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Input: [B, T, 80, 1] log-mel spectrogram (80 fbank, 16kHz)
│
├─ Conv2d(1→32, k=3, p=1) + ReLU
├─ Layer1: 3× BasicBlock(32→32)
├─ Layer2: 4× BasicBlock(32→64, stride=2)
├─ Layer3: 6× BasicBlock(64→128, stride=2)
├─ Layer4: 3× BasicBlock(128→256, stride=2)
│
├─ Statistics Pooling: mean + std → [B, 5120]
├─ Linear(5120→256) → L2 normalize
│
Output: [B, 256] speaker embedding1import SpeechVAD
2
3// Speaker embedding
4let model = try await WeSpeakerModel.fromPretrained()
5let embedding = model.embed(audio: samples, sampleRate: 16000)
6// embedding: [Float] of length 256, L2-normalized
7
8// Compare speakers
9let similarity = WeSpeakerModel.cosineSimilarity(embeddingA, embeddingB)
10
11// Full speaker diarization pipeline
12let pipeline = try await DiarizationPipeline.fromPretrained()
13let result = pipeline.diarize(audio: samples, sampleRate: 16000)
14for seg in result.segments {
15 print("Speaker \(seg.speakerId): \(seg.startTime)s - \(seg.endTime)s")
16}python3 scripts/convert_wespeaker.py --uploadw_fused = w × γ/√(σ²+ε), b_fused = β − μ×γ/√(σ²+ε)[O, I, H, W] → [O, H, W, I] for MLX channels-lastresnet. prefix, seg_1 → embeddingnum_batches_tracked keys| PyTorch Key | MLX Key | Shape |
|---|---|---|
resnet.conv1.weight + resnet.bn1.* | conv1.weight | [32, 3, 3, 1] |
resnet.layer{L}.{B}.conv{1,2}.weight + bn{1,2}.* | layer{L}.{B}.conv{1,2}.weight | [O, 3, 3, I] |
resnet.layer{L}.0.shortcut.0.weight + shortcut.1.* | layer{L}.0.shortcut.weight | [O, 1, 1, I] |
resnet.seg_1.weight | embedding.weight | [256, 5120] |
resnet.seg_1.bias | embedding.bias | [256] |