Simulation of Image Restoration Technology on Museum VR Platform Based on Adaptive Segmentation and Wireless Sensor Network

Yong Sun, Wei Wei, Yi Chen, Chen Ding, Tianyi Sang
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Abstract

With the development of wireless sensor network (WSN) technology, image restoration technology based on WSN has gradually become a research hotspot. This paper aims to study the image restoration technology based on adaptive segmentation and wireless sensor network, and explore its application in museum VR platform to improve the accuracy and efficiency of image restoration. The image data is transmitted through wireless sensor network, and the collaborative processing ability of sensor nodes is used to restore the image. In this paper, the museum VR platform is built, and the research is simulated and tested. The experimental results show that the image restoration technology based on adaptive segmentation and wireless sensor network has a significant improvement in image quality and recovery speed. Compared with traditional methods, this technology can better maintain the details and texture of the image, and has higher stability and anti-interference ability, which can not only improve the virtual experience of users, but also provide strong support for the protection of cultural relics and digital management.

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基于自适应分割和无线传感器网络的博物馆 VR 平台图像修复技术仿真
随着无线传感器网络(WSN)技术的发展,基于 WSN 的图像修复技术逐渐成为研究热点。本文旨在研究基于自适应分割和无线传感器网络的图像修复技术,并探索其在博物馆 VR 平台中的应用,以提高图像修复的精度和效率。图像数据通过无线传感器网络传输,利用传感器节点的协同处理能力对图像进行还原。本文搭建了博物馆 VR 平台,并进行了模拟和测试。实验结果表明,基于自适应分割和无线传感器网络的图像复原技术在图像质量和恢复速度上都有显著提高。与传统方法相比,该技术能更好地保持图像的细节和质感,具有更高的稳定性和抗干扰能力,不仅能提升用户的虚拟体验,还能为文物保护和数字化管理提供有力支撑。
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