首页> 外文会议>IEEE International Conference on Intelligent Computing and Intelligent Systems;ICIS 2009 >Searching for better measures: Generating similarity functions for abstract musical objects
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Searching for better measures: Generating similarity functions for abstract musical objects

机译:寻找更好的方法:为抽象音乐对象生成相似性函数

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Several similarity and distance measures have been developed for different purposes and applications in various research fields. For example, scholars have used them to evaluate similarities between tonalities, melodies and rhythms for music information retrieval. In this study, similarity functions are generated automatically. We focus on similarities between the so-called pitch-class sets that belong to the field of pitch-class set theory. Pitch-class set theory offers a well-defined mathematical framework for categorising musical objects and describing their relationships. An output, consisting of similarity values between the abstract pitch-class sets, is produced by means of a generated function. We then compare these values with empirical results by means of statistical methods. We also compare the performance of a generated function with that of REL (David Lewin 1980), perhaps the most successful similarity function in the field. The achieved results are encouraging: some of the generated functions are able to produce stronger correlations with empirical data than REL. As a satisfying by-product, the results hint at the fact that there may be a connection between the perceived closeness of pitch-class sets and Shepard's universal cognitive models. While the present application context is musical set theory, we stress that similar procedures can be applied to other areas of research as well.
机译:已经针对各种研究领域中的不同目的和应用开发了几种相似性和距离度量。例如,学者使用它们来评估音乐信息检索中音调,旋律和节奏之间的相似性。在这项研究中,相似度函数是自动生成的。我们关注属于音调级集理论领域的所谓音调级集之间的相似性。音高类集合理论提供了一个明确定义的数学框架,用于对音乐对象进行分类并描述它们之间的关系。借助于生成的函数来产生由抽象音高类集合之间的相似性值组成的输出。然后,我们通过统计方法将这些值与经验结果进行比较。我们还将生成的函数的性能与REL(David Lewin,1980)进行比较,REL是本领域中最成功的相似函数。取得的结果令人鼓舞:与REL相比,某些生成的函数能够与经验数据产生更强的相关性。作为令人满意的副产品,结果暗示了这样一个事实,即在音调课程集的感知亲密性和谢泼德的普遍认知模型之间可能存在联系。虽然当前的应用环境是音乐背景理论,但我们强调类似的程序也可以应用于其他研究领域。

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