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Analyzing phonetic variation in the traditional English dialects: Simultaneously clustering dialects and phonetic features

机译:分析传统英语方言中的语音变化:同时将方言和语音特征聚类

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This study explores the linguistic application of bipartite spectral graph partitioning, a graph-theoretic technique that simultaneously identifies clusters of similar localities as well as clusters of features characteristic of those localities. We compare the results using this approach with previously published results on the same dataset using cluster and principal component analysis (Shackleton 2007). Although the results of the spectral partitioning method and Shackleton's approach overlap to a broad extent, the analyses offer complementary insights into the data. The traditional cluster analysis detects some clusters that are not identified by the spectral partitioning analysis, whereas the reverse also occurs. Similarly, the principal component analysis and the spectral partitioning analysis detect many overlapping but also some different linguistic variants. The main benefit of the bipartite spectral graph partitioning method over the alternative approaches remains its ability to simultaneously identify sensible geographical clusters of localities with their corresponding linguistic features.
机译:这项研究探索了二部光谱图划分的语言学应用,一种图论技术同时识别相似位置的簇以及这些位置特征的簇。我们使用聚类和主成分分析(Shackleton 2007),将使用这种方法的结果与先前在同一数据集上发布的结果进行比较。尽管频谱划分方法和Shackleton方法的结果在很大程度上重叠,但分析提供了对数据的补充见解。传统的聚类分析会检测光谱划分分析无法识别的一些聚类,而相反的情况也会发生。同样,主成分分析和频谱划分分析可以检测到许多重叠,但也检测到一些不同的语言。相较于其他方法,二部光谱图分区方法的主要优点仍然是能够同时识别具有其相应语言特征的合理的地理位置地理集群。

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