K Means Clustering Algorithm | K Means Solved Numerical Example Euclidean Distance by Mahesh Huddar

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K Means Clustering Algorithm | K Means Solved Numerical Example | Euclidean Distance by Mahesh Huddar

Suppose that the data mining task is to cluster points into three clusters, where the points are
A1(2, 10), A2(2, 5), A3(8, 4), B1(5, 8), B2(7, 5), B3(6, 4), C1(1, 2), C2(4, 9).
The distance function is Euclidean distance.
Suppose initially we assign A1, B1, and C1 as the center of each cluster, respectively.

The following concepts are discussed:
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How to use K Means Clustering Algorithm,
K Means Clustering Solved Numerical Example,
K Means Clustering Solved Example,
K means clustering Euclidean Distance
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Dear Mahesh,

I hope this message finds you well. I wanted to take a moment to express my deepest appreciation for all the knowledge and guidance you have provided me in learning the K-means algorithm. I cannot emphasize enough how much I owe to you for opening my eyes to this fascinating topic.

Your passion for the subject and your teaching skills are truly unparalleled. Your ability to break down complex concepts and explain them in a way that is accessible to anyone is nothing short of amazing. Your dedication to helping me understand the nuances of the algorithm and its various applications has been truly inspiring.

The impact of your teaching on my understanding of machine learning and data analysis cannot be overstated. You have not only taught me the K-means algorithm, but also instilled in me a deeper appreciation for the art and science of data analysis.

I am grateful for the time and effort you invested in me, and I will always treasure the knowledge and skills you have imparted to me. Your influence has truly been transformative, and I cannot thank you enough for all that you have done for me.

With deepest gratitude,

HITNUT

HITNUT
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I have exam in 3 hours this helped me a lot <3 thx

RafaParkoureiro
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Clear and great explanation. I understood the concept in 5 mins. Thank you for giving the clarity, sir. Hats off to you.

jananit
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I watched 30 minutes video on same topic but understand nothing but here i understood same topic in just 8 minutes....hats off to you sir....i know you worked very much for this 8 minutes video..i cant give money to you but can give tons of appreciation.

ASIFAlI-lqrd
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You're a life saver. Respect++ for your teaching style.

_shaniabalkhi
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U explained more detailed than our clg professor.. thank u sir ❤

MrLoser-okjx
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Sir, In new centroid (second iteration) calculation 3rd column both data points as 1.5 and 1.5 but the second one has to be 3.5

mohammedshabazhussain
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such a great explanation sir . Thanks alot

andrewalphones
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Hi Mahesh,
Could you also please explaiin about the WCSS, that the algorithm actually uses to find the lease value of K, that optimizes the clustering of the dataset in question.
Also, Could you please explain about the cluster validation

AWSFan
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Thank you for the good work, best ML teacher i ever listen to

abdulhamidmuhammad
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Nice explanation!!! Need to implement this in SQL Server TSQL

FullTimeDayTrader
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This is the best video out there about K Means Clustering. I genuinly noted myself "to check Mahesh Huddar's K Means Clustering video in case of you forget". Thank you Mr. Huddar!

efesozmen
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Best explanation of this topic, I have ever seen. 👏👏👏

abuhojayfa
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I have end sems in next 2 hours, this helped.

akshyapani
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This was the eaxct kinda video I was searching for that clearly explains how to calculate, re-calculate the Centroid. Thanks so much! Liked and subscribed!

LeisurelyCooking
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you killed it sir, you give me a very good clarity about k-means clustering through your video, thank you so much

CharanAkula-didn
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Crystal clear! Thanks for the great video!

liujwable
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I am in the exam hall. Helping a lot! 💀

arpitasahoo
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Excellent Sir....with your explanation, all my doubts are cleared

venkateshwarlupurumala
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Mahesh, you are such a life saver! Thanks for this

johnmosugu