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Smartphone-powered citizen science for bioacoustic monitoring

机译:用于生物声学监测的智能手机供电的公民科学

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摘要

Citizen science is the involvement of amateur scientists in research for the purpose of data collection and analysis. This practice, well known to different research domains, has recently received renewed attention through the introduction of new and easy means of communication, namely the internet and the advent of powerful “smart” mobile phones, which facilitate the interaction between scientists and citizens. This is appealing to the field of biodiversity monitoring, where traditional manual surveying methods are slow and time consuming and rely on the expertise of the surveyor.This thesis investigates a participatory bioacoustic approach that engages citizens and their smartphones to map the presence of animal species. In particular, the focus is placed on the detection of the New Forest cicada, a critically endangered insect that emits a high pitched call, difficult to hear for humans but easily detected by their mobile phones. To this end, a novel real time acoustic cicada detector algorithm is proposed, which efficiently extracts three frequency bands through a Goertzel filter, and uses them as features for a hidden Markov model-based classifier. This algorithm has permitted the development of a cross-platform mobile app that enables citizen scientists to submit reports of the presence of the cicada. The effectiveness of this approach was confirmed for both the detection algorithm, which achieves an F1 score of 0.82 for the recognition of three acoustically similar insects in the New Forest; and for the mobile system, which was used to submit over 11,000 reports in the first two seasons of deployment, making it one of the largest citizen science projects of its kind.However the algorithm, though very efficient and easily tuned to different microphones, does not scale effectively to many-species classification. Therefore, an alternative method is also proposed for broader insect recognition, which exploits the strong frequency features and the repeating phrases that often occur in insects songs. To express these, it extracts a set of modulation coefficients from the power spectrum of the call, and represents them compactly by sampling them in the log-frequency space, avoiding any bias towards the scale of the phrase. The algorithm reaches an F1 score of 0.72 for 28 species of UK Orthoptera over a small training set, and an F1 score of 0.92 for the three insects recorded in the New Forest, though with higher computational cost compared to the algorithm tailored to cicada detection. The mobile app, downloaded by over 3,000 users, together with the two algorithms, demonstrate the feasibility of real-time insect recognition on mobile devices and the potential of engaging a large crowd for the monitoring of the natural environment.
机译:公民科学是业余科学家为了数据收集和分析而参与研究的过程。通过引入新的简便的通信方式(即互联网和功能强大的“智能”手机)的出现,这种做法已在不同的研究领域广为人知,最近受到了新的关注,这种通信方式促进了科学家与公民之间的互动。这吸引了生物多样性监测领域,在该领域中,传统的手动调查方法缓慢且耗时,并且依赖于调查员的专业知识。本文研究了一种参与性生物声学方法,该方法使公民及其智能手机参与绘制动物物种的存在图。特别是,重点放在检测新森林蝉(New Forest cicada)上,它是一种濒临灭绝的昆虫,发出高音调,人类听不到,但很容易被手机检测到。为此,提出了一种新颖的实时声蝉检测器算法,该算法可通过Goertzel滤波器有效地提取三个频带,并将其用作基于隐马尔可夫模型的分类器的特征。该算法允许开发跨平台的移动应用程序,使公民科学家能够提交有关蝉存在的报告。两种检测算法均证实了这种方法的有效性,该算法在识别“新森林”中三种声学相似的昆虫时达到了0.82的F1分数。对于移动系统,该系统在部署的前两个季度就提交了11,000份报告,这使其成为同类同类最大的公民科学项目之一。尽管该算法非常有效且可以轻松地针对不同的麦克风进行调整,但它确实可以无法有效地扩展到多种物种分类。因此,还提出了另一种方法来进行更广泛的昆虫识别,该方法利用了强频率特征和昆虫歌曲中经常出现的重复短语。为了表达这些,它从通话的功率谱中提取出一组调制系数,并通过在对数频率空间中对它们进行采样来紧凑地表示它们,从而避免了对短语范围的任何偏见。在一个小型训练集上,该算法对28种英国直翅目昆虫的F1得分为0.72,对在新森林中记录的三种昆虫的F1得分为0.92,尽管与为蝉检测量身定制的算法相比,该算法的计算成本更高。该移动应用程序由3,000多个用户下载,并结合了两种算法,证明了在移动设备上进行实时昆虫识别的可行性以及吸引大量人群进行自然环境监测的潜力。

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    Zilli Davide;

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  • 年度 2015
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