
Zero-Shot Auto-Labeling: The End of Annotation for Computer Vision with Jason Corso - #735
The TWIML AI Podcast (formerly This Week in Machine Learning & Artificial Intelligence)
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Enhancing ML Models Through Analysis
This chapter explores the critical role of analysis in improving machine learning models, focusing on identifying underperformance in corner cases and the importance of human expertise. It highlights the evolution of auto-labeling in computer vision, the challenges of mislabeling, and the complexities of quantifying uncertainty, all while proposing adaptive labeling strategies for better model accuracy.
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