๐พ QUIZ: What is the output?
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A guide how to level up your python skills https://youtu.be/HUJmpLl5Kc0
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Avoid Over-Optimization: Focus on making code clear and maintainable
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Learn Quantum Programming without Actual Quantum Computing using the Qiskit Python Simulator
https://www.youtube.com/playlist?list=PL0nX4ZoMtjYH-6jH82HTtiaeO8pNE_iJK
#quantumcomputing #machinelearning #python #qiskit #ai #chatgpt #quantumprogramming
https://www.youtube.com/playlist?list=PL0nX4ZoMtjYH-6jH82HTtiaeO8pNE_iJK
#quantumcomputing #machinelearning #python #qiskit #ai #chatgpt #quantumprogramming
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I have built a GitHub repo search tool using Python. This project has been built using the Flask framework with HTML, CSS, and JavaScript and integrated with a GitHub API. It is well documented and easy to customize in your way. It also passed pylint test stages.
You can also contribute to this project as a contributor.
https://github.com/epythonlab/github-search-tool
You can also contribute to this project as a contributor.
https://github.com/epythonlab/github-search-tool
GitHub
GitHub - epythonlab/github-search-tool: Github Repository Search Tool
Github Repository Search Tool. Contribute to epythonlab/github-search-tool development by creating an account on GitHub.
๐6
Here are the open dataset repositories for your AI or Machine Learning Project https://youtu.be/15dD6kNAhx4
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Python Magic Methods.pdf
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What are magic methods and functions in Python
https://www.youtube.com/watch?v=fjcx0b2ckl4
https://www.youtube.com/watch?v=fjcx0b2ckl4
In this video, you will learn everything you need to know about regular expressions, from beginner to advanced. I will cover the basics of regular expressions, as well as more advanced topics with practical examples. By the end of this video, you will be able to use regular expressions to solve a variety of problems. https://www.youtube.com/watch?v=lR7xQUx5_Og
YouTube
Learn Regular Expressions from Beginner to Advanced
In this video, you will learn everything you need to know about regular expressions, from beginner to advanced. I will cover the basics of regular expressions, as well as more advanced topics with practical examples. By the end of this video, you will beโฆ
๐5
Unleashing the Power of NumPy: Solving Real-world Problems
https://youtu.be/6Ci7BbksEC8
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This is a simple CRUD application developed using Python, Bootstrap, and Flask as a framework. https://github.com/epythonlab/BlogApp
Watch full tutorial: https://www.youtube.com/playlist?list=PL0nX4ZoMtjYGzAtRxyP0szpmv3Yaub-0o
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GitHub
GitHub - epythonlab/BlogApp: This is a simple CRUD application developed using Python, Botstrap and Flask as a framework. The fullโฆ
This is a simple CRUD application developed using Python, Botstrap and Flask as a framework. The full video tutorials are available on youtube. you can find the tutorial https://youtube.com/epython...
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Forwarded from Epython Lab
It's 01/01/2023
What are the concepts behind list, tuple, and dictionary?
This tutorial will give you an insight about them
https://youtu.be/YYzOGQCBUjo
What are the concepts behind list, tuple, and dictionary?
This tutorial will give you an insight about them
https://youtu.be/YYzOGQCBUjo
YouTube
The concept behind the built-in collections of Python | list vs. tuple vs. set vs. dictionary
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You can learn the concept behind the list, sets, tuples and dictionary in Python.
#python #machinelearning #datascience #pythoncollections
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You can learn the concept behind the list, sets, tuples and dictionary in Python.
#python #machinelearning #datascience #pythoncollections
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๐2
Which is better for Deep Learning https://www.youtube.com/watch?v=ZIN6WmY-EY0
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TensorFlow vs PyTorch: Which is Better for Deep Learning
TensorFlow vs PyTorch: Which is Better for Deep Learning
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#09 Scalar Array
Learn more about numpy array here https://youtu.be/G7FjapQvJV8
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Learn more about numpy array here https://youtu.be/G7FjapQvJV8
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โค4
What type of array?
Learn more about numpy array here https://youtu.be/G7FjapQvJV8
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Learn more about numpy array here https://youtu.be/G7FjapQvJV8
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๐5
Build your own Deep Learning Model with tensorflow and keras using Google Colab notebook https://www.youtube.com/watch?v=anyJVt5XzfE&list=PL0nX4ZoMtjYEhYVeSJkp2QhW658V0-R4e&index=3
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โค4
A comprehensive guide to matrix multiplication with numpy python library
https://www.youtube.com/watch?v=-hu53V03-1I
https://www.youtube.com/watch?v=-hu53V03-1I
YouTube
A Comprehensive Guide to Matrix Multiplication in Python NumPy
Unlock the power of matrix multiplication in Python NumPy with this comprehensive guide! Learn the basics and advanced techniques for multiplying matrices and boost your data analysis skills. From syntax to practical examples, this tutorial has everythingโฆ
โค5
Forwarded from Epython Lab
Compilers and interpreters are programs that help convert the high level language (Source Code) into machine codes to be understood by the computers. Computer programs are usually written on high level languages. A high level language is one that can be understood by humans.
