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课程

Google Sheets 中的误差与不确定性

中级4 小时

学会区分真实差异与随机噪声,并探索我们在理性决策中使用的会干扰判断的心理依赖。

Spreadsheets4 小时16 个视频62 个练习5,000 经验值9,585结业证明

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课程介绍

在一个预测塑造我们日常决策的世界里,从根据天气预报选择穿搭,到一眼查看路况来规划通勤,理解预测的准确性及其复杂性变得至关重要。 无论你是做出个人选择的个人,还是引领整个组织走向未来的战略制定者,你可能都曾思考过预测的可靠性、预见事件的能力,以及预测中偶尔出现的不准确之处。 如果你曾好奇为什么天气预报员似乎总会出错,我们这门关于误差与不确定性的启发性在线课程正是为您量身打造。

揭开预测的奥秘

在我们的“误差与不确定性”课程中,深入探索预测这一迷人领域;在这里,你不仅会了解预测的准确性,还会亲自参与预测实践。 掌握区分真实模式与随机噪声的技能,助您在不确定性面前拥有做出明智决策的工具。 这门课程超越表面,深入探讨那些常常遮蔽我们理性决策过程的心理依赖。 无论你是在分析西雅图犯罪数据中的模式、预测学生的期末成绩、预防纳什维尔的交通事故,还是评估面包店菜单是否需要调整,完成这门课程后,你都将更有能力应对误差与不确定性的复杂性。

实践洞察的动手学习

加入我们,开启一段引人入胜的学习之旅,我们将带您了解误差与不确定性分析的实际应用。 通过引人入胜的练习,你将运用新学到的知识来预测结果、识别潜在陷阱,并提升你的决策能力。 从解读犯罪趋势到预测学业表现并降低交通风险,我们的课程提供动态的学习体验,不仅带来洞见,还能赋予您可应用于多种场景的实用技能。 拥抱理解误差和不确定性的挑战,加入一个学习者社区,在揭开预测之谜的过程中一定会收获乐趣。

先修要求

课程大纲

课程大纲

1

Defining error, uncertainty, and risk

The first chapter presents common terminology, introduces methods for determining significant differences between groups, and outlines the kinds of error and uncertainty involved. We will specifically look at Seattle crime data and evaluate crime rate differences between precincts and neighborhoods. This chapter will equip learners to identify threats to the validity and accuracy of their conclusions.
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2

Making accurate predictions

The second chapter outlines both rudimentary (e.g., moving average, seasonal average, yearly average) and more complicated methods (e.g., linear regression) for making predictions and outlines the kinds of error and uncertainty involved. We will specifically look at anonymized student grades data and evaluate the accuracy of our predictions for given students. Throughout the chapter, we will identify threats to the validity and accuracy of our predictions.
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3

Poking holes in predictions

Chapter 3 encourages learners to test the assumptions of their predictions using data on car crashes. Specifically, they will determine how to allocate resources to reduce injuries and fatalities from auto accidents. Learners will discuss the impact of outliers in prediction accuracy, evaluate the importance of normally distributed data in making predictions, employ consequence-likelihood matrices in risk management, and adapt psychological heuristics to discussions of numerical uncertainty and risk.
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4

Case study: Should you change your bakery's menu?

The final chapter integrates all the previous lessons into a constructed-world scenario. Learners are tasked with updating the menu at their small business: the Risky Business Bakery. They need to figure out whether to add or drop menu items based on whether there are significant differences in sales by baked good; whether their predicted sales figures from their accountant are accurate.
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Google Sheets 中的误差与不确定性

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