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Cues for scent intensification in debugging

机译:调试中增强气味的提示

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摘要

Information foraging is a theory to understand how people search for information. In this theory, information scent is the perceived likelihood by the “predator” that a cue will lead to a “prey”. The better the cues, the better the information scent. In automatic debugging, it is the perceived likelihood that the diagnostic report leads to the cause of failures. In this paper, we detail a visualization, offered by the GZoltar toolset, that has the potential to provide better cues. With better we mean providing more information that leads to the fault than, e.g., the source code and code coverage information. The toolset provides a graphical display of the diagnostic reports yielded by well-known debugging techniques. From an information foraging point of view, we argue that the visualization is of added value while debugging. Finally, we report a user study to confirm that GZOLTAR's visualization provides better cues for pinpointing faults.
机译:信息搜寻是一种了解人们如何搜索信息的理论。在此理论中,信息气味是“掠夺者”感知到的提示会导致“猎物”的可能性。提示越好,信息的气味就越好。在自动调试中,诊断报告可能会导致故障原因。在本文中,我们详细介绍了GZoltar工具集提供的可视化效果,它有可能提供更好的提示。更好的意思是,比起源代码和代码覆盖率信息,提供更多导致故障的信息。该工具集提供了由众所周知的调试技术产生的诊断报告的图形显示。从信息搜寻的角度来看,我们认为可视化在调试时具有附加价值。最后,我们报告了一项用户研究,以确认GZOLTAR的可视化为查明故障提供了更好的线索。

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