Sum Rule, Product Rule, Joint & Marginal Probability - CLEARLY EXPLAINED with EXAMPLES!

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  • čas přidán 18. 06. 2021
  • This tutorial explains various types of probabilities (Joint, Conditional, and Marginal) and also the rules (Sum, Product, and Bayes) to compute them. The tutorial also shows the derivations and formulations of these rules.
    Most of the Bayesian statistics is based on the consistent applications of these rules. Therefore, having a good understanding as well as knowing how to apply them is of critical importance.
    The example used in this tutorial is taken from chapter 1 of Dr. Bishop's book.
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Komentáře • 33

  • @GoingData
    @GoingData Před 5 měsíci +3

    I already know this but this guy needs the thumbs up! Thank you!

  • @SanjaliRoy
    @SanjaliRoy Před 2 měsíci

    my feedback is that this is amazing!!! wish my ML prof taught this :( this truly is one of the few videos that breaks the sum rule, product rule, join and marginal probability down so well

  • @vishweshkumaraithal9779
    @vishweshkumaraithal9779 Před rokem +2

    This is perhaps the most intuitive video on joint, conditional probabilities and on Bayes rule.

  • @JasonBjörne89
    @JasonBjörne89 Před 2 lety +4

    What a sublime explanation. Honestly I have seen so many videos and yours just drove the concept home. Brilliant!

  • @mikhaeldito
    @mikhaeldito Před 2 lety +2

    Your videos on probability are the first that made everything clicked. Thank you so much. I hope you will make more videos on probability, esp. regarding the various distributions, in the future.

    • @KapilSachdeva
      @KapilSachdeva  Před 2 lety +1

      🙏 … yes most likely a series on foundations for probability and statistics.

  • @muhammadazeem2127
    @muhammadazeem2127 Před 24 dny

    Thank you so much, First I read the 1st chapter of this book and then I listened to your video. You gave a superb explanation and cleared all doubts. Thanks for your community service :)

  • @sergiobromberg9233
    @sergiobromberg9233 Před rokem +1

    OMG! Why is this so underrated!!!????

  • @ssshukla26
    @ssshukla26 Před 3 lety +2

    Thank you so much. I hope the lessons keeps coming. This is like blessings.

    • @KapilSachdeva
      @KapilSachdeva  Před 3 lety

      🙏 Sunny, very kind of you to say this. I will try my best to be consistent from now onwards and if not yell at me :) ...keep me accountable.

    • @ssshukla26
      @ssshukla26 Před 3 lety +1

      @@KapilSachdeva Sir, we are grateful to you for these videos. Keep them coming, consistently or inconsistently is just a matter of perspective. Have a great day ahead.

  • @badstylecherry7255
    @badstylecherry7255 Před 6 měsíci +1

    Nicely paced, beautifully animated, taking the time to fill in concrete indices somehow makes it easier for my smooth brain to grasp. Additional notes on where the name for marginal probability comes from are also greatly appreciated. Thanks for this tutorial. I’m sure I’ll be returning to your channel for more elucidation.

  • @mabelgonzalezcastellanos3442

    Thanks for making it that simple!

  • @tourmaline-5864
    @tourmaline-5864 Před 6 měsíci +1

    Very well explained, thank you so much. You helped me a lot

  • @lcfrod
    @lcfrod Před 5 měsíci +1

    Clear explanation. Thank you so much,

  • @UdemmyUdemmy
    @UdemmyUdemmy Před rokem +1

    beautiful way of puttting it together

  • @duydangdroid
    @duydangdroid Před 11 měsíci +1

    this is so much better than grinding through practice questions to prepare for exams

  • @user-or7ji5hv8y
    @user-or7ji5hv8y Před 3 lety +1

    This is a really good example.

  • @ShaharukhQureshiAP
    @ShaharukhQureshiAP Před rokem +1

    Great explanation, thanks for making life easier, More power to you!!

  • @krgonline
    @krgonline Před 2 lety +1

    nice videos. pls keep up the good work