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Encouraging Attention and Exploration in a Hybrid Recommender System for Libraries of Unfamiliar Music

机译:鼓励对陌生音乐图书馆的混合推荐系统中的关注和探索

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There are few studies of user interaction with music libraries comprising solely of unfamiliar music, despite such music being represented in national music information centre collections. We aim to develop a system that encourages exploration of such a library. This study investigates the influence of 69 users’ pre-existing musical genre and feature preferences on their ongoing continuous real-time psychological affect responses during listening and the acoustic features of the music on their liking and familiarity ratings for unfamiliar art music (the collection of the Australian Music Centre) during a sequential hybrid recommender-guided interaction. We successfully mitigated the unfavorable starting conditions (no prior item ratings or participants’ item choices) by using each participant’s pre-listening music preferences, translated into acoustic features and linked to item view count from the Australian Music Centre database, to choose their seed item. We found that first item liking/familiarity ratings were on average higher than the subsequent 15 items and comparable with the maximal values at the end of listeners’ sequential responses, showing acoustic features to be useful predictors of responses. We required users to give a continuous response indication of their perception of the affect expressed as they listened to 30-second excerpts of music, with our system successfully providing either a “similar” or “dissimilar” next item, according to—and confirming—the utility of the items’ acoustic features, but chosen from the affective responses of the preceding item. We also developed predictive statistical time series analysis models of liking and familiarity, using music preferences and preceding ratings. Our analyses suggest our users were at the starting low end of the commonly observed inverted-U relationship between exposure and both liking and perceived familiarity, which were closely related. Overall, our hybrid recommender worked well under extreme conditions, with 53 unique items from 100 chosen as “seed” items, suggesting future enhancement of our approach can productively encourage exploration of libraries of unfamiliar music.
机译:尽管在国家音乐信息中心集合中代表了这些音乐,但仍有很少有用户与音乐图书馆的互动。我们的目标是开发一个鼓励探索这种图书馆的系统。本研究调查了69名用户的预先存在的音乐类型和特色偏好对他们在倾听和音乐的声学特征的持续实时性心理影响的影响以及对其喜欢和熟悉的宣传性艺术音乐的宣传性评级(集合澳大利亚音乐中心)在序贯的混合推荐人指导互动期间。我们通过使用每个参与者的预先聆听音乐偏好,转化为声学特征并与来自澳大利亚音乐中心数据库的项目视图计数相关联,选择了不利的起始条件(没有先前的项目评级或参与者项目选择),并从澳大利亚音乐中心数据库中选择他们的种子项目。我们发现,第一项喜欢/熟悉度评级平均高于随后的15项,并且与听众顺序响应结束时的最大值相当,显示声学特征是有用的响应预测因子。我们要求用户持续响应其对影响的影响的感知,因为它们听到了30秒的音乐摘录,我们的系统成功地提供了“类似”或“不同的”下一个项目,根据和确认 - 物品的效用'声学特征,但选择了前一项的情感响应。我们还使用音乐偏好和前面的评级制定了喜欢和熟悉程度的预测统计时间序列分析模型。我们的分析表明,我们的用户在曝光和喜好和感知熟悉之间的常见观察到U关系的起始低端。总体而言,我们的混合推荐人在极端条件下工作得很好,100个独特的物品从100个被选为“种子”项目,表明我们的方法的未来提高可以促进宣传陌生音乐图书馆。

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