Important book
50 Algorithms Every Programmer Should Know (2023)
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https://t.me/DataScienceM/286
50 Algorithms Every Programmer Should Know (2023)
Read it
https://t.me/DataScienceM/286
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π 50 Algorithms Every Programmer Should Know (2023)
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π¬ Tags: #Algorithms
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π¬ Tags: #Algorithms
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π7β€1
Machine Learning Algorithm basics!
Support Vector Machines (SVM) vs k-Nearest Neighbors (k-NN)
#MachineLearning #algorithms #ML #DataScience #ArtificialIntelligence #AI
https://t.me/CodeProgrammerπ
Support Vector Machines (SVM) vs k-Nearest Neighbors (k-NN)
#MachineLearning #algorithms #ML #DataScience #ArtificialIntelligence #AI
https://t.me/CodeProgrammer
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π8
Machine Learning concepts - Intermediate Level.
Convolutional Neural Network (CNN) Layers: Convolution vs Pooling vs Fully Connected
#MachineLearning #NeuralNetwork #DeepLearning #ArtificialIntelligence #AI #Algorithms
https://t.me/CodeProgrammerπ
Convolutional Neural Network (CNN) Layers: Convolution vs Pooling vs Fully Connected
#MachineLearning #NeuralNetwork #DeepLearning #ArtificialIntelligence #AI #Algorithms
https://t.me/CodeProgrammer
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π9
Important [ Python Built-in Methods ] {CheatSheet}
#MachineLearning #NeuralNetwork #DeepLearning #ArtificialIntelligence #AI #Algorithms #python
https://t.me/CodeProgrammerπ
#MachineLearning #NeuralNetwork #DeepLearning #ArtificialIntelligence #AI #Algorithms #python
https://t.me/CodeProgrammer
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π17β€7
DS CHEAT SHEET PANDAS.pdf
2.4 MB
DS CHEAT SHEET PANDAS πΌ
#MachineLearning #Pands #DeepLearning #ArtificialIntelligence #AI #Algorithms #Python
https://t.me/CodeProgrammerπ
#MachineLearning #Pands #DeepLearning #ArtificialIntelligence #AI #Algorithms #Python
https://t.me/CodeProgrammer
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π17
Understanding Probability Distributions for Machine Learning with Python
In machine learning, probability distributions play a fundamental role for various reasons: modeling uncertainty of information and #data, applying optimization processes with stochastic settings, and performing inference processes, to name a few. Therefore, understanding the role and uses of probability distributions in machine learning is essential for designing robust machine learning models, choosing the right #algorithms, and interpreting outputs of a probabilistic nature, especially when building #models with #machinelearning-friendly programming languages like #Python.
This article unveils key #probability distributions relevant to machine learning, explores their applications in different machine learning tasks, and provides practical Python implementations to help practitioners apply these concepts effectively. A basic knowledge of the most common probability distributions is recommended to make the most of this reading.
Read Free: https://machinelearningmastery.com/understanding-probability-distributions-machine-learning-python/
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In machine learning, probability distributions play a fundamental role for various reasons: modeling uncertainty of information and #data, applying optimization processes with stochastic settings, and performing inference processes, to name a few. Therefore, understanding the role and uses of probability distributions in machine learning is essential for designing robust machine learning models, choosing the right #algorithms, and interpreting outputs of a probabilistic nature, especially when building #models with #machinelearning-friendly programming languages like #Python.
This article unveils key #probability distributions relevant to machine learning, explores their applications in different machine learning tasks, and provides practical Python implementations to help practitioners apply these concepts effectively. A basic knowledge of the most common probability distributions is recommended to make the most of this reading.
Read Free: https://machinelearningmastery.com/understanding-probability-distributions-machine-learning-python/
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π10
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 practicesβsuch as feature engineering or balancing response variablesβor 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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π11β€2π―1
"Data Structures & Algorithms using Python"
This book of 222 pages implements all types of #DATASTRUCTURES and #ALGORITHMS. And it'sπ― #FREE.
Download Free: https://donsheehy.github.io/datastructures/fullbook.pdf
By: https://t.me/DataScience4
This book of 222 pages implements all types of #DATASTRUCTURES and #ALGORITHMS. And it's
Download Free: https://donsheehy.github.io/datastructures/fullbook.pdf
By: https://t.me/DataScience4
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π12β€2
Open Guide to Data Structures and Algorithms
A must-read for anyone starting their journey in computer science and programming. This open-access book offers a clear, beginner-friendly introduction to the core concepts of data structures and algorithms, with simple explanations and practical examples. Whether you're a student or a self-learner, this guide is a solid foundation to build your DSA knowledge. Highly recommended for those who want to learn efficiently and effectively.
Read it here:
https://pressbooks.palni.org/anopenguidetodatastructuresandalgorithms
#DSA #Algorithms #DataStructures #ProgrammingBasics #CSforBeginners #OpenSourceLearning #CodingJourney #TechEducation #ComputerScience #PythonBeginners
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A must-read for anyone starting their journey in computer science and programming. This open-access book offers a clear, beginner-friendly introduction to the core concepts of data structures and algorithms, with simple explanations and practical examples. Whether you're a student or a self-learner, this guide is a solid foundation to build your DSA knowledge. Highly recommended for those who want to learn efficiently and effectively.
Read it here:
https://pressbooks.palni.org/anopenguidetodatastructuresandalgorithms
#DSA #Algorithms #DataStructures #ProgrammingBasics #CSforBeginners #OpenSourceLearning #CodingJourney #TechEducation #ComputerScience #PythonBeginners
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