Supervised and Unsupervised Learning In Machine Learning | Machine Learning Tutorial | Simplilearn
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This video on "Supervised and Unsupervised Learning in Machine Learning" will help you understand what is machine learning, what are the types of machine learning, what is supervised machine learning, types of supervised machine learning, what is unsupervised learning, types of unsupervised learning, and what are the differences between supervised and unsupervised machine learning.
Below are the topics explained in this supervised and unsupervised learning in Machine Learning Tutorial-
00:00 - 01:20 What is Machine Learning?
01:20 - 02:21 Supervised Learning
02:21 - 04:31 Types of Supervised Learning
04:31 - 05:14 Applications of Supervised Learning
05:14 - 05:49 Unsupervised Learning
05:49 - 07:33 Types of Unsupervised Learning
07:33 - 08:34 Applications of Unsupervised Learning
08:34 - 09:20 Recap
Subscribe to our channel for more Machine Learning Tutorials: https://www.youtube.com/user/Simplilearn?sub_confirmation=1
Download the Machine Learning Career Guide to explore and step into the exciting world of Machine Learning, and follow the path towards your dream career- https://www.simplilearn.com/machine-learning-career-guide-pdf?utm_campaign=Supervised-and-Unsupervised-Learning-kE5QZ8G_78c&utm_medium=Tutorials&utm_source=youtube
You can also go through the Slides here: https://goo.gl/Co9mf1
Watch more videos on Machine Learning: https://www.youtube.com/watch?v=7JhjINPwfYQ&list=PLEiEAq2VkUULYYgj13YHUWmRePqiu8Ddy
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What is Supervised Learning and Unsupervised Learning?
In supervised learning, the model learns from a labelled data, whereas, in unsupervised learning, the model trains itself on unlabelled data. Linear regression, logistic regression, support vector machines, and k nearest neighbours are some of the popular supervised learning. K-means clustering and principal component analysis are the two popular unsupervised learning algorithms.
About Simplilearn Machine Learning course:
A form of artificial intelligence, Machine Learning is revolutionizing the world of computing as well as all people’s digital interactions. Machine Learning powers such innovative automated technologies as recommendation engines, facial recognition, fraud protection and even self-driving cars. This Machine Learning course prepares engineers, data scientists and other professionals with the knowledge and hands-on skills required for certification and job competency in Machine Learning.
Why learn Machine Learning?
Machine Learning is taking over the world- and with that, there is a growing need among companies for professionals to know the ins and outs of Machine Learning
The Machine Learning market size is expected to grow from USD 1.03 Billion in 2016 to USD 8.81 Billion by 2022, at a Compound Annual Growth Rate (CAGR) of 44.1% during the forecast period.
What skills will you learn from this Machine Learning course?
By the end of this Machine Learning course, you will be able to:
1. Master the concepts of supervised, unsupervised and reinforcement learning concepts and modeling.
2. Gain practical mastery over principles, algorithms, and applications of Machine Learning through a hands-on approach which includes working on 28 projects and one capstone project.
3. Acquire a thorough knowledge of the mathematical and heuristic aspects of Machine Learning.
4. Understand the concepts and operation of support vector machines, kernel SVM, naive Bayes, decision tree classifier, random forest classifier, logistic regression, K-nearest neighbors, K-means clustering and more.
5. Be able to model a wide variety of robust Machine Learning algorithms including deep learning, clustering, and recommendation systems
We recommend this Machine Learning training course for the following professionals in particular:
1. Developers aspiring to be a data scientist or Machine Learning engineer
2. Information architects who want to gain expertise in Machine Learning algorithms
3. Analytics professionals who want to work in Machine Learning or artificial intelligence
4. Graduates looking to build a career in data science and Machine Learning
Learn more at: https://www.simplilearn.com/big-data-and-analytics/machine-learning-certification-training-course?utm_campaign=Supervised-and-Unsupervised-Learning-kE5QZ8G_78c&utm_medium=Tutorials&utm_source=youtube
For more updates on courses and tips follow us on:
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Видео Supervised and Unsupervised Learning In Machine Learning | Machine Learning Tutorial | Simplilearn канала Simplilearn
This video on "Supervised and Unsupervised Learning in Machine Learning" will help you understand what is machine learning, what are the types of machine learning, what is supervised machine learning, types of supervised machine learning, what is unsupervised learning, types of unsupervised learning, and what are the differences between supervised and unsupervised machine learning.
