基于神经SDF的三维内窥镜系统形状一致性增量集成。

IF 2.8 Q3 ENGINEERING, BIOMEDICAL
Ryo Furukawa, Hiroshi Kawasaki, Ryusuke Sagawa
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引用次数: 0

摘要

对内窥镜系统的三维测量有很大的需求。一种很有前景的方法是利用主动立体系统,将微型图案投影仪连接到内窥镜的头部。此外,还需要多帧集成以扩大重建面积。本文提出了一种摄像机和投影仪的形状场参数和位置参数的增量优化技术。该方法假设输入的数据是临时顺序图像,即内窥镜视频,并且摄像机与投影仪之间的相对位置可能连续变化。作为解决方案,提出了一种结合神经符号距离场(NeuralSDF)表示的差分体绘制算法,以同时优化3D场景和相机/投影仪姿态。同时,提出了一种逐步增加优化帧数的增量优化策略。在实验中,通过使用合成图像和真实图像进行三维重建来评估所提出的方法,证明了我们的方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Incremental shape integration with inter-frame shape consistency using neural SDF for a 3D endoscopic system

Incremental shape integration with inter-frame shape consistency using neural SDF for a 3D endoscopic system

3D measurement for endoscopic systems has been largely demanded. One promising approach is to utilize active-stereo systems using a micro-sized pattern-projector attached to the head of an endoscope. Furthermore, a multi-frame integration is also desired to enlarge the reconstructed area. This paper proposes an incremental optimization technique of both the shape-field parameters and the positional parameters of the cameras and projectors. The method assumes that the input data is temporarily sequential images, that is, endoscopic videos, and the relative positions between the camera and the projector may vary continuously. As solution, a differential volume rendering algorithm in conjunction with neural signed distance field (NeuralSDF) representation is proposed to simultaneously optimize the 3D scene and the camera/projector poses. Also, an incremental optimization strategy where the optimized frames are gradually increased is proposed. In the experiment, the proposed method is evaluated by performing 3D reconstruction using both synthetic and real images, proving the effectiveness of our method.

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来源期刊
Healthcare Technology Letters
Healthcare Technology Letters Health Professions-Health Information Management
CiteScore
6.10
自引率
4.80%
发文量
12
审稿时长
22 weeks
期刊介绍: Healthcare Technology Letters aims to bring together an audience of biomedical and electrical engineers, physical and computer scientists, and mathematicians to enable the exchange of the latest ideas and advances through rapid online publication of original healthcare technology research. Major themes of the journal include (but are not limited to): Major technological/methodological areas: Biomedical signal processing Biomedical imaging and image processing Bioinstrumentation (sensors, wearable technologies, etc) Biomedical informatics Major application areas: Cardiovascular and respiratory systems engineering Neural engineering, neuromuscular systems Rehabilitation engineering Bio-robotics, surgical planning and biomechanics Therapeutic and diagnostic systems, devices and technologies Clinical engineering Healthcare information systems, telemedicine, mHealth.
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