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CrowdDB: Answering Queries with Crowdsourcing

机译:CrowddB:用众包回答查询

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Some queries cannot be answered by machines only. Processing such queries requires human input for providing information that is missing from the database, for performing computationally difficult functions, and for matching, ranking, or aggregating results based on fuzzy criteria. CrowdDB uses human input via crowdsourcing to process queries that neither database systems nor search engines can adequately answer. It uses SQL both as a language for posing complex queries and as a way to model data. While CrowdDB leverages many aspects of traditional database systems, there are also important differences. Conceptually, a major change is that the traditional closed-world assumption for query processing does not hold for human input. From an implementation perspective, human-oriented query operators are needed to solicit, integrate and cleanse crowdsourced data. Furthermore, performance and cost depend on a number of new factors including worker affinity, training, fatigue, motivation and location. We describe the design of CrowdDB, report on an initial set of experiments using Amazon Mechanical Turk, and outline important avenues for future work in the development of crowdsourced query processing systems.
机译:一些查询只能由机器回答。处理此类查询需要人员输入,用于提供数据库中缺少的信息,用于执行基于模糊标准的计算困难功能,以及匹配,排名或聚合结果。 CrowddB通过众包使用人类输入来处理数据库系统和搜索引擎无法充分答案的查询。它使用SQL作为构成复杂查询的语言,并作为模拟数据的方式。虽然CrowddB利用传统数据库系统的许多方面,但也存在重要差异。概念上,一个重大变化是传统的查询处理假设不适合人类投入。从实现角度来看,需要以人为本的查询运营商征求,整合和清除众包数据。此外,性能和成本取决于许多新因素,包括工人亲和力,培训,疲劳,动机和位置。我们描述了CrowddB的设计,有关使用Amazon Mechanical Turk的初始实验的报告,并概述了未来工作中众包查询处理系统的重要途径。

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