Files
hyperframes/packages/aws-lambda
James RussoandClaude Opus 4.7 5d264e146c docs(lambda): document webm support + simplify-review fixes (#953)
* docs(lambda): document webm support in distributed mode

PR 8.4 of the WebM distributed-rendering plan (v1.5 backlog #1; see
DISTRIBUTED-RENDERING-PLAN.md §7.2). User-facing docs catch up with the
shipped capability.

Updates docs/deploy/migrating-to-hyperframes-lambda.mdx:

- "Output format" row in the migration table now lists `webm` alongside
  mp4 / mov / png-sequence with a note that webm uses libvpx-vp9 +
  closed-GOP concat-copy. HDR mp4 remains the only refused format.

- "No webm distributed" caveat replaced with "webm uses closed-GOP VP9"
  explainer covering the encoder args (`-g <chunkSize>`,
  `-keyint_min <chunkSize>`, `-auto-alt-ref 0`, `-cpu-used 2`), why
  alt-ref disable is load-bearing, and that the output preserves alpha
  via yuva420p with Opus audio.

- Migration checklist no longer asks adopters to filter out webm
  compositions; only HDR-dependent renders need to stay on the previous
  framework.

aws-lambda.mdx doesn't currently call out webm as unsupported (only HDR
in the v1 surface list), so it gets no copy edits beyond the migration
guide.

The internal planning doc (DISTRIBUTED-RENDERING-PLAN.md §7.2, §8,
§12 — kept outside the repo) gets matching updates: format support
matrix flipped ✓, v1.5 backlog #1 marked shipped, HDR promoted to the
new top item, and the rev-12 → rev-13 status line.

Co-Authored-By: Claude Opus 4.7 (1M context) <noreply@anthropic.com>

* refactor: address simplify-review findings on webm stack

Folds in cleanups identified by a multi-agent code-review pass over the
4-PR webm-distributed stack:

- plan.ts: `resolveEncoderTriple()` webm case now calls
  `getEncoderPreset(quality, "webm")` for its preset string instead of
  hardcoding "good". The hardcode was wrong for `quality: "draft"`
  (`getEncoderPreset` returns "realtime" for that tier) — would have
  silently overridden the draft → realtime mapping for distributed webm
  renders.
- chunkEncoder.ts: trim the new VP9 closed-GOP comment block from ~18
  lines of WHY narration down to the 6 lines that actually explain why
  (alt-ref + cpu-used drift). Match the alpha branch's idempotent-push
  comment to the same standard.
- chunkEncoder.test.ts: drop the duplicate WHY comment that restated
  the implementation comment in plain words.
- webm-concat-copy.test.ts: rewrite the file-header docstring to
  describe the contract being tested instead of the PR-8.1-gating
  history; strip "PR 8.2 / Path A / Path B" references from error
  messages (they belong in PR bodies, not in test output). Consolidate
  the yuva420p alpha smoke into a single `it()` block (was a full
  4-test describe with duplicated setup) — the yuv420p block already
  covers the probe/decode/frame-count contract; the alpha smoke only
  needs to prove the alpha args don't break concat-copy.
- plan.test.ts: drop the "PR 8.1 proved the contract" comment.
- webm-vp9 fixture: drop the aspirational "Other webm-with-audio
  fixtures cover the mux path separately when added" sentence (no
  other fixtures exist). Regenerated the baseline via
  `docker:test:update webm-vp9` to reflect the updated comment.
- migrating-to-hyperframes-lambda.mdx: add a paragraph about
  distributed webm's perf cost — ~10-25% larger files at constant CRF
  due to forced keyframes, and slower per-chunk encode due to
  `-cpu-used 2` being more conservative than the libvpx default.

All unit tests + the webm-vp9 distributed-simulated regression still
pass after these changes.

Co-Authored-By: Claude Opus 4.7 (1M context) <noreply@anthropic.com>

* fix(cli): accept --format=webm in `hyperframes lambda render`

The CLI's `lambda render` subcommand's FORMATS allowlist and the
`RenderArgs.format` type still narrowed to `mp4 | mov | png-sequence`,
so even though the producer + aws-lambda packages now support webm
end-to-end, the CLI surface rejected it with `--format must be mp4|mov|
png-sequence`. Add webm to both spots and update the --help description.

