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The use of an adaptive distance measure for breast cancer treatments

机译:自适应距离量度在乳腺癌治疗中的应用

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Breast cancer is one of the leading causes of death among middle-aged and old women. Treatment decision-making may depend upon defined extent of disease, but it requires the knowledge of several other factors from patient and medical diagnosis. The measurement variability in some factors leads to the data with lots of noise. Most classification algorithms are very sensitive to noisy training data. The nearest-neighbor is a simple classification algorithm that is known to be very sensitive to the quality of the training data. In this paper, we use an adaptive distance measure for nearest-neighbor algorithm designed for noisy data to tackle the problem of classifying breast cancer treatments. This algorithm is based on assigning a weight to each training example. The weight assigned to a training example controls the influence of that example in classifying test patterns. The weights of training examples are assigned in such a way to minimize the leave-one-out classification error-rate on training data. To assess the performance of this method, we used clinical data about breast cancer treatments from 330 cases in an attempt to classify the treatment decisions. The results indicate that the proposed method can significantly outperform other methods proposed in the past for the task of classifying treatment decisions.
机译:乳腺癌是中年和老年妇女死亡的主要原因之一。治疗决策可能取决于确定的疾病范围,但需要从患者和医学诊断中了解其他几个因素。某些因素下的测量变化会导致数据带有大量噪声。大多数分类算法对嘈杂的训练数据非常敏感。最近邻居是一种简单的分类算法,已知对训练数据的质量非常敏感。在本文中,我们为噪声数据设计了一种适用于最近邻算法的自适应距离测度,以解决乳腺癌治疗方法的分类问题。该算法基于为每个训练示例分配权重。分配给训练示例的权重控制该示例对测试模式进行分类的影响。训练示例权重的分配方式应使训练数据上的留一法分类错误率最小化。为了评估这种方法的效果,我们使用了330例乳腺癌治疗的临床数据,试图对治疗决策进行分类。结果表明,所提出的方法可以明显优于过去提出的用于对治疗决策进行分类的其他方法。

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