|本期目录/Table of Contents|

[1]吴云,王鹏,胡小娟,等.基于遗传-BP算法的煤矿安全监控系统测试研究[J].中国安全生产科学技术,2011,7(6):72-75.
 WU Yun,WANG Peng,HU Xiao-juan,et al.Test Case Study of Coal Mine Safety Monitoring System Based on Genetic-BP Algorithm[J].JOURNAL OF SAFETY SCIENCE AND TECHNOLOGY,2011,7(6):72-75.
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基于遗传-BP算法的煤矿安全监控系统测试研究()
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《中国安全生产科学技术》[ISSN:1673-193X/CN:11-5335/TB]

卷:
7
期数:
2011年6期
页码:
72-75
栏目:
学术论著
出版日期:
2011-06-30

文章信息/Info

Title:
Test Case Study of Coal Mine Safety Monitoring System Based on Genetic-BP Algorithm
文章编号:
1673-193X(2011)-06-0072-04
作者:
吴云1王鹏2胡小娟2杨华民2
1.包头师范学院数学科学学院,包头 014030
2.长春理工大学计算机科学技术学院,长春 130022
Author(s):
WU Yun1 WANG Peng2 HU Xiao-juan2 YANG Hua-min2
1. Mathematical Sciences, Baotou Teachers College, Baotou ?014030, China
2. School of Computer Science and Technology, Changchun University of Science and Technology, Changchun ?130022, Jilin, China
关键词:
煤矿安全监控系统试测用例生成遗传算法BP算法
Keywords:
Coal Safety Monitoring System Test Case Generation Genetic Algorithm BP Algorithm
分类号:
X924.3;TP311
DOI:
-
文献标志码:
A
摘要:
针对煤矿监控系统的测试要求,提出了一种自动生成测试用例数据的方法用于煤矿监控系统的测试任务。该方法利用遗传算法和BP算法对要测试的功能模块和逻辑结构进行分析解读,通过全局寻优得出最佳测试路径和测试数据,对于提高测试的精准性和有效性有很大优势,而且相对与人工测试更加安全。新的测试用例生成算法结合遗传算法和BP算法,能充分发挥遗传算法的全局寻优能力和BP算法学习能力强的优势,使得数据生成更快捷可靠。选取煤矿监控系统的部分功能测试作为实验材料,与人工测试方法和利用遗传该算法生成测试数据进行了比较。结果表明,该新方法能够更好的检测出煤矿监控系统中的错误,发现错误的数量和时间都较人工测试要好,对于提高煤矿安全监控系统的准确性和稳定性有较好的帮助。
Abstract:
For the testing requirements of Coal Mine Monitoring System, this paper presents an automatic method of generating test case data monitoring system for coal testing task.The method uses genetic algorithm and BP algorithm to test the function modules and the logical structure of interpretation, Global optimization by optimum test path and test data, for improving the accuracy and validity of the test with great advantages, and relatively more secure and manual testing. New test case generation algorithm combining genetic algorithm and BP algorithm, genetic algorithm can give full play to the global optimization algorithm for learning ability and strong BP advantage, making more efficient and reliable data generation. Select the part of Coal Mine Monitoring System function test as the experimental materials, and artificial methods of testing and use of genetic algorithm to generate test data were compared. The result show that the new method are better able to detect errors in the Coal Mine Monitoring System found the quantity and time of error is better than manual testing. It helps to improve coal mine safety monitoring system for the accuracy and stability.

参考文献/References:

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备注/Memo

备注/Memo:
收稿日期:2011-01-17
作者简介:吴云,硕士,副教授。
更新日期/Last Update: