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Stanford University

AI in Healthcare Capstone

This capstone project takes you on a guided tour exploring all the concepts we have covered in the different classes up till now. We have organized this experience around the journey of a patient who develops some respiratory symptoms and given the concerns around COVID19 seeks care with a primary care provider. We will follow the patient's journey from the lens of the data that are created at each encounter, which will bring us to a unique de-identified dataset created specially for this specialization. The data set spans EHR as well as image data and using this dataset, we will build models that enable risk-stratification decisions for our patient. We will review how the different choices you make -- such as those around feature construction, the data types to use, how the model evaluation is set up and how you handle the patient timeline -- affect the care that would be recommended by the model. During this exploration, we will also discuss the regulatory as well as ethical issues that come up as we attempt to use AI to help us make better care decisions for our patient. This course will be a hands-on experience in the day of a medical data miner. In support of improving patient care, Stanford Medicine is jointly accredited by the Accreditation Council for Continuing Medical Education (ACCME), the Accreditation Council for Pharmacy Education (ACPE), and the American Nurses Credentialing Center (ANCC), to provide continuing education for the healthcare team. Visit the FAQs below for important information regarding 1) Date of the original release and expiration date; 2) Accreditation and Credit Designation statements; 3) Disclosure of financial relationships for every person in control of activity content.

状态:Artificial Intelligence
状态:Clinical Data Management
课程小时

精选评论

NR

5.0评论日期:Jul 14, 2025

Excellent course, easy to understand and flexible. Had great time learning new technique supported by AI and Machine Learning.

EM

5.0评论日期:Jan 1, 2022

Thank you very much now I can also code having acknowledge of everything that is important. Greetings from Peru :)

KS

5.0评论日期:Oct 16, 2020

Nicely Framed and Executed in a simple language so anyone can catch up earliest.

PP

5.0评论日期:Aug 15, 2023

I did not expect such good content in this course but it surpass my expectation. Its very well designed course which can engage you till the end and will definitely help you in your academics or work.

GS

5.0评论日期:Feb 4, 2021

The course covers diverse topics and need very deep knowledge of Machine Learning and AI

HD

5.0评论日期:Dec 10, 2020

Really enjoy the Capstone projects with wonderful peer-reviewing. Would recommend.

SK

5.0评论日期:Nov 21, 2021

An excellent course to venture into the field of 'AI in medicine'.

MC

5.0评论日期:Jun 20, 2021

Amazing experience, such in depth learning to understand how to approach data problems in healthcare settings and where they can actually be of benefit.

CK

4.0评论日期:Oct 11, 2020

Good overview for AI in Healthcare but more reading and OTJ training will needed.

DZ

5.0评论日期:Dec 16, 2020

Getting AI specialization Stanford University is very amazing and effective to start your AI careers. Thank you for all Stanford university lecturers, Thank you Coursera for everything !

AB

5.0评论日期:Nov 24, 2020

The quality of peer review exercises was good and the content of the reading material was well understood

SN

5.0评论日期:Sep 28, 2023

Excellent Course and very practical learning objectives well laid out

所有审阅

显示:20/60

Siang-Hiong Goh
5.0
评论日期:Apr 25, 2021
Dr. Eng. Amer Zaylaa
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评论日期:Dec 16, 2020
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评论日期:Oct 17, 2020
Preetu Pandey
5.0
评论日期:Aug 16, 2023
Shreyas Karnad
3.0
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T Mark
2.0
评论日期:Oct 26, 2023
Patricia Camacho
1.0
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5.0
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5.0
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Hmei Deng
5.0
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Sayali Kandarkar
5.0
评论日期:Nov 22, 2021
Manohar Surendra
4.0
评论日期:May 9, 2025
Lars Westergren
4.0
评论日期:Nov 17, 2020
John Jackson
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评论日期:Oct 24, 2020
Ee Von Teh
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评论日期:Jul 6, 2024
Freddy Fernández
4.0
评论日期:Oct 9, 2021
Claudia Kang
4.0
评论日期:Oct 12, 2020
Tlhompho Malumbela
1.0
评论日期:Dec 31, 2024
Philip Lieberman
5.0
评论日期:Oct 13, 2020