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A Distributed Approach for Classifying Anuran Species Based on Their Calls

机译:一种基于物种的无性物种分类的分布式方法

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In this work, we evaluate the performance of a distributed classification system in a Wireless Sensor Network for monitoring anurans. Our aim is to study how to take advantage of the collaborative nature of the sensor network to improve the recognition of anuran calls. To accomplish this, we evaluate four low-cost techniques (majority vote, weighted majority vote, arithmetic and geometric combinators) to combine three classifiers commonly used in sensor applications (Quadratic Discriminant Analysis, Naive Bayes, and Decision Trees) and trained to identify anuran calls. We investigate how the environment perceptions of the sensors can be used to discard confusing scenarios, i.e., scenarios in which there are multiple calls from different species at same time. Our best combination strategy achieved a gain of about 11% over a sensor taken in isolation. We also found that, by using the entropy of the species estimates, the sensor committee is able to effectively identify confusing scenarios, increasing gains over the isolated sensor to about 20%.
机译:在这项工作中,我们评估了无线传感器网络中用于监视无脊椎动物的分布式分类系统的性能。我们的目的是研究如何利用传感器网络的协作性质来提高对无名氏呼叫的识别。为了实现这一目标,我们评估了四种低成本技术(多数表决,加权多数表决,算术和几何组合器),将传感器应用中常用的三个分类器(二次判别分析,朴素贝叶斯和决策树)组合在一起,并经过了训练以识别无核生物。电话。我们研究了如何利用传感器的环境感知来丢弃令人困惑的场景,即同时存在来自不同物种的多个呼叫的场景。我们的最佳组合策略比单独使用的传感器获得了约11%的增益。我们还发现,通过使用物种估计的熵,传感器委员会能够有效地识别令人困惑的情况,从而将隔离传感器的收益提高到大约20%。

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