != nil { return nil, nil, err } ras.deleted = append(ras.deleted, &o.Metadata) fmt.Printf("Deleted %v %v/%v\n", o.TypeMeta.Kind, o.Metadata.Namespace, o.Metadata.Name) } } } return metadataMap, &ras, nil } // called from `fission * create --spec` func specSave(resource interface{}, specFile string) error { specDir := "specs" // verify if _, err := os.Stat(filepath.Join(specDir, "fission-deployment-config.yaml")); os.IsNotExist(err) { return errors.Wrap(err, "Couldn't find specs, run `fission spec init` first") } // make sure we're writing a known type var data []byte var err error switch typedres := resource.(type) { case ArchiveUploadSpec: typedres.Kind = "ArchiveUploadSpec" data, err = yaml.Marshal(typedres) case fv1.Package: typedres.TypeMeta.APIVersion = SPEC_API_VERSION typedres.TypeMeta.Kind = "Package" data, err = yaml.Marshal(typedres) case fv1.Function: typedres.TypeMeta.APIVersion = SPEC_API_VERSION typedres.TypeMeta.Kind = "Function" data, err = yaml.Marshal(typedres) case fv1.Environment: typedres.TypeMeta.APIVersion = SPEC_API_VERSION typedres.TypeMeta.Kind = "Environment" data, err = yaml.Marshal(typedres) case fv1.HTTPTrigger: typedres.TypeMeta.APIVersion = SPEC_API_VERSION typedres.TypeMeta.Kind = "HTTPTrigger" data, err = yaml.Marshal(typedres) case fv1.KubernetesWatchTrigger: typedres.TypeMeta.APIVersion = SPEC_API_VERSION typedres.TypeMeta.Kind = "KubernetesWatchTrigger" data, err = yaml.Marshal(typedres) case fv1.MessageQueueTrigger: typedres.TypeMeta.APIVersion = SPEC_API_VERSION typedres.TypeMeta.Kind = "MessageQueueTrigger" data, err = yaml.Marshal(typedres) case fv1.TimeTrigger: typedres.TypeMeta.APIVersion = SPEC_API_VERSION typedres.TypeMeta.Kind = "TimeTrigger" data, err = yaml.Marshal(typedres) case fv1.Recorder: typedres.TypeMeta.APIVersion = SPEC_API_VERSION typedres.TypeMeta.Kind = "Recorder" data, err = yaml.Marshal(typedres) default: return fmt.Errorf("can't save resource %#v", resource) } if err != nil { return errors.Wrap(err, "Couldn't marshal YAML") } filename := filepath.Join(specDir, specFile) // check if the file is new newFile := false if _, err := os.Stat(filename); os.IsNotExist(err) { newFile = true } // open spec file to append or write f, err := os.OpenFile(filename, os.O_CREATE|os.O_APPEND|os.O_WRONLY, 0600) if err != nil { return errors.Wrap(err, "couldn't create spec file") } defer f.Close() // if we're appending, add a yaml document separator if !newFile { _, err = f.Write([]byte("\n---\n")) if err != nil { return errors.Wrap(err, "couldn't write to spec file") } } // write our resource _, err = f.Write(data) if err != nil { return errors.Wrap(err, "couldn't write to spec file") } return nil } // Returns metadata if the given resource exists in the specs, nil // otherwise. compareMetadata and compareSpec control how the // equality check is performed. func (fr *FissionResources) specExists(resource interface{}, compareMetadata bool, compareSpec bool) *metav1.ObjectMeta { switch typedres := resource.(type) { case *ArchiveUploadSpec: for _, aus := range fr.archiveUploadSpecs { if compareMetadata && aus.Name != typedres.Name { continue } if compareSpec && !(reflect.DeepEqual(aus.RootDir, typedres.RootDir) && reflect.DeepEqual(aus.IncludeGlobs, typedres.IncludeGlobs) && reflect.DeepEqual(aus.ExcludeGlobs, typedres.ExcludeGlobs)) { continue } return &metav1.ObjectMeta{Name: aus.Name} } return nil case *fv1.Package: for _, p := range fr.packages { if compareMetadata && !reflect.DeepEqual(p.Metadata, typedres.Metadata) { continue } if compareSpec && !reflect.DeepEqual(p.Spec, typedres.Spec) { continue } return &p.Metadata } return nil default: // XXX not implemented return nil } }