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Acta Armamentarii ›› 2023, Vol. 44 ›› Issue (9): 2611-2621.doi: 10.12382/bgxb.2022.1166

Special Issue: 智能系统与装备技术

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Analysis of Soft Intelligent Edge Computing Technologies for Unmanned Systems

ZHANG Kaige, LU Zhigang*(), NIE Tianchang, LI Zhiwei, GUO Yuqiang   

  1. North Automatic Control Technology Institute, Taiyuan 030006, Shanxi, China
  • Received:2022-11-30 Online:2023-05-30
  • Contact: LU Zhigang

Abstract:

The design and deployment of light-weight neural network models are crucial for intelligent weapon systems. This paper explores the application of intelligent edge computing in unmanned systems from the perspective of building a light-weight deep neural network model, specifically focusing on parameter pruning, knowledge distillation, and parameter quantization techniques. Recent advancements in these fields are discussed, and the performance of various intelligent edge computing technologies is evaluated using object recognition as an example. Based on the advantages and disadvantages of each light-weight design method, a new framework for edge computing is proposed. With improvements in parameter quantization accuracy and introduction of knowledge distillation, the proposed framework becomes feasible for implementation. This approach provides valuable insights for the utilization of intelligent edge computing technologies in enhancing the military intelligence of unmanned systems.

Key words: unmanned equipment, deep neural network, intelligent edge computing, parameter pruning, knowledge distillation, model quantization

CLC Number: