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Configuration Internals
User-visible fields, defaults, and selection behavior belong in the
Configuration Reference. This document describes the internal
pipeline-loading boundary implemented by internal/config.
Pipeline Loading
LoadPipeline assembles and validates a pipeline in this order:
- Parse the root YAML into a presence-aware composition tree. The tree retains source names, full field paths, node kinds, declaration order, and explicit zero, false, empty-map, and empty-list values.
- Remove the root-only
compositionenvelope and validate its explicitimports,default_profile, and namedprofilesdeclarations. A load option retains the difference between omitted and explicitly empty profile selection. - Open each import relative to the root pipeline directory through the
confined regular-file boundary. Imports must use a
.ymlor.yamlextension and cannot traverse, use symlinks, repeat a file, import the root, or contain another composition envelope. - Resolve and structurally parse every declared profile overlay through the same confined regular-file boundary. Missing or malformed unselected overlays fail the load. Overlays cannot contain a composition envelope.
- Additively merge the root body and imports. Distinct map leaves compose; repeated scalar or list paths and node-kind disagreements are conflicts.
- Select exactly one declared profile from an explicit option or the default, then recursively merge its overlay. Overlay leaves replace base leaves, lists are atomic replacements, and null or kind changes fail.
- Emit deterministic canonical YAML and strictly decode it into
PipelineConfig. - Apply pipeline defaults once, resolve ordinary relative pipeline paths from the root pipeline file, and digest the normalized effective mapping.
This ordering preserves monolithic configuration behavior. Moving a field to an imported fragment changes its source ownership, not its path base, default, or schema semantics.
Loaded Context Resolution
LoadedPipelineCampaign carries one already composed pipeline and its selected
campaign into session resolution. LoadSessionWithPipelineCampaignOptions
loads a local session against that context, while
ResolveLoadedPipelineCampaign also accepts an already loaded remote session
or no session while a caller retrieves one. Compatibility loaders route through
these functions after their initial pipeline and campaign reads.
Application commands own pipeline and campaign discovery, campaign-file versus
registry selection, and the corresponding mutual-exclusion rules. Once they
have a LoadedPipelineCampaign, local session discovery and remote-session
download retain that exact pipeline object and its private provenance. Removing
a temporary downloaded session file therefore cannot invalidate the resolved
pipeline or campaign context.
Campaign context construction also reads and classifies the campaign-owned
party source through ParseParty. A canonical party retains its raw bytes and
normalized roster in runtime-only ResolvedParty provenance, while a legacy
party remains opaque. Canonical resolution creates a virtual
derived_from_party players input and rejects competing campaign or session
players files and session party overrides. The compact legacy compatibility
path resolves the effective campaign/session party and players files together.
Canonical Party Domain
ParseParty is the package-owned boundary for classifying a party source.
When a top-level schema_version is present, it strictly validates the
narratio.party.v1 contract into ordered character domain values. The
canonical value retains a separate exact byte copy of its source so consumers
can materialize the authored party document without reserializing it. Its
PlayersYAML method deterministically derives the versioned players-only
projection.
An unversioned source is classified by the small legacy compatibility boundary
in party_legacy.go; it deliberately exposes no parsed roster information.
That boundary exists solely to isolate removable compatibility behavior from
the canonical parser.
Diagnostics And Runtime Metadata
Syntax, duplicate-key, composition, conflict, and schema failures include the relevant source name and full field path. Additive conflicts report every claiming source so operators can repair the split without repeatedly rediscovering additional conflicts.
The loaded pipeline retains private runtime metadata for the absolute root
path, ordered imports, selected profile name and selection source, selected
overlay, contributing sources, effective digest, and leaf ownership. Base
leaves retain their root/import owners, replaced leaves belong to the selected
overlay, and centrally supplied values use the synthetic default owner. This
metadata does not participate in YAML decoding or alter the public
configuration model.
The effective digest is SHA-256 over deterministic canonical YAML produced from
the defaulted and path-resolved PipelineConfig. Because composition and
resolution metadata are private, the digest excludes source layout, profile
name, and ownership. Configuration stores environment variable names rather
than resolving raw credentials, so raw secret values are neither loaded nor
hashed. recomputePipelineEffectiveDigest is the single package-owned refresh
point for later runtime expansion.
Test Surfaces
composition_test.go protects the presence and merge algebra independently of
the public schema. pipeline_composition_test.go exercises explicit imports,
confinement, conflicts, strict decoding, metadata, and root-relative path
behavior through LoadPipeline. pipeline_profiles_test.go covers selection,
all-overlay validation, overlay behavior, provenance, option propagation, and
effective-digest stability. Application configuration-loader tests protect the
single-read boundary by changing the pipeline file after its initial load and
confirming local session resolution retains the original pipeline. Other
configuration tests continue to protect defaults and validation after assembly.
party_test.go protects the versioned party schema, domain invariants, and
deterministic players projection without involving campaign or runtime wiring.
party_resolution_test.go protects campaign-owned party loading, canonical
input restrictions, legacy overrides, source provenance, and virtual players
input selection.
Artifact Family Resolution
Pipeline loading retains scriptorium.artifact_families as a resolution-only
declaration. Once campaign party resolution establishes a canonical roster,
configuration expands families in sorted family-key and character-ID order
into ordinary ScriptoriumArtifactConfig values. The expansion owns the narrow
{character_id} output substitution, closed member-variable selectors, key and
output collision checks, and the runtime-only family-origin catalog. It then
removes family declarations from ScriptoriumConfig, runs ordinary Scriptorium
validation, and refreshes the effective pipeline digest. Stages and adapters
therefore receive only concrete artifact maps.
The catalog retains sorted family member keys plus family/character/source
origins and the typed dependency/publish declarations for their later owners.
member_dependencies add corresponding ordinary concrete dependencies, while
the family-only narratio.member_artifact.<family> input form is rewritten to
the matching ordinary configured-artifact source. The catalog records those
resolved dependency and input identities with their declaring family and party
member. No member-artifact source is registered as a runtime policy source.
An enabled family publish declaration expands to ordinary configured-artifact
publish rules before the existing publish and lock validators run. Runtime
publication consequently receives no family wildcard or special matcher.