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Who this course is for:<\/p>\n
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Course Requirements:<\/p>\n
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\u25cf <\/span>Week 1. Fundamentals <\/p>\n \u25cf <\/span>Week 2. Temporal Structure <\/p>\n \u25cf <\/span>Week 3. Evaluate Models <\/p>\n \u25cf <\/span>Week 4. Forecast Models The 12 hours of schedule is as follows:<\/p>\n <\/p>\n February 15 \u2013 22 \u2013 29 and March 7 <\/p>\n Time Series Mini Bootcamp has a $300 tuition fee. <\/p>\n Payment process<\/b><\/p>\n <\/p>\n After you finish filling your application form, the website will direct you to the payment page. There, you can select available payment options.<\/p>\n <\/p>\n Cancellation<\/b><\/p>\n <\/p>\n If you\u2019re not satisfied with the course you may cancel your application.\u00a0<\/span>[\/vc_column_text]<\/div> <\/p>\n The application process starts at magnimindacademy.com. You can view the course pages and learn more about your intended course. You can apply by clicking the \u201cBuy now\u201d button and then fill out the application form.[\/vc_column_text]<\/div> <\/p>\n Yasin has completed his Ph.D. in Management Information Systems from the University of Texas at Dallas. He earned his M.S. in Electrical Engineering with a concentration in Telecommunications from the same university and obtained his B.S. in Electrical Engineering from Osmangazi \u00dcniversitesi. At Santa Clara University, he also supervised a large team of software development students working on the Capstone Project. During his 5+ years of working experience, Yasin has worked rigorously on an array of data related projects encompassing data mining, statistics, big data, data science, and data visualization, and is dedicated to sharing his experience and expertise with learners. Apart from data science, Yasin\u2019s knowledge spectrum also expands to cybersecurity and he is an ardent follower of innovative processes and implementations of technologies to defend the world\u2019s digital economies.[\/vc_column_text]<\/div><\/div>[\/vc_column][\/vc_row]\n<\/div>","protected":false},"excerpt":{"rendered":" [vc_row][vc_column width=”1\/4″][\/vc_column][vc_column width=”3\/4″][\/vc_column][\/vc_row][vc_row][vc_column css=”.vc_custom_1532675419863{padding-right: 0px !important;padding-left: 0px !important;}”][vc_empty_space height=”23px”][vc_single_image image=”11423″ img_size=”full”][vc_empty_space height=”20px”][\/vc_column][\/vc_row][vc_row][vc_column][\/vc_column][\/vc_row]<\/p>\n","protected":false},"author":1,"featured_media":0,"parent":1464,"menu_order":0,"comment_status":"closed","ping_status":"closed","template":"","meta":{"_bbp_topic_count":0,"_bbp_reply_count":0,"_bbp_total_topic_count":0,"_bbp_total_reply_count":0,"_bbp_voice_count":0,"_bbp_anonymous_reply_count":0,"_bbp_topic_count_hidden":0,"_bbp_reply_count_hidden":0,"_bbp_forum_subforum_count":0,"_mi_skip_tracking":false,"footnotes":""},"class_list":["post-10241","page","type-page","status-publish","hentry"],"yoast_head":"\n
\n\u25cf <\/span>Python Environment
\n\u25cf <\/span>What is Time Series Forecasting?
\n\u25cf <\/span>Time Series as Supervised Learning
\n\u25cf <\/span>Load and Explore Time Series Data
\n\u25cf <\/span>Data Visualization
\n\u25cf <\/span>Resampling and Interpolation
\n\u25cf <\/span>Power Transforms
\n\u25cf <\/span>Moving Average Smoothing<\/span><\/p>\n
\n\u25cf <\/span>Introduction to White Noise
\n\u25cf <\/span>Introduction to the Random Walk
\n\u25cf <\/span>Decompose Time Series Data
\n\u25cf <\/span>Use and Remove Trends
\n\u25cf <\/span>Use and Remove Seasonality
\n\u25cf <\/span>Stationarity in Time Series Data<\/p>\n
\n\u25cf <\/span>Backtest Forecast Models
\n\u25cf <\/span>Forecasting Performance Measures
\n\u25cf <\/span>Persistence Model for Forecasting
\n\u25cf <\/span>Visualize Residual Forecast Errors
\n\u25cf <\/span>Reframe Time Series Forecasting Problems<\/p>\n
\n\u25cf <\/span>Introduction to the Box-Jenkins Method
\n\u25cf <\/span>Autoregression Models for Forecasting
\n\u25cf <\/span>Moving Average Models for Forecasting
\n\u25cf <\/span>ARIMA Model for Forecasting
\n\u25cf <\/span>Autocorrelation and Partial Autocorrelation
\n\u25cf <\/span>Grid Search ARIMA Model Hyperparameters
\n\u25cf <\/span>Save Models and Make Predictions
\n\u25cf <\/span>Forecast Confidence Intervals[\/vc_column_text]<\/div>
\nSaturdays, from 2:00 pm to 5:00 pm[\/vc_column_text]<\/div>
\nFor the \u201cEarly Bird\u201d applicants (January 15<\/span> \u2013 February 8), the tuition fee is $250.<\/span><\/p>\n