031887ec56
Contract surface redesign: - New top-level fields: id (3-6 char acronym → stack.name), name (full → stack.title), infrastructure (map keyed by module name, replaces module:) - Drop uses: field (dead reference; version pin lives in CI workflow uses: line) - Drop top-level module/inputs (now nested under infrastructure map) - Per-module optional version (defaults to latest published from registry) - Multi-module contracts: one file deploys N modules in one pipeline run, resource IDs namespaced with module name to avoid collisions - stack.schema.json: add optional title field for display name Rename: - pipelines/deploy.yaml → pipelines/contract.yml (declarative spec, not a pipeline) - pipelines/ci.yaml → pipelines/ci.yml - All 44 .yaml files → .yml repo-wide (contracts, module examples, kyverno policies) - .acdl/contract.yaml → .acdl/contract.yml Resolver (core/contract_resolver.py): - Rewrite resolve() to loop infrastructure map, default version to latest, merge module fragments into one stack with namespaced resource IDs - _latest_version() picks highest non-deprecated from registry - _namespace_resources() prefixes IDs + rewrites ref: expressions for multi-module - Single-module path: unprefixed IDs (backward compatible) Verification: - 494 tests pass (0 contract-shape failures) - Local E2E passes (contract → resolver → adapter → local ECS HTTP 200 → outbox) ---ci--- project: acdl phase: 57 milestone: v1.10.2 status: execute ---/ci---
313 lines
15 KiB
Markdown
313 lines
15 KiB
Markdown
# ACDL — Agentic Cloud Delivery Platform
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Consumers declare intent; the platform delivers safe production deployment
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through an agentic stack — automatically, safely, and with a complete audit
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trail. A merged change progresses through lower environments end-to-end
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without a platform engineer joining a thread; a non-technical consumer ships
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a production deployment by declaring intent, without authoring a workflow,
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a configuration file, or an infrastructure module.
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- **Consumer guide:** [`docs/consumer-guide.md`](docs/consumer-guide.md)
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- **Modules:** [`docs/modules/`](docs/modules/)
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- **Contracts:** [`docs/contracts/`](docs/contracts/)
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- **Pipeline:** [`docs/pipeline/`](docs/pipeline/)
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- **Versioning:** [`docs/pipeline/versioning.md`](docs/pipeline/versioning.md)
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- **Environments:** [`docs/environments/`](docs/environments/)
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- **Architecture:** [`docs/architecture.md`](docs/architecture.md)
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- **Vision:** [`docs/vision.md`](docs/vision.md)
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## Repository roles
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There are two kinds of repository in the ACDL model:
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- **Platform repo (this one).** This is the **source code of the platform**.
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It owns `modules/`, `adapters/`, `core/`, `schemas/`, `pipelines/`,
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`scripts/`, and the reusable workflow files. Platform engineers work here.
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A **consumer never clones it.**
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- **Consumer repo (yours).** A consumer repo contains only:
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1. **Its application code** — the service or site being deployed.
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2. **One or more contracts** — small YAML files at `.acdl/contract.yml`
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that declare infrastructure (one or more modules by name + version),
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select an environment, and supply module-specific inputs.
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3. **One or more CI definitions** — thin `.github/workflows/*.yml` files
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that `uses:` the central reusable deploy workflow, pointing at the
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appropriate environment + contract.
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The consumer does not write infrastructure modules, workflow YAML beyond
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the thin `uses:` wrapper, or adapter code — they write a contract YAML
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file and the platform does the rest.
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The rest of this README describes the **platform repo** (how the platform
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works, how to run it locally, how it's laid out). If you are a consumer,
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jump to the [Consumer guide](docs/consumer-guide.md).
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## Features
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A referenceable list of what the platform provides today, for consumers and
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platform engineers alike:
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- **Contract-driven deploys** — a consumer writes a YAML contract; the
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platform resolves it to a stack, compiles it, and deploys it.
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- **Reusable versioned deploy workflow** — consumer repos `uses:` a
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versioned central workflow; no platform code is cloned by the consumer.
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- **Module catalog** — primitives (single resources) and modules (patterns
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of primitives) with self-documented inputs/outputs. See
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[docs/modules/](docs/modules/).
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- **Zero-trust credentials** — OIDC federation + attribute-based
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authorization (ABAC) by default; no long-lived keys in consumer repos.
