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    Electricity network technologies using Python

    Posted By: lucky_aut
    Electricity network technologies using Python

    Electricity network technologies using Python
    Duration: 5h 23m | .MP4 1280x720, 30 fps(r) | AAC, 44100 Hz, 2ch | 2.24 GB
    Genre: eLearning | Language: English

    Economics & Data Analysis (Python & Optimisation/ pyomo) applied to Electricity Grid assets

    What you'll learn:
    Theory of electricity generation assets
    Technical characteristics of Electricity Generation Assets
    Python: How electricity generators determine the wholesale electricity price
    Economics of Power Stations. Part 1: Costs
    Economics of Power Stations. Part 2: Revenue (subsidies)
    Optimization: Market Strategy for an Electricity Generation company
    Theory & Technoeconomics of Energy Storage using Python

    Requirements:
    No prerequisites other than simple Python.

    Description:

    What is the course about:
    We look at the electricity infrastructure assets i.e. Power Stations (all different types) - their technical & economic characteristics, and Energy Storage units as well as other Grid assets.
    We use Python and Excel to model the technical characteristics in order to understand them even better. We do this for all different types of technologies.
    The idea of this course is that you understand how these assets operate, and then model them in the Data Science model, if necessary for the client.   
    Who:
    I am a research fellow and I lead industry projects using mathematical optimization and data science. I have a Ph.D. in Analytics & Mathematical Optimization, from Imperial College London, and specifically, have applied it to Energy investments.  Currently he is interested in uncertainty modeling in the context of investments.

    Important:
    No prerequisites and no experience are required.
    Every detail is explained, so that you won't have to search online, or guess. In the end, you will feel confident in your knowledge and skills.
    We start from scratch so that you do not need to have done any preparatory work in advance at all.  Just follow what is shown on screen, because we go slowly and understand everything in detail.

    Who this course is for:
    Enterpreneurs.
    Economists.
    Quants
    Finance professionals
    Investment Bankers
    Academics.
    Postgraduate and PhD students.
    Data Scientists

    More Info

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