defineCommand is the declarative way to add a command to the NativeScript
CLI. A definition is a plain object: a name, an option schema, and a run
function. The CLI compiles it into the command shape its registry expects, so a
definition gets the same option parsing, hooks, analytics and help wiring as a
hand-written command class — without a class, a constructor, or an
allowedParameters array.
This is purely additive. The legacy ICommand classes registered through
$injector.registerCommand keep working exactly as before, and the two styles
coexist in the same registry.
import {
defineCommand,
booleanOption,
stringOption,
} from "nativescript/contracts";
export default defineCommand({
name: "widget|add",
description: "Adds a widget to the project",
options: {
overwrite: booleanOption({ default: false }),
output: stringOption({ alias: "o" }),
},
arguments: "any",
async run(ctx) {
// ctx.args -> string[] of positional arguments
// ctx.options -> { overwrite: boolean; output: string | undefined }
if (ctx.options.output) {
console.log(`adding ${ctx.args.join(", ")} to ${ctx.options.output}`);
}
},
});defineCommand validates the definition and returns it, tagged with a marker
symbol so that any copy of the CLI can recognise it. isCommandDefinition(value)
is the exported check, and it narrows to DefinedCommand. The tag survives a
spread, so { ...baseDefinition, name: "widget|add2" } is still recognised.
defineCommand does not register anything by itself — see
Registering a definition.
A definition is checked at the moment defineCommand is called, not when the
command eventually runs. A misspelled field, a missing run, an option
declared with something other than the four helpers, an arguments value
outside "none" | "any" — each throws immediately, naming the command and the
accepted form:
Invalid command definition for 'widget|add': unknown field(s) 'handler'; a
definition accepts name, description, options, arguments, canExecute,
disableAnalytics, enableHooks, run. Accepted form: defineCommand({ name:
"widget|add", run(ctx) { ... } }) — with the optional fields description,
options, arguments, canExecute, disableAnalytics and enableHooks.
name is either a single string or an array of strings, in which case every
entry becomes an alias for the same command.
The CLI's command registry is flat; the hierarchy the user types on the command
line is encoded in the name with a | separator. "widget|add" is the command
invoked as ns widget add, and "widget|template|list" is ns widget template list. Registering a hierarchical name automatically synthesises the parent
dispatcher (widget), which routes to the right subcommand or prints help.
A leading * on the last segment marks a default subcommand: "widget|*add"
runs both for ns widget add and for a bare ns widget. This is the convention
the CLI's own commands use (run|*all, debug|*all); the encoding is
user-visible because it feeds shell autocompletion and generated help.
A parent name cannot also be a command of its own. If widget is already
registered as a flat command, registering widget|add leaves that command in
place, warns naming both, and creates no dispatcher — so ns widget add will
not route until one of the two is renamed.
options is a schema keyed by the long option name — output is passed as
--output. Declare each entry with one of the four helpers, which fix the
value type:
| Helper | Declared with default |
Declared without |
|---|---|---|
booleanOption |
boolean |
boolean | undefined |
stringOption |
string |
string | undefined |
numberOption |
number |
number | undefined |
arrayOption |
string[] |
string[] | undefined |
The two columns are the whole story of the option types: a flag the user did
not pass is absent at runtime, so only a default makes the value on
ctx.options always present. Declare a default whenever there is a sensible
one and the | undefined disappears from the type.
Each helper takes an optional spec:
options: {
// --release, absent means false
release: booleanOption({ default: false }),
// --output <dir>, also accepted as -o <dir>
output: stringOption({ alias: "o", description: "Output directory" }),
// --retries <n>
retries: numberOption({ default: 3 }),
// --file a.ts --file b.ts
file: arrayOption(),
// kept out of analytics and logs
token: stringOption({ hasSensitiveValue: true }),
}default— value used when the flag is absent.alias— single-dash shorthand, or an array of them (alias: ["o", "out"]).hasSensitiveValue— defaults tofalse; set it for anything that must not be recorded. There is no reason not to be explicit about credentials, paths containing user directories, and tokens.description— reserved for generated help. It reaches the option parser but nothing renders it yet.
The schema types ctx.options and nothing else: ctx.options carries exactly
the declared keys, and a typo is a compile error. Values that the CLI parses
globally (--path, --log, …) are not exposed there; resolve the options
service if you need them.
Extract the schema with satisfies rather than a type annotation. An
annotation widens every entry back to the general spec type and the default
information — and with it the non-optional value types — is lost:
const buildOptions = {
release: booleanOption({ default: false }),
output: stringOption({ alias: "o" }),
} satisfies CommandOptionsSchema;--verbose, --path, --log, --release, --env and friends are declared by
the CLI itself. Declaring one of those names in a command's schema makes the
command's declaration win for the duration of that command, which means the
same flag means different things depending on which command is running. The CLI
warns at registration naming both sides of the collision; pick another name.
Aliases count too, in both directions: an alias: "p" collides with --path's
shorthand just as output: stringOption() would collide with a CLI-wide
--output.
