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This release is a pre-release and may not be stable for production use.

ovos-voice-embeddings-plugin

An OVOS voice embeddings plugin. It turns a speech clip into a speaker embedding with speakeronnx, so the runtime needs onnxruntime and numpy only, no PyTorch. The default model is wespeaker-resnet34, a 256-dimension L2-normalised embedding downloaded from the OpenVoiceOS speaker-embeddings-onnx collection on first use. Two clips of one speaker give vectors with a high cosine similarity. Clips of different speakers give a low one.

The plugin implements the VoiceEmbedder template of ovos-plugin-manager and registers under the opm.embeddings.voice entry point as ovos-voice-embeddings-plugin.

Install

pip install ovos-voice-embeddings-plugin

Usage

import numpy as np
import soundfile as sf
from ovos_voice_embeddings import SpeakerOnnxVoiceEmbedder

embedder = SpeakerOnnxVoiceEmbedder()          # wespeaker-resnet34, 16 kHz input

alice_1, _ = sf.read("alice_1.wav", dtype="float32")
alice_2, _ = sf.read("alice_2.wav", dtype="float32")
bob, _ = sf.read("bob.wav", dtype="float32")

a1 = embedder.get_embeddings(alice_1)
a2 = embedder.get_embeddings(alice_2)
b = embedder.get_embeddings(bob)

print(a1.shape)                  # (256,)
print(float(np.dot(a1, a2)))     # same speaker, about 0.8
print(float(np.dot(a1, b)))      # different speakers, about 0.4

The embeddings are L2-normalised, so the dot product is the cosine similarity. get_embeddings also accepts raw signed 16-bit PCM bytes, which is what the OVOS listener hands to plugins.

Store and match voices

Pair the embedder with any OVOS embeddings database plugin, for example ovos-chromadb-embeddings-plugin:

from ovos_chromadb_embeddings import ChromaEmbeddingsDB

db = ChromaEmbeddingsDB({"path": "./voice_db"})
db.add_embeddings("alice", a1)
db.add_embeddings("bob", b)

print(db.query(a2, top_k=1))     # [("alice", distance)]

Configuration

key default description
model "wespeaker-resnet34" speakeronnx model alias or path to an ONNX file
sample_rate 16000 sample rate of the audio passed to get_embeddings

Tests

pip install -e ".[test]"
pytest tests

The tests embed three real clips from LibriSpeech test-clean (CC BY 4.0) and assert the vector shape and that two clips of one speaker are closer than clips of two speakers.

License

Apache-2.0.

Metadata

Release files for ovos-voice-embeddings-plugin 0.0.1a1

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