mirror of https://github.com/pulumi/pulumi.git
417 lines
16 KiB
Go
417 lines
16 KiB
Go
// Copyright 2016-2017, Pulumi Corporation. All rights reserved.
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package deploy
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import (
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"fmt"
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"github.com/golang/glog"
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pbempty "github.com/golang/protobuf/ptypes/empty"
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"github.com/pkg/errors"
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"golang.org/x/net/context"
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"google.golang.org/grpc"
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"github.com/pulumi/pulumi/pkg/resource"
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"github.com/pulumi/pulumi/pkg/resource/plugin"
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"github.com/pulumi/pulumi/pkg/tokens"
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"github.com/pulumi/pulumi/pkg/util/contract"
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"github.com/pulumi/pulumi/pkg/util/rpcutil"
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"github.com/pulumi/pulumi/pkg/workspace"
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lumirpc "github.com/pulumi/pulumi/sdk/proto/go"
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)
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// EvalRunInfo provides information required to execute and deploy resources within a package.
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type EvalRunInfo struct {
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Proj *workspace.Project `json:"proj" yaml:"proj"` // the package metadata.
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Pwd string `json:"pwd" yaml:"pwd"` // the package's working directory.
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Program string `json:"program" yaml:"program"` // the path to the program.
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Args []string `json:"args,omitempty" yaml:"args,omitempty"` // any arguments to pass to the package.
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Target *Target `json:"target,omitempty" yaml:"target,omitempty"` // the target being deployed into.
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}
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// NewEvalSource returns a planning source that fetches resources by evaluating a package with a set of args and
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// a confgiuration map. This evaluation is performed using the given plugin context and may optionally use the
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// given plugin host (or the default, if this is nil). Note that closing the eval source also closes the host.
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//
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// If destroy is true, then all of the usual initialization will take place, but the state will be presented to the
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// planning engine as if no new resources exist. This will cause it to forcibly remove them.
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func NewEvalSource(plugctx *plugin.Context, runinfo *EvalRunInfo, destroy bool, dryRun bool) Source {
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return &evalSource{
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plugctx: plugctx,
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runinfo: runinfo,
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destroy: destroy,
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dryRun: dryRun,
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}
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}
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type evalSource struct {
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plugctx *plugin.Context // the plugin context.
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runinfo *EvalRunInfo // the directives to use when running the program.
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destroy bool // true if this source will trigger total destruction.
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dryRun bool // true if this is a dry-run operation only.
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}
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func (src *evalSource) Close() error {
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return nil
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}
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func (src *evalSource) Project() tokens.PackageName {
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return src.runinfo.Proj.Name
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}
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func (src *evalSource) Info() interface{} {
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return src.runinfo
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}
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// Iterate will spawn an evaluator coroutine and prepare to interact with it on subsequent calls to Next.
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func (src *evalSource) Iterate(opts Options) (SourceIterator, error) {
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// First, fire up a resource monitor that will watch for and record resource creation.
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regChan := make(chan *registerResourceEvent)
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regOutChan := make(chan *registerResourceOutputsEvent)
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mon, err := newResourceMonitor(src, regChan, regOutChan)
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if err != nil {
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return nil, errors.Wrap(err, "failed to start resource monitor")
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}
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// Create a new iterator with appropriate channels, and gear up to go!
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iter := &evalSourceIterator{
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mon: mon,
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src: src,
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regChan: regChan,
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regOutChan: regOutChan,
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finChan: make(chan error),
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}
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// Now invoke Run in a goroutine. All subsequent resource creation events will come in over the gRPC channel,
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// and we will pump them through the channel. If the Run call ultimately fails, we need to propagate the error.
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iter.forkRun(opts)
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// Finally, return the fresh iterator that the caller can use to take things from here.
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return iter, nil
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}
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type evalSourceIterator struct {
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mon *resmon // the resource monitor, per iterator.
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src *evalSource // the owning eval source object.
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regChan chan *registerResourceEvent // the channel that contains resource registrations.
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regOutChan chan *registerResourceOutputsEvent // the channel that contains resource completions.
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finChan chan error // the channel that communicates completion.
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done bool // set to true when the evaluation is done.
