Hindi- Ensemble Techniques-Bagging Vs Boosting|Krish Naik

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  • Опубликовано: 2 дек 2024

Комментарии • 38

  • @ankurnayak7649
    @ankurnayak7649 2 года назад +5

    Bahut sahi laga sir ,English sa hindi mai aa gay bahut bahut dhanywaad

  • @shubhamthedeveloper
    @shubhamthedeveloper 2 года назад +1

    Sir apka hindi lecture padane ko acha lagata hai.

  • @thespeedyronaldo
    @thespeedyronaldo 5 месяцев назад +2

    3:55 Start

  • @amitchauhan5924
    @amitchauhan5924 Год назад +4

    Hello Sir, how we can use different algorithms at once in bagging? As I read on other materials, we can use one type of models for all base models with different data. Please explain.

    • @rushabhtijare7188
      @rushabhtijare7188 11 месяцев назад

      you are correct single type of algorithm possible in bagging

  • @gaurigupta4766
    @gaurigupta4766 Год назад

    Wow😊best explanation

  • @letstry2854
    @letstry2854 Год назад

    Hey Krish, I am enjoying learning ML through your video. Please add more content!!

  • @gamesden8021
    @gamesden8021 Месяц назад

    sir i have a question if in the case of bagging test data set is binary classifiers so use of maximum voting then if equal number of 0 and 1 fail the maximum voting which techniques i can use in this senario?

  • @surajprakash4630
    @surajprakash4630 Год назад

    Very helpful video sir...thanks a lot

  • @AnkurKhatri-b7t
    @AnkurKhatri-b7t Год назад +1

    Just want to know how Max voting classification will work if we built even number of Models in Bagging and Number of Output of both 0 and 1 are same. What will be the final Output

  • @altafshaikh3900
    @altafshaikh3900 Год назад

    Great lecture overall 🙏🏻

  • @suparnasaha3043
    @suparnasaha3043 2 года назад +1

    Great explanation

  • @yashjain4630
    @yashjain4630 11 месяцев назад +1

    Sir Bagging is a Homogeneous Model , So how can you say we can Use Multiple Type of Model In Bagging
    ?

  • @sheikhshah2593
    @sheikhshah2593 Год назад

    Great 🔥🔥

  • @himanshusinghaimll
    @himanshusinghaimll Год назад

    Best explanation ❤

  • @Varsha_Bankawat
    @Varsha_Bankawat 9 месяцев назад

    Bagging can be considered as model for further analysis?

  • @VyomKumaraes
    @VyomKumaraes 2 года назад +1

    Sir pls upload more lecture we are waiting pls!

  • @sidnoga
    @sidnoga 2 года назад +1

    Sir please make a video on ada boost and xgboost

  • @fahadnasir1605
    @fahadnasir1605 Год назад

    Hi Krish, did you upload the videos for Adaboost XGboost. I didn't find it in the ML playlist

  • @deepaklonare9497
    @deepaklonare9497 Год назад

    what about the training data+classfication problem ? and for training data+regression problem ? Both will have AVG only?

  • @tanmaychakraborty7818
    @tanmaychakraborty7818 2 года назад +1

    Sir pca ka Theoretical lecture bhi karwa do please

  • @Pawankumar-i8c
    @Pawankumar-i8c 18 дней назад

    best video

  • @Satvikshukla0007
    @Satvikshukla0007 4 месяца назад

    Very nice sir

  • @123vijit
    @123vijit 2 года назад +1

    please make video on hyperparamter

  • @prernasrivastava6524
    @prernasrivastava6524 2 года назад

    Sir pls continue making videos

  • @rockfighter9974
    @rockfighter9974 Год назад

    Nice video thank you

  • @tariniashritacharya1386
    @tariniashritacharya1386 2 года назад +1

    Sir, do we provide entire dataset for boosting model? Or like bagging we provide subsets?

    • @vivekkumar-ij3np
      @vivekkumar-ij3np 2 года назад +3

      For boosting, we provide entire dataset to 1st model then again that dataset is provided to next model but the second model know, how many error you have done while training in 1st model. This happen till last.

  • @maths_impact
    @maths_impact 2 года назад

    Wonderful

  • @shubhamSharma-gw1oe
    @shubhamSharma-gw1oe 2 года назад

    sir please upload remaining video hurry up because our placement session will start in September. Thank you

  • @krishnabhutada3983
    @krishnabhutada3983 2 года назад +1

    Krish, is there any library in sklearn for bagging other than Random forest as it uses Decision Trees...Or do we have to test and train individually as we use?

    • @krishnaik06
      @krishnaik06 2 года назад +2

      there is a seperate l;ibrary for random forest in sklearn

    • @mdmd-un2gd
      @mdmd-un2gd Год назад

      @@krishnaik06 big big heart from bangladesh , Your are videos are top notch , i am in 9 standard .

  • @pkumar0212
    @pkumar0212 4 месяца назад

    👌

  • @shilpawaybhase8573
    @shilpawaybhase8573 2 года назад

    Please upload boosting next video

  • @umeshsamal165
    @umeshsamal165 2 года назад +1

    Sir pls upload more lecture we are waiting pls!