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Quick2Insight: A user-friendly framework for interactive rendering of biological image volumes

机译:Quick2Insight:用于交互式渲染生物图像体积的用户友好框架

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This paper presents a new framework for simple, interactive volume exploration of biological datasets. We accomplish this by automatically creating dataset-specific transfer functions and utilizing them during direct volume rendering. The proposed method employs a K-Means++ clustering algorithm to classify a two-dimensional histogram created from the input volume. The classification process utilizes spatial and data properties from the volume. Then using properties derived from the classified clusters, our method automatically generates color and opacity transfer functions and presents the user with a high quality initial rendering of the volume data. Our method estimates classification parameters automatically, yet users are also allowed to input or override parameters to utilize pre-existing knowledge of their input data. User input is incorporated through the simple yet intuitive interface for transfer function manipulation included in our framework. Our new interface helps users focus on feature space exploration instead of the usual effort intensive, low-level widget manipulation. We evaluated the framework using three-dimensional medical and biological images. Our preliminary results demonstrate the effectiveness of our method of automating transfer function generation for high quality initial visualization. The proposed approach effectively generates automatic transfer functions and enables users to explore and interact with their data in an intuitive way, without requiring detailed knowledge of computer graphics or rendering techniques. Funded by NCI Contract No. HHSN261200800001E.
机译:本文提出了一种用于生物数据集的简单,交互式体积探索的新框架。我们通过自动创建特定于数据集的传递函数并在直接体绘制过程中利用它们来实现此目的。所提出的方法采用K-Means ++聚类算法对从输入体积创建的二维直方图进行分类。分类过程利用了体积中的空间和数据属性。然后,使用从分类的聚类中得出的属性,我们的方法会自动生成颜色和不透明度传递函数,并向用户提供体积数据的高质量初始呈现。我们的方法会自动估算分类参数,但也允许用户输入或覆盖参数以利用其输入数据的现有知识。通过简单而直观的界面将用户输入整合到我们的框架中,以进行传递函数操作。我们的新界面可帮助用户专注于特征空间探索,而不是通常需要花费大量精力的低级窗口小部件操纵。我们使用三维医学和生物学图像评估了框架。我们的初步结果证明了我们的传递函数自动生成方法对于高质量初始可视化的有效性。所提出的方法有效地生成了自动传递函数,并使用户能够以直观的方式浏览并与他们的数据进行交互,而无需了解计算机图形或渲染技术的详细知识。由NCI合同号HHSN261200800001E资助。

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