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Application of Data Mining to “Big Data” Acquired in Audiology: Principles and Potential

机译:数据挖掘在听力学中获得的“大数据”中的应用:原理和潜力

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The ubiquity and cheapness of miniature low-power sensors, digital processing, and large amounts of storage contained in small packages has heralded the ability to acquire large amounts of data about systems during their course of operation. The size and complexity of the data sets so generated have colloquially been labeled “big data.” The computer science field of “data mining” has arisen with the purpose of extracting meaning from such data, expressly looking for patterns that not only link historic observations but also predict future behavior. This overview article considers the process, techniques, and interpretation of data mining, with specific focus on its application in audiology. Modern hearing instruments contain data-logging technology to record data separate from the audio stream, such as the acoustic environments in which the device was being used and how the signal processing was consequently operating. Combined with details about the patient, such as the audiogram, the variety of data generated lends itself to a data mining approach. To date, reports of the use and interpretation of these data have been mostly constrained to questions such as looking for changes in patterns of daily use, or the degree and direction of volume control manipulation as the patient’s experience with a hearing aid changes. In this, and an accompanying results paper, the practical applications of some data mining techniques are described as applied to a large data set of examples of real-world device usage, as supplied by a hearing aid manufacturer.
机译:小型低功耗传感器,数字处理以及小包装中包含的大量存储的普遍性和廉价性预示着在系统运行过程中能够获取有关系统的大量数据的能力。如此生成的数据集的大小和复杂性通常被称为“大数据”。出现“数据挖掘”的计算机科学领域的目的是从此类数据中提取含义,明确寻找不仅链接历史观察而且还预测未来行为的模式。本文概述了数据挖掘的过程,技术和解释,特别着重于其在听力学中的应用。现代的助听器包含数据记录技术,用于记录与音频流分离的数据,例如使用该设备的声学环境以及信号处理的工作方式。结合有关患者的详细信息(例如听力图),生成的各种数据有助于进行数据挖掘。迄今为止,有关这些数据的使用和解释的报告大多局限于以下问题,例如寻找日常使用方式的变化,或者随着患者对助听器体验的改变而进行音量控制的程度和方向。在此以及随附的结果文件中,描述了某些数据挖掘技术的实际应用,这些应用是由助听器制造商提供的,这些数据挖掘应用于实际设备使用示例的大型数据集。

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