Step 3.4. On the new bus there is no reply queue to declare and no correlation to check: each account is granted one inbox prefix and no other, so an answer cannot reach the wrong asker. That settles a cost build.go records having paid — on a shared reply exchange every asker saw every result, which is why the correlation was checked rather than assumed. And a tool nobody serves says so at once rather than after the whole wait. The difference between "that module is down" and "that tool is slow" is the first thing a person asking wants, and both tests are against a real server because both are claims about what the server does, not about this code. RequestBuild stays as it is, and is a different shape on the new bus rather than the same one: a build takes minutes, so it is work submitted to a queue with the outcome returning to a reply subject the request carries — the pattern design 25 §2 already sets for anything crossing a stream. It touches the builder too, so it goes with that conversion.
167 lines
6.6 KiB
Go
167 lines
6.6 KiB
Go
package link
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import (
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"context"
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"errors"
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"fmt"
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"time"
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"github.com/nats-io/nats.go"
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amqp "github.com/rabbitmq/amqp091-go"
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)
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// Bus is what the controller needs of the mesh's bus, **in the mesh's own words rather than a
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// transport's** (novox/hq ADR 0116 step 3).
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//
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// Until now every one of these functions took the transport's own channel type, so the transport
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// reached every caller and changing it meant touching all of them. The seam is small — the
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// controller sends exactly two kinds of message that expect no answer, and asks two kinds of
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// question — which is why the bus can be replaced at all.
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//
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// Two implementations live below, and both ship until the rollout (ADR 0116: nothing moves a
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// node's bus before step 5). Both shipping is what makes them comparable — the same caller, the
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// same arguments, and one conformance fixture holding them to one envelope.
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type Bus interface {
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// PublishEvent announces something that happened, under the emitter's own name. 1:many, and
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// nobody is obliged to act (ADR 0041).
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PublishEvent(ctx context.Context, key, source, node string, body []byte) error
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// PublishDeclaration delivers one node what it should be. Addressed to that node alone: a
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// declaration is not an event, and replaying yesterday's is actively harmful
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// (design 29 §4, the *state* shape).
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PublishDeclaration(ctx context.Context, node string, body []byte) error
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// AskTool sends one question to a module's tool and awaits one answer. A tool nobody serves
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// must say so **at once** rather than after the whole wait: the difference between "that
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// module is down" and "that tool is slow" is the first thing a person asking wants.
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AskTool(ctx context.Context, module, tool string, args []byte, timeout time.Duration) ([]byte, error)
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}
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// --- The bus the mesh runs on today -----------------------------------------------------
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// OverCurrent is the bus the mesh runs on today, until the rollout.
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type OverCurrent struct{ Channel *amqp.Channel }
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func (b OverCurrent) PublishEvent(ctx context.Context, key, source, node string, body []byte) error {
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id, err := eventID()
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if err != nil {
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return err
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}
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return b.Channel.PublishWithContext(ctx, EventsExchange, key, false, false, amqp.Publishing{
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ContentType: "application/json",
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DeliveryMode: amqp.Persistent,
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MessageId: id,
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Timestamp: time.Now().UTC(),
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Body: body,
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Headers: amqp.Table{
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"x-event-id": id,
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"x-source": source,
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"x-node": node,
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"x-time": time.Now().UTC().Format(time.RFC3339),
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"content-type": "application/json",
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},
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})
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}
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// AskTool is implemented over the existing reply-queue machinery in ask.go; this seam does not
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// change how it works today.
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func (b OverCurrent) AskTool(ctx context.Context, module, tool string, args []byte, timeout time.Duration) ([]byte, error) {
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answer, err := Ask(ctx, b.Channel, module, tool, args, timeout)
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if err != nil {
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return nil, err
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}
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return answer.Result, nil
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}
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func (b OverCurrent) PublishDeclaration(ctx context.Context, node string, body []byte) error {
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// To the queue directly rather than through an exchange: a declaration is for one node, and
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// routing it by name through a shared exchange would mean a binding per node that nothing
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// removes when a node is retired.
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return b.Channel.PublishWithContext(ctx, "", QueueFor(node), false, false, amqp.Publishing{
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ContentType: "application/json",
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DeliveryMode: amqp.Persistent,
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Body: body,
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})
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}
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// --- NATS, the bus being built ----------------------------------------------------------------
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// OverNATS is the bus as a JetStream context.
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type OverNATS struct {
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Conn *nats.Conn
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JS nats.JetStreamContext
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}
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// EventSubject is where a module's event lands. Derived from the emitter, never taken from the
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// caller: a source that could differ from the subject is an envelope that can lie about its
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// origin, and on NATS the account's permissions make the subject the authority (design 29 §2).
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func EventSubject(source, key string) string {
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return "mesh.mod." + source + ".event." + key
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}
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// DeclareSubject is where one node's declaration lands. Last-per-subject on the NODES stream, so
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// a node that was away gets exactly the current one and a replayed older one is refused by
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// sequence — the wire-level answer to novox/hq issue 107.
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func DeclareSubject(node string) string { return "mesh.node." + node + ".declare" }
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func (b OverNATS) PublishEvent(ctx context.Context, key, source, node string, body []byte) error {
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id, err := eventID()
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if err != nil {
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return err
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}
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h := nats.Header{}
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h.Set("x-event-id", id)
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h.Set("x-source", source)
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h.Set("x-node", node)
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h.Set("x-time", time.Now().UTC().Format(time.RFC3339))
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h.Set("content-type", "application/json")
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// The id is also the publish's message id, so the server refuses a duplicate inside its
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// window. That narrows the window a consumer must deduplicate in; it does not remove the
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// requirement, because the window is finite (design 19, delivery).
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_, err = b.JS.PublishMsg(&nats.Msg{
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Subject: EventSubject(source, key),
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Header: h,
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Data: body,
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}, nats.MsgId(id), nats.Context(ctx))
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if err != nil {
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return fmt.Errorf("emitting %s: %w", key, err)
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}
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return nil
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}
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func (b OverNATS) PublishDeclaration(ctx context.Context, node string, body []byte) error {
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_, err := b.JS.Publish(DeclareSubject(node), body, nats.Context(ctx))
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if err != nil {
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return fmt.Errorf("declaring to %s: %w", node, err)
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}
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return nil
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}
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// ToolSubject is where a module answers. Derived from the module and the tool, so a caller names
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// what it wants rather than where it lives.
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func ToolSubject(module, tool string) string { return "mesh.mod." + module + ".tool." + tool }
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func (b OverNATS) AskTool(ctx context.Context, module, tool string, args []byte, timeout time.Duration) ([]byte, error) {
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if len(args) == 0 {
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args = []byte(`{}`)
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}
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ask, cancel := context.WithTimeout(ctx, timeout)
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defer cancel()
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// **No reply queue, and no correlation to check.** The caller's inbox is its own — each
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// account is granted one prefix and no other (design 25 §4) — so an answer cannot reach the
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// wrong asker and there is nothing to correlate against. That also settles a cost recorded
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// in build.go: on a shared reply exchange every asker saw every result.
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msg, err := b.Conn.RequestWithContext(ask, ToolSubject(module, tool), args)
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if err != nil {
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if errors.Is(err, nats.ErrNoResponders) {
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// Said at once rather than after the whole wait: nothing is subscribed to that
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// subject, which is a different fact from a tool being slow.
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return nil, fmt.Errorf("nothing serves %s.%s", module, tool)
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}
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return nil, fmt.Errorf("asking %s.%s: %w", module, tool, err)
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}
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return msg.Data, nil
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}
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