Hands on Machine Learning - Chapter 7 - Ensemble Learning and Random Forests

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  • čas přidán 7. 09. 2024
  • An overview of Chapter 7 of the book Hands-on Machine Learning with Scikit-Learn Keras & Tensorflow
    You can get the book here: amzn.to/2SmaLBH
    If you'd like to get the code along with much more soon to come please consider supporting me on my Patreon: www.patreon.co...
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    Twitter: / kalamari95

Komentáře • 22

  • @wilrivera4101
    @wilrivera4101 Před 6 měsíci

    Solid videos. I'm following you as I read the book, and it's been incredibly helpful.

  • @ashmalvayani2618
    @ashmalvayani2618 Před 3 lety +2

    You're doing a great job at what you do. It's really helpful when we can actually code along with you. Let's just hope for more of that type of content. Cheers.

  • @elishabulalu6980
    @elishabulalu6980 Před 3 lety +3

    thank you so much bro, I have been following the series from the start, It's so cool and lit.

    • @ShashankData
      @ShashankData  Před 3 lety +2

      Thank you so much for the kind words Elisha! Let’s keep learning together :)

  • @pedroabranches3761
    @pedroabranches3761 Před 3 lety +1

    Man, your work helps me a lot! Thank you!

  • @alexiojunior7867
    @alexiojunior7867 Před rokem

    Yeah your tutorials are good and easy to understand i recommend these to those who are new to machine learning and need more of a roadmap well done

  • @adrinemarieadonis
    @adrinemarieadonis Před 11 měsíci

    I'm gonna follow you from now on. ❤

  • @adefela
    @adefela Před 4 měsíci

    Thank you for this vidoe man!

  • @ahmedhassan9379
    @ahmedhassan9379 Před 2 lety

    Amazing work

  • @gabrielfreireluna2933
    @gabrielfreireluna2933 Před 2 lety

    Thanks for all the effort and knowledge given on the videos. I do have one questions on min 10:00 of the video you scale the data after it was one-hot-encoded, does it mean that the binary columns get now centred on 0 and variance 1? this would give us values different than 0 and 1, but values ranging from 0 an 1? is that the way to do it?

  • @pranavgupta451
    @pranavgupta451 Před 2 lety

    Isn't bagging/pasting similar to what we do in K-fold cross validation?
    Since, both use different subsets of the training data in fitting the model,i.e., k fold cross validation is just another case of bagging/pasting, right?

  • @sehaj778
    @sehaj778 Před 3 lety +1

    Shashank, have you heard about Applied AI course (AAIC) ? Do you have some tips or feedback/opinions..

  • @omaralkhasawneh1968
    @omaralkhasawneh1968 Před 6 měsíci

    why you not complete deep learning part

  • @fatimak6440
    @fatimak6440 Před 3 lety +1

    bahaha the distraction caused by the porsche 911

  • @wilsvenleong96
    @wilsvenleong96 Před 2 lety

    12:00 Just wanted to point out that your explanation with bagging and pasting is not entirely right.
    Bootstrapping means sampling with replacement. It means you take one sample, put it back and draw another sample until the desired sample size is reached. Bootstrap aggregating or bagging means doing this multiple times with mutilple predictors or classifiers.
    Whereas for pasting, you sample, don't put it back and sample again until the desired sample size is reached.
    The way you explained it was you would sample a certain subset and train on it before replacing it which is not how bootstrapping works. Your explanation would mean that the probability of a sample getting drawn would vary as you will only be replacing the entire subset at the end. In bootstrapping however, the probability of a particular sample being drawn would be equal because after every draw, you will be repacing the drawn sample.
    I hope this clarifies things.

  • @fatimak6440
    @fatimak6440 Před 3 lety

    commenting for the YoutTube (ML) algo :)

  • @pavlostsoukias8147
    @pavlostsoukias8147 Před 2 lety

    @Shashank Kalanithi I know it sounds stupid what are you drinking?

  • @orioncloud4697
    @orioncloud4697 Před rokem

    You have a data leakage because of encoding, FYI.

  • @shaelanderchauhan1963
    @shaelanderchauhan1963 Před 2 lety

    Scaling is not necessary for random forests

  • @anamikadassmanna8324
    @anamikadassmanna8324 Před rokem

    It was very poorly done. I was banking on your video and thought of subscribing and getting patreon but this was awefully done... Sorry cant sunscribe also...