Unlock the critical skills needed to diagnose and resolve audio model failures in production environments. This course empowers ML and AI professionals to move beyond surface-level metrics and develop systematic approaches to audio model debugging that drive real business impact.

Debug Audio Models: Performance and Root Cause

Debug Audio Models: Performance and Root Cause
This course is part of Vision & Audio AI Systems Specialization

Instructor: Hurix Digital
Access provided by Xavier School of Management, XLRI
Recommended experience
What you'll learn
Performance monitoring needs quantitative metrics and audio sample analysis to understand model behaviour and failures.
Audio failures often link to environmental conditions found through spectrogram and signal quality analysis.
Effective debugging combines statistical measures with audio analysis techniques for actionable insights
Root cause analysis requires understanding data quality, environmental factors, and model architecture relationships.
Skills you'll gain
Details to know

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February 2026
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There are 2 modules in this course
Learners will master quantitative performance evaluation techniques for audio models, including calculating industry-standard metrics and identifying degradation patterns across different user cohorts.
What's included
3 videos1 reading1 assignment1 ungraded lab
Learners will master systematic root cause analysis techniques for audio model failures, including qualitative error analysis and environmental factor correlation to implement effective remediation strategies.
What's included
2 videos1 reading3 assignments
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