Below are the topics explained in this supervised and unsupervised learning in Machine Learning Tutorial-
00:00 - 01:20 What is Machine Learning?
01:20 - 02:21 Supervised Learning
02:21 - 04:31 Types of Supervised Learning
04:31 - 05:14 Applications of Supervised Learning
05:14 - 05:49 Unsupervised Learning
05:49 - 07:33 Types of Unsupervised Learning
07:33 - 08:34 Applications of Unsupervised Learning
08:34 - 09:20 Recap
Subscribe to our channel for more Machine Learning Tutorials: https://www.youtube.com/user/Simplilearn?sub_confirmation=1
Download the Machine Learning Career Guide to explore and step into the exciting world of Machine Learning, and follow the path towards your dream career- https://www.simplilearn.com/machine-learning-career-guide-pdf?utm_campaign=Supervised-and-Unsupervised-Learning-kE5QZ8G_78c&utm_medium=Tutorials&utm_source=youtube
You can also go through the Slides here: https://goo.gl/Co9mf1
Watch more videos on Machine Learning: https://www.youtube.com/watch?v=7JhjINPwfYQ&list=PLEiEAq2VkUULYYgj13YHUWmRePqiu8Ddy
#MachineLearningAlgorithms #Datasciencecourse #DataScience #SimplilearnMachineLearning #MachineLearningCourse #Simplilearn
What is Supervised Learning and Unsupervised Learning?
In supervised learning, the model learns from a labelled data, whereas, in unsupervised learning, the model trains itself on unlabelled data. Linear regression, logistic regression, support vector machines, and k nearest neighbours are some of the popular supervised learning. K-means clustering and principal component analysis are the two popular unsupervised learning algorithms.
About Simplilearn Machine Learning course:
A form of artificial intelligence, Machine Learning is revolutionizing the world of computing as well as all people’s digital interactions. Machine Learning powers such innovative automated technologies as recommendation engines, facial recognition, fraud protection and even self-driving cars. This Machine Learning course prepares engineers, data scientists and other professionals with the knowledge and hands-on skills required for certification and job competency in Machine Learning.
Why learn Machine Learning?
Machine Learning is taking over the world- and with that, there is a growing need among companies for professionals to know the ins and outs of Machine Learning
The Machine Learning market size is expected to grow from USD 1.03 Billion in 2016 to USD 8.81 Billion by 2022, at a Compound Annual Growth Rate (CAGR) of 44.1% during the forecast period.
What skills will you learn from this Machine Learning course?
By the end of this Machine Learning course, you will be able to:
1. Master the concepts of supervised, unsupervised and reinforcement learning concepts and modeling.
2. Gain practical mastery over principles, algorithms, and applications of Machine Learning through a hands-on approach which includes working on 28 projects and one capstone project.
3. Acquire a thorough knowledge of the mathematical and heuristic aspects of Machine Learning.
4. Understand the concepts and operation of support vector machines, kernel SVM, naive Bayes, decision tree classifier, random forest classifier, logistic regression, K-nearest neighbors, K-means clustering and more.
5. Be able to model a wide variety of robust Machine Learning algorithms including deep learning, clustering, and recommendation systems
We recommend this Machine Learning training course for the following professionals in particular:
1. Developers aspiring to be a data scientist or Machine Learning engineer
2. Information architects who want to gain expertise in Machine Learning algorithms
3. Analytics professionals who want to work in Machine Learning or artificial intelligence
4. Graduates looking to build a career in data science and Machine Learning
Learn more at: https://www.simplilearn.com/big-data-and-analytics/machine-learning-certification-training-course?utm_campaign=Supervised-and-Unsupervised-Learning-kE5QZ8G_78c&utm_medium=Tutorials&utm_source=youtube
For more updates on courses and tips follow us on:
- Facebook: https://www.facebook.com/Simplilearn
- Twitter: https://twitter.com/simplilearn
- LinkedIn: https://www.linkedin.com/company/simplilearn
- Website: https://www.simplilearn.com
Get the Android app: http://bit.ly/1WlVo4u
Get the iOS app: http://apple.co/1HIO5J0
Видео Supervised and Unsupervised Learning In Machine Learning | Machine Learning Tutorial | Simplilearn канала Simplilearn
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