The build-machine seat emits `started` and `log.<build id>` beside `built`. Every line the builder speaks — each step, each command with its duration, and on failure the command's own output — goes to stderr as before and onto the bus under the build's id, one subject per build, kept a week in EVENTS with every other event. `builds --log <id>` reads it back from the stream with a consumer that is gone when the reading is done, on the command line and as the controller's seat verb; `builds` lists each build's id and `build` says the id it asked with. Lines are core publishes with a sequence number, so a build is not slowed by an ack per line and a gap is visible; `started` and `built` are awaited into the stream. The seat protocol widens additively at the controller's next start; the holder's grant follows on the broker node's next composition.
198 lines
7.0 KiB
Go
198 lines
7.0 KiB
Go
package main
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import (
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"bytes"
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"context"
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"encoding/json"
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"errors"
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"fmt"
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"os"
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"os/exec"
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"strings"
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"github.com/novox/mesh-controller/internal/catalogue"
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"github.com/novox/mesh-controller/internal/link"
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)
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// The mesh's own verbs, served as the mesh-controller seat's tools (novox/hq ADR 0154, design 33).
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//
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// **Each tool runs the command it names, in this same binary, and answers what it printed.** That is
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// ADR 0035 taken literally: the logic lives once, in the command, and a surface is an adapter with no
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// decisions in it. Running a fresh process rather than calling the function keeps two things true
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// that calling it would not — every command opens and closes its own stores the way it does from a
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// shell, and nothing a command prints to the process's standard output can leak into another call's
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// answer. It also means a refusal is the same refusal in the same words, because it is the same
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// output.
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// verbAnswer is what a verb answers: what the command printed, whether it succeeded, and — where the
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// command speaks JSON — the same as data.
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type verbAnswer struct {
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Output string `json:"output"`
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OK bool `json:"ok"`
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Answer any `json:"answer,omitempty"`
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}
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// argvFor is the command line a verb and its arguments become. Only the verbs the seat declares, and
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// only the arguments each declares: a caller cannot reach a flag the schema did not name.
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func argvFor(verb string, args map[string]any) ([]string, error) {
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str := func(key string) string {
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v, _ := args[key].(string)
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return strings.TrimSpace(v)
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}
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need := func(keys ...string) error {
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for _, k := range keys {
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if str(k) == "" {
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return fmt.Errorf("%s needs %q", verb, k)
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}
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}
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return nil
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}
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switch verb {
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case "status":
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return []string{"status", "--json"}, nil
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case "nodes":
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return []string{"node", "list"}, nil
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case "node":
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if err := need("node"); err != nil {
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return nil, err
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}
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return []string{"node", "show", str("node")}, nil
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case "modules":
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return []string{"module", "list"}, nil
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case "seats":
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return []string{"seats", "--json"}, nil
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case "builds":
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if id := str("log"); id != "" {
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return []string{"builds", "--log", id}, nil
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}
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if m := str("module"); m != "" {
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return []string{"builds", m}, nil
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}
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return []string{"builds"}, nil
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case "plan":
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if err := need("node"); err != nil {
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return nil, err
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}
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return []string{"plan", str("node"), "--json"}, nil
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case "assign", "unassign":
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if err := need("node", "module"); err != nil {
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return nil, err
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}
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return []string{verb, str("node"), str("module")}, nil
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case "push":
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// Sent and not waited for: the asker reads `status` for what the machine did, which is
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// what a person at a shell does too. A tool call that blocked for a push's whole apply would
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// time out on every machine that takes a minute, and say nothing about the ones that did not.
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if n := str("node"); n != "" {
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return []string{"push", n, "--wait", "0"}, nil
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}
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return []string{"push", "--behind", "--wait", "0"}, nil
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case "build":
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if err := need("repository"); err != nil {
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return nil, err
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}
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argv := []string{"build", str("repository"), "--wait", "0"}
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if p := str("path"); p != "" {
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argv = append(argv, "--path", p)
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}
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if r := str("ref"); r != "" {
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argv = append(argv, "--ref", r)
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}
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return argv, nil
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}
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return nil, fmt.Errorf("%q is not a verb the %s seat serves", verb, catalogue.ControllerSeatName)
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}
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// jsonVerbs are the verbs whose command speaks JSON, so the answer carries it as data as well.
