AN APPLICATION OF SMALL-WORLD CELLULAR NEURAL NETWORKS ON ODOR CLASSIFICATION

Author:

AYHAN TUBA1,YALÇIN MÜŞTAK E.1

Affiliation:

1. Electronics and Communication Engineering Department, Faculty of Electrical and Electronic Engineering, Istanbul Technical University, Maslak, TR-34469 Istanbul, Turkey

Abstract

Many biological networks are constructed with both regular and random connections between neurons. Bio-inspired systems should prevent this mixed topology of biological networks while the artificial system is still realizable. In this work, a bio-inspired network which has many analog realizations, Cellular Neural Network (CNN) is investigated under existing random connections in addition to its regular connections: Small-World Cellular Neural Network (SWCNN). Antennal Lobe, an organ in the olfaction system of insects, is modeled with SWCNN by extending the network with the use of two types of processors on the same network. The model combined with a classifier, SVM and overall system is tested with a five-class odor classification problem. While all neurons are connected to each other with direct or indirect connections in CNNs, the idea of short-cuts does not provide an improvement in classification performance but the results show that the fault tolerance ability of SWCNN is better than the classical CNN.

Publisher

World Scientific Pub Co Pte Lt

Subject

Applied Mathematics,Modelling and Simulation,Engineering (miscellaneous)

Cited by 10 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Finite-time stability of fractional-order fuzzy cellular neural networks with time delays;Fuzzy Sets and Systems;2021-08

2. FPGA Implementation for Odor Identification with Depthwise Separable Convolutional Neural Network;Sensors;2021-01-27

3. Artificial Olfaction System;Reconfigurable Cellular Neural Networks and Their Applications;2019-04-16

4. Artificial Neural Network Models;Reconfigurable Cellular Neural Networks and Their Applications;2019-04-16

5. Introduction;Reconfigurable Cellular Neural Networks and Their Applications;2019-04-16

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