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神经外科中的虚拟现实模拟:技术与演进。

Virtual reality simulation in neurosurgery: technologies and evolution.

机构信息

Department of Computer Science, Stanford University, Stanford, California, USA.

出版信息

Neurosurgery. 2013 Jan;72 Suppl 1:154-64. doi: 10.1227/NEU.0b013e3182750d26.


DOI:10.1227/NEU.0b013e3182750d26
PMID:23254804
Abstract

Neurosurgeons are faced with the challenge of learning, planning, and performing increasingly complex surgical procedures in which there is little room for error. With improvements in computational power and advances in visual and haptic display technologies, virtual surgical environments can now offer potential benefits for surgical training, planning, and rehearsal in a safe, simulated setting. This article introduces the various classes of surgical simulators and their respective purposes through a brief survey of representative simulation systems in the context of neurosurgery. Many technical challenges currently limit the application of virtual surgical environments. Although we cannot yet expect a digital patient to be indistinguishable from reality, new developments in computational methods and related technology bring us closer every day. We recognize that the design and implementation of an immersive virtual reality surgical simulator require expert knowledge from many disciplines. This article highlights a selection of recent developments in research areas related to virtual reality simulation, including anatomic modeling, computer graphics and visualization, haptics, and physics simulation, and discusses their implication for the simulation of neurosurgery.

摘要

神经外科医生面临着学习、规划和执行越来越复杂的手术程序的挑战,这些手术程序几乎没有出错的余地。随着计算能力的提高和视觉和触觉显示技术的进步,虚拟手术环境现在可以为安全的模拟环境中的手术培训、规划和排练提供潜在的好处。本文通过简要介绍神经外科中具有代表性的模拟系统,介绍了各种类别的手术模拟器及其各自的用途。目前,许多技术挑战限制了虚拟手术环境的应用。尽管我们还不能期望数字患者与现实完全无法区分,但计算方法和相关技术的新发展使我们每天都更接近这一目标。我们认识到,沉浸式虚拟现实手术模拟器的设计和实现需要来自多个学科的专业知识。本文重点介绍了与虚拟现实模拟相关的研究领域的一些最新进展,包括解剖建模、计算机图形学和可视化、触觉以及物理模拟,并讨论了它们对神经外科模拟的影响。

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引用本文的文献

[1]
Reshaping neurosurgical training: a novel simulation-based concept for structured skill acquisition and curriculum integration.

Neurosurg Rev. 2025-6-20

[2]
Simulators with Haptic Feedback in Neurosurgery: Are We Reaching the "Aviator" Type of Training? Narrative Review and Future Perspectives.

Life (Basel). 2025-5-13

[3]
A Virtual Reality Anatomy Model of the Temporal Bone in ORL Residency Training-Gain or Gadget?

J Med Educ Curric Dev. 2024-10-9

[4]
Enhancing neuro-ophthalmic surgical education: The role of neuroanatomy and 3D digital technologies - An overview.

Surg Neurol Int. 2024-3-29

[5]
Surgeon's Eyes on the Relevant Surgical Target.

Acta Neurochir Suppl. 2023

[6]
Augmented reality for intracranial meningioma resection: a mini-review.

Front Neurol. 2023-11-2

[7]
Evaluation of WebRTC in the Cloud for Surgical Simulations: A case study on Virtual Rotator Cuff Arthroscopic Skill Trainer (ViRCAST).

Learn Collab Technol II (2023). 2023-7

[8]
Training models and simulators for endoscopic transsphenoidal surgery: a systematic review.

Neurosurg Rev. 2023-9-19

[9]
Application effect of head-mounted mixed reality device combined with 3D printing model in neurosurgery ventricular and hematoma puncture training.

BMC Med Educ. 2023-9-18

[10]
Vertical Hemispherotomy: Contribution of Advanced Three-Dimensional Modeling for Presurgical Planning and Training.

J Clin Med. 2023-5-31

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