Using Coupling Measure Technique and Random Iterative Algorithm for Inter-Class Integration Test Order Problem

Computer Software and Applications Conference Workshops(2010)

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摘要
Inter-class integration test order (ICITO) problem is to determine the order in which classes are integrated and tested. It is very important in object-oriented software integration testing or regression testing, because different test orders need different test cost to construct corresponding test stubs. However, the current solutions to the ICITO problem lack an effective coupling measure technique to estimate test stub complexity, and lack an effective algorithm to break cycles. Thus, this paper uses an improved coupling measure technique to estimate test stub complexity, and designs a random iterative algorithm to break cycles. Simulation experimental results show that the overall test stub complexity can be reduced by 15.5% and the speed can be increased by 5.8 times, using our improved coupling measure technique and random iterative algorithm.
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关键词
corresponding test stub,coupling measure,different test cost,program testing,test stub complexity estimation,test order,object oriented software,effective algorithm,regression testing,overall test stub complexity,different test order,inter-class integration test order,software prototyping,interclass integration test order problem,test stub complexity,object-oriented testing,effective coupling measure technique,extended weighted object relation diagram,random iterative algorithm,iterative methods,coupling measure technique,improved coupling measure technique,integrated software,object-oriented methods,iterative algorithm,integration testing
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