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var jsonVerbs = map[string]bool{"status": true, "seats": true, "plan": true}
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// runVerb runs this binary with the given command line and gathers what it said.
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func runVerb(ctx context.Context, argv []string) (verbAnswer, error) {
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self, err := os.Executable()
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if err != nil {
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return verbAnswer{}, err
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}
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cmd := exec.CommandContext(ctx, self, argv...)
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// The same environment: the stores' credentials, the bus, the broker — everything a command run
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// from a shell in this container would have, because it is that.
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cmd.Env = os.Environ()
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// Two buffers, one answer. What the command *says* is both streams, in the order a person at
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// a shell would read them; what it *answers as data* is standard output alone — `status --json`
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// prints its warnings beside the document, and a JSON parsed from the two together parsed
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// nothing (2026-09-30, the first status asked through the console had no `answer`).
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var stdout, stderr bytes.Buffer
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cmd.Stdout = &stdout
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cmd.Stderr = &stderr
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runErr := cmd.Run()
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answer := verbAnswer{Output: stdout.String() + stderr.String(), OK: runErr == nil}
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if jsonVerbs[argv[0]] && runErr == nil {
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var parsed any
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if json.Unmarshal(bytes.TrimSpace(stdout.Bytes()), &parsed) == nil {
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answer.Answer = parsed
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}
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}
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var exit *exec.ExitError
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if runErr != nil && !errors.As(runErr, &exit) {
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// Not the command refusing — the command not running at all, which is this process's fault.
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return answer, fmt.Errorf("could not run %s: %w", strings.Join(argv, " "), runErr)
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}
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return answer, nil
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}
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// seatToolHandlers are the handlers for every verb the mesh-controller seat declares, from the
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// store's row, so a verb the row does not carry is not served and a verb it carries that this binary
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// cannot run is said at start rather than at the first call.
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func seatToolHandlers() (map[string]link.ToolHandler, error) {
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seat, known := catalogue.SeatNamed(catalogue.ControllerSeatName)
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if !known {
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return nil, fmt.Errorf("this mesh defines no %s seat", catalogue.ControllerSeatName)
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}
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handlers := map[string]link.ToolHandler{}
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for _, v := range seat.Serves {
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verb := v.Name
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if verb == "tools" {
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handlers[verb] = func(ctx context.Context, _ json.RawMessage) (any, error) {
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return seatTools(), nil
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}
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continue
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}
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if _, err := argvFor(verb, map[string]any{"node": "x", "module": "x", "repository": "x"}); err != nil {
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return nil, fmt.Errorf("the %s seat's row declares %q, which this control plane cannot run: %w",
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catalogue.ControllerSeatName, verb, err)
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}
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handlers[verb] = func(ctx context.Context, raw json.RawMessage) (any, error) {
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args := map[string]any{}
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if len(raw) > 0 {
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if err := json.Unmarshal(raw, &args); err != nil {
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return nil, fmt.Errorf("the arguments are not a JSON object: %w", err)
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}
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}
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argv, err := argvFor(verb, args)
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if err != nil {
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return nil, err
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}
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return runVerb(ctx, argv)
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}
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}
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return handlers, nil
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}
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// seatTools is what `tools` answers: every seat with a protocol, and the tools each serves, from the
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// mesh's own records — no holder in the path, so it is true while a holder restarts (design 33 §5).
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func seatTools() map[string]any {
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var seats []map[string]any
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for _, s := range catalogue.SeatsWithAProtocol() {
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if len(s.Serves) == 0 {
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continue
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}
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var tools []map[string]any
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for _, v := range s.Serves {
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tools = append(tools, map[string]any{
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"name": v.Name, "description": v.Description, "input": v.Input, "output": v.Output,
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})
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}
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seats = append(seats, map[string]any{"seat": s.Name, "scope": s.Scope, "tools": tools})
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}
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return map[string]any{"seats": seats}
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}
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