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kevinqz/MOSS-Transcribe-Diarize-Audio-CoreAI
MOSS-Transcribe-Diarize-Audio-CoreAI is a automatic speech recognition model from kevinqz. Use it when you need speech turned into text. It is set up for coreai. The card lists the license as apache-2.0.
Canonical: kevinqz/MOSS-Transcribe-Diarize-Audio-CoreAI — source of truth.
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Updated Jul 10, 2026
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From the Hugging Face model README
Canonical:
kevinqz/MOSS-Transcribe-Diarize-Audio-CoreAI— source of truth.
An Apple Core AI conversion of OpenMOSS-Team/MOSS-Transcribe-Diarize — the audio encoder of an automatic-speech-recognition + diarization model, mapping a log-mel spectrogram to encoder hidden states. Produced by coreai-fabric and indexed by coreai-catalog.
Encoder only — not the full ASR pipeline. This asset is ONLY the audio encoder (log-mel → encoder hidden states). The host owns mel-spectrogram extraction (upstream feature config), the autoregressive decoder (published separately), and any speaker-diarization post-processing. It does not, by itself, transcribe audio.
| Field | Value |
|---|---|
| Parameters | 0.9B |
| Architecture | transformer |
| Capabilities | speech-to-text |
| Input (log-mel) | 1×80×3000 |
| Output (encoder states) | 1×375×1024 |
| Quantization / precision | none / float32 |
| On-disk size | 1.2 GB |
| Asset kind | single-graph audio encoder (log-mel -> encoder hidden states) |
| assetVersion | 2.0 |
The bundle is a single static-size graph: a log-mel spectrogram (1×80×3000) in → encoder hidden states (1×375×1024) out. You supply the mel front-end, the decoder loop, and diarization in your host code (Swift or Python), using the upstream feature/tokenizer config.
pip install coreai-catalog && coreai-catalog install moss-transcribe-diarize-audio
minimum_os v27,
so the on-device Swift runtime requires macOS/iOS 27+. A Mac on macOS 26 can
convert and inspect it but not run it on-device.coreai-fabric verify.| Field | Value |
|---|---|
| Base model | OpenMOSS-Team/MOSS-Transcribe-Diarize @ d7231bbae2587a4af278735eb765b318c4f64edd |
| Converted by | models/moss_transcribe/export.py (version not reported) |
| Recipe | moss-transcribe-diarize-audio (recipe_source: fabric) |
| Precision / quantization | float32 / none |
| Conversion date | 2026-07-10 |
Machine-readable, in this repo:
parity-report.json ·
reproduce-manifest.json · LICENSE.
Weights licensed apache-2.0 — see the bundled LICENSE. This artifact is a converted derivative of the base model: its
weights were converted to Apple Core AI format. The conversion itself is
community work.
moss-transcribe-diarize-audio.aimodel pipeline that produced this asset.Community conversion. Not produced, hosted, or endorsed by Apple. Apple and Core AI are trademarks of Apple Inc., used here only to describe the target runtime/format.