Surfaced during real-AWS deploy prep — the local lambda-local /
distributed-simulated tests didn't go through the CLI so the gap went
unnoticed.

Co-Authored-By: Claude Opus 4.7 (1M context) <noreply@anthropic.com>

* fix(producer): font cache writes to /tmp on Lambda (read-only \$HOME)

The deterministic Google Fonts cache was rooted at
`\$HOME/.cache/hyperframes/fonts`, which fails on AWS Lambda — the
runtime's `\$HOME` resolves to a `/home/sbx_*` directory tree that's
read-only. `mkdirSync(..., { recursive: true })` can't create that
path and the plan stage trips with `ENOENT: no such file or directory,
mkdir '/home/sbx_user1051/.cache/hyperframes/fonts/space-mono'` on
every Lambda render that pulls a Google Font (i.e. every distributed
fixture using `@import url("https://fonts.googleapis.com/...")`).

Detect Lambda via `\$AWS_LAMBDA_FUNCTION_NAME` and route the cache to
`tmpdir()/hyperframes/fonts` in that case. Lambda's `/tmp` survives
across invocations on a warm container, so cache hit rate is the same
as non-Lambda runs. Also honor an explicit
`\$HYPERFRAMES_FONT_CACHE_DIR` override for adopters who want a
different location regardless of the runtime.

Surfaced while verifying webm distributed end-to-end on real AWS — the
same bug affects mp4 fixtures using Google Fonts; webm just happened to
be the one I tried first.

Co-Authored-By: Claude Opus 4.7 (1M context) <noreply@anthropic.com>

* refactor: extract DistributedFormat type + trim font-cache resolver

Second simplify-review pass on the webm stack flagged two cleanups:

1. **`DistributedFormat` type duplicated 10 times.** Every file in the
   distributed pipeline carried its own copy of
   `"mp4" | "mov" | "png-sequence" | "webm"` — adding a new format
   meant a 10-place edit with no compile-time guarantee they stayed in
   sync. Extract a single source of truth in
   `packages/producer/src/services/distributed/shared.ts`, re-export
   from `@hyperframes/producer/distributed` and
   `@hyperframes/aws-lambda/sdk`, and have all callers pull from
   there. The aws-lambda `ALLOWED_FORMATS` runtime tuple and the CLI's
   `FORMATS` tuple now both use `satisfies readonly DistributedFormat[]`
   so the compiler enforces the runtime allowlist stays in sync with
   the type.

2. **`deterministicFonts.ts` font-cache resolver was over-commented.**
   Trim the 7-line block to 4 lines (drop the aspirational
   "and other read-only-FS execution environments" — only Lambda is
   detected — and the warm-container `/tmp` persistence narration —
   anyone reading already knows Lambda /tmp semantics). Collapse the
   two-step `if (explicit && explicit.length > 0)` into a single
   nullish-coalesce expression now that the empty-string defensive
   check is gone (`process.env.X` is `string | undefined`, no third
   shape to guard against).

Out-of-scope skips (called out by the agents, deferred):
- In-process `RenderConfig.format` and the in-process CLI's
  `render.ts` format union still carry their own inline copies. The
  union happens to coincide today but they're separate concerns —
  leaving them alone limits this PR's blast radius.
- `fontCacheDir(slug)` / `resolveFontCacheRoot()` naming asymmetry
  flagged as taste; skipping.
- Pre-existing redundant `existsSync` before `mkdirSync({ recursive:
  true })` in `fontCacheDir` — out of scope.

All tests + typecheck still pass. Lambda render still works
end-to-end (no functional changes).

Co-Authored-By: Claude Opus 4.7 (1M context) <noreply@anthropic.com>

* docs(lambda): drop plan-doc reference from migration checklist

PR review feedback: source/docs should not mention the
distributed-rendering planning doc. Tighten the migration checklist
sentence to describe the webm path directly rather than referencing
the doc's version label.

