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Posterior probability calculation procedure for recognition rate comparison 被引量:1
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作者 Jun He Qiang Fu 《Journal of Systems Engineering and Electronics》 SCIE EI CSCD 2016年第3期700-711,共12页
This paper focuses on the recognition rate comparison for competing recognition algorithms, which is a common problem of many pattern recognition research areas. The paper firstly reviews some traditional recognition ... This paper focuses on the recognition rate comparison for competing recognition algorithms, which is a common problem of many pattern recognition research areas. The paper firstly reviews some traditional recognition rate comparison procedures and discusses their limitations. A new method, the posterior probability calculation(PPC) procedure is then proposed based on Bayesian technique. The paper analyzes the basic principle, process steps and computational complexity of the PPC procedure. In the Bayesian view, the posterior probability represents the credible degree(equal to confidence level) of the comparison results. The posterior probability of correctly selecting or sorting the competing recognition algorithms is derived, and the minimum sample size requirement is also pre-estimated and given out by the form of tables. To further illustrate how to use our method, the PPC procedure is used to prove the rationality of the experiential choice in one application and then to calculate the confidence level with the fixed-size datasets in another application. These applications reveal the superiority of the PPC procedure, and the discussions about the stopping rule further explain the underlying statistical causes. Finally we conclude that the PPC procedure achieves all the expected functions and be superior to the traditional methods. 展开更多
关键词 pattern recognition performance evaluation algorithm uncertainty analysis
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基于优化算法的雷达辐射源识别方法性能评估
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作者 徐璟 何明浩 +1 位作者 韩俊 苏伟 《现代防御技术》 北大核心 2015年第3期102-106,112,共6页
针对基于SVM的雷达辐射源识别方法中SVM模型参数对识别性能影响较大的问题,提出一种新的雷达辐射源识别方法。该方法将智能优化算法应用于SVM,对SVM参数进行选择以提高识别准确率;为分析所提出新方法的性能,提出有效解的标准差、解的质... 针对基于SVM的雷达辐射源识别方法中SVM模型参数对识别性能影响较大的问题,提出一种新的雷达辐射源识别方法。该方法将智能优化算法应用于SVM,对SVM参数进行选择以提高识别准确率;为分析所提出新方法的性能,提出有效解的标准差、解的质量和精度时间比作为评估指标对所提方法进行性能评估。通过计算机仿真,验证了新方法的有效性,并分析了3种典型优化算法在新方法中的综合性能。 展开更多
关键词 雷达辐射源识别 优化算法 评估指标 性能分析
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