使用基于预测的姿态估计增强协同医学可视化系统中的视图一致性

Yim-Pan Chui, P. Heng
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引用次数: 13

摘要

目前,危重疾病的医学诊断很少由一个人来执行。通常,在困难的情况下,需要两个或更多的医生来做出诊断。万维网的发展和科学研究中协作工作的现代趋势产生了一类新的系统,即所谓的协作可视化系统。提出了一种新的协同医学可视化系统(CMVS)姿态航位推算机制。利用四元数作为姿态的描述,我们推导出一种姿态的一般轨迹构建方案,该方案通过外推许多先前的数据包来形成物体的未来轨迹。基于这种累积轨迹,提出了一种自适应预测和收敛方法。该方法允许从网络中获得的连续姿态之间的平滑转换。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhancing view consistency in collaborative medical visualization systems using predictive-based attitude estimation
Nowadays, medical diagnosis in critical diseases are seldom executed by only one person. Often, in difficult cases, two or more physicians are involved to reach a diagnosis. The growth of the World Wide Web and the modern trend of cooperative work in scientific research gave rise to a new class of systems, the so-called collaborative visualization systems. We present a new attitude dead reckoning mechanism in a collaborative medical visualization system (CMVS). Using quaterions as the description of attitude, we derive a general trajectory construction scheme of attitude that extrapolates a number of previous packets in order to form the future trajectory of objects. An adaptive prediction and convergence approach is developed based on this cumulative trajectory. The method allows smooth transition between consecutive attitudes obtained from the network.
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