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Prof. Randall Balestriero - LLMs without pretraining and SSL

Machine Learning Street Talk (MLST)

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Navigating Model Design and Bias in Machine Learning

This chapter delves into the intricacies of model design and evaluation in machine learning, focusing on the unpredictability of model use and the impact of biased data from crowdsourced datasets. It stresses the importance of continuous feedback for model improvement and discusses the broader implications of bias in areas like computer vision.

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