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Accurate 3-D Reconstruction Under IoT Environments and Its Applications to Augmented Reality

机译:IOT环境下准确的3-D重建及其应用于增强现实

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摘要

With the remarkable development of sensor devices and the Internet of Things (IoT), today's researchers can easily know what changes have taken place in the real world by acquiring a 3-D model. Conversely, a large amount of image data promotes the development of perceptual computing technology. In this article, we focus on modeling 3-D scenes from the multisource image data obtained from the IoT with cameras. Although great progress has been made in 3-D reconstruction, it is still challenging to recover the 3-D model from IoT data because the captured images are usually noisy, incomplete, varying scale, and with repetitive structures or features. In this article, we propose an accurate 3-D reconstruction method under IoT environments for perceptual computing of the scene. This method consists of sparse, dense, and surface reconstruction processes, which can gradually recover high-quality geometric models from the image data and efficiently deal with various repetitive structures. By analyzing the reconstructed model, we can detect the changes of scenes. We evaluate the proposed method on the benchmark data sets (i.e., tanks and temples) and publicly available data sets(in which samples usually contain repeated structures, lighting change, and different scales). Experimental results show that the proposed method outperforms the state-of-the-art methods according to the standard evaluation metric. We also use our method to enhance the real scenes with virtual objects, thus producing promising results.
机译:随着传感器设备和物联网(物联网)的显着发展,今天的研究人员可以通过获取三维型号来轻松了解现实世界中发生了哪些变化。相反,大量的图像数据促进了感知计算技术的发展。在本文中,我们专注于从带有摄像机获得的Multisource图像数据的3-D场景。虽然在三维重建中取得了巨大进展,但从IOT数据中恢复3-D模型仍然有挑战性,因为捕获的图像通常是嘈杂的,不完整,不同的比例,并且重复的结构或特征。在本文中,我们提出了一种在IOT环境下提出了一种准确的3-D重建方法,用于对场景的感知计算。该方法包括稀疏,密集和表面重建过程,可以从图像数据逐渐恢复高质量的几何模型,并有效地处理各种重复结构。通过分析重建模型,我们可以检测场景的变化。我们评估基准数据集(即,坦克和寺庙)和公开的数据集(其中样本通常包含重复的结构,照明变化和不同尺度)上提出的方法。实验结果表明,根据标准评估度量,该方法优于最先进的方法。我们还使用我们的方法来增强虚拟对象的真实场景,从而产生有前途的结果。

著录项

  • 来源
    《IEEE transactions on industrial informatics》 |2021年第3期|2090-2100|共11页
  • 作者单位

    Hefei Univ Technol Key Lab Knowledge Engn Big Data Minist Educ Hefei 230009 Anhui Peoples R China|Hefei Univ Technol Anhui Prov Key Lab Ind Safety & Emergency Technol Hefei 230009 Peoples R China|Hefei Univ Technol Sch Comp Sci & Informat Engn Hefei 230009 Peoples R China;

    Hefei Univ Technol Key Lab Knowledge Engn Big Data Minist Educ Hefei 230009 Anhui Peoples R China|Hefei Univ Technol Anhui Prov Key Lab Ind Safety & Emergency Technol Hefei 230009 Peoples R China|Hefei Univ Technol Sch Comp Sci & Informat Engn Hefei 230009 Peoples R China;

    Hefei Univ Technol Key Lab Knowledge Engn Big Data Minist Educ Hefei 230009 Anhui Peoples R China|Hefei Univ Technol Anhui Prov Key Lab Ind Safety & Emergency Technol Hefei 230009 Peoples R China|Hefei Univ Technol Sch Comp Sci & Informat Engn Hefei 230009 Peoples R China;

    Kyushu Inst Technol Kitakyushu Fukuoka 8048550 Japan;

    Hefei Univ Technol Key Lab Knowledge Engn Big Data Minist Educ Hefei 230009 Anhui Peoples R China|Hefei Univ Technol Anhui Prov Key Lab Ind Safety & Emergency Technol Hefei 230009 Peoples R China|Hefei Univ Technol Sch Comp Sci & Informat Engn Hefei 230009 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Three-dimensional displays; Image reconstruction; Cameras; Feature extraction; Computational modeling; Solid modeling; Surface reconstruction; Augmented reality; Internet of Things (IoT); mixed Reality; modeling; 3-D reconstruction;

    机译:三维显示器;图像重建;相机;特征提取;计算建模;实体建模;表面重建;增强现实;事物互联网(物联网);混合现实;建模;建模;建模;建模;建模;建模;建模;建模;建模;三维重建;

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