This is part of our specialization on Making Decision in Time. For this second course we start with a landmark paper from Chernoff and build new insights into the ideas that his paper sparked. The ending point should bring new code and new algorithm insights into perspective, and use, by many computer and data scientists.


Data Science Decisions in Time:Sequential Hypothesis Testing
本课程是 Data Science Decisions in Time 专项课程 的一部分

位教师:Thomas Woolf
包含在 中
您将获得的技能
- Medical Imaging
- Image Analysis
- Algorithms
- Biomedical Engineering
- Statistical Inference
- Probability Distribution
- Data-Driven Decision-Making
- Machine Learning Methods
- Magnetic Resonance Imaging
- A/B Testing
- Statistical Hypothesis Testing
- Data Science
- Computer Vision
- Program Development
- Bioinformatics
- Bayesian Statistics
- Analytics
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该课程共有6个模块
We extend Wald's ideas for sequential hypothesis testing to a new -- and closely related -- problem. In this second course we evaluate how best to choose from a set of hypothesis for sequentially arriving data. This has many modern applications, for example how best to set a price for a new product, what is the best therapy for a patient, how to determine the rare events in a stream of visual images and many many more. We begin by examining a type of visual search for the 'odd one out' and then build from that first week.
涵盖的内容
3个视频1篇阅读材料2个作业
Searching within an ordered hierarchical setting can improve the search. But, it is not immediately obvious how to setup the data structure to support this type of search. In this part of the course we explore how to define a biased walk, based on information, to quickly find an 'odd one out'. From this concept of walking along a tree structure, we then move into thinking about how to best setup that tree structure.
涵盖的内容
3个视频1篇阅读材料2个作业
Many real-world applications have extremely large action and/or hypothesis spaces. For the application of Chernoff's ideas there has to be a way to apply the algorithms quickly at scale. In this set of material we examine how approximations may work and how Chernoff's ideas have been extended to different types of problems.
涵盖的内容
3个视频1篇阅读材料2个作业
The ideas that we have been exploring can also be applied to data slices collected at disparate windows in time, can be applied to improving MRI scans and can be applied to molecular protein design. These applications all share the concept of using sequential hypothesis testing to improve understanding. In addition, all three of these ideas are under active code development.
涵盖的内容
3个视频1篇阅读材料2个作业
In our fifth week we explore how to move beyond the 'odd one out' and into multiple hypothesis testing for streams of data. This could be for setting a dosage level on a medication or on how to identify objects in a set of images.
涵盖的内容
5个视频1篇阅读材料2个作业
涵盖的内容
1个作业
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To access the course materials, assignments and to earn a Certificate, you will need to purchase the Certificate experience when you enroll in a course. You can try a Free Trial instead, or apply for Financial Aid. The course may offer 'Full Course, No Certificate' instead. This option lets you see all course materials, submit required assessments, and get a final grade. This also means that you will not be able to purchase a Certificate experience.
When you enroll in the course, you get access to all of the courses in the Specialization, and you earn a certificate when you complete the work. Your electronic Certificate will be added to your Accomplishments page - from there, you can print your Certificate or add it to your LinkedIn profile.
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