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| license: apache-2.0 | |
| language: | |
| - en | |
| - zh | |
| - tl | |
| - es | |
| - hi | |
| tags: | |
| - multilingual | |
| - translation | |
| - world-models | |
| - egocentric-video | |
| - robotics | |
| - annotations | |
| - json-schema | |
| pretty_name: UniversalLabeler 1.0 | |
| size_categories: | |
| - n<1K | |
| # UniversalLabeler | |
| **A loss-audited interchange format for multilingual world-model annotations.** | |
|  | |
| UniversalLabeler separates what happened from how a language describes it. A | |
| source annotation is represented as small, evidence-linked claims—action, | |
| participants, hand roles, objects, state change, place, time and outcome. Human | |
| language captions and dataset-native labels are projections of the same packet, | |
| with omissions recorded rather than hidden. | |
| This is a public data and schema release. It does not include a translation | |
| service, model prompts or private processing infrastructure. | |
| ## Release 1.0.5 | |
| | | | | |
| |---|---:| | |
| | Label-language profiles | 19 | | |
| | Human languages | 5 | | |
| | World-model dimensions | 22 | | |
| | Typed annotation kinds | 13 | | |
| | Controlled conformance frames | 6 | | |
| | Language surfaces | 30 | | |
| | License | Apache-2.0 | | |
| Human-language profiles currently cover English, Simplified Chinese, Tagalog, | |
| Spanish and experimental Hindi. The controlled examples are test fixtures, not | |
| a general-purpose translation benchmark. | |
| ## Data model | |
| ```text | |
| native record + evidence | |
| │ | |
| ▼ | |
| ┌─────────────────────────────────────────────┐ | |
| │ Universal Annotation Packet │ | |
| │ action · roles · hands · objects · state │ | |
| │ place · time · outcome · uncertainty │ | |
| │ evidence selectors · provenance │ | |
| └─────────────────────────────────────────────┘ | |
| │ | |
| ├── dataset-native label | |
| ├── English | |
| ├── 简体中文 | |
| ├── Tagalog | |
| ├── Español | |
| └── हिन्दी | |
| ``` | |
| The packet is compositional rather than a fixed dictionary of every possible | |
| verb and noun. Concepts receive stable identifiers; semantic roles describe | |
| their relationship to an event; evidence and source-clock selectors bind each | |
| claim to the underlying record. Language-specific grammar remains in the | |
| projection layer. | |
| ## Repository contents | |
| | Path | Purpose | | |
| |---|---| | |
| | `ontology/universal-annotation-core-v1.json` | Node types, predicates and availability dimensions | | |
| | `data/label-languages-v1.json` | Dataset and human-language profiles | | |
| | `data/world-model-label-audit-v1.json` | Cross-dataset supervision audit | | |
| | `data/controlled-action-matrix.jsonl` | Five-language conformance fixtures | | |
| | `schemas/` | Strict JSON Schemas for packets, projections and audits | | |
| | `examples/fold-towel.uap.json` | Grounded event with hands, state, time and provenance | | |
| | `examples/*.adapter.json` | Loss-audited dataset views | | |
| | `rubrics/` | Bilingual review and evaluation protocol | | |
| | `metadata/` | Reproducibility and validation records | | |
| An interactive explanation is included at `demo/index.html`. Each of its four | |
| first-person event images is a generated, synthetic visual preview—not upstream | |
| evidence or a source-dataset frame. | |
| ## Recommended workflow | |
| 1. Pin the source dataset, schema revision and native record. | |
| 2. Preserve the native record and content digest. | |
| 3. Encode only evidence-supported atomic claims. Mark missing dimensions as | |
| not collected, not applicable or unknown. | |
| 4. Render every target language directly from the same claim packet; do not use | |
| one translated language as the source for the next. | |
| 5. Record represented and omitted claim IDs for every projection. | |
| 6. Validate against the included schemas. | |
| 7. Require independent bilingual and evidence-grounded review before accepting | |
| generated language as dataset annotation. | |
| ## Evaluation boundary | |
| Release validation checks schema correctness, content addressing, ontology | |
| references, semantic equivalence across the controlled matrix, private-data | |
| markers and byte-identical rebuilds. Exact results and hashes are in | |
| `metadata/validation.json` and `SHA256SUMS`. | |
| These checks establish format conformance. They do not establish open-vocabulary | |
| translation quality. Round trips can reproduce the same mistake twice; | |
| production releases still require bilingual review against video or other | |
| source evidence. The proposed acceptance thresholds and adversarial strata are | |
| specified in `rubrics/EVALUATION_PROTOCOL.md`. | |
| ## Known limits | |
| - The six controlled frames cover predicate–patient directives only. | |
| - Chinese aspect and classifiers, Tagalog voice/pivot, Spanish morphology, | |
| Hindi agreement, code switching, negation and quantifier scope need broader | |
| reviewed data. | |
| - The supervision audit identifies common world-model dimensions; it does not | |
| claim complete adapters for every upstream dataset. | |
| - Synthetic receipt identifiers are not evidence of human review. | |
| ## License | |
| UniversalLabeler's original schemas, profiles, ontology and synthetic fixtures | |
| are released under Apache-2.0. Upstream datasets, media and annotations retain | |
| their own licenses and access conditions and are not redistributed here. | |
| ## Citation | |
| ```bibtex | |
| @dataset{universal_labeler_2026, | |
| author = {Pablo and contributors}, | |
| title = {UniversalLabeler 1.0: Loss-Resistant Translation Contracts for World-Model Labels}, | |
| year = {2026}, | |
| publisher = {Hugging Face}, | |
| url = {https://huggingface.co/datasets/itspublu/UniversalLabeler} | |
| } | |
| ``` | |