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15-05-2025 | Original Article

Projection neural networks for sample-regular product optimization model

Authors: Yuhan Xue, Yiting Dong, Chong Wu

Published in: International Journal of Machine Learning and Cybernetics

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Abstract

The digital shift in retail has introduced significant challenges, particularly product fit uncertainty in online shopping. This article addresses these issues by proposing a sample-sending model that allows consumers to purchase low-cost samples, enhancing their confidence in full-size product purchases. The integration of recurrent neural networks (RNN) into this model offers a dynamic solution to the complexities of sample-sending optimization, providing real-time problem-solving capabilities. The article rigorously proves the Lyapunov stability and convergence of the proposed RNN, ensuring its effectiveness in maximizing merchant profitability while enhancing consumer satisfaction. Through detailed numerical simulations, the article demonstrates the model's feasibility and superiority over traditional sales methods, highlighting its potential to revolutionize e-commerce strategies. The sample-sending model, coupled with RNN-based optimization, represents a major innovation in online retailing, offering a trial-and-error framework that optimizes consumer decision-making and merchant profitability.

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Metadata
Title
Projection neural networks for sample-regular product optimization model
Authors
Yuhan Xue
Yiting Dong
Chong Wu
Publication date
15-05-2025
Publisher
Springer Berlin Heidelberg
Published in
International Journal of Machine Learning and Cybernetics
Print ISSN: 1868-8071
Electronic ISSN: 1868-808X
DOI
https://doi.org/10.1007/s13042-025-02661-6