Semantic computing of simplicity in attributed generalized trees

Mahsa Kiani, V. Bhavsar, H. Boley
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引用次数: 1

Abstract

In earlier work, Attributed Generalized Tree (AGT) structures, having vertex labels, edge labels, and edge weights have been introduced. AGTs can represent knowledge in domains containing rich semantic/pragmatic object-centered descriptions as well as complex relations between objects. Therefore, AGTs have applications in many domains such as health, business, and finance (e.g., insurance underwriting). In this paper, we introduce a function to quantify the simplicity of an arbitrary AGT. Our simplicity function takes into account branch, position, and weight factors; it maps the structure to a value in the interval [0,1]. The recursive simplicity algorithm performs a top-down traversal of the AGT and computes its simplicity bottom-up. Characteristic properties of the AGT simplicity measure are analyzed, and AGTs in a test dataset are ranked based on their simplicity values computed using our simplicity algorithm. The experimental analysis confirms our expectation that the simplicity value decreases with increasing the complexity of AGT structure.
属性广义树中简单性的语义计算
在早期的工作中,引入了具有顶点标记、边缘标记和边缘权重的属性广义树(AGT)结构。agt可以在包含丰富的以对象为中心的语义/语用描述以及对象之间复杂关系的领域中表示知识。因此,agt在许多领域都有应用,例如健康、商业和金融(例如,保险承销)。在本文中,我们引入一个函数来量化任意AGT的简单性。我们的简化函数考虑了分支、位置和权重因素;它将结构映射到区间[0,1]内的一个值。递归简单性算法对AGT执行自顶向下的遍历,并自底向上计算其简单性。分析了AGT简单性度量的特征属性,并根据使用简单性算法计算的简单性值对测试数据集中的AGT进行了排序。实验分析证实了我们的预期,即简单性值随着AGT结构复杂性的增加而降低。
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