Course Name: Applied Time-Series Analysis

Course abstract

The course introduces the concepts and methods of time-series analysis. Specifically, the topics include (i) stationarity and ergodicity (ii) auto-, cross- and partial-correlation functions (iii) linear random processes - definitions (iv) auto-regressive, moving average, ARIMA and seasonal ARIMA models (v) spectral (Fourier) analysis and periodicity detection and (vi) parameter estimation concepts and methods. Practical implementations in R are illustrated at each stage of the course. The subject of time-series analysis is of fundamental interest to data analysts in all fields of engineering, econometrics, climatology, humanities and medicine. Only few universities across the globe include this course on this topic despite its importance. This subject is foundational to all researchers interested in modelling uncertainties, developing models from data and multivariate data analysis.


Course Instructor

Media Object

Prof. Arun K Tangirala

Arun K. Tangirala is a Professor in the Department of Chemical Engineering, IIT Madras. His research specializations include the fields of data-driven modelling and process systems engineering. Dr. Tangirala has conducted several short-term courses on the topics of applied digital signal processing, time-frequency analysis and system identification. He is also the author of a comprehensive classroom text on empirical modelling titled “ Principles of System Identification – Theory & Practice” published by CRC Press in Dec. 2014.
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Teaching Assistant(s)

SUDHAKAR KATHARI

Doctor of Philosophy
DEPARTMENT OF CHEMICAL ENGINEERING
IIT Madras

SRIJITH R

B.Tech and M.Tech (Dual Degree)
DEPARTMENT OF CHEMICAL ENGINEERING
IIT Madras

DHEERAJ KUMAR

Doctor of Philosophy
DEPARTMENT OF CHEMICAL ENGINEERING
IIT Madras

 Course Duration : Jan-Apr 2017

  View Course

 Syllabus

 Enrollment : 01-Jan-2017 to 23-Jan-2017

 Exam registration : 15-Feb-2017 to 27-Mar-2017

 Exam Date : 23-Apr-2017

Enrolled

830

Registered

15

Certificate Eligible

5

Certified Category Count

Gold

0

Elite

2

Successfully completed

3

Participation

1

Success

Elite

Gold





Legend

>=90 - Elite + Gold
60-89 - Elite
40-59 - Successfully Completed
<40 - No Certificate

Final Score Calculation Logic

  • Assignment Score = Average of best 8 out of 10 assignments.
  • Final Score(Score on Certificate)= 40% of proctored Exam Score+35% of non-proctored exam + 25% of Assignment Score
Applied Time-Series Analysis - Toppers list

THANGAGANAPATHY P 63%

MADRAS INSTITUTE OF TECHNOLOGY

Enrollment Statistics

Total Enrollment: 830

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