Neural Network Architecture Based on Wavelet Transform for Electro-mobility Detection

Ching-Lung Su, W. Lai, Jun-Yao Zhong
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Abstract

This article discusses the development of a neural network model for long-distance objects and a small-scale of computing. The proposed architecture of wavelet object detection is based on merge other frequency domains of the image into reference. The Experiments is applied for long-distance scenes to provide higher accuracy assume as lower computational complexity. Feasibility of the proposed wavelet neural networks has been evaluated and verified on vehicle detection. The architecture of wavelet object detection promoted low latency and high frame per second (fps) to porting on the NVIDIA JETSON AGX XAVIER evaluation board for artificial intelligence applications.
基于小波变换的电动汽车检测神经网络结构
本文讨论了一种用于远距离目标和小规模计算的神经网络模型的发展。提出的小波目标检测结构是基于将图像的其他频域合并为参考。该实验适用于远距离场景,在计算复杂度较低的情况下提供更高的精度。对所提出的小波神经网络在车辆检测中的可行性进行了评价和验证。小波目标检测的架构促进了低延迟和高帧每秒(fps)移植到NVIDIA JETSON AGX XAVIER评估板上,用于人工智能应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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