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- **Security + policy checks** — a security-check stage and a policy-check
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stage run before any infrastructure is created.
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- **Confidence signal** — a computed, explainable score gates promotion.
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- **Evidence outbox** — every deployment writes a hash-chained evidence
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event to an audit outbox.
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- **Shell reproducibility** — `scripts/run_ci.sh` mirrors the CI pipeline
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locally; `scripts/run_platform.sh --check-only` runs offline.
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- **Platform-managed environments** — consumers provide no AWS account,
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VPC, subnet, or state bucket; the platform manages environments. See
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[docs/environments/](docs/environments/).
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- **Central pipeline contract** — a declarative YAML instance is the single
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source of truth for both the CI and deploy workflows.
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## Roadmap
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Planned future features (no dates; tracked in the internal roadmap):
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- **Dynamic module creation from a contract** — an agentic flow where a
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consumer creates a module directly from the contract file (the
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"composition" mechanism, redesigned).
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- **Compliance milestone** — per-module compliance extension points (GDPR,
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SOX, SOC2, DORA) wired into the pipeline.
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- **Additional engine adapters** — beyond the Terraform adapter.
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- **Environment self-service** — a consumer-facing flow to request and
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provision a new platform-managed environment (today it is a platform-team
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action).
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- **HITL gates for qa / prod / dr** — human attestation + higher confidence
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thresholds for higher environments.
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- **OIDC for all platform runners** — zero-trust credentials everywhere.
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## How the platform works
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The platform is **four layers + six cross-cutting concerns**, bound by the
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vision's "Two Consumer Surfaces, One Platform" tenet: consumers declare
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intent via a contract; the platform delivers the deployment through the
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same contract schema, the same policy envelope, and the same evidence
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stream.
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Consumers have their own repos and consume ACDL by writing a contract that
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declares infrastructure. A consumer declares a contract (id + name +
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environment + infrastructure); the platform resolves it to a stack instance,
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compiles it, runs security + policy checks, computes a confidence signal,
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writes an evidence event to the audit outbox, and applies the
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infrastructure.
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### The platform flow (end-to-end)
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```mermaid
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flowchart TD
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A["consumer contract<br/>(id + name + environment + infrastructure)"] --> B
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B["schema validation<br/>(contract schema)"] --> C
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C["resolve to Target Stack<br/>(contract resolver)"] --> D
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D["security checks<br/>(adapter)"] --> E
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E["infrastructure plan<br/>(adapter compiles the stack)"] --> F
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F["policy checks<br/>(adapter -> PolicyCheckResult records)"] --> G
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G["confidence signal<br/>(6 inputs: policy, validation,<br/>freshness, source, history, NFRs)"] --> H
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H["evidence event<br/>(hash-chained, to the audit outbox)"] --> I
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I["infrastructure apply<br/>(dev only, autonomous)"]
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```
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The platform validates the architecture's claim that the **stack
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commitments do not require a polyglot mess**: the adapter is the only
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engine-specific code. `modules/`, `schemas/`, `contracts/`,
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`core/confidence_signal.py`, `core/contract_resolver.py`, and
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`core/outbox_writer.py` are all engine-agnostic (no `aws_s3_bucket` /
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`aws_` infrastructure terms).
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## How to run
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### Prerequisites
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> These prerequisites are for running the **platform repo** locally. A
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> consumer does not need any of these — see the
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> [Consumer guide](docs/consumer-guide.md) for the consumer happy path.
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- A platform-managed environment (see [docs/environments/](docs/environments/)).
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For local testing, `core/environments/dev.json` is provided as the sample.
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- AWS credentials for the dev environment (in `.env.secrets`, gitignored;
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see [Credentials & zero-trust](#credentials--zero-trust)).
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- `terraform` (pin `1.9.*`), `checkov` (pin `>=3.2,<4`), `python3` + `boto3`
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+ `jsonschema`.
