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Enhancing Profile and Context Aware Relevant Food Search through Knowledge Graphs

机译:通过知识图形增强概况和上下文意识到相关的食物搜索

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摘要

Foodbar is a Cloud-based gastroevaluation solution, leveraging IBM Watson cognitive services. It brings together machine and human intelligence to enable cognitive gastroevaluation of “tapas” or “pintxos” , i.e., small miniature bites or dishes. Foodbar matchmakes users’ profiles, preferences and context against an elaborated knowledge graph based model of user and machine generated information about food items. This paper reasons about the suitability of this novel way of modelling heterogeneous, with diverse degree of veracity, information to offer more stakeholder satisfying knowledge exploitation solutions, i.e., those offering more relevant and elaborated, directly usable, information to those that want to take decisions regarding food in miniature. An evaluation of the information modelling power of such approach is performed highlighting why such model can offer better more relevant and enriched answers to natural language questions posed by users.
机译:Foodbar是一种基于云的胃内胃,利用IBM Watson认知服务。它汇集了机器和人类智能,以实现“塔帕烟鲸”或“食指”的认知胃,即小型叮咬或菜肴。 Foodbar将用户的个人资料,偏好和上下文匹配,针对基于用户和机器生成的有关食物的信息的阐述模型。本文的原因是这种模拟异构的新方法的适用性,具有多样化的准确性,提供更多利益相关者满足知识剥削解决方案的信息,即提供更相关和详细的,直接可用的信息,即希望采取决定的人提供信息关于微型食物。对这种方法的信息建模能力的评估突出显示为什么这种模型可以为用户提出的自然语言问题提供更好的更好相关和丰富的答案。

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