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Diploma in Unbalanced Datasets and Metrics for VRU

995 $

The Diploma in Unbalanced Datasets and Metrics for VRU focuses on the management of unbalanced data and the use of specialized metrics in the context of Computer Vision and the analysis of Vulnerable Road Users (VRU). It integrates machine learning, image processing, and object detection techniques for the creation and evaluation of predictive models. It focuses on the implementation of algorithms and strategies to address data scarcity and bias in datasets, essential for accuracy in road safety systems and autonomous vehicles. The program provides hands-on experience using Python tools and libraries, including TensorFlow and PyTorch, for building and optimizing classification and object detection models. It includes the application of specific metrics such as precision, recall, F1-score, and mAP, as well as understanding ROC curves and AUC for performance evaluation. The training prepares students for roles such as data scientists, computer vision engineers, and road safety specialists, driving innovation in the automotive and technology sectors.

Target keywords (natural in the text): unbalanced datasets, metrics, VRU, computer vision, machine learning, object detection, Python, classification, predictive models, road safety.

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