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XENet: Using a new graph convolution to accelerate the timeline for protein design on quantum computers

By J. Maguire and others
Graph representations are traditionally used to represent protein structures in sequence design protocols where the folding pattern is known. This infrequently extends to machine learning projects: existing graph convolution algorithms have shortcomings when representing protein environments. One reason for this is the lack of emphasis on edge attributes during massage-passing... Show more
September 27, 2021
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XENet: Using a new graph convolution to accelerate the timeline for protein design on quantum computers
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