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首页> 外文期刊>BMC zoology. >LemurFaceID: a face recognition system to facilitate individual identification of lemurs
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LemurFaceID: a face recognition system to facilitate individual identification of lemurs

机译:LemurFaceID:一种面部识别系统,可帮助个体识别狐猴

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摘要

Background Long-term research of known individuals is critical for understanding the demographic and evolutionary processes that influence natural populations. Current methods for individual identification of many animals include capture and tagging techniques and/or researcher knowledge of natural variation in individual phenotypes. These methods can be costly, time-consuming, and may be impractical for larger-scale, population-level studies. Accordingly, for many animal lineages, long-term research projects are often limited to only a few taxa. Lemurs, a mammalian lineage endemic to Madagascar, are no exception. Long-term data needed to address evolutionary questions are lacking for many species. This is, at least in part, due to difficulties collecting consistent data on known individuals over long periods of time. Here, we present a new method for individual identification of lemurs (LemurFaceID). LemurFaceID is a computer-assisted facial recognition system that can be used to identify individual lemurs based on photographs. Results LemurFaceID was developed using patch-wise Multiscale Local Binary Pattern features and modified facial image normalization techniques to reduce the effects of facial hair and variation in ambient lighting on identification. We trained and tested our system using images from wild red-bellied lemurs ( Eulemur rubriventer ) collected in Ranomafana National Park, Madagascar. Across 100 trials, with different partitions of training and test sets, we demonstrate that the LemurFaceID can achieve 98.7%?±?1.81% accuracy (using 2-query image fusion) in correctly identifying individual lemurs. Conclusions Our results suggest that human facial recognition techniques can be modified for identification of individual lemurs based on variation in facial patterns. LemurFaceID was able to identify individual lemurs based on photographs of wild individuals with a relatively high degree of accuracy. This technology would remove many limitations of traditional methods for individual identification. Once optimized, our system can facilitate long-term research of known individuals by providing a rapid, cost-effective, and accurate method for individual identification.
机译:背景技术对已知个体的长期研究对于理解影响自然种群的人口和进化过程至关重要。用于个体识别许多动物的当前方法包括捕获和标记技术和/或研究人员对个体表型自然变异的认识。这些方法可能成本高昂,费时,并且对于大规模的人群研究而言可能不切实际。因此,对于许多动物谱系,长期的研究项目通常仅限于少数几个分类单元。狐猴是马达加斯加特有的哺乳动物血统,也不例外。许多物种缺乏解决进化问题所需的长期数据。这至少部分是由于长期难以收集已知个人的一致数据所致。在这里,我们提出了一种新的个体识别狐猴的方法(LemurFaceID)。 LemurFaceID是一种计算机辅助的面部识别系统,可用于基于照片识别单个狐猴。结果LemurFaceID是使用逐块多尺度局部二进制模式特征和改进的面部图像归一化技术开发的,以减少面部毛发和环境光变化对识别的影响。我们使用从马达加斯加Ranomafana国家公园收集的野生红腹狐猴(Eulemur rubriventer)的图像训练和测试了系统。在100个不同训练和测试集划分的试验中,我们证明LemurFaceID在正确识别单个狐猴方面可以达到98.7%?±?1.81%的准确度(使用2查询图像融合)。结论我们的结果表明,可以根据面部模式的变化对人脸识别技术进行修改,以识别单个狐猴。 LemurFaceID能够基于野生个体的照片以相对较高的准确度来识别个体狐猴。该技术将消除传统方法中用于个人识别的许多限制。优化后,我们的系统可以通过提供快速,经济高效且准确的个人识别方法来促进对已知个人的长期研究。

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