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Application of Fuzzy Clustering Model for Interpretation of Gas Sensors Array Signals from Mold-Contaminated Buildings

机译:模糊聚类模型在污染建筑物阵列信号解释中的应用

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Sick Building Syndrome (SBS) constitutes an important issue in the building sector. The growth of mold is one of the factors that contribute to this phenomenon. Excessive humidity of the indoor air and increasing moisture of building envelopes frequently lead to the appearance of mold. The substances emitted by the fungi include Volatile Organic Compounds (VOCs). Detection of VOCs in the indoor air can be performed using a number of methods, such as chromatography or gas sensor arrays. The latter produce electric signals which then are subjected to analysis by means of statistical methods of interpretation. The presented paper describes the application of unsupervised statistical classifying model (fuzzy clustering) for the assessment of the signals generated by gas sensors array, used in the investigation of the indoor air from different types of buildings. A Metal Oxide Semiconductor (MOS) sensors array was proposed for evaluating the mold threat in buildings. The sensor readouts pertaining to the air sampled from inside the buildings in varying degree of mold-contamination, compared with clean and synthetic air, were interpreted and presented.
机译:病态综合征(SBS)构成了建筑业的重要问题。霉菌的生长是有助于这种现象的因素之一。室内空气的过度湿度和增加建筑包络的水分经常导致模具的外观。真菌发出的物质包括挥发性有机化合物(VOC)。可以使用多种方法进行室内空气中的VOCs检测,例如色谱或气体传感器阵列。后一种产生电信号,然后通过统计解释方法进行分析。本文介绍了无监督统计分类模型(模糊聚类)的应用,以评估气体传感器阵列产生的信号,用于调查来自不同类型的建筑物的室内空气。提出了一种金属氧化物半导体(MOS)传感器阵列,用于评估建筑物中的模具威胁。与清洁和合成空气相比,与水污染不同的建筑物内部采样的空气有关的传感器读数被解释和呈现。

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