Real-Time Implementation of Mini Autonomous Car Based on MobileNet - Single Shot Detector

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Date

2020

Authors

Buse Pehlivan
Ceren Kahraman
Deniz Kurtel
Mert Nakıp
Cüneyt Güzeliş

Journal Title

Journal ISSN

Volume Title

Publisher

Institute of Electrical and Electronics Engineers Inc.

Open Access Color

Green Open Access

No

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Publicly Funded

No
Impulse
Average
Influence
Average
Popularity
Top 10%

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Abstract

In this paper in order to realize a prototype of an autonomous vehicle we present a framework that consists of convolutional neural networks and image processing methods. The study is comprised of two main parts as software and hardware. In the hardware part a small-sized smart video car kit is used as the prototype of the autonomous car. This programmable tool consists of Raspberry Pi servo motors and a USB webcam whose angle of vision is equal to 120°. In the software part we propose an algorithm in which we use Convolutional Neural Networks to detect the objects (vehicles pedestrians and traffic signs) and Hough transformation to detect the road lanes. Based on the outputs of the object and lane detections the system decides the speed and the direction of the car in real-time. In our results the vehicle performs autonomous driving in the scaled real-world application. © 2020 Elsevier B.V. All rights reserved.

Description

Keywords

Autonomous Car, Convolutional Neural Networks, Lane Detection, Object Detection, Convolution, Convolutional Neural Networks, Intelligent Systems, Object Detection, Real Time Control, Traffic Signs, Autonomous Driving, Hough Transformation, Image Processing - Methods, Lane Detection, Real-time Implementations, Single Shots, Software And Hardwares, Software Parts, Autonomous Vehicles, Convolution, Convolutional neural networks, Intelligent systems, Object detection, Real time control, Traffic signs, Autonomous driving, Hough Transformation, Image processing - methods, Lane detection, Real-time implementations, Single shots, Software and hardwares, Software parts, Autonomous vehicles, Autonomous Car, Object Detection, Convolutional Neural Networks, Lane Detection

Fields of Science

03 medical and health sciences, 0302 clinical medicine, 0202 electrical engineering, electronic engineering, information engineering, 02 engineering and technology

Citation

WoS Q

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OpenCitations Citation Count
4

Source

2020 Innovations in Intelligent Systems and Applications Conference ASYU 2020

Volume

Issue

Start Page

1

End Page

6
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Citations

Scopus : 3

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Mendeley Readers : 10

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