Spaces:
Running
on
Zero
Running
on
Zero
Update app.py
Browse files
app.py
CHANGED
@@ -17,7 +17,11 @@ model = model.to(device)
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examples = [
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[
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"audio/672-122797-0026.wav",
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"
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],
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[
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"audio/672-122797-0024.wav",
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@@ -30,10 +34,6 @@ examples = [
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[
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"audio/672-122797-0048.wav",
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"weapon, emotional-state, household-chore, atmosphere-quality"
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],
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[
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"audio/7021-85628-0025.wav",
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"action-goal, person's-title, emotional-connection, personal-qualities, pronoun-target, assignmentaction, physical-action, family-role"
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]
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]
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@@ -126,6 +126,7 @@ with gr.Blocks(title="WhisperNER v1") as demo:
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# Whisper-NER: ASR with zero-shot NER
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WhisperNER is a unified model for automatic speech recognition (ASR) and named entity recognition (NER), with zero-shot capabilities.
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## Links
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examples = [
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[
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"audio/672-122797-0026.wav",
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"biological-classification, desire, demographic-group, object-category, relationship-role, reflexive-pronoun, furniture-type"
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],
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[
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"audio/7021-85628-0025.wav",
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"action-goal, person's-title, emotional-connection, personal-qualities, pronoun-target, assignmentaction, physical-action, family-role"
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],
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[
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"audio/672-122797-0024.wav",
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[
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"audio/672-122797-0048.wav",
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"weapon, emotional-state, household-chore, atmosphere-quality"
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]
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]
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# Whisper-NER: ASR with zero-shot NER
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WhisperNER is a unified model for automatic speech recognition (ASR) and named entity recognition (NER), with zero-shot capabilities.
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The WhisperNER model is designed as a strong base model for the downstream task of ASR with NER, and can be fine-tuned on specific datasets for improved performance.
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## Links
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