It may sound like something out of the latest Star Wars or Marvel film, but Hyperdimensional (HD) computing is in fact, very real. Simply put, it is a novel machine-learning paradigm inspired by theoretical neuroscience.

HD computing takes a selection of principles seen in how our brains perform complex tasks – namely the transformation of dense sensory data into a high-dimensional sparse representation where relevant information can more easily be separated – to achieve gains in performance and energy efficiency without sacrificing accuracy and with the additional benefit of being robust to noise. HD computing is also amenable to high parallelization and, when paired with the optimal computing hardware, could use these principles as the basis for the next generation of machine learning.



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