# Nx Workspace Boundaries This document records the current monorepo placement, tagging, and validation contract for IPTVnator. Nx discovery is the canonical project inventory; avoid copying an exhaustive project list into documentation. ## Fresh Worktree Bootstrap and Discovery Install dependencies before relying on Nx: ```bash pnpm install --frozen-lockfile pnpm nx show projects ``` `pnpm nx show projects` requires the workspace-local Nx packages in `node_modules`. Inspect project ownership and available validation targets before choosing commands: ```bash pnpm nx show project pnpm nx show projects --withTarget test pnpm nx show projects --withTarget e2e ``` Do not invent a `test`, `build`, or `e2e` target because a similarly named project has one. Run affected lint/test/build targets that exist and the closest available E2E target for the changed behavior. E2E applications must declare runtime dependencies even when they use HTTP instead of TypeScript imports. `web-e2e` includes `web-backend` in `implicitDependencies` so provider-proxy changes invalidate cached self-hosted PWA tests; starting the backend through a `serve` dependency alone does not make its source files inputs to the test hash. ## Nx Dependency Updates Keep `nx` and every official `@nx/*` package on the same exact version. Run `pnpm run deps:nx:validate` after any manifest or lockfile update; CI runs the same policy check and rejects both direct specifier drift and multiple resolved Nx versions. Dependabot groups routine minor and patch Nx updates when possible. A security update may still contain only the vulnerable package, so replace an incomplete Dependabot PR with a coordinated maintainer update instead of editing the bot branch: ```bash pnpm nx migrate nx@ --skipInstall pnpm install --no-frozen-lockfile pnpm nx migrate --run-migrations pnpm run deps:nx:validate ``` Omit `pnpm nx migrate --run-migrations` when the first command reports that no migrations exist. Major Nx updates always use this manual workflow and the resulting PR runs the full CI pipeline. ## Angular 22 Toolchain Compatibility Angular framework/Material 22.1 and CLI/build 22.1 use Nx 23.2 and TypeScript 6.0. Framework and CLI patch numbers may differ; keep framework packages aligned in both dependency sections and all official Nx packages on one exact version. Use `.nvmrc` for development/CI; supported LTS Node ranges are `^22.22.3 || ^24.15.0`. Docker uses the supported Node 24 line. The Angular 22 migration explicitly preserves the old default change detection with `ChangeDetectionStrategy.Eager`. Existing OnPush components and `provideZoneChangeDetection` remain in their existing modes. Existing eager components under Angular ESLint carry a line-scoped explanation for the newly recommended OnPush rule; new components keep that rule enabled. Adopting OnPush in those components requires a separate behavior review. TypeScript 6 migration settings preserve compiler defaults and per-project output roots; `ignoreDeprecations: "6.0"` temporarily supports legacy Node test configs and `baseUrl`, rather than changing the whole workspace to browser resolution. Two third-party packages need scoped compatibility bridges in `pnpm-workspace.yaml`: - `nx-electron@22.0.0` still declares Nx 22 peers. Its existing package-layout patch also changes the removed `@nx/js/src/utils/buildable-libs-utils` import to `@nx/js/internal`. A package extension supplies its undeclared runtime dependency `webpack-node-externals`. The packaging suite loads every executor and checks the single application manifest. Remove these bridges only after the upstream package declares and implements the current Nx APIs. - `ngx-indexed-db@22.0.0` declares Angular `<22`, but its used API remains compatible. Its allowance is scoped to the exact Angular version and must be revalidated on upgrades. `apps/web-e2e/src/basic.e2e.ts` opens a historical `iptvnator` v1 database, retains the `_id` key path, and checks reload persistence. The shared interfaces package declares the same library version. Remove the allowance when upstream includes the installed Angular version. Jest uses root Babel 7 while Angular build retains its own Babel 8. The website uses Astro 7 with the root TypeScript 6; no Astro-specific compiler package extension is needed. Keep the website build in toolchain validation. The website's alias uses a relative `./src/*` target without the deprecated `baseUrl` option. Electron's webpack build resolves `ts-loader` 9.6.2 through the existing `nx-electron` version range. Keep at least 9.5.7: earlier versions clear `rootDir` in transpile-only mode and fail with TypeScript 6 (TS5011/TS6059). Angular unit-test setup explicitly uses `setupZonelessTestEnv` and separately imports `zone.js/testing` for existing `fakeAsync` helpers. This preserves the Angular 21 scheduler used by jest-preset-angular 15: its `setupZoneTestEnv` loaded Zone but did not provide zone-based change detection on Angular 20+. Preset 17 does provide it, which disables automatic fixture rendering and changes `whenStable()` behavior. Production applications continue to use their existing `provideZoneChangeDetection`; browser and Electron E2E validate that runtime. ## Vite Dev-Server Patch Angular's development builder resolves Vite `8.1.5`. It contains upstream precise asset/worker URL matchers, but also uses them as raw-code prefilters. Those prefilters reject valid expressions containing comments before the handlers can strip the comments and apply the precise matchers. `patches/vite@8.1.5.patch` adds bounded asset/worker prefilters and uses the asset prefilter for bundled URL rewriting too. The precise handler matchers remain unchanged. This preserves the earlier protection against expensive scanning of large false-positive chunks and retains comment-bearing expressions. Remove the patch only when the resolved upstream Vite passes the same behavior checks: ```bash pnpm run deps:vite:test ``` CI runs the same check. It resolves Vite from `@angular/build`, verifies the patched prefilter/matcher wiring and version pin, stress-tests the false-positive chunk shape, and preserves ordinary and comment-bearing asset and worker `new URL(..., import.meta.url)` matches. ## Placement Decision - `apps/` owns runtime applications, development servers, E2E applications, and provider mock servers. - `libs/` owns reusable code grouped by product domain and architectural role. - `tools/` owns repository automation such as lint, packaging, release, and repository-skill validation. Nx projects there use `scope:tools`. Inside `libs/`, choose the role before the path: - `type:feature` owns routes, screens, and feature orchestration. - `type:ui` owns reusable visual components. - `type:data-access` owns injectable state, API access, persistence, and orchestration. - `type:util` is the destination for new pure helpers and contracts only. For example, provider-neutral collection services that coordinate favorites, recents, EPG, or playback persistence belong in `libs/portal/shared/data-access`. Pure collection types and transformations stay in `libs/portal/shared/util`, while reusable collection views stay in `libs/portal/shared/ui`. Existing injectable or stateful services in a `util` path are legacy debt, not precedent for new placement. Playback follows the same split: browser and Angular player integration stays in `libs/ui/playback`, while DOM-free diagnostic contracts and classifiers live in `libs/playback/util` and receive browser capability checks as explicit probes. `libs/playback/util` is the `playback-util` Nx project and is imported through `@iptvnator/playback/util`. Its exact tags are `scope:shared`, `domain:playback`, and `type:util`. It owns the public playback diagnostic, structured engine-evidence, source/engine-family, target-capability, content-session-key, and recovery-recommendation contracts and pure helpers. Its public API is `libs/playback/util/src/index.ts`. `playback-util` has no Angular, DOM, settings, storage, UI, or Electron IPC ownership. Browser/player adapters collect public engine events and supply explicit capability facts; `playback-util` classifies and ranks them without inspecting runtime globals. As a `type:util` project it may depend only on other utility projects, including shared interface contracts, while `ui-playback` and feature hosts may depend on it to render and execute session-local recovery actions. ## Project Tags Every Nx project keeps one tag from each family in `project.json`: 1. `scope:*` records ownership, such as `scope:portal`, `scope:workspace`, `scope:shared`, `scope:electron`, `scope:e2e`, or `scope:tools`. 2. `domain:*` records the product/runtime domain. 3. `type:*` records the architectural role. `eslint.config.mjs` enforces these type directions: | Source tag | Allowed dependency type tags | | ------------------ | ------------------------------ | | `type:app` | feature, UI, data-access, util | | `type:e2e` | feature, UI, data-access, util | | `type:dev-app` | feature, UI, data-access, util | | `type:website` | UI, util | | `type:feature` | feature, UI, data-access, util | | `type:ui` | UI, data-access, util | | `type:data-access` | data-access, util | | `type:util` | util | Domain constraints in the same rule are additive to type constraints. If an import violates either family, move the contract or implementation to its proper owner instead of weakening a constraint. `workspace-shell-util` is a deliberate path/tag exception: `libs/workspace/shell/util` is tagged `type:data-access` because it exports injectable services that depend on `@iptvnator/services`. The web app imports those services eagerly from `apps/web/src/app/app.routes.ts` without pulling the lazy workspace shell feature into the initial bundle. ## Import