Machine Learning with Python
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Learn Machine Learning with hands-on Python tutorials, real-world code examples, and clear explanations for researchers and developers.

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๐Ÿ”– The book that paved the way for me to "data science"!

๐Ÿ‘จ๐Ÿปโ€๐Ÿ’ป "Where do I start now?" This was the first and biggest question I faced when I started my Data Science learning journey!

โช I was really overwhelmed by the large number of scattered sources, long courses, and specialized books full of heavy terminology. I didn't know how to start and move forward in this direction...

โœ”๏ธ But the book Intro to Data Science with Python changed everything for me and gave me a new perspective!

โœ๏ธ This book is a complete guide to starting from scratch and is great for both beginners and professionals in this field!! From coding with Python to working with data, visualization, and even AI tools, it explains everything in the simplest and most practical way possible.

๐Ÿ’ธ A great start for anyone looking to learn data science with Python!๐Ÿ‘‡

โ”Œ ๐Ÿณ๏ธโ€๐ŸŒˆ Intro to Data Science with Python
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๐Ÿ“„ E-book
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๐Ÿฑ GitHub-Repos

#DataAnalytics #Python #SQL #RProgramming #DataScience #MachineLearning #DeepLearning #Statistics #DataVisualization #PowerBI #Tableau #LinearRegression #Probability #DataWrangling #Excel #AI #ArtificialIntelligence #BigData #DataAnalysis #NeuralNetworks #GAN #LearnDataScience #LLM #RAG #Mathematics #PythonProgramming  #Keras

https://xn--r1a.website/CodeProgrammer โœ…
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๐Ÿ‘จ๐Ÿปโ€๐Ÿ’ป One of the most popular GitHub repositories for "learning and using algorithms in Python" is The Algorithms - Python repo with 196K stars.

โœ๏ธ It has a lot of organized and categorized code that you can use to find, read, and run different algorithms. Everything you can think of is here; from simple algorithms like sorting to advanced algorithms for machine learning, artificial intelligence, neural networks, and more.

โœ… Why should we use it?

๐Ÿ”ข For learning: If you're looking to learn algorithms in action, this is great.

๐Ÿ”ข For practice: You can take the codes, run them, and modify them to better understand.

๐Ÿ”ข For projects : You can even use the codes here in real-life or academic projects.

๐Ÿ”ข For interviews: If you're preparing for data science interviews, this is full of practical algorithms.


โ”Œ ๐Ÿณ๏ธโ€๐ŸŒˆ The Algorithms - Python
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๐Ÿฑ GitHub-Repos

#DataAnalytics #Python #SQL #RProgramming #DataScience #MachineLearning #DeepLearning #Statistics #DataVisualization #PowerBI #Tableau #LinearRegression #Probability #DataWrangling #Excel #AI #ArtificialIntelligence #BigData #DataAnalysis #NeuralNetworks #GAN #LearnDataScience #LLM #RAG #Mathematics #PythonProgramming  #Keras

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Pandas Introduction to Advanced.pdf
854.8 KB
๐Ÿ“„ "Pandas Introduction to Advanced" booklet

๐Ÿ‘จ๐Ÿปโ€๐Ÿ’ป You can't attend a #datascience interview and not be asked about Pandas! But you don't have to memorize all its methods and functions! With this booklet, you'll learn everything you need.

โœ”๏ธ One of the most useful and interesting combinations is using #Pandas with #AWS Lambda, which can be very useful in real projects.

#DataAnalytics #Python #SQL #RProgramming #DataScience #MachineLearning #DeepLearning #Statistics #DataVisualization #PowerBI #Tableau #LinearRegression #Probability #DataWrangling #Excel #AI #ArtificialIntelligence #BigData #DataAnalysis #NeuralNetworks #GAN #LearnDataScience #LLM #RAG #Mathematics #PythonProgramming  #Keras

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Forwarded from Machine Learning
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๐Ÿ”— Machine Learning from Scratch by Danny Friedman

This book is for readers looking to learn new #machinelearning algorithms or understand algorithms at a deeper level. Specifically, it is intended for readers interested in seeing machine learning algorithms derived from start to finish. Seeing these derivations might help a reader previously unfamiliar with common algorithms understand how they work intuitively. Or, seeing these derivations might help a reader experienced in modeling understand how different #algorithms create the models they do and the advantages and disadvantages of each one.

This book will be most helpful for those with practice in basic modeling. It does not review best practicesโ€”such as feature engineering or balancing response variablesโ€”or discuss in depth when certain models are more appropriate than others. Instead, it focuses on the elements of those models.


https://dafriedman97.github.io/mlbook/content/introduction.html

#DataAnalytics #Python #SQL #RProgramming #DataScience #MachineLearning #DeepLearning #Statistics #DataVisualization #PowerBI #Tableau #LinearRegression #Probability #DataWrangling #Excel #AI #ArtificialIntelligence #BigData #DataAnalysis #NeuralNetworks #GAN #LearnDataScience #LLM #RAG #Mathematics #PythonProgramming  #Keras

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๐Ÿ—‚ 20 free MIT courses โ€” the entire Computer Science base in one place

#MIT has made courses in key CS areas publicly available. #Python, #algorithms, #ML, neural networks, #OS, #databases, #mathematics โ€” all can be completed for free directly on #YouTube.

โ–ถ๏ธ Introduction to Python Programming
โ–ถ๏ธ Data Structures and Algorithms
โ–ถ๏ธ Mathematics for Computer Science
โ–ถ๏ธ Machine Learning
โ–ถ๏ธ Deep Learning
โ–ถ๏ธ Artificial Intelligence
โ–ถ๏ธ Machine Learning in Healthcare
โ–ถ๏ธ Database Management Systems
โ–ถ๏ธ Operating Systems
โ–ถ๏ธ One-Variable Calculus
โ–ถ๏ธ Many-Variable Calculus
โ–ถ๏ธ Introduction to Probability Theory
โ–ถ๏ธ Statistics
โ–ถ๏ธ Probability Theory and Statistics
โ–ถ๏ธ Linear Algebra
โ–ถ๏ธ Matrix Calculus for Machine Learning
โ–ถ๏ธ Java Programming
โ–ถ๏ธ Design and Analysis of Algorithms
โ–ถ๏ธ Advanced Data Structures
โ–ถ๏ธ Introduction to Computational Thinking

tags: #courses

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Found an easy way to learn math for ML: Mathematics for Machine Learning ๐ŸŽ“๐Ÿ“š

This is a curated collection on GitHub, including books, research papers, video lectures, and basic materials on math for studying and reviewing the mathematical foundations of machine learning. ๐Ÿ“–๐Ÿ“Š

It helps build a stronger knowledge base by bringing together trusted resources around topics that machine learning engineers constantly encounter: linear algebra, mathematical analysis, probability theory, statistics, information theory, matrix calculus, and deep learning mathematics. ๐Ÿงฎ๐Ÿค–

Free public repository on GitHub. ๐Ÿ’ปโœจ

https://github.com/dair-ai/Mathematics-for-ML

#MachineLearning #Mathematics #DataScience #Learning #GitHub #AI

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