Co-Authored-By: Claude Opus 4.7 (1M context) <noreply@anthropic.com>

* refactor(producer): split resolveEncoderTriple into mp4 + non-mp4 helpers

CI Fallow audit on PR #953 flagged `resolveEncoderTriple` at CRAP 31.6 —
the function interleaved (a) mp4 codec validation + dispatch, (b) the
non-mp4 codec-rejection throw, and (c) per-format dispatch. Splitting
into `resolveMp4EncoderTriple` + `resolveNonMp4EncoderTriple` drops the
top-level function's cyclomatic complexity below the threshold while
preserving every error message and code path. Behavior unchanged.

Also extracts an `EncoderTriple` type alias so the three functions
share the return shape declaratively rather than repeating it.

Co-Authored-By: Claude Opus 4.7 (1M context) <noreply@anthropic.com>

---------

Co-authored-by: Claude Opus 4.7 (1M context) <noreply@anthropic.com>
2026-05-19 04:11:26 -04:00
..
2026-05-19 02:33:31 +00:00

@hyperframes/aws-lambda

AWS Lambda adapter for HyperFrames distributed rendering. Ships three things together:

  1. The Lambda handler that wraps the OSS plan / renderChunk / assemble primitives behind a single dispatch boundary Step Functions can drive (src/handler.ts).
  2. A client-side SDKrenderToLambda, getRenderProgress, deploySite, plus validateDistributedRenderConfig and computeRenderCost (src/sdk/).
  3. An aws-cdk-lib L2 construct (HyperframesRenderStack) that provisions the same topology as examples/aws-lambda/template.yaml inside an adopter's own CDK app (src/cdk/).

The handler ZIP and the SAM template still drive a maintainer-run real-AWS smoke flow; the SDK + CDK are the supported public surface for adopters.

Architecture

┌──────────────────────────────────────────────────────────────────┐
│ Step Functions state machine                                     │
│   Plan → Map(N) RenderChunk → Assemble                           │
└──────────────────────────────────────────────────────────────────┘
                              │ dispatches by event.Action
                              ▼
┌──────────────────────────────────────────────────────────────────┐
│ One Lambda function (this package's `dist/handler.zip`)          │
│   handler.mjs                                                    │
│     ├─ Action="plan"        → @hyperframes/producer/distributed  │
│     ├─ Action="renderChunk" → @hyperframes/producer/distributed  │
│     └─ Action="assemble"    → @hyperframes/producer/distributed  │
│   bin/ffmpeg                — ffmpeg-static                      │
│   node_modules/@sparticuz/chromium/ — Lambda-optimised Chromium  │
└──────────────────────────────────────────────────────────────────┘
                              │ pure functions over local paths
                              ▼
┌──────────────────────────────────────────────────────────────────┐
│ S3 bucket — plan tarball + per-chunk outputs + final mp4         │
└──────────────────────────────────────────────────────────────────┘

The handler downloads inputs from S3 into /tmp, calls the OSS primitive, uploads outputs back to S3, and returns a small JSON result that fits inside Step Functions' history budget (under 200 bytes per chunk).

Chrome runtime

The package supports two Chromium sources:

Source Default Size When to pick it
@sparticuz/chromium yes ~70 MiB compressed Lambda. Decompresses into /tmp at runtime; the rest of the ecosystem already uses it for headless-Chrome-in-Lambda.
Bundled chrome-headless-shell no ~140 MiB Fallback. Used if @sparticuz/chromium ever drops HeadlessExperimental.beginFrame support.

Pick the source at build time:

bun run --cwd packages/aws-lambda build:zip
bun run --cwd packages/aws-lambda build:zip -- --source=chrome-headless-shell

The handler reads HYPERFRAMES_LAMBDA_CHROME_SOURCE at boot. The build script sets that env var via Lambda function configuration in examples/aws-lambda/template.yaml.

BeginFrame regression guard

HyperFrames' renderer drives Chrome via the CDP HeadlessExperimental.beginFrame command — same path the K8s deploy uses. The Lambda adapter assumes that @sparticuz/chromium's chrome-headless-shell build honours BeginFrame. To prove it (and re-prove it on every release), the package ships a Docker probe:

# Build the Lambda-like container and run the probe.
bun run --cwd packages/aws-lambda probe:beginframe:docker

The probe boots @sparticuz/chromium inside public.ecr.aws/lambda/nodejs:22 and asserts CDP beginFrame with screenshot: true returns a PNG buffer. Exit code 0 = green; non-zero = fall back to bundling chrome-headless-shell directly via --source=chrome-headless-shell.

