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Bias = Assumptions ---> UnderfittingVariance = Sensitivity ---> OverfittingYou made it crystal clear, thank you.
Explained a boring 30+ minute lecture to an easy, consumable less than 10 minute video. Well done!
Extraordinary explanation, thank you!
Excellent description of a bias and variance!Impatiently waiting for a new video!
Great to hear!
one of the best video out there comparing bias and variance. Thanks Assembly AI
Glad you liked it!
the best video about the subject on the internet.
Great to hear, thank you!
Great Explanation !!!!!!!Thank you 😁
Thank you so much for such an amazing explanation!
Great Explanation
THanks for your efforts.
That's Awesome, Thanks (y)
excellent video
Thank you!
What is the difference between training the model more and introduce more data?
Great
When someone this cute teaches you can't help but give your 100% attention 😂
thanks.. u are so cute❤️❤️❤️❤️❤️
Bias = Assumptions ---> Underfitting
Variance = Sensitivity ---> Overfitting
You made it crystal clear, thank you.
Explained a boring 30+ minute lecture to an easy, consumable less than 10 minute video. Well done!
Extraordinary explanation, thank you!
Excellent description of a bias and variance!
Impatiently waiting for a new video!
Great to hear!
one of the best video out there comparing bias and variance. Thanks Assembly AI
Glad you liked it!
the best video about the subject on the internet.
Great to hear, thank you!
Great Explanation !!!!!!!Thank you 😁
Thank you so much for such an amazing explanation!
Great Explanation
THanks for your efforts.
That's Awesome, Thanks (y)
excellent video
Thank you!
What is the difference between training the model more and introduce more data?
Great
When someone this cute teaches you can't help but give your 100% attention 😂
thanks.. u are so cute❤️❤️❤️❤️❤️