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### Run the platform pipeline end-to-end
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```bash
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# 1. Bootstrap the AWS state backend + runner IAM user (one-time, idempotent)
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# (requires the bootstrap root key in env — skip if the state bucket +
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# acdl-spike-runner already exist)
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ACDL_BOOTSTRAP_AWS_ACCESS_KEY_ID=... ACDL_BOOTSTRAP_AWS_SECRET_ACCESS_KEY=... \
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python3 terraform/bootstrap/create_state_backend.py
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ACDL_BOOTSTRAP_AWS_ACCESS_KEY_ID=... ACDL_BOOTSTRAP_AWS_SECRET_ACCESS_KEY=... \
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python3 terraform/bootstrap/create_iam_user.py # prints the initial key
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# 2. Rotate the runner key (writes .env.secrets, gitignored)
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ACDL_BOOTSTRAP_AWS_ACCESS_KEY_ID=... ACDL_BOOTSTRAP_AWS_SECRET_ACCESS_KEY=... \
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bash scripts/rotate_spike_key.sh
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# 3. Run the full platform pipeline (contract -> environment check -> stack ->
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# adapter -> security checks -> infrastructure plan -> policy checks ->
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# confidence -> evidence event -> apply). Output is streamed to stdout.
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bash scripts/run_platform.sh contracts/static-assets.yml
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# Expected: "=== PLATFORM E2E OK ==="
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# Or plan-only (contract -> stack -> adapter -> infrastructure plan; no
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# policy checks / outbox):
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bash scripts/run_platform.sh --plan-only contracts/static-assets.yaml
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# Add --quiet to suppress streaming (output to log files only):
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bash scripts/run_platform.sh --quiet contracts/static-assets.yaml
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```
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### Test the platform (offline, no AWS required)
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```bash
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# Install test dependencies
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pip install -r requirements-test.txt
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# Run the test suite (all offline — uses moto for DynamoDB mocking)
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python3 -m pytest tests/ -v
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# Run the platform in check-only mode (offline — no AWS, no policy checks,
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# no outbox). Uses the default sample contract (contracts/static-assets.yaml)
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# and the sample dev environment (core/environments/dev.json).
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bash scripts/run_platform.sh --check-only
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# Expected: "=== PLATFORM CHECK OK ==="
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# Reproduce the full CI pipeline locally (lint -> test -> check-only)
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bash scripts/run_ci.sh
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# Expected: "=== CI PIPELINE OK ==="
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```
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### CI/CD pipelines
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The CI/CD pipeline is defined by a **central pipeline contract** — a
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declarative YAML instance (`pipelines/ci.yml`) validated against a JSON
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Schema (`schemas/pipeline.schema.json`). Both platform-runner workflows
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implement the same contract:
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- `.github/workflows/ci.yml` — GitHub Actions (production)
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Both run three stages: **lint** (py_compile), **test** (pytest), and
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**check-only** (`run_platform.sh --check-only`). Both trigger on push to
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`main` and on pull requests. A test (`tests/test_pipeline_contract.py`)
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validates that the workflow conforms to the contract.
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`scripts/run_ci.sh` mirrors the CI pipeline locally — running the same
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three stages in sequence. This makes the pipeline fully reproducible from
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the shell, not just in CI:
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```bash
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bash scripts/run_ci.sh # run all 3 stages (lint, test, check-only)
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bash scripts/run_ci.sh --quiet # suppress per-stage banners
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```
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### Reusable deploy workflow
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The deployment pipeline is defined by a **central deployment pipeline
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contract** (`pipelines/contract.yml`, validated against
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`schemas/deploy-pipeline.schema.json`) and exposed to consumer repos as a
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**reusable workflow**:
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- `.github/workflows/deploy.yml` — GitHub Actions (production)
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The workflow implements the same stages as `pipelines/contract.yml`
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(validate-contract → resolve-stack → security checks → infrastructure plan
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→ policy checks → confidence → evidence event → apply). A consumer repo
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invokes the reusable workflow via a **versioned tag** (floating MAJOR +
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MINOR, e.g. `acdl/.github/workflows/deploy.yml@v1.6`). The workflow checks
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out the consumer repo, then checks out the ACDL platform repo into the
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runner workspace, and runs `scripts/run_platform.sh` against the consumer's
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contract — the consumer never clones the platform repo or invokes its
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scripts locally. See the [Consumer guide](docs/consumer-guide.md) for the
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end-to-end happy path.
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### Output streaming (run_platform.sh)
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`scripts/run_platform.sh` streams output by default so the user can see
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what the platform is doing:
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- **`--check-only`**: streams the emitted infrastructure file content to
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stdout.
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- **`--plan-only`** and **full mode**: streams the infrastructure plan
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output via `tee` (visible and logged).
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- **Full mode**: prints policy-check results and each `PolicyCheckResult`
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record with severity, rule ID, and pass/fail status.
