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An enhanced personal photo recommendation system by fusing contextual and textual features on mobile device

机译:通过在移动设备上融合上下文和文本功能,增强了个人照片推荐系统

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摘要

As a main means to record scene in personal daily life, personal photos convey high-level semantic information (e.g., who, what, when, where) of an activity user engaged in. Different from other information retrieval tasks, personal photo recommendation depends on the measure of activity relevancy which is implicitly embedded in photos. Spurred by this observation, an enhanced recommendation approach by fusing both contextual and textual features is proposed. First, contextual relevancy is incrementally refined with an enhanced temporal and spatial clustering method respectively. Second, textual similarity of photo annotations is calculated using WordNet to augment the activity relevancy. Third, a fuzzy decision based multi-criteria ranking algorithm i.e., Preference Ranking Organization Method of Enrichment Evaluation (PROMETHEE) is adopted to make recommendations when giving an entry photo. A prototype has been developed on mobile device to illustrate this concept. Experiment results on a real dataset which contains 10,827 photos collected from 50 volunteers during 12 months demonstrate that our approach is more accurate than traditional schemes.
机译:作为记录个人日常生活场景的主要手段,个人照片传达了活动用户从事的高级语义信息(例如,谁,什么,什么时候,在哪里)。与其他信息检索任务不同,个人照片推荐取决于活动相关性的量度隐式嵌入照片中。受此观察结果的启发,提出了一种融合了上下文和文本特征的增强推荐方法。首先,分别通过增强的时间和空间聚类方法逐步完善上下文相关性。其次,使用WordNet计算照片注释的文本相似度以增强活动的相关性。第三,在给出参赛照片时,采用基于模糊决策的多准则排序算法,即富集评价的偏好排序组织方法(PROMETHEE)进行推荐。已经在移动设备上开发了一个原型来说明这一概念。在真实数据集上的实验结果包含12个月内从50位志愿者那里收集的10,827张照片,证明了我们的方法比传统方案更准确。

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