表征立体定向系统不精度的一般框架。

IF 1.7 4区 医学 Q3 CLINICAL NEUROLOGY
Operative Neurosurgery Pub Date : 2025-03-01 Epub Date: 2024-12-02 DOI:10.1227/ons.0000000000001423
Michael A Jensen, Joseph S Neimat, Panagiotis Kerezoudis, Rushna Ali, R Mark Richardson, Casey H Halpern, Steven Ojemann, Francisco A Ponce, Kendall H Lee, Laura M Haugen, Bryan T Klassen, Douglas Kondziolka, Kai J Miller
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引用次数: 0

摘要

背景和目的:在立体定向手术中识别和描述定位错误的来源对于最大限度地提高准确性和潜在地改善手术结果至关重要。我们的目的是描述一个通用的框架,其特征的来源立体定向不准确。方法:我们收集了一系列立体定向系统:ROSA、Neuromate、Mazor Renaissance、ExcelsiusGPS、Cirq、STarFix (FHC)、Nexframe、ClearPoint、CRW和Leksell。我们搜索了定性和定量工作的文献,确定和量化不准确的潜在来源,并使用报告定性研究指南的标准描述每个系统的实施。我们的文献检索跨越1969年至2024年,包括各种研究,格式从虚幻研究到系统综述。进行关键字搜索,并使用每个系统的详细信息创建一个框架,用于识别和描述每个系统的独特靶向错误概况。结果:我们描述和说明了立体定向不准确的各种来源的细节,并产生了一个框架,以统一这些来源到一个单一的框架。该框架包括5个领域:成像、配准、机械精度、目标规划与调整、轨迹规划与调整。该框架应用于10个立体定向系统。结论:该框架为分析任何立体定向系统的误差来源提供了一个框架。插图允许读者从概念上理解错误的来源,以便他们可以将其应用到实践中。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A General Framework for Characterizing Inaccuracy in Stereotactic Systems.

Background and objectives: Identifying and characterizing sources of targeting error in stereotactic procedures is essential to maximizing accuracy, potentially improving surgical outcomes. We aim to describe a generic framework which characterizes sources of stereotactic inaccuracy.

Methods: We assembled a list of stereotactic systems: ROSA, Neuromate, Mazor Renaissance, ExcelsiusGPS, Cirq, STarFix (FHC), Nexframe, ClearPoint, CRW, and Leksell. We searched the literature for qualitative and quantitative work identifying and quantifying potential sources of inaccuracy and describing each system's implementation using Standards for Reporting Qualitative Research guidelines. Our literature search spanned 1969 to 2024, and various studies were included, with formats ranging from phantom studies to systematic reviews. Keyword searches were conducted, and the details about each system were used to create a framework for identifying and describing the unique targeting error profile of each system.

Results: We describe and illustrate the details of various sources of stereotactic inaccuracies and generate a framework to unify these sources into a single framework. This framework entails 5 domains: imaging, registration, mechanical accuracy, target planning and adjustment, and trajectory planning and adjustment. This framework was applied to 10 stereotactic systems.

Conclusion: This framework provides a rubric to analyze the sources of error for any stereotactic system. Illustrations allow the reader to understand sources of error conceptually so that they may apply them to their practice.

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来源期刊
Operative Neurosurgery
Operative Neurosurgery Medicine-Neurology (clinical)
CiteScore
3.10
自引率
13.00%
发文量
530
期刊介绍: Operative Neurosurgery is a bi-monthly, unique publication focusing exclusively on surgical technique and devices, providing practical, skill-enhancing guidance to its readers. Complementing the clinical and research studies published in Neurosurgery, Operative Neurosurgery brings the reader technical material that highlights operative procedures, anatomy, instrumentation, devices, and technology. Operative Neurosurgery is the practical resource for cutting-edge material that brings the surgeon the most up to date literature on operative practice and technique
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