Novel Complex-Valued Hopfield Neural Networks with Phase and Magnitude Quantization
July 01, 2025 ยท Declared Dead ยท ๐ 2025 International Conference on Emerging Techniques in Computational Intelligence (ICETCI)
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Authors
Garimella Ramamurthy, Marcos Eduardo Valle, Tata Jagannadha Swamy
arXiv ID
2507.00461
Category
cs.NE: Neural & Evolutionary
Cross-listed
cs.AI
Citations
0
Venue
2025 International Conference on Emerging Techniques in Computational Intelligence (ICETCI)
Last Checked
4 months ago
Abstract
This research paper introduces two novel complex-valued Hopfield neural networks (CvHNNs) that incorporate phase and magnitude quantization. The first CvHNN employs a ceiling-type activation function that operates on the rectangular coordinate representation of the complex net contribution. The second CvHNN similarly incorporates phase and magnitude quantization but utilizes a ceiling-type activation function based on the polar coordinate representation of the complex net contribution. The proposed CvHNNs, with their phase and magnitude quantization, significantly increase the number of states compared to existing models in the literature, thereby expanding the range of potential applications for CvHNNs.
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