Machine Learning – Telegram
Machine Learning
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Machine learning insights, practical tutorials, and clear explanations for beginners and aspiring data scientists. Follow the channel for models, algorithms, coding guides, and real-world ML applications.

Admin: @HusseinSheikho || @Hussein_Sheikho
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📌 Could Conversational AI-Driven Data Analytics Finally Solve the Data Democratization Riddle?

🗂 Category: ARTIFICIAL INTELLIGENCE

🕒 Date: 2024-10-01 | ⏱️ Read time: 8 min read

A Data Leader’s Realistic Assessment
📌 TSV in Pandas: A How-To Guide

🗂 Category: DATA SCIENCE

🕒 Date: 2024-10-01 | ⏱️ Read time: 6 min read

The Correct Way of Loading and Writing TSV Files with Pandas
📌 Statistical Analysis on Scoring Bias

🗂 Category: DATA SCIENCE

🕒 Date: 2024-10-01 | ⏱️ Read time: 22 min read

In the 2024 Argentine Tango World Championship
📌 Beyond the Hype: When Generative AI Isn’t Always the Answer

🗂 Category:

🕒 Date: 2024-10-01 | ⏱️ Read time: 9 min read

Why predictive AI might still be your best bet
📌 P-Companion: Amazon’s Principled Framework for Diversified Complementary Product Recommendation

🗂 Category: ARTIFICIAL INTELLIGENCE

🕒 Date: 2024-10-01 | ⏱️ Read time: 12 min read

A Deep Dive into Amazon’s Complementary Product Recommendation Framework
📌 Under-trained and Unused tokens in Large Language Models

🗂 Category: ARTIFICIAL INTELLIGENCE

🕒 Date: 2024-10-01 | ⏱️ Read time: 8 min read

Existence of under-trained and unused tokens and Identification Techniques using GPT-2 Small as an Example
📌 My 7 Sources of Income as a Data Scientist

🗂 Category: CODING

🕒 Date: 2024-10-01 | ⏱️ Read time: 8 min read

All the ways I make money as a practising data scientist
📌 Journey of an unlikely entrepreneur

🗂 Category:

🕒 Date: 2024-10-01 | ⏱️ Read time: 10 min read

Developing an oceanographic application for big game fishing
📌 Graph Neural Networks Part 1. Graph Convolutional Networks Explained

🗂 Category:

🕒 Date: 2024-10-01 | ⏱️ Read time: 12 min read

Node classification with Graph Convolutional Networks
📌 What I Learned in my First 9 Months as a Freelance Data Scientist

🗂 Category: DATA SCIENCE

🕒 Date: 2024-10-01 | ⏱️ Read time: 24 min read

Observations and lessons learned from in the trenches
📌 Support Vector Classifier, Explained: A Visual Guide with Mini 2D Dataset

🗂 Category: DATA SCIENCE

🕒 Date: 2024-10-01 | ⏱️ Read time: 17 min read

Finding the best “line” to separate the classes? Yeah, sure…
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📌 Can Transformers Solve Everything?

🗂 Category: MACHINE LEARNING

🕒 Date: 2024-10-01 | ⏱️ Read time: 15 min read

Looking into the math and the data reveals that transformers are both overused and underused.
📌 Evaluating performance of LLM-based Applications

🗂 Category:

🕒 Date: 2024-09-30 | ⏱️ Read time: 9 min read

Evaluation Framework for real-world requirements
📌 5 Must-Know Techniques for Mastering Time-Series Analysis

🗂 Category: DATA SCIENCE

🕒 Date: 2024-09-30 | ⏱️ Read time: 22 min read

Elevate Your Machine Learning Forecasting with Accurate Data Splitting, Time-Series Cross-Validation, Feature Engineering, and More!
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📌 Exploring the World of Markov Chains: Unlocking the Power of Probabilistic Transitions

🗂 Category: PROBABILITY

🕒 Date: 2024-09-30 | ⏱️ Read time: 11 min read

An Introduction to Markov Chains, their applications, and how to use Monte Carlo Simulations in…
📌 Is Less More? Do Deep Learning Forecasting Models Need Feature Reduction?

🗂 Category: ANALYTICS

🕒 Date: 2024-09-30 | ⏱️ Read time: 14 min read

To curate, or not to curate, that is the question
📌 Stein’s Paradox

🗂 Category: DATA SCIENCE

🕒 Date: 2024-09-30 | ⏱️ Read time: 8 min read

Why the Sample Mean Isn’t Always the Best
📌 Evaluating Train-Test Split Strategies in Machine Learning: Beyond the Basics

🗂 Category: DATA SCIENCE

🕒 Date: 2024-09-30 | ⏱️ Read time: 6 min read

Creating Appropriate Test Sets and Sleeping Soundly.
📌 The AI Developer’s Dilemma: Proprietary AI vs. Open Source Ecosystem

🗂 Category: ARTIFICIAL INTELLIGENCE

🕒 Date: 2024-09-30 | ⏱️ Read time: 20 min read

Fundamental Choices Impacting Integration and Deployment at Scale of GenAI into Businesses
🏳️‍🌈 Learning Python for science is
with these 8 awesome GitHub repos!


🖥 Repo: Project Based Learning

💬 One of the most famous educational repos with 230K+ stars that implements various algorithms and projects using Python.



🖥 Repo: Real Python Materials

💬 Supplementary resources and exercises including project-based tutorials, guides, and practical exercises.



🖥 Repo: Learn By Doing

💬 Project-based tutorials in AI and machine learning for all levels.



🖥 Repo: Awesome Jupyter

💬 A curated collection of notebooks, tools, and powerful libraries for working with Jupyter.



🖥 Repo: Python Mini Projects

💬 A collection of mini-projects like games and small apps that you can quickly run and practice.



🖥 Repo: 100Projects of Code

💬 An educational challenge including 100 real projects; you practice and see your progress day by day.



🖥 Repo: Data Science Projects

💬 Practical ideas and examples to start data science with Python.



🖥 Repo: Python Project Scripts

💬 Small and large noscripting projects, from beginner to advanced levels.

By: https://news.1rj.ru/str/CodeProgrammer ✈️
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📌 Eulerian Melodies: Graph Algorithms for Music Composition

🗂 Category: GRAPH THEORY

🕒 Date: 2025-09-28 | ⏱️ Read time: 15 min read

Conceptual overview and an end-to-end Python implementation