Data Science: Predict Damage Costs of Weather Events

버전 1.0.4 (40.2 MB) 작성자: Heather Gorr, PhD
Explore data and use machine learning to predict the damage costs of storm events based on location, time of year, and type of event
다운로드 수: 2.7K
업데이트 날짜: 2021/5/21
The goal of this case study is to explore storm events in various locations in the United States and analyze the frequency and damage costs associated with different types of events. A machine learning model is used to predict the damage costs, based on historical data from 1980 - 2020. The calculations are then performed in an app, which can be shared as a web application.
This example also highlights techniques for cleaning data in various forms (numeric, text, categorical, dates and times) and working with large data sets which do not fit into memory.
The example is used in the "Data Science with MATLAB" webinar series.

인용 양식

Heather Gorr, PhD (2024). Data Science: Predict Damage Costs of Weather Events (https://github.com/mathworks/data-science-predict-weather-events), GitHub. 검색됨 .

MATLAB 릴리스 호환 정보
개발 환경: R2019a
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Help CenterMATLAB Answers에서 Weather and Atmospheric Science에 대해 자세히 알아보기

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GitHub 디폴트 브랜치를 사용하는 버전은 다운로드할 수 없음

버전 게시됨 릴리스 정보
1.0.4

Included examples for Intro to MATLAB webinar

1.0.3

Link to GitHub

1.0.2

Included recent data, updated scripts to include Live Editor Tasks for data cleaning (available in R2019b)

1.0.1

Updated for Data Science w/ MATLAB webinar

1.0.0

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