Autonomous driving paper index

Deep Learning-Based Object Detection Techniques for Self-Driving Cars: an in-Depth Analysis

2023-11-16 · 2023 International Conference on Electrical, Computer and Energy Technologies (ICECET)

autonomous drivingself-driving carself-drivingobject detection

One-line summary

Self-driving cars are poised to transform transportation, but ensuring safe and reliable autonomous driving via robust object detection remains a critical challenge.

Engineering notes

It highlights the significance of object detection focusing on the state-of-the-art deep learning (DL) based approaches. The paper explores the various network architectures, benchmark datasets, evaluation metrics and strategies to improve detection accuracy and efficiency.

Chinese explanation / 中文解读

中文解读待补充:本站会优先为端到端自动驾驶、BEV感知、3D目标检测、轨迹预测、路径规划、LiDAR感知等高价值论文补充中文说明。

Original abstract

Self-driving cars are poised to transform transportation, but ensuring safe and reliable autonomous driving via robust object detection remains a critical challenge. This review comprehensively analyses object detection techniques within the self-driving car context. It highlights the significance of object detection focusing on the state-of-the-art deep learning (DL) based approaches. We investigate popular DL-based object detectors, assessing their strengths, weaknesses, and applicability to ensuring safety in self-driving scenarios. The paper explores the various network architectures, benchmark datasets, evaluation metrics and strategies to improve detection accuracy and efficiency. Moreover, we highlight unique challenges posed by self-driving environments and provide important research directions. Our findings underscore the ongoing, pivotal role of object detection as self-driving technology evolves. This paper equips researchers, practitioners, and policymakers with invaluable insights into shaping the future of transportation.

5.0Engineering value
8.0Research novelty
5.0Business relevance

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