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A `--quiet` flag suppresses streaming (output to log files only) for
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backwards-compatible log-only mode.
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## Consumer guide
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A step-by-step guide for a consumer to create their pipeline and define a
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contract that deploys any ACDL module to AWS is at
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[`docs/consumer-guide.md`](docs/consumer-guide.md). The guide is generic
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across all modules; `static-assets` is the worked example.
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## Repository layout
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| Path | Purpose | Status |
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|------|---------|--------|
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| `core/` | Platform code: contract resolver, confidence signal, outbox writer, environment check, environments, separation of duties, HITL/ledger designs | active |
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| `schemas/` | JSON Schemas: stack, contract, PolicyCheckResult, pipeline contract, deploy pipeline contract (draft 2020-12) | active |
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| `pipelines/` | Central pipeline contracts: `ci.yml` (CI), `contract.yml` (deployment) | active |
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| `adapters/` | Angine adapters — the engine adapter (the only engine-specific code per §12) + the policy adapter | active |
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| `terraform/` | State backend (S3 + DynamoDB) + platform TF (`terraform/spike/`) + bootstrap scripts (`terraform/bootstrap/`) | active |
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| `modules/` | Primitives + modules + `registry.json`. Primitives: s3, vpc, ecs-cluster, ecs-service, iam-role, alb, ecr, cloudfront, waf, rds. Modules: microservice, static-assets. Each module has a `examples/` directory with validated contract examples | active |
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| `contracts/` | Sample consumer contracts (`static-assets.yaml`, `microservice.yaml`) | active |
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| `scripts/` | Platform run script (`run_platform.sh` with `--check-only`/`--plan-only`/`--quiet`), CI pipeline script (`run_ci.sh`), key rotation | active |
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| `tests/` | Pytest suite (all offline — adapter, confidence signal, policy adapter, outbox writer, pipeline contract, contract resolver, streaming, environment check) | active |
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| `.github/workflows/` | GitHub Actions workflows: `ci.yml` (CI), `deploy.yml` (reusable deploy, invoked by consumer repos) | active |
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| `docs/` | GitHub Pages documentation site: consumer guide, modules, contracts, pipeline, versioning, environments, architecture, vision | active |
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## Credentials & zero-trust
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### Default — zero-trust OIDC + attribute-based authorization
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Consumer repos are **zero-trust**: they hold **no long-lived AWS keys** and
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no static credentials in repo secrets.
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- **Authentication** is **OIDC federation** between the platform runners
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(GitHub Actions) and AWS. Each job mints a short-lived STS token; no
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credential is ever stored in the consumer repo or in a runner secret.
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- **Authorization** is **attribute-based (ABAC)**, not role-based (RBAC).
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AWS IAM roles and session policies are scoped by two attribute classes:
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- **Repository identity** — the runner claim (e.g.
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`repo:org/consumer-repo:ref:refs/heads/main`) binds the role's trust
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policy to the exact consumer repo + branch that invoked the workflow.
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- **Resource-creation attributes** — every resource the pipeline creates
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is tagged with `acdl:owner=<consumer-repo>` and
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`acdl:contract=<contract-id>`. The session policy grants
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view/update/delete **only on resources whose tags match the calling
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repo**.
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The effect: a consumer's pipeline can only view and update the resources
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it created. Blast radius is contained to that consumer's own stack
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instances — one consumer can never touch another consumer's resources,
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and the consumer cannot escape its own scope.
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### Alternative — static AWS key
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Where OIDC is not yet available, a static AWS key **may** be used as a
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documented alternative:
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- The key is stored in **GitHub Secrets** (consumer repo) for platform-runner
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runs, or in **`.env.secrets`** (gitignored, chmod 600) for local testing.
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- The platform rotates platform-runner keys on a **daily cadence** —
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rotation is not the consumer's burden in the platform-runner path.
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- **When `.env.secrets` is used locally**, rotating the key **out of band is
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the consumer's responsibility**. The platform guarantees daily rotation
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for platform-runner runs; it does not guarantee rotation for
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locally-held copies. The consumer must rotate a local key via
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`scripts/rotate_spike_key.sh` (or equivalent) on their own cadence.
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No long-lived credential is permitted persistently — the platform-runner
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key's useful lifetime is one workflow run, and the local alternative is
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rotated at least daily (platform-runner) or out of band (local). |