Explainable AI Cheat Sheet - Five Key Categories

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  • Опубліковано 29 вер 2024

КОМЕНТАРІ • 38

  • @kartavyabhatt7818
    @kartavyabhatt7818 3 роки тому +1

    Thank you very much for the video.
    9:57 yeah a dedicated video for each of the methods will be really great!

  • @its_me7363
    @its_me7363 3 роки тому +14

    Now I think it would be great if Jay can make video on SHAP explanability and usage...hope you have time to accept this request.

    • @NishantKumar-mp9zg
      @NishantKumar-mp9zg 3 роки тому +2

      +1
      I'll also be looking forward to it.

    • @arp_ai
      @arp_ai  3 роки тому +2

      I'd certainly love to learn more about it at some point

    • @its_me7363
      @its_me7363 3 роки тому

      @@arp_ai will wait for your video for this topic

  • @ottunrasheed4076
    @ottunrasheed4076 2 роки тому

    Interesting content. I am looking forward to the paper reading videos

  • @moustafa_shomer
    @moustafa_shomer 3 роки тому

    The example based part was kind of shallow, you didn't talk about how they figure out the specific flaws in the model

    • @arp_ai
      @arp_ai  3 роки тому

      That tends to be a different problem which can either arise from model but potentially also from the dataset. The problem becomes more model debugging. XAI is one debugging tool, but there are many others, especially deep examinations of the data.

  • @prasadjayanti
    @prasadjayanti 3 роки тому +8

    I am a data scientist & really appreciate your work ! Keep good work going !

  • @jeanpauldelamarre6583
    @jeanpauldelamarre6583 3 роки тому +2

    Explainable AI is not only based on neural networks. Everyone wants to make neural networks explainable which is not the case by design. You also have to consider other types of models like rule based models (expert systems) or even probabilistic models which are explainable by design.

  • @francistembo650
    @francistembo650 3 роки тому +2

    Thanks man!

  • @metallica42425
    @metallica42425 3 роки тому +3

    Really appreciate these resources! Thanks for always explaining things so clearly!

  • @Ninaadiaries
    @Ninaadiaries 9 місяців тому

    Thanks for the information. It was helpful for me :)

  • @juanpablopajaro9229
    @juanpablopajaro9229 Рік тому

    Jay, I was exploring SHAP for explainable deep learning, and it didn´t work. The git mentioned an update in TensorFlow that conflicts with SHAP. What do you know about that?

  • @deepbayes6808
    @deepbayes6808 2 роки тому

    Why logistics or linear regression are considered interpretable? If you have 1000x of features, how can you interpret a non-sparse weight matrix?

  • @palomoshoeshoe8985
    @palomoshoeshoe8985 4 місяці тому

    Thank you so much for your contribution, i really appreciate it.

  • @sanjanasuresh5565
    @sanjanasuresh5565 Рік тому

    Hello! Can you please make a video on interpretability of unsupervised ML models

  • @balapranav5364
    @balapranav5364 3 роки тому +1

    Hi sir, Shap gives you the info same like feature importance results?

    • @arp_ai
      @arp_ai  3 роки тому +1

      SHAP is a method of obtaining feature importance, yes.

  • @camoha8313
    @camoha8313 Рік тому

    Thanks for this video (love the john coltrane )

  • @MeriJ-ze5dd
    @MeriJ-ze5dd 3 роки тому +1

    Thanks Jay. Amazing video. I have a question though: why the pretraining in gpt-3 is called unsupervised learning?it works on labelled data, so I think it should be a supervised learning task.

    • @arp_ai
      @arp_ai  3 роки тому +2

      It's better called self-supervised learning nowadays. It's unsupervised in the same way that word2vec is unsupervised -- it is not trained on an explicitly labeled dataset, but rather on on examples generated from free text.

  • @kokoko5690
    @kokoko5690 Рік тому

    Thank you for ur video it's really well organized and easy to understand

  • @muhammadomar9552
    @muhammadomar9552 2 роки тому

    Thanks for knowledge sharing. Where decision trees lie in cheat sheet?

  • @mpalaourg8597
    @mpalaourg8597 2 роки тому

    Nice video! But even better the resources which were referenced! Thank you...

  • @incase3007
    @incase3007 10 місяців тому

    great video. highly informative !

  • @TheSiddhartha2u
    @TheSiddhartha2u 3 роки тому

    Thank You for nice and easy information. I was looking for such information 👍

  • @TusharKale9
    @TusharKale9 3 роки тому

    Very important topic covered in good details. Thank you

  • @sheldonsebastian7232
    @sheldonsebastian7232 3 роки тому

    Found this channel via Linkedin post. It was a good find!

  • @omyeues
    @omyeues 2 роки тому

    Very interesting ! Thank you for sharing

  • @mrunalinigarud1162
    @mrunalinigarud1162 2 роки тому

    Best blog and guidance video for AI

  • @dev0nul162
    @dev0nul162 2 роки тому

    Thank you for what you have provided here! The links are providing tremendous added value to your videos.

  • @chathurijayaweera1590
    @chathurijayaweera1590 3 роки тому

    Very informative and easily understandable. Thank you for making this video

  • @raminbakhtiyari5429
    @raminbakhtiyari5429 3 роки тому

    just fascinating

  • @yastradamus
    @yastradamus 3 роки тому +1

    that John Coltrane cover in the back though!

  • @abhilashsanap1207
    @abhilashsanap1207 3 роки тому

    Some day you should do a video about the background in your videos. Please.

  • @zabouhadi2140
    @zabouhadi2140 Рік тому

    Thanks a lot. It was a great introduction and really helped me🙏🫀