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📈 Аналитический обзор Telegram-канала Programming Resources | Python | Javascript | Artificial Intelligence Updates | Computer Science Courses | AI Books

Канал Programming Resources | Python | Javascript | Artificial Intelligence Updates | Computer Science Courses | AI Books (@programming_guide) языкового сегмента Английский является активным участником. Сейчас сообщество объединяет 56 114 подписчиков, занимая 2 293 место в категории Технологии и приложения и 6 177 место в регионе Индия.

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С момента создания невідомо проект демонстрирует стремительный рост, собрав аудиторию из 56 114 подписчиков.

Согласно последним данным от 27 августа, 2026, канал показывает стабильную активность. За последние 30 дней изменение числа участников составило -67, а за последние 24 часа — -10, при этом общий охват остаётся высоким.

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  • Уровень вовлечённости (ER): Средний показатель вовлечённости аудитории составляет 1.80%. В первые 24 часа после публикации контент обычно набирает 0.72% реакций от общего числа подписчиков.
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  • Реакции и взаимодействия: Аудитория активно поддерживает контент: среднее количество реакций на один пост — 2.
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Автор описывает ресурс как площадку для выражения субъективного мнения:
Everything about programming for beginners * Python programming * Java programming * App development * Machine Learning * Data Science Managed by: @love_data

Благодаря высокой частоте обновлений (последние данные получены 28 августа, 2026) канал поддерживает актуальность и высокий уровень охвата публикаций. Аналитика показывает, что аудитория активно взаимодействует с контентом, что делает его важной точкой влияния в категории Технологии и приложения.

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𝗧𝗼𝗽 𝗖𝗲𝗿𝘁𝗶𝗳𝗶𝗰𝗮𝘁𝗶𝗼𝗻𝘀 𝗧𝗼 𝗚𝗲𝘁 𝗛𝗶𝗴𝗵 𝗣𝗮𝘆𝗶𝗻𝗴 𝗝𝗼𝗯 𝗜𝗻 𝟮𝟬𝟮𝟲😍 Opportunities With 500+ Hiring P
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This repository collects everything you need to use AI and LLM in your projects. 120+ libraries, organized by development sta
This repository collects everything you need to use AI and LLM in your projects. 120+ libraries, organized by development stages: → Model training, fine-tuning, and evaluation → Deploying applications with LLM and RAG → Fast and scalable model launch → Data extraction, crawlers, and scrapers → Creating autonomous LLM agents → Prompt optimization and security Repo: https://github.com/KalyanKS-NLP/llm-engineer-toolkit 🥺 https://t.me/DataAnalyticsX