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}
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func (iter *evalSourceIterator) Close() error {
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// Cancel the monitor and reclaim any associated resources.
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return iter.mon.Cancel()
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}
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func (iter *evalSourceIterator) Next() (SourceEvent, error) {
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// If we are done, quit.
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if iter.done {
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return nil, nil
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}
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// If we are destroying, we simply return nothing.
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if iter.src.destroy {
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return nil, nil
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}
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// Await the program to compute some more state and then inspect what it has to say.
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select {
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case reg := <-iter.regChan:
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contract.Assert(reg != nil)
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goal := reg.Goal()
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glog.V(5).Infof("EvalSourceIterator produced a registration: t=%v,name=%v,#props=%v",
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goal.Type, goal.Name, len(goal.Properties))
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return reg, nil
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case regOut := <-iter.regOutChan:
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contract.Assert(regOut != nil)
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glog.V(5).Infof("EvalSourceIterator produced a completion: urn=%v,#outs=%v",
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regOut.URN(), len(regOut.Outputs()))
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return regOut, nil
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case err := <-iter.finChan:
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// If we are finished, we can safely exit. The contract with the language provider is that this implies
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// that the language runtime has exited and so calling Close on the plugin is fine.
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iter.done = true
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if err != nil {
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glog.V(5).Infof("EvalSourceIterator ended with an error: %v", err)
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}
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return nil, err
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}
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}
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// forkRun performs the evaluation from a distinct goroutine. This function blocks until it's our turn to go.
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func (iter *evalSourceIterator) forkRun(opts Options) {
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// If we are destroying, no need to perform any evaluation beyond the config initialization.
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if !iter.src.destroy {
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// Fire up the goroutine to make the RPC invocation against the language runtime. As this executes, calls
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// to queue things up in the resource channel will occur, and we will serve them concurrently.
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// FIXME: we need to ensure that out of order calls won't deadlock us. In particular, we need to ensure: 1)
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// gRPC won't block the dispatching of calls, and 2) that the channel's fixed size won't cause troubles.
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go func() {
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// Next, launch the language plugin.
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// IDEA: cache these so we reuse the same language plugin instance; if we do this, monitors must be per-run.
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run := func() error {
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rt := iter.src.runinfo.Proj.Runtime
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langhost, err := iter.src.plugctx.Host.LanguageRuntime(rt)
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if err != nil {
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return errors.Wrapf(err, "failed to launch language host %s", rt)
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}
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contract.Assertf(langhost != nil, "expected non-nil language host %s", rt)
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// Make sure to clean up before exiting.
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defer contract.IgnoreClose(langhost)
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// Decrypt the configuration.
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config, err := iter.src.runinfo.Target.Config.Decrypt(iter.src.runinfo.Target.Decrypter)
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if err != nil {
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return err
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}
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// Now run the actual program.
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var progerr string
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progerr, err = langhost.Run(plugin.RunInfo{
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MonitorAddress: iter.mon.Address(),
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Stack: string(iter.src.runinfo.Target.Name),
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Project: string(iter.src.runinfo.Proj.Name),
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Pwd: iter.src.runinfo.Pwd,
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Program: iter.src.runinfo.Program,
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Args: iter.src.runinfo.Args,
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Config: config,
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DryRun: iter.src.dryRun,
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Parallel: opts.Parallel,
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})
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if err == nil && progerr != "" {
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// If the program had an unhandled error; propagate it to the caller.
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err = errors.Errorf("an unhandled error occurred: %v", progerr)
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}
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return err
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}
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// Communicate the error, if it exists, or nil if the program exited cleanly.
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iter.finChan <- run()
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}()
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}
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}
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// resmon implements the lumirpc.ResourceMonitor interface and acts as the gateway between a language runtime's
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// evaluation of a program and the internal resource planning and deployment logic.
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type resmon struct {
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src *evalSource // the evaluation source.
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regChan chan *registerResourceEvent // the channel to send resource registrations to.
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regOutChan chan *registerResourceOutputsEvent // the channel to send resource output registrations to.
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addr string // the address the host is listening on.
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cancel chan bool // a channel that can cancel the server.
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done chan error // a channel that resolves when the server completes.
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}
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// newResourceMonitor creates a new resource monitor RPC server.
