A Framework for Frugal Supervised Learning with Incremental Neural Networks

Author:

Cholet Stephane12,Biabiany Emmanuel2ORCID

Affiliation:

1. Softbridge Technology, 97122 Baie-Mahault, France

2. Laboratoire de Mathématiques, Informatique et Applications (LAMIA), Université des Antilles, 97157 Pointe-à-Pitre, France

Abstract

This study proposes an implementation of an incremental neural network (INN) that was initially designed for affective computing tasks. INNs are a family of machine learning algorithms that combine prototype-based classifiers with neural networks. They achieve state-of-the-art performance with less data than traditional approaches. In this research, we conduct an in-depth review of INN mechanisms and present a research-grade framework that enables the use of INNs on arbitrary data. We evaluated our implementation on two different datasets, including the AVEC2014 Challenge, which involved predicting depressive state from auditive and visual modalities. Our results are encouraging, demonstrating the potential of INNs in situations where approaches have to be explainable or when data are scarce.

Publisher

MDPI AG

Subject

Fluid Flow and Transfer Processes,Computer Science Applications,Process Chemistry and Technology,General Engineering,Instrumentation,General Materials Science

Reference31 articles.

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