However, computers cannot understand high level languages as we humans do. They can only understand the programs that are developed in binary systems known as a machine code. To start with, a computer program is usually written in high level language described as a source code. These source codes must be converted into machine language and here comes the role of compilers and interpreters.
Differences between Interpreter and Compiler
!. Interpreter translates just one statement of the program at a time into machine code where as Compiler scans the entire program and translates the whole of it into machine code at once.
2. An interpreter takes very less time to analyze the source code. However, the overall time to execute the process is much slower. A compiler takes a lot of time to analyze the source code. However, the overall time taken to execute the process is much faster.
3. An interpreter does not generate an intermediary code. Hence, an interpreter is highly efficient in terms of its memory. A compiler always generates an intermediary object code. It will need further linking. Hence more memory is needed.
4. Keeps translating the program continuously till the first error is confronted. If any error is spotted, it stops working and hence debugging becomes easy. A compiler generates the error message only after it scans the complete program and hence debugging is relatively harder while working with a compiler.
5. Interpreters are used by programming languages like Ruby and Python for example. Compliers are used by programming languages like C and C++ for example.
However, computers cannot understand high level languages as we humans do. They can only understand the programs that are developed in binary systems known as a machine code. To start with, a computer program is usually written in high level language described as a source code. These source codes must be converted into machine language and here comes the role of compilers and interpreters.
Differences between Interpreter and Compiler
!. Interpreter translates just one statement of the program at a time into machine code where as Compiler scans the entire program and translates the whole of it into machine code at once.
2. An interpreter takes very less time to analyze the source code. However, the overall time to execute the process is much slower. A compiler takes a lot of time to analyze the source code. However, the overall time taken to execute the process is much faster.
3. An interpreter does not generate an intermediary code. Hence, an interpreter is highly efficient in terms of its memory. A compiler always generates an intermediary object code. It will need further linking. Hence more memory is needed.
4. Keeps translating the program continuously till the first error is confronted. If any error is spotted, it stops working and hence debugging becomes easy. A compiler generates the error message only after it scans the complete program and hence debugging is relatively harder while working with a compiler.
5. Interpreters are used by programming languages like Ruby and Python for example. Compliers are used by programming languages like C and C++ for example.
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tensorflow vs pytorch (1).pdf
351.4 KB
Keynote on Tensorflow vs PyTorch
Build your own Deep Learning Model with tensorflow and keras using Google Colab notebook https://www.youtube.com/watch?v=anyJVt5XzfE&list=PL0nX4ZoMtjYEhYVeSJkp2QhW658V0-R4e&index=3
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Build your own Deep Learning Model with tensorflow and keras using Google Colab notebook https://www.youtube.com/watch?v=anyJVt5XzfE&list=PL0nX4ZoMtjYEhYVeSJkp2QhW658V0-R4e&index=3
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โค3๐1
INTRODUCTION TO PROBABILITY DISTRIBUTION FOR MACHINE LEARNING
1. What is a random variable?
๐๐ฟ https://youtu.be/TkFipAuH-rY
2. Types of a random variable
๐๐ฟ https://youtu.be/jBYsKZOxR6k
3. Calculating probability using probability mass function
๐๐ฟ https://youtu.be/ceSvPxY_uAk
4. Calculating probability over a range
๐๐ฟ https://youtu.be/_WF9X4RyARA
5. Calculating Probability using the cumulative distribution function
๐๐ฟ https://youtu.be/tfoGiPlwiys
6. Calculating probability of continuous variable using density function and cumulative distribution function
๐๐ฟ https://www.youtube.com/watch?v=ikete4WQaj0
1. What is a random variable?
๐๐ฟ https://youtu.be/TkFipAuH-rY
2. Types of a random variable
๐๐ฟ https://youtu.be/jBYsKZOxR6k
3. Calculating probability using probability mass function
๐๐ฟ https://youtu.be/ceSvPxY_uAk
4. Calculating probability over a range
๐๐ฟ https://youtu.be/_WF9X4RyARA
5. Calculating Probability using the cumulative distribution function
๐๐ฟ https://youtu.be/tfoGiPlwiys
6. Calculating probability of continuous variable using density function and cumulative distribution function
๐๐ฟ https://www.youtube.com/watch?v=ikete4WQaj0
YouTube
Introduction to Probability Distribution for Machine Learning | Random Variable in Python
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Learn introduction to Probability Distribution for Machine Learning
- Random Variable in Python
#python #probability #machinelearning #randomvariableโฆ
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Learn introduction to Probability Distribution for Machine Learning
- Random Variable in Python
#python #probability #machinelearning #randomvariableโฆ
๐6โค1
Understanding Artificial Intelligence, Machine Learning, and Deep Learning
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YouTube
Understanding Artificial Intelligence, Machine Learning, and Deep Learning
Understanding Artificial Intelligence, Machine Learning, and Deep Learning
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โค4
How to Fix Pandas KeyError: Python KeyError https://youtu.be/AC1DnZeXCu4
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