#pythonforml ผลการค้นหา
Day 12 of #pythonForML🚀: Explored Image scraping techniques today and successfully scraped images from Google search💻. #Python #webscraping #imagescraping
Day 10 of #PythonForML 🚀: Extracted some question data from the GFG webpage. but Still requires more perfection! 🚀📷 #Python #DataScience
Why is #Python Used for Machine Learning? - Comprehensibility - Plenty of support - Flexibility - ... #PythonMachineLearning #PythonForMl #PythonAndMl #PythonDevelopment #PythonMl buff.ly/2HOso6u
Choosing a Programming Language: Python is widely used in ML. Learn its syntax and data manipulation tools. Check out this YouTube playlist for beginners: Python for Data Science by sentdex #PythonForML #LearnPython youtube.com/watch?v=LHBE6Q…
"Why is Python Used for Machine Learning?" hackernoon.com/why-is-python-… #machinelearningpython #pythonforml
#100 days of code Every ML expert was once a beginner. Today I start my journey with python. no turning back now. #BeginnerToPro #pythonForML #100daysofcoding
Day 9 of #PythonForML: Explored web scraping in Python, practiced extracting random data from the web. Tomorrow, onto a simple scraping project! 🚀 Exciting progress! 💡
Day 5 of #PythonForML: Did the basics of🐼(pandas)📷 and basics of Web Scrapping in python #Python #Flask #WebDevelopment
That’s a wrap for Day 15! 🚀 Onwards to mastering more Pandas tools 🐼 as part of the 20 Days of Pandas Challenge. Tomorrow, we’ll dive into fetching rows and columns using iloc. See you then! #PythonForML #MLJourney #Pandas
4/ Generators Moved on to generators! ⚙️ Unlike lists, they generate values one at a time, saving memory. Perfect for handling large datasets in #DataScience. 🌱 #PythonForML #GenerativeAI #100DaysOfCode
Ready? #Back2Basics #pythonforML
Get ready! 👊 To switch things up with #Back2Basics Python for ML series Coming soon to @gdg_nairobi!
4/ Inheritance Inheritance in #OOP: creating new classes from existing ones. Makes code reusable and keeps things organized. 🧩 Ready to extend functionality! #PythonForML #DataScience
2/ Basic List Comprehension Instead of writing loops to fill a list, list comprehensions let you do it in one line. Example: [x**2 for x in range(10)] creates a list of squares. Easy! 🔢 #PythonForML #AI #100DaysOfCode
6/ Advantages of Generators Generators are memory-efficient and fast for big data processing. No need to load entire datasets into memory at once. Game changer for #DataScience and #AI! ⚡ #PythonForML #100DaysOfCode
Day-8 #PythonforML Did some more on the Numpy ( string function, mathematical functions, sorting ) #Python #ML
#Day3 Learned about working with files, Reading, writing and other methods. ✅Exception Handling done. . #pythonforml #python
1/ Classes and Objects Today's focus: #OOP in #Python! Started with the basics of classes and objects. 🛠️ Classes are blueprints, and objects are instances of those classes. 🚀 #PythonForML #DataScience
Day 4 of #PythonForML 🚀: Explored Multithreading, Multiprocessing, and dabbled with Python-MongoDB integration. 🚀 Exciting progress! 💡 🐍 #ML #Python #MongoDB
Day -6 of #pythonforML Played with data along 🐼(Pandas) including Date function, Merge, Join, window function, time delta, and some Data visualisation. #Python #MachineLearning #AI
Day-7 #PythonforML Did some basics of Numpy (dealing with array and metrics, .random method, slicing and indexing, last not the least Broadcasting) #Python #ML
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