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利用深度学习算法建立用于推断溺水地点的硅藻种群数据库的有效方法。

An efficient method for building a database of diatom populations for drowning site inference using a deep learning algorithm.

机构信息

Shanghai Key Laboratory of Forensic Medicine, Shanghai Forensic Service Platform, Academy of Forensic Science, Ministry of Justice, Shanghai, People's Republic of China.

Department of Forensic Medicine, Inner Mongolia Medical University, Huhhot, Inner Mongolia, People's Republic of China.

出版信息

Int J Legal Med. 2021 May;135(3):817-827. doi: 10.1007/s00414-020-02497-5. Epub 2021 Jan 3.

Abstract

Seasonal or monthly databases of the diatom populations in specific bodies of water are needed to infer the drowning site of a drowned body. However, existing diatom testing methods are laborious, time-consuming, and costly and usually require specific expertise. In this study, we developed an artificial intelligence (AI)-based system as a substitute for manual morphological examination capable of identifying and classifying diatoms at the species level. Within two days, the system collected information on diatom profiles in the Huangpu and Suzhou Rivers of Shanghai, China. In an animal experiment, the similarities of diatom profiles between lung tissues and water samples were evaluated through a modified Jensen-Shannon (JS) divergence measure for drowning site inference, reaching a prediction accuracy of 92.31%. Considering its high efficiency and simplicity, our proposed method is believed to be more applicable than existing methods for seasonal or monthly water monitoring of diatom populations from sections of interconnected rivers, which would help police narrow the investigation scope to confirm the identity of an immersed body.

摘要

需要特定水体中硅藻种群的季节性或月度数据库来推断溺水者的溺水地点。然而,现有的硅藻测试方法繁琐、耗时且昂贵,通常需要特定的专业知识。在这项研究中,我们开发了一种基于人工智能 (AI) 的系统,作为能够识别和分类硅藻物种水平的手动形态学检查的替代品。该系统在两天内收集了中国上海黄浦江和苏州河的硅藻分布信息。在动物实验中,通过改进的 Jensen-Shannon(JS)散度衡量标准评估了肺组织和水样之间的硅藻分布相似性,从而达到了 92.31%的预测准确率。考虑到其高效率和简单性,与现有的方法相比,我们提出的方法更适用于相互连接的河流部分的季节性或月度硅藻种群的水监测,这将有助于警方缩小调查范围以确认浸入式身体的身份。

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