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func newResourceMonitor(src *evalSource, regChan chan *registerResourceEvent,
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regOutChan chan *registerResourceOutputsEvent) (*resmon, error) {
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// New up an engine RPC server.
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resmon := &resmon{
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src: src,
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regChan: regChan,
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regOutChan: regOutChan,
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cancel: make(chan bool),
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}
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// Fire up a gRPC server and start listening for incomings.
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port, done, err := rpcutil.Serve(0, resmon.cancel, []func(*grpc.Server) error{
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func(srv *grpc.Server) error {
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lumirpc.RegisterResourceMonitorServer(srv, resmon)
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return nil
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},
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})
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if err != nil {
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return nil, err
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}
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resmon.addr = fmt.Sprintf("127.0.0.1:%d", port)
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resmon.done = done
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return resmon, nil
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}
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// Address returns the address at which the monitor's RPC server may be reached.
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func (rm *resmon) Address() string {
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return rm.addr
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}
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// Cancel signals that the engine should be terminated, awaits its termination, and returns any errors that result.
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func (rm *resmon) Cancel() error {
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rm.cancel <- true
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return <-rm.done
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}
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// Invoke performs an invocation of a member located in a resource provider.
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func (rm *resmon) Invoke(ctx context.Context, req *lumirpc.InvokeRequest) (*lumirpc.InvokeResponse, error) {
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// Fetch the token and load up the resource provider.
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// TODO: we should be flowing version information about this request, but instead, we'll bind to the latest.
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tok := tokens.ModuleMember(req.GetTok())
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prov, err := rm.src.plugctx.Host.Provider(tok.Package(), nil)
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if err != nil {
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return nil, err
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} else if prov == nil {
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return nil, errors.Errorf("could not load resource provider for package '%v' from $PATH", tok.Package())
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}
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// Now unpack all of the arguments and prepare to perform the invocation.
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label := fmt.Sprintf("ResourceMonitor.Invoke(%s)", tok)
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args, err := plugin.UnmarshalProperties(
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req.GetArgs(), plugin.MarshalOptions{Label: label, KeepUnknowns: true})
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if err != nil {
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return nil, errors.Wrapf(err, "failed to unmarshal %v args", tok)
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}
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// Do the invoke and then return the arguments.
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glog.V(5).Infof("ResourceMonitor.Invoke received: tok=%v #args=%v", tok, len(args))
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ret, failures, err := prov.Invoke(tok, args)
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if err != nil {
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return nil, errors.Wrapf(err, "invocation of %v returned an error", tok)
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}
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mret, err := plugin.MarshalProperties(ret, plugin.MarshalOptions{Label: label, KeepUnknowns: true})
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if err != nil {
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return nil, errors.Wrapf(err, "failed to marshal %v return", tok)
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}
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var chkfails []*lumirpc.CheckFailure
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for _, failure := range failures {
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chkfails = append(chkfails, &lumirpc.CheckFailure{
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Property: string(failure.Property),
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Reason: failure.Reason,
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})
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}
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return &lumirpc.InvokeResponse{Return: mret, Failures: chkfails}, nil
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}
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// RegisterResource is invoked by a language process when a new resource has been allocated.
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func (rm *resmon) RegisterResource(ctx context.Context,
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req *lumirpc.RegisterResourceRequest) (*lumirpc.RegisterResourceResponse, error) {
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// Communicate the type, name, and object information to the iterator that is awaiting us.
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t := tokens.Type(req.GetType())
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name := tokens.QName(req.GetName())
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label := fmt.Sprintf("ResourceMonitor.RegisterResource(%s,%s)", t, name)
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custom := req.GetCustom()
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parent := resource.URN(req.GetParent())
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protect := req.GetProtect()
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props, err := plugin.UnmarshalProperties(
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req.GetObject(), plugin.MarshalOptions{Label: label, KeepUnknowns: true, ComputeAssetHashes: true})
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if err != nil {
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return nil, err
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}
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glog.V(5).Infof(
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"ResourceMonitor.RegisterResource received: t=%v, name=%v, custom=%v, #props=%v, parent=%v, protect=%v",
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t, name, custom, len(props), parent, protect)
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// Send the goal state to the engine.
