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Guidance and Control Networks with Periodic Activation Functions

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arxiv 2405.18084 v1 pith:AJPNHA4N submitted 2024-05-28 cs.LG

classification cs.LG
keywords cnetscontrolnetworksactivationfunctionsguidanceperiodicachieve
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Inspired by the versatility of sinusoidal representation networks (SIRENs), we present a modified Guidance & Control Networks (G&CNETs) variant using periodic activation functions in the hidden layers. We demonstrate that the resulting G&CNETs train faster and achieve a lower overall training error on three different control scenarios on which G&CNETs have been tested previously. A preliminary analysis is presented in an attempt to explain the superior performance of the SIREN architecture for the particular types of tasks that G&CNETs excel on.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Comparing Behavioural Cloning and Reinforcement Learning for Spacecraft Guidance and Control Networks

    eess.SY 2025-07 conditional novelty 6.0 of 10

    On four spacecraft guidance problems, reinforcement learning trains networks that are more robust to disturbances than behavioural cloning, but behavioural cloning matches optimal control when the expert data is accurate.

  2. Memristor-Based Neural Network Accelerators for Space Applications: Enhancing Performance with Temporal Averaging and SIRENs

    eess.SY 2025-09 conditional novelty 5.0 of 10

    Simulated memristor-based SIREN networks with bit-slicing and temporal averaging reach test losses 0.010 and 0.007 on spacecraft guidance and asteroid geodesy, near digital baselines.

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