Efficient Data Communication in SIoT: Hybrid Channel Attention Recurrent Transformer-Based Adaptive Marine Predator Algorithm for Reduced Energy Consumption

IF 1.7 4区 计算机科学 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
Sekar Sellappan, Ravikumar Sethuraman, Surendran Subbaraj, Jeyalakshmi Shunmugiah
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引用次数: 0

Abstract

The rapid development of technologies has attracted significant attention, with the social web and big data becoming key drivers of modern innovation. Although big data in the Social Internet of Things presents various energy-saving merits, problems such as network congestion and data communication reliability occur. In this article, a hybrid channel attention recurrent transformer-based adaptive marine predator algorithm is introduced to solve these problems. The main purpose of this approach is to improve the robustness and performance of SIoT systems. The hybrid channel attention recurrent transformer-based adaptive marine predator algorithm combines a hybrid recurrent neural network, a channel attention mechanism, and a transformer classifier. In this work, four datasets, including the water treatment plant, GPS trajectories, hepatitis dataset, and Twitter for sentiment analysis in Arabic are employed in validating the performance of a proposed model. The Savitzky–Golay filter is applied to reduce noise and eliminate unnecessary or irrelevant data. After data pre-processing, the hybrid channel attention recurrent transformer-based adaptive marine predator was introduced for classification, and this model is fine-tuned by the adaptive marine predator algorithm. In addition, the proposed model demonstrates strong scalability and applicability in real-world applications, making it an ideal solution for future Social Internet of Things systems.

Abstract Image

SIoT中高效的数据通信:基于混合信道注意循环变压器的自适应海洋捕食者算法降低能耗
科技的快速发展引起了人们的极大关注,社交网络和大数据成为现代创新的关键驱动力。社会物联网中的大数据虽然具有各种节能优点,但也存在网络拥塞、数据通信可靠性等问题。本文提出了一种基于混合信道注意力循环变换的自适应海洋捕食者算法来解决这些问题。这种方法的主要目的是提高SIoT系统的鲁棒性和性能。基于混合通道注意递归变换的自适应海洋捕食者算法结合了混合递归神经网络、通道注意机制和变压器分类器。在这项工作中,四个数据集,包括水处理厂、GPS轨迹、肝炎数据集和用于阿拉伯语情感分析的Twitter,被用于验证所提议模型的性能。Savitzky-Golay滤波器用于降低噪声和消除不必要或不相关的数据。在数据预处理后,引入基于混合信道注意力循环变换的自适应海洋捕食者进行分类,并通过自适应海洋捕食者算法对模型进行微调。此外,该模型在实际应用中具有较强的可扩展性和适用性,是未来社会物联网系统的理想解决方案。
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来源期刊
CiteScore
5.90
自引率
9.50%
发文量
323
审稿时长
7.9 months
期刊介绍: The International Journal of Communication Systems provides a forum for R&D, open to researchers from all types of institutions and organisations worldwide, aimed at the increasingly important area of communication technology. The Journal''s emphasis is particularly on the issues impacting behaviour at the system, service and management levels. Published twelve times a year, it provides coverage of advances that have a significant potential to impact the immense technical and commercial opportunities in the communications sector. The International Journal of Communication Systems strives to select a balance of contributions that promotes technical innovation allied to practical relevance across the range of system types and issues. The Journal addresses both public communication systems (Telecommunication, mobile, Internet, and Cable TV) and private systems (Intranets, enterprise networks, LANs, MANs, WANs). The following key areas and issues are regularly covered: -Transmission/Switching/Distribution technologies (ATM, SDH, TCP/IP, routers, DSL, cable modems, VoD, VoIP, WDM, etc.) -System control, network/service management -Network and Internet protocols and standards -Client-server, distributed and Web-based communication systems -Broadband and multimedia systems and applications, with a focus on increased service variety and interactivity -Trials of advanced systems and services; their implementation and evaluation -Novel concepts and improvements in technique; their theoretical basis and performance analysis using measurement/testing, modelling and simulation -Performance evaluation issues and methods.
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