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Towards Real-Time Contextual Touristic Emotion and Satisfaction Estimation with Wearable Devices

机译:与可穿戴设备的实时语境旅游情感和满意度估算

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Following the technical progress and growing touristic market, demand on guidance systems is constantly increasing. Current systems are not personalized, they usually provide only a general information on sightseeing spot and do not concern about the tourist's perception of it. To design more adjustable and context-aware system, we focus on collecting and estimating emotions and satisfaction level, those tourists experience during the sightseeing tour. We reducing changes in their behaviour by collecting two types of information: conscious (short videos with impressions) and unconscious (behavioural pattern recorded with wearable devices) continuously during the whole tour. We have conducted experiments and collected initial data to build the prototype system. For each sight of the tour, participants provided an emotion and satisfaction labels. We use them to train unimodal neural network based models, fuse them together and get the final prediction for each recording. As tourist himself is the only source of labels for such system, we introduce an approach of post-experimental label correction, based on paired comparison. Such system built together allows us to use different modalities or their combination to perform real-time tourist emotion recognition and satisfaction estimation in-the-wild, bringing touristic guidance systems to the new level.
机译:在技​​术进步和日益增长的旅游市场之后,对指导系统的需求不断增加。目前的系统不是个性化的,他们通常只提供有关观光景点的一般信息,并不关心旅游对其的看法。为了设计更多可调和上下文感知系统,我们专注于收集和估算情绪和满意度,这些游客在观光旅游期间的经历。通过收集两种信息:有意识的信息(具有印象的短视频)和难以记录(具有可穿戴设备的行为模式),减少了行为的变化。我们已经进行了实验并收集了初始数据以构建原型系统。对于旅游的每次景象,参与者提供了情感和满足的标签。我们使用它们培训基于单峰的神经网络的模型,将它们融合在一起并获得每个录音的最终预测。由于旅游本人是这种系统唯一标签的来源,我们基于配对比较介绍了实验后标签校正的方法。这些系统一起建立在一起允许我们使用不同的方式或其组合来执行实时旅游情绪识别和野外的满意度估计,使旅游指导系统成为新的水平。

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