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Embedded Landmark implementation for Deep Learning pre-processing

机译:用于深度学习预处理的嵌入式Landmark实现

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Due to the evolution of information technology, it is becoming increasingly easy to use new platforms in order to set up efficient systems that are well adapted to the expected needs. As part of improving security and facilitating the detection of potentially dangerous persons, an intelligent application for on-board facial recognition is being developed. It is within this framework that we propose this paper. The objective of the proposed work is twofold. On the one hand, we propose to develop a module for the detection of relevant facial characteristics, which is the first step of an intelligent video surveillance application. Based on the detection of points of interest of the Landmark algorithm, a software optimization of the work is proposed. On the other hand, this application will be decomposed in order to be embedded on a multiprocessor architecture. In order to validate the multiprocessor-based approach, a comparison with other existing powerful processor architectures will allow to validate the best approach. This work will be the input for an intelligent embedded face detection application based on Machine Learning.
机译:由于信息技术的发展,使用新平台以建立能够很好地满足预期需求的高效系统变得越来越容易。为了提高安全性并促进对潜在危险人员的检测,正在开发一种用于车载面部识别的智能应用程序。我们在此框架内提出本文。拟议工作的目的是双重的。一方面,我们建议开发一种用于检测相关面部特征的模块,这是智能视频监控应用程序的第一步。基于对Landmark算法兴趣点的检测,提出了工作的软件优化。另一方面,此应用程序将被分解以便嵌入在多处理器体系结构中。为了验证基于多处理器的方法,与其他现有功能强大的处理器体系结构的比较将允许验证最佳方法。这项工作将成为基于机器学习的智能嵌入式面部检测应用程序的输入。

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