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Dealing with Missing Values in Machine Learning: Easy Explanation for Data Science Interviews 

Emma Ding
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In this video, I’m going to tackle a simple, common machine learning interview question: how to deal with missing values in a dataset. This problem impacts the quality of a dataset, and it can even bias the results of the machine learning model trained based on the data. This is a question that is often asked in Data Science interviews, so we’ll cover why there may be missing values in your data set, and how to deal with them.
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====================
Contents of this video:
====================
00:00 Introduction
00:44 Missing Values
02:09 Data Point Omission
02:58 Feature Omission
03:26 Imputation
04:44 Missing Values
05:04 Offer Your Feedback

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13 июл 2024

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Комментарии : 15   
@MrFromminsk
@MrFromminsk 6 месяцев назад
The best video on handling missing values in DSs
@ArtificiallyConcious
@ArtificiallyConcious 5 месяцев назад
Excellently explained!
@louisforlibertarian
@louisforlibertarian Год назад
Love the vid! Can't wait for more in this ML interview question series!
@emma_ding
@emma_ding Год назад
Thanks for following along, Louis! 💛
@tejasphirke3436
@tejasphirke3436 Год назад
Wonderfully explained 😀
@edwinsimjaya4541
@edwinsimjaya4541 Год назад
Your explanation is very clear Emma, thank you so much!
@emma_ding
@emma_ding Год назад
Happy to help! Thanks for watching. 😊
@user-wy4ge3yu4h
@user-wy4ge3yu4h 2 месяца назад
Good explanation
@jameswright1848
@jameswright1848 Год назад
Thanks Emma! Very clear, easy to understand and very helpful!
@emma_ding
@emma_ding Год назад
So glad to be of assistance, James! 😊
@lisayang9256
@lisayang9256 Год назад
👍 thank you
@chandansagar212
@chandansagar212 Год назад
thanks !
@kelseyarthur6421
@kelseyarthur6421 Год назад
What machine learning algorithms would you use to try to fill in missing values?
@dishashah7127
@dishashah7127 Год назад
Regression can be used
@chillfill4866
@chillfill4866 10 месяцев назад
I would consider the apriori algorithm
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