TY - GEN
T1 - Detonation Decision Support System Based on Rapid Damage Effectiveness Evaluation
AU - Li, Hao
AU - Mao, Ruizhi
AU - Li, Juan
AU - Liu, Chang
AU - Li, Jie
AU - Guo, Yanyi
N1 - Publisher Copyright:
© 2024 IEEE.
PY - 2024
Y1 - 2024
N2 - The quality of warhead detonation decisions determines the effectiveness of damage, and leveraging damage effectiveness evaluation results can also guide the optimization of detonation decisions. Traditional damage assessment methods either demand extensive field trials, which are costly, time-consuming, and complex, or rely on foreign third-party commercial software, making it difficult to support detonation decision optimization. This paper introduces a detonation decision support system that strikes a balance between the simulation accuracy of damage effectiveness evaluation and simulation speed. To ensure simulation accuracy, the system accurately represents object surfaces through numerous small triangular facets. To enhance simulation speed, the system employs the Raycast-Triangle algorithm to achieve efficient fragment hit detection, improving computational efficiency, and modularly integrates system components to enhance data interaction efficiency. Experimental results demonstrate that the system can deliver relatively optimal solutions for detonation decisions within certain time constraints and exhibits strong user interaction capabilities, offering scientifically reliable detonation decision-making suggestions for researchers and combat commanders.
AB - The quality of warhead detonation decisions determines the effectiveness of damage, and leveraging damage effectiveness evaluation results can also guide the optimization of detonation decisions. Traditional damage assessment methods either demand extensive field trials, which are costly, time-consuming, and complex, or rely on foreign third-party commercial software, making it difficult to support detonation decision optimization. This paper introduces a detonation decision support system that strikes a balance between the simulation accuracy of damage effectiveness evaluation and simulation speed. To ensure simulation accuracy, the system accurately represents object surfaces through numerous small triangular facets. To enhance simulation speed, the system employs the Raycast-Triangle algorithm to achieve efficient fragment hit detection, improving computational efficiency, and modularly integrates system components to enhance data interaction efficiency. Experimental results demonstrate that the system can deliver relatively optimal solutions for detonation decisions within certain time constraints and exhibits strong user interaction capabilities, offering scientifically reliable detonation decision-making suggestions for researchers and combat commanders.
KW - damage effectiveness evaluation
KW - detonation decision
KW - simulation system
UR - https://www.scopus.com/pages/publications/85218072753
U2 - 10.1109/ICUS61736.2024.10840049
DO - 10.1109/ICUS61736.2024.10840049
M3 - Conference contribution
AN - SCOPUS:85218072753
T3 - Proceedings of 2024 IEEE International Conference on Unmanned Systems, ICUS 2024
SP - 627
EP - 635
BT - Proceedings of 2024 IEEE International Conference on Unmanned Systems, ICUS 2024
A2 - Song, Rong
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 2024 IEEE International Conference on Unmanned Systems, ICUS 2024
Y2 - 18 October 2024 through 20 October 2024
ER -