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Red Fluorescent Carbon Dot Powder for Accurate Latent Fingerprint Identification using an Artificial Intelligence Program

机译:红色荧光碳点粉用于准确使用人工智能计划的准确指纹识别

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摘要

Development and comparison of the latent fingerprints (LFPs) are two major studies in detection and identification of LFPs, respectively. However, integrated research studies on both fluorescent materials for LFP development and digital-processing programs for LFP comparison are scarcely seen in the literature. In this work, highly efficient red-emissive carbon dots (R-CDs) are synthesized in one pot and mixed with starch to form R-CDs/starch phosphors. Such phosphors are comparable with various substrates and suitable for the typical powder dusting method to develop LFPs. The fluorescence images of the developed LFPs are handled with an artificial intelligence program. For the optimal sample, this program presents an excellent matching score of 93%, indicating that the developed sample has very high similarity with the standard control. Our results are significantly better than the benchmark obtained by the traditional method, and thus, both the R-CDs/starch phosphors and the digital processing program fit well for the practical applications.
机译:潜在指纹(LFP)的开发和比较分别是检测和鉴定LFP的两项主要研究。然而,在文献中,对LFP开发和LFP比较的数字处理计划的荧光材料的综合研究研究几乎看出。在这项工作中,高效的红发碳点(R-CD)在一个罐中合成并与淀粉混合形成R-CDS /淀粉磷光体。这种磷光体与各种基材相当,适用于典型的粉末除尘方法以开发LFP。发达的LFP的荧光图像与人工智能计划处理。对于最佳样本,该程序具有93%的优异匹配分数,表明开发样品与标准控制具有非常高的相似性。我们的结果明显优于传统方法获得的基准,因此,R-CDS /淀粉磷光体和数字处理程序都适合实际应用。

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