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Object Detection Using Feature Extraction and Deep Learning for Advanced Driver Assistance System

Posted on:2019-11-29Degree:M.SType:Thesis
University:Mississippi State UniversityCandidate:Reza, TasmiaFull Text:PDF
GTID:2448390005472042Subject:Electrical engineering
Abstract/Summary:
A comparison of performance between tradition support vector machine (SVM), single kernel, multiple kernel learning (MKL), and modern deep learning (DL) classifiers are observed in this thesis. The goal is to implement different machine-learning classification system for object detection of three-dimensional (3D) Light Detection and Ranging (LiDAR) data. The linear SVM, non linear single kernel, and MKL requires hand crafted features for training and testing their algorithm. The DL approach learns the features itself and trains the algorithm. At the end of these studies, an assessment of all the different classification methods are shown.
Keywords/Search Tags:Detection
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