Test Precisely and Concretely

本文通过排序算法的例子探讨了软件测试中准确性和精确性的区别。强调测试不仅要验证代码单元的行为符合预期,而且要确保测试条件足够具体,能够覆盖所有必要的边界情况。

It is important to test for the desired, essential behavior of a unit of code, rather than test for the incidental behavior of its particular implementation. But this should not be taken or mistaken as an excuse for vague tests. Tests need to be both accurate and precise.

Something of a tried, tested, and testing classic, sorting routines offer an illustrative example. Implementing a sorting algorithm is not necessarily an everyday task for a programmer, but sorting is such a familiar idea that most people believe they know what to expect from it. This casual familiarity, however, can make it harder to see past certain assumptions.

When programmers are asked "What would you test for?" by far and away the most common response is "The result of sorting is a sorted sequence of elements." While this is true, it is not the whole truth. When prompted for a more precise condition, many programmers add that the resulting sequence should be the same length as the original. Although correct, this is still not enough. For example, given the following sequence:

3 1 4 1 5 9

The following sequence satisfies a postcondition of being sorted in non-descending order and having the same length as the original sequence:

3 3 3 3 3 3

Although it satisfies the spec, it is also most certainly not what was meant! This example is based on an error taken from real production code (fortunately caught before it was released), where a simple slip of a keystroke or a momentary lapse of reason led to an elaborate mechanism for populating the whole result with the first element of the given array.

The full postcondition is that the result is sorted and that it holds a permutation of the original values. This appropriately constrains the required behavior. That the result length is the same as the input length comes out in the wash and doesn't need restating.

Even stating the postcondition in the way described is not enough to give you a good test. A good test should be readable. It should be comprehensible and simple enough that you can see readily that it is correct (or not). Unless you already have code lying around for checking that a sequence is sorted and that one sequence contains a permutation of values in another, it is quite likely that the test code will be more complex than the code under test. As Tony Hoare observed:

There are two ways of constructing a software design: One way is to make it so simple that there are obviously no deficiencies and the other is to make it so complicated that there are no obvious deficiencies.

Using concrete examples eliminates this accidental complexity and opportunity for accident. For example, given the following sequence:

3 1 4 1 5 9

The result of sorting is the following:

1 1 3 4 5 9

No other answer will do. Accept no substitutes.

Concrete examples helps to illustrate general behavior in an accessible and unambiguous way. The result of adding an item to an empty collection is not simply that it is not empty: It is that the collection now has a single item. And that the single item held is the item added. Two or more items would qualify as not empty. And would also be wrong. A single item of a different value would also be wrong. The result of adding a row to a table is not simply that the table is one row bigger. It also entails that the row's key can be used to recover the row added. And so on.

In specifying behavior, tests should not simply be accurate: They must also be precise.

By Kevlin Henney

This work is licensed under a Creative Commons Attribution 3

胚胎实例分割数据集 一、基础信息 • 数据集名称:胚胎实例分割数据集 • 图片数量: 训练集:219张图片 验证集:49张图片 测试集:58张图片 总计:326张图片 • 训练集:219张图片 • 验证集:49张图片 • 测试集:58张图片 • 总计:326张图片 • 分类类别: 胚胎(embryo):表示生物胚胎结构,适用于发育生物学研究。 • 胚胎(embryo):表示生物胚胎结构,适用于发育生物学研究。 • 标注格式:YOLO格式,包含实例分割的多边形标注,适用于实例分割任务。 • 数据格式:图片来源于相关研究领域,格式为常见图像格式,细节清晰。 二、适用场景 • 胚胎发育AI分析系统:构建能够自动分割胚胎实例的AI模型,用于生物学研究中的形态变化追踪和量化分析。 • 医学与生物研究:在生殖医学、遗传学等领域,辅助研究人员进行胚胎结构识别、分割和发育阶段评估。 • 学术与创新研究:支持计算机视觉与生物医学的交叉学科研究,推动AI在胚胎学中的应用,助力高水平论文发表。 • 教育与实践培训:用于高校或研究机构的实验教学,帮助学生和从业者掌握实例分割技术及胚胎学知识。 三、数据集优势 • 精准与专业性:实例分割标注由领域专家完成,确保胚胎轮廓的精确性,提升模型训练的可靠性。 • 任务专用性:专注于胚胎实例分割,填补相关领域数据空白,适用于细粒度视觉分析。 • 格式兼容性:采用YOLO标注格式,易于集成到主流深度学习框架中,简化模型开发与部署流程。 • 科学价值突出:为胚胎发育研究、生命科学创新提供关键数据资源,促进AI在生物学中的实际应用。
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