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Enabling Capsule Networks at the Edge through Approximate Softmax and Squash Operations

21 June 2022
Alberto Marchisio
Beatrice Bussolino
Edoardo Salvati
Maurizio Martina
Guido Masera
Muhammad Shafique
    UQCV
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Abstract

Complex Deep Neural Networks such as Capsule Networks (CapsNets) exhibit high learning capabilities at the cost of compute-intensive operations. To enable their deployment on edge devices, we propose to leverage approximate computing for designing approximate variants of the complex operations like softmax and squash. In our experiments, we evaluate tradeoffs between area, power consumption, and critical path delay of the designs implemented with the ASIC design flow, and the accuracy of the quantized CapsNets, compared to the exact functions.

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