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step := ®isterResourceEvent{
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goal: resource.NewGoal(t, name, custom, props, parent, protect),
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done: make(chan *RegisterResult),
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}
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rm.regChan <- step
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// Now block waiting for the operation to finish.
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// IDEA: we probably need some way to cancel this in case of catastrophe.
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result := <-step.done
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state := result.State
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props = state.All()
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stable := result.Stable
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var stables []string
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for _, sta := range result.Stables {
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stables = append(stables, string(sta))
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}
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glog.V(5).Infof(
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"ResourceMonitor.RegisterResource operation finished: t=%v, urn=%v, stable=%v, #stables=%v #outs=%v",
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state.Type, state.URN, stable, len(stables), len(props))
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// Finally, unpack the response into properties that we can return to the language runtime. This mostly includes
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// an ID, URN, and defaults and output properties that will all be blitted back onto the runtime object.
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obj, err := plugin.MarshalProperties(props, plugin.MarshalOptions{Label: label, KeepUnknowns: true})
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if err != nil {
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return nil, err
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}
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return &lumirpc.RegisterResourceResponse{
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Urn: string(state.URN),
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Id: string(state.ID),
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Object: obj,
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Stable: stable,
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Stables: stables,
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}, nil
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}
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// RegisterResourceOutputs records some new output properties for a resource that have arrived after its initial
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// provisioning. These will make their way into the eventual checkpoint state file for that resource.
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func (rm *resmon) RegisterResourceOutputs(ctx context.Context,
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req *lumirpc.RegisterResourceOutputsRequest) (*pbempty.Empty, error) {
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// Obtain and validate the message's inputs (a URN plus the output property map).
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urn := resource.URN(req.GetUrn())
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if urn == "" {
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return nil, errors.New("missing required URN")
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}
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label := fmt.Sprintf("ResourceMonitor.RegisterResourceOutputs(%s)", urn)
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outs, err := plugin.UnmarshalProperties(
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req.GetOutputs(), plugin.MarshalOptions{Label: label, KeepUnknowns: true, ComputeAssetHashes: true})
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if err != nil {
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return nil, errors.Wrapf(err, "cannot unmarshal output properties")
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}
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glog.V(5).Infof("ResourceMonitor.RegisterResourceOutputs received: urn=%v, #outs=%v", urn, len(outs))
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// Now send the step over to the engine to perform.
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step := ®isterResourceOutputsEvent{
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urn: urn,
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outputs: outs,
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done: make(chan bool),
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}
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rm.regOutChan <- step
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// Now block waiting for the operation to finish.
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// IDEA: we probably need some way to cancel this in case of catastrophe.
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<-step.done
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glog.V(5).Infof(
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"ResourceMonitor.RegisterResourceOutputs operation finished: urn=%v, #outs=%v", urn, len(outs))
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return &pbempty.Empty{}, nil
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}
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type registerResourceEvent struct {
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goal *resource.Goal // the resource goal state produced by the iterator.
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done chan *RegisterResult // the channel to communicate with after the resource state is available.
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}
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var _ RegisterResourceEvent = (*registerResourceEvent)(nil)
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func (g *registerResourceEvent) event() {}
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func (g *registerResourceEvent) Goal() *resource.Goal {
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return g.goal
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}
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func (g *registerResourceEvent) Done(result *RegisterResult) {
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// Communicate the resulting state back to the RPC thread, which is parked awaiting our reply.
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g.done <- result
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}
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type registerResourceOutputsEvent struct {
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urn resource.URN // the URN to which this completion applies.
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outputs resource.PropertyMap // an optional property bag for output properties.
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done chan bool // the channel to communicate with after the operation completes.
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}
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var _ RegisterResourceOutputsEvent = (*registerResourceOutputsEvent)(nil)
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func (g *registerResourceOutputsEvent) event() {}
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func (g *registerResourceOutputsEvent) URN() resource.URN {
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return g.urn
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}
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func (g *registerResourceOutputsEvent) Outputs() resource.PropertyMap {
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return g.outputs
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}
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func (g *registerResourceOutputsEvent) Done() {
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// Communicate the resulting state back to the RPC thread, which is parked awaiting our reply.
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g.done <- true
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}
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