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Facebook Research - Unsupervised Translation of Programming Languages

Machine Learning Street Talk (MLST)

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Balancing Human Insight and Machine Learning in Programming

This chapter examines the intersection of neural programming and rule-based coding, emphasizing the significance of human readability in software development. The discussion highlights the potential of combining human-created code with machine learning to improve software engineering practices while addressing the need for interpretability and trust in deep learning models. It explores the collaborative dynamics within research teams and the autonomy researchers have in selecting projects that balance fundamental research and practical applications.

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