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Accident-data-aided design: visualizing typical and potential risks of consumer products by data mining an accident database

机译:事故 - 数据辅助设计:通过数据挖掘事故数据库可视化消费产品的典型和潜在风险

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Designing a safe product requires predicting how consumers will use the product and what sort of risks exist in their daily environment. However, assistive technology for risk assessment of consumer products used in the daily environment has not yet been established. One of the most promising approaches is to utilize data on actual accidents that have occurred in the past. This paper proposes a new method that uses recently developed data mining technology to predict the typical and potential risks of consumer products. The proposed method is as follows: 1) create a database by structurizing a situation graph of accident data; 2) use this database to determine the typical risk; and 3) use two methods to determine the potential risk: a probabilistic latent semantic indexing (pLSI) method and a method based on the features of the product. The feature method uses 48 predefined latent classes of product features, such as, for example, things that rotate, things that can be held, and things that have high temperatures. To demonstrate the effectiveness of the proposed system, we applied our system to a dataset of 681 cases of accidental burning or scalding injuries.
机译:设计安全产品需要预测消费者如何使用该产品以及日常环境中存在哪些风险。但是,尚未建立日常环境中使用的消费产品风险评估的辅助技术。最有前途的方法之一是利用过去发生的实际事故的数据。本文提出了一种新方法,该方法采用最近开发的数据挖掘技术来预测消费产品的典型和潜在风险。所提出的方法如下:1)通过结构制定事故数据的情况来创建数据库; 2)使用此数据库确定典型风险; 3)使用两种方法来确定潜在风险:概率潜在语义索引(PLSI)方法和基于产品特征的方法。该特征方法使用48个预定义的潜在产品特征,例如旋转的东西,可以保持的东西,以及具有高温的东西。为了证明所提出的系统的有效性,我们将系统应用于681例意外燃烧或烫伤伤害的数据集。

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