Aliases and Public APIs Use scoped aliases from `tsconfig.base.json` and expose public imports through a library's `src/index.ts`. Do not introduce legacy bare aliases such as `services`, `components`, `shared-interfaces`, or `database`, and avoid deep imports unless a sub-entrypoint is explicitly configured. For a buildable library that has a local `package.json`, its `name` must match the scoped alias. Nx uses that package name when rewriting buildable dependency paths to `dist/` during `@nx/js:tsc` builds. ## Shared Stylesheets and Cache Inputs Nx derives the project graph from TypeScript imports. A relative Sass `@use` that crosses a project root creates **no** graph edge, so without an explicit declaration the imported partial belongs to no task's input set. The build then reports a cache hit for a stylesheet edit and serves the previous CSS — a silent wrong build rather than a failure. Two rules keep that from happening: 1. A directory whose files are consumed by another project is itself an Nx project. Shared partials live in `libs/ui/styles`, project `ui-styles`, tagged `scope:shared`, `domain:shared-ui`, `type:ui`. It declares no targets; it exists so its files are hashed. 2. Every consumer declares the dependency Nx cannot infer: ```json "implicitDependencies": ["ui-styles"] ``` `@nx/enforce-module-boundaries` does not read stylesheets, so tag directions are not enforced here — keep consumers at `type:feature` or `type:ui`, both of which may depend on `type:ui`. Importing a partial that the consuming **application** owns is a different case and needs no declaration, because that partial already sits inside the app's own build inputs. It is still the wrong direction, and it is the one case the two rules above cannot repair: a lib → app edge would make the graph cyclic, since the app already depends on those libraries. Move the partial into `ui-styles` instead. No library stylesheet imports from `apps/` today — keep it that way. `pnpm run styles:inputs:validate` enforces both rules. It resolves every relative `@use`/`@forward`/`@import` in the workspace against Nx's own project graph and fails when an imported stylesheet sits outside the input closure of a build that compiles it, naming the project to declare. Comment-only example paths are ignored, so the documentation blocks inside the shared partials do not register as broken imports. CI runs it in the `unit-and-typecheck` job. Only a module Sass actually compiles counts as an input. `@import` is the one rule that takes a comma-separated list, and **every** target in it is a separate dependency — reading just the first would let a later cross-project target escape the cache key while the check still passed. A quoted string after the module in `@use`/`@forward` belongs to a `with (...)` configuration and is a value, and `url(...)` stays a plain CSS import the browser resolves at runtime; neither is a build input, and treating either as one would report a phantom broken import. Verify a suspected caching gap directly — add a comment to a partial, run the consuming build, and confirm the task runs instead of reporting a cache hit: ```bash pnpm nx build web --verbose ``` ## TypeScript File Size `tools/eslint/max-lines-config.mjs` is the single source of truth: - production TypeScript should stay below 300 lines and has a hard maximum of 400; - tests, E2E specs, and E2E infrastructure have a maximum of 1200; - blank lines and comments are not counted. Pre-existing violations live in `tools/eslint/max-lines-baseline.mjs`. That baseline may only shrink. After splitting a baselined file, run `node tools/eslint/generate-max-lines-baseline.mjs`; never add a new file to the baseline. A genuinely inseparable new file needs a justified file-wide directive, which the generator deliberately skips. ## Command-Based Lint Targets Quote recursive globs so POSIX and Windows hosts lint the same files: ```bash eslint "apps//**/*.ts" find apps/ -name '*.ts' | wc -l ``` An unquoted `**` can expand to a shallow subset on POSIX while still returning success. After editing such a target, compare ESLint's linted-file count with the `find` count. Repository tooling in `tools/` has the mirror-image trap: Node's `execSync` runs through `cmd.exe` on Windows, where single quotes are literal characters rather than quoting, so a POSIX-quoted pattern reaches the program intact and matches nothing. Spawn without a shell — `execFileSync('git', ['ls-files', '*.scss'])` — and let the program expand its own patterns. Both traps report success while covering nothing, so a check that scans an empty file set must fail rather than pass. ## CI Enforcement The CI lint job runs affected projects on pull requests and all projects on master pushes. Root config or lockfile changes affect every project, so module boundaries, legacy-alias restrictions, and max-lines enforcement apply across the workspace.