Option validation is the CLI's existing behaviour, not something the definition opts into. Before a command runs, the parser is re-primed with that command's declared options and the command line is re-parsed:
- Declared options are accepted and appear on
ctx.options. - An option the CLI does not know — neither global nor declared by this command
— produces a warning:
The option '<name>' is not supported. This will become an error in a future release.The command still runs. SetNS_STRICT_OPTIONS=errorto preview the hard failure, which is what a future release will do by default. - The same staging applies to value-shape violations: a string option passed with no value, an array option passed nothing, a single-valued option passed twice.
So adding an option is a matter of adding a schema entry; forgetting to declare
one that users pass is a warning today and a failure later, never a silent
undefined.
arguments declares whether the command takes positional arguments at all:
"none"(the default) — the command accepts no positional arguments. Passing any is rejected withThis command doesn't accept parameters."any"— positional arguments are accepted and handed torunasctx.args.
Anything finer than that belongs in canExecute.
defineCommand({
name: "widget|add",
arguments: "any",
async canExecute(ctx) {
return ctx.args.length === 1;
},
async run(ctx) {
/* ... */
},
});The two fields compose. The declared arguments policy is enforced first, and
canExecute is consulted only for command lines that already satisfy it — so a
definition that leaves arguments at "none" still rejects stray positional
arguments even when it supplies a canExecute, and a canExecute that only
inspects options cannot accidentally widen what the command accepts.
canExecute receives a context of the same shape as run's — the same
args, the same declared options and the same fail — built freshly for the
call, and returns a boolean (or a promise of one). Returning false aborts the
command and prints a bare help suggestion; ctx.fail(message) aborts it with
your own message, which is usually the friendlier choice.
canExecute runs inside a dependency-injection context, on the same terms as
run: inject() is valid up to the first await.
run(ctx) receives:
ctx.args—string[], the positional arguments left after the command name (including any subcommand segments) has been consumed.ctx.options— the current value of each declared option, read at the moment the command executes.ctx.fail(message)— fails the command withmessageand a usage help suggestion.
run may be synchronous or async; the CLI awaits the result and treats a
rejection as a command failure.
ctx.fail(message) is the idiomatic way to stop a command:
defineCommand({
name: "widget|add",
arguments: "any",
options: { output: stringOption() },
async run(ctx) {
if (!ctx.options.output) {
ctx.fail("--output is required.");
}
/* ... */
},
});It is available on the canExecute context as well, and it returns never, so
it can end a branch without a return. The message must be a non-empty string.
Throwing is equivalent and keeps working — ctx.fail is sugar over the
errors service's failWithHelp, which is what adds the "Run ns widget add --help" line. Throw when you already have an Error to propagate; call
ctx.fail when you are writing the message.
run starts inside a dependency-injection context, so inject() works
directly:
import { defineCommand, inject } from "nativescript/contracts";
import { DoctorService } from "nativescript/contracts";
export default defineCommand({
name: "widget|check",
async run() {
const doctorService = inject(DoctorService);
await doctorService.printWarnings();
},
});The injection context is synchronous: inject() is valid up to the first
await in run, and not after it. Capture what you need at the top of run,
or inject the Injector itself and use injector.get() for late lookups. See
dependency-injection.md.
disableAnalytics: true— skips analytics tracking for this command.enableHooks: false— skips the before/after hooks that normally run around the command. Hooks are enabled by default.
Both are simply passed through to the command the CLI executes; omitting them leaves the CLI's defaults in place.
Inside the CLI, a definition is registered with registerCommandDefinition:
import { registerCommandDefinition } from "../common/services/command-definition-adapter";
import addWidgetCommand from "./add-widget";
registerCommandDefinition(addWidgetCommand);It takes a DefinedCommand — the result of defineCommand, marker and all —
and rejects a bare object of the right shape, so a definition can never reach
the registry without having been validated. It registers under every name the
definition declares, through the CommandRegistry the target injector provides;
pass a second argument to target a different injector (tests do this). The
command instance is built by a factory on first resolution and cached.
registerCommandDefinition lives in
lib/common/services/command-definition-adapter rather than in
nativescript/contracts, because it reaches into the CLI runtime — the
side-effect-free contracts entry point deliberately does not pull it in.
defineCommand, the option helpers and all the types are exported from both
nativescript/contracts and lib/common/define-command.
Extensions do not need registerCommandDefinition at all: a
nativescript.commands manifest entry may point straight at a module that
exports a definition, and the CLI adapts and registers it lazily under the
manifest key (see extensions.md).
A definition is compiled into an ordinary ICommand, so nothing downstream —
the registry, the router, hooks, help, analytics — knows the difference. The
mapping is:
| Definition | ICommand |
|---|---|
options |
dashedOptions |
run |
execute, wrapped in an injection context |
arguments, canExecute |
canExecute: policy enforced, then the refinement |
| — | allowedParameters, always [] |
disableAnalytics, enableHooks |
passed through unchanged |
The compiled command always exposes canExecute, because CommandsService
stops consulting allowedParameters as soon as a command has one — the adapter
therefore enforces the arguments policy itself.
Existing command classes need no migration. Reach for a definition when a
command is mostly "parse these flags and do this"; a class still makes sense
when a command needs constructor-injected collaborators shared across several
methods, custom ICommandParameter validators, or a postCommandAction.