Experiments in Adaptive Pattern Recognition

J. Bryan
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引用次数: 9

Abstract

The purpose of this paper and the experiments which it describes has been to supply data concerning the power of some Perceptron-like adaptive pattern recognition systems using linear discriminate functions. Three problems have been presented to such a machine: hand-print classification, blood-cell sorting and target identification in gray-scale aerial photographs. Performance of decision functions utilizing corrective training were compared with that obtained by a simple form of Bayes' weighting. In general, the technique of corrective training was found to yield markedly superior results over the training sequence, but the ability to generalize or recognize samples not included in the training sequence was found to be about the same for the two techniques. Analysis of the experimental data permitted a quantitative evaluation of the effects of statistical dependence in the system together with a prediction of terminal error rates for the condition in which the number of A units is made infinitely large.
自适应模式识别实验
本文的目的和实验描述的目的是提供有关一些使用线性判别函数的类似感知器的自适应模式识别系统的能力的数据。这种机器面临三个问题:手印分类、血细胞分类和灰度航空照片中的目标识别。利用校正训练的决策函数的性能与贝叶斯加权的简单形式得到的决策函数的性能进行了比较。总的来说,我们发现纠正训练技术产生的结果明显优于训练序列,但我们发现两种技术泛化或识别未包含在训练序列中的样本的能力大致相同。通过对实验数据的分析,可以对系统中统计依赖性的影响进行定量评估,并对a单元数量无限大的情况下的终端错误率进行预测。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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