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Context-Aware Preference Model Based on a Study of Difference between Real and Supposed Situation Data

机译:基于真实情况与假设情况数据之间差异的研究的上下文感知偏好模型

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We propose a novel approach for constructing statistical preference models for context-aware recommender systems. To do so, one of the most important but difficult problems is acquiring sufficient training data in various contexts/situations. Particularly, some situations require a heavy workload to set them up or to collect subjects under those situations. To avoid this, often a large amount of data in a supposed situation is collected, i.e., a situation where the subject pretends/imagines that he/she is in a specific situation. Although there may be difference between the preference in the real situation and the supposed situation, this has not been considered in existing researches. Here, to study the difference, we collected a certain amount of corresponding data. We asked subjects the same question about preference both in the real and the supposed situation. Then we proposed a new model construction method using a difference model constructed from the correspondence data and showed the effectiveness through the experiments.
机译:我们提出了一种新颖的方法来为上下文感知推荐系统构建统计偏好模型。为此,最重要但困难的问题之一是在各种情况/情况下获取足够的训练数据。特别地,在某些情况下,某些情况需要很重的工作量来设置它们或收集对象。为了避免这种情况,经常在假定的情况下,即在受试者假装/想象他/她处于特定情况下的情况下,收集大量数据。尽管实际情况和假设情况之间的偏好可能有所不同,但是现有研究尚未考虑到这一点。在这里,为了研究差异,我们收集了一定数量的相应数据。我们问受试者关于真实和假定情况下的偏好的相同问题。然后,我们提出了一种使用由对应数据构造的差异模型的新模型构造方法,并通过实验证明了其有效性。

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