waxal-ttia-gallery / README.md
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metadata
license: cc-by-sa-4.0
language:
  - ln
tags:
  - speech
  - speaker-embeddings
  - asr
  - lingala
pretty_name: Waxal TTIA enrolment gallery

Waxal TTIA enrolment gallery

Data assets for the Test-Time Idiolect Adaptation (TTIA) Lingala lane of the waxal-asr-solution pipeline (Google Waxal ASR Challenge on Zindi). Fetched into place by models/download_assets.py in that repository; every file is verified there against a recorded SHA-256.

File Size Contents
enrollment.npz 998 MB MMS-1B hidden-state voice vectors for 21,566 enrolment clips (layers 4, 6, 8, 12, 16; the pipeline reads 4 and 8), plus their clip ids
enrollment.parquet 661 KB enrolment manifest: clip id, idiolect profile key, derived audio path, language
train.rows.parquet 4.5 MB per-profile Lingala training text the TTIA fusion scores candidates against

Provenance and licence

Derived from google/WaxalNLP (Lingala labelled training audio and transcripts, and clips from the unlabelled release), © the WaxalNLP authors, licensed CC-BY-SA-4.0 / CC-BY-4.0. These derivatives are published under CC-BY-SA-4.0 with attribution to google/WaxalNLP, as ShareAlike requires. No evaluation/test audio or transcripts are included.

The files are reproducible from google/WaxalNLP with inference/ttia/build_enrollment.py, embed.py and merge.py in the solution repository; this upload exists so a reviewer can run the pipeline without rebuilding them (a ~21,500-clip GPU embedding pass).

File SHA-256
enrollment.npz e112a828ef220fc38eb6ff6e24c49a3e2ec38834f2e806ade0fe3bbdf1fe7086
enrollment.parquet 4fb6005ce024683ea4d5a111615438ba204a37ac7a4a0a57f935046d81f75ce7
train.rows.parquet b44df5ca8e370df28408bb71ad6628aaa6d316ccf3a4e6b97d11d17d663e53bc