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    Time Series Analysis and Forecasting using R

    Posted By: lucky_aut
    Time Series Analysis and Forecasting using R

    Time Series Analysis and Forecasting using R
    Published 10/2023
    Duration: 4h24m | .MP4 1280x720, 30 fps(r) | AAC, 44100 Hz, 2ch | 3.03 GB
    Genre: eLearning | Language: English

    learn Time series analysis, forecasting and business analytics with the perspective of a data scientist

    What you'll learn
    Methods of Forecasting and Steps in Forecasting
    Problems in Forecasting and Simple Forecasting Methods
    Simple and Multiple Regression and Time Series Decomposition
    Exponential Smoothing and ARIMA models
    Requirements
    Basic knowledge in statistics, mathematics, programming
    Basic knowledge of using R and Excel
    Description
    Learn how to effectively work around business analytics to find out answers to key questions related to business. We are using sophisticated statistical tools like R and excel to analyze data. This training is a practical and a quantitative course which will help you learn business analytics with the perspective of a data scientist. The learner of this course will learn the most relevant techniques used in the real world by data analysts of companies around the world.
    The training includes the following;
    Introduction to Forecasting
    Models/Methods of Forecasting
    Steps in Forecasting
    Problems in Forecasting
    Simple Forecasting Methods
    Simple and Multiple Regression
    Time Series Decomposition
    Exponential Smoothing
    ARIMA models
    Conclusion
    Time series in R is defined as a series of values, each associated with the timestamp also measured over regular intervals (monthly, daily) like weather forecasting and sales analysis. The R stores the time series data in the time-series object and is created using the ts() function as a base distribution.
    How Time-series works in R?
    R has a powerful inbuilt package to analyze the time series or forecasting. Here it builds a function to take different elements in the process. At last, we should find a better fit for the data. The input data we use here are integer values. Not all data has time values, but their values could be made as time-series data. The data consists of observations over a regular interval of time. It needs several transformations before it is modeled up.
    Who this course is for:
    Students, Marketing professionals, Market Researchers, Product Managers, Any person running a business


    More Info