Building the ZIP

bun install                                          # at the monorepo root
bun run --cwd packages/aws-lambda build:zip          # → packages/aws-lambda/dist/handler.zip
bun run --cwd packages/aws-lambda verify:zip-size    # CI gate

The build script bundles src/handler.ts via esbuild, stages @sparticuz/chromium and puppeteer-core under node_modules/, copies ffmpeg-static into bin/, and zips the result. The unzipped layout is designed to extract cleanly into Lambda's /var/task/.

verify:zip-size enforces:

  • Unzipped ≤ 248 MiB (in-house budget; Lambda hard ceiling is 250 MiB unzipped — AWS docs label this "250 MB" but use binary mebibytes)
  • Zipped ≤ 150 MiB (in-house budget; Lambda has no hard zipped cap for S3-deployed functions)

CI fails the PR if either is exceeded.

Running tests

bun run --cwd packages/aws-lambda test               # unit tests (no Chrome)
bun run --cwd packages/aws-lambda probe:beginframe   # local probe (Linux only)

Using the SDK

After deploying the stack (via the SAM template, CDK construct below, or your own CFN of choice), drive renders from Node:

import { deploySite, getRenderProgress, renderToLambda } from "@hyperframes/aws-lambda";

// One-time upload per project version.
const site = await deploySite({
  projectDir: "./my-composition",
  bucketName: "hyperframes-render-bucket",
});

// Start a render. Returns immediately — does NOT poll.
const handle = await renderToLambda({
  siteHandle: site,
  bucketName: site.bucketName,
  stateMachineArn: "arn:aws:states:us-east-1:123:stateMachine:hyperframes-render",
  config: {
    fps: 30,
    width: 1920,
    height: 1080,
    format: "mp4",
    chunkSize: 240,
    maxParallelChunks: 16,
    runtimeCap: "lambda",
  },
});

// Poll progress + cost on your own cadence.
const progress = await getRenderProgress({ executionArn: handle.executionArn });
console.log(progress.overallProgress, progress.costs.displayCost);
if (progress.status === "SUCCEEDED" && progress.outputFile) {
  console.log("Render landed at", progress.outputFile.s3Uri);
}

renderToLambda validates the config client-side via validateDistributedRenderConfig and throws a typed InvalidConfigError before the Step Functions execution starts, so shape errors surface synchronously instead of as opaque ExecutionFailed results.

getRenderProgress reports an approximate per-render cost (accruedSoFarUsd plus a formatted displayCost) derived from Lambda billed-duration × memory × the us-east-1 on-demand rate plus the Step Functions transition price. The math is documented in src/sdk/costAccounting.ts; numbers are best-effort and exclude S3 transfer.

Using the CDK construct

import { App, Stack } from "aws-cdk-lib";
import { HyperframesRenderStack } from "@hyperframes/aws-lambda/cdk";

const app = new App();
const stack = new Stack(app, "MyApp");
const render = new HyperframesRenderStack(stack, "Render", {
  // optional: reservedConcurrency: 8,
  // optional: lambdaMemoryMb: 10240,
  // optional: chromeSource: "sparticuz",
});

// Re-export so an adopter app can wire dashboards / SNS topics.
new CfnOutput(stack, "RenderBucketName", { value: render.bucket.bucketName });
new CfnOutput(stack, "StateMachineArn", { value: render.stateMachine.stateMachineArn });

aws-cdk-lib and constructs are optional peer dependencies: SDK-only consumers don't pull them at runtime. The construct itself imports from @hyperframes/aws-lambda/cdk.

What's still ahead

  • hyperframes lambda CLI (deploy / sites create / render / progress / destroy) — PR 6.5.
  • IAM bootstrap subcommand (policies role | user | validate) — PR 6.9.
  • Lambda-local regression harness (--mode=lambda-local) — PR 6.6.
  • Adopter-facing migration guide — PR 6.8.