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Flexible Painting-Based Volume Classification Using Ellipsoid Gaussian Transfer Function

机译:基于椭球高斯传递函数的基于弹性绘画的体积分类

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The paper focuses on appearance and spatial property-based volume classification with a painting interface. Two key problems exist, i.e., effectively propagating user-given painting to the entire volume and intuitively controlling the roles of appearance and spatial properties, which are not well solved in existing painting-based transfer function specification methods. The present paper formulates painting propagation as a function interpolation problem in a high-dimensional affine space and solves it effectively using Gaussian radial basis functions. For the second problem, the present work presents a two-step approach, which first propagates the user-given painting to the entire volume using appearance- and spatial-property-dominated feature vectors, and then combines the painting propagation results using an ellipsoid Gaussian transfer function (ETF) for volume classification. The user can intuitively manipulate ETF using system-provided widgets. The effectiveness of the proposed method has been verified on several datasets.
机译:本文着重于通过绘画界面对外观和基于空间特性的体积分类。存在两个关键问题,即有效地将用户提供的绘画传播到整个体积以及直观地控制外观和空间属性的作用,这在现有的基于绘画的传递函数指定方法中没有很好地解决。本文将绘画传播定义为高维仿射空间中的函数插值问题,并利用高斯径向基函数有效地解决了该问题。对于第二个问题,本工作提出了一种两步方法,该方法首先使用外观和空间属性为主的特征向量将用户提供的绘画传播到整个体积,然后使用椭球高斯组合绘画传播结果容量分类的传递函数(ETF)。用户可以使用系统提供的小部件直观地操作ETF。该方法的有效性已在多个数据集上得到验证。

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