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A framework for pattern based melody matching for Content Based Music Information Retrieval

机译:基于模式的基于函数匹配的基于模式的音乐信息检索的框架

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Content Based Music Information Retrieval (CBMIR) Systems help the users to find the interesting musical object from a vast collection of musical objects based on the content expressed in terms of musical phrases referred to as repeating patterns in response to query often expressed as a smaller fragment of note sequence. It is crucial to identify repeating patterns, indexing the musical objects based on the patterns and estimate the relevance of music objects to the given query for preparing the ranked list of music objects. This paper discusses development of a framework for pattern based melody matching used to build CBMIR systems. The framework consists of five modules to support the content processing of music objects for multiple tasks. Module-1 deals with extraction of melody track from the music object and representing it as a symbolic note sequence. Alternative representational strategies and their suitability to different scenarios are discussed. Module-2 deals with extraction of approximate repeating patterns from the note sequences representing the music objects to identify semantic features of music object. Module-3 applies document retrieval techniques to transform the music objects into semantic feature space using the approximate patterns identified by the previous module. A pattern base is created to maintain the inverted list of music objects (along with the prominence scores) corresponding to each pattern. Query preprocessing to transform it into a set of query terms followed by query pattern matching with candidate patterns available in the pattern base is implemented in Module-4 of the framework. Finally the Module-5 estimates the matching scores of the music objects/songs if they contain some/all of the query patterns and sort the music objects in the order of their matching scores. Experimentation is conducted on two real world dataset of musical objects: one containing South Indian classical music and the other containing popular movie songs of India. The performance of the framework is estimated in terms of Mean Reciprocal Ranking (MRR) and is found to be satisfactory even for short queries.
机译:基于内容的音乐信息检索(CBMIR)系统帮助用户根据响应于查询表示的音乐短语而表达的内容,从大量的音乐对象中找到有趣的音乐对象,这些内容响应于查询通常表示为较小的片段注意序列。识别重复模式是至关重要的,以基于模式索引音乐对象并估计音乐对象与给定查询的相关性以准备音乐对象列表。本文讨论了用于构建CBMIR系统的基于模式的旋律匹配框架的框架。该框架由五个模块组成,以支持多个任务的音乐对象的内容处理。 Module-1处理从音乐对象的旋律轨道的提取,并将其表示为符号说明序列。讨论了替代代表性战略及其对不同情景的适用性。模块-2涉及从表示音乐对象的音符序列的提取近似重复模式,以识别音乐对象的语义特征。 Module-3应用文档检索技术,使用上一个模块标识的近似模式将音乐对象转换为语义特征空间。创建模式基础以维护与每个模式相对应的音乐对象(以及突出分数)的反转列表。查询预处理以将其转换为一组查询术语,然后是在框架的模块-4中实现了模式库中可用的候选模式的查询模式。最后,如果它们包含一些/所有查询模式并按匹配分数的顺序对音乐对象排序音乐对象/歌曲,则估计音乐对象/歌曲的匹配分数。实验是在乐谱的两个真实世界数据集上进行:一个包含南印度古典音乐,另一个包含印度的热门电影歌曲。框架的性能估计在平均互惠排名(MRR)方面估计,并且即使对于短期疑问,也发现令人满意。

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