Complete roadmap to learn Python and Data Structures & Algorithms (DSA) in 2 months ### Week 1: Introduction to Python Day 1-2: Basics of Python - Python setup (installation and IDE setup) - Basic syntax, variables, and data types - Operators and expressions Day 3-4: Control Structures - Conditional statements (if, elif, else) - Loops (for, while) Day 5-6: Functions and Modules - Function definitions, parameters, and return values - Built-in functions and importing modules Day 7: Practice Day - Solve basic problems on platforms like HackerRank or LeetCode ### Week 2: Advanced Python Concepts Day 8-9: Data Structures in Python - Lists, tuples, sets, and dictionaries - List comprehensions and generator expressions Day 10-11: Strings and File I/O - String manipulation and methods - Reading from and writing to files Day 12-13: Object-Oriented Programming (OOP) - Classes and objects - Inheritance, polymorphism, encapsulation Day 14: Practice Day - Solve intermediate problems on coding platforms ### Week 3: Introduction to Data Structures Day 15-16: Arrays and Linked Lists - Understanding arrays and their operations - Singly and doubly linked lists Day 17-18: Stacks and Queues - Implementation and applications of stacks - Implementation and applications of queues Day 19-20: Recursion - Basics of recursion and solving problems using recursion - Recursive vs iterative solutions Day 21: Practice Day - Solve problems related to arrays, linked lists, stacks, and queues ### Week 4: Fundamental Algorithms Day 22-23: Sorting Algorithms - Bubble sort, selection sort, insertion sort - Merge sort and quicksort Day 24-25: Searching Algorithms - Linear search and binary search - Applications and complexity analysis Day 26-27: Hashing - Hash tables and hash functions - Collision resolution techniques Day 28: Practice Day - Solve problems on sorting, searching, and hashing ### Week 5: Advanced Data Structures Day 29-30: Trees - Binary trees, binary search trees (BST) - Tree traversals (in-order, pre-order, post-order) Day 31-32: Heaps and Priority Queues - Understanding heaps (min-heap, max-heap) - Implementing priority queues using heaps Day 33-34: Graphs - Representation of graphs (adjacency matrix, adjacency list) - Depth-first search (DFS) and breadth-first search (BFS) Day 35: Practice Day - Solve problems on trees, heaps, and graphs ### Week 6: Advanced Algorithms Day 36-37: Dynamic Programming - Introduction to dynamic programming - Solving common DP problems (e.g., Fibonacci, knapsack) Day 38-39: Greedy Algorithms - Understanding greedy strategy - Solving problems using greedy algorithms Day 40-41: Graph Algorithms - Dijkstra’s algorithm for shortest path - Kruskal’s and Prim’s algorithms for minimum spanning tree Day 42: Practice Day - Solve problems on dynamic programming, greedy algorithms, and advanced graph algorithms ### Week 7: Problem Solving and Optimization Day 43-44: Problem-Solving Techniques - Backtracking, bit manipulation, and combinatorial problems Day 45-46: Practice Competitive Programming - Participate in contests on platforms like Codeforces or CodeChef Day 47-48: Mock Interviews and Coding Challenges - Simulate technical interviews - Focus on time management and optimization Day 49: Review and Revise - Go through notes and previously solved problems - Identify weak areas and work on them ### Week 8: Final Stretch and Project Day 50-52: Build a Project - Use your knowledge to build a substantial project in Python involving DSA concepts Day 53-54: Code Review and Testing - Refactor your project code - Write tests for your project Day 55-56: Final Practice - Solve problems from previous contests or new challenging problems Day 57-58: Documentation and Presentation - Document your project and prepare a presentation or a detailed report Day 59-60: Reflection and Future Plan - Reflect on what you've learned - Plan your next steps (advanced topics, more projects, etc.) Best DSA RESOURCES: https://topmate.io/coding/886874 Credits: https://t.me/free4unow_backup ENJOY LEARNING 👍👍

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🚀 Roadmap to Become a Software Architect 👨‍💻 📂 Programming & Development Fundamentals  ∟📂 Master One or More Programming Languages (Java, C#, Python, etc.)   ∟📂 Learn Data Structures & Algorithms    ∟📂 Understand Design Patterns & Best Practices 📂 Software Design & Architecture Principles  ∟📂 Learn SOLID Principles & Clean Code Practices   ∟📂 Master Object-Oriented & Functional Design    ∟📂 Understand Domain-Driven Design (DDD) 📂 System Design & Scalability  ∟📂 Learn Microservices & Monolithic Architectures   ∟📂 Understand Load Balancing, Caching & CDNs    ∟📂 Dive into CAP Theorem & Event-Driven Architecture 📂 Databases & Storage Solutions  ∟📂 Master SQL & NoSQL Databases   ∟📂 Learn Database Scaling & Sharding Strategies    ∟📂 Understand Data Warehousing & ETL Processes 📂 Cloud Computing & DevOps  ∟📂 Learn Cloud Platforms (AWS, Azure, GCP)   ∟📂 Understand CI/CD & Infrastructure as Code (IaC)    ∟📂 Work with Containers & Kubernetes 📂 Security & Performance Optimization  ∟📂 Master Secure Coding Practices   ∟📂 Learn Authentication & Authorization (OAuth, JWT)    ∟📂 Optimize System Performance & Reliability 📂 Project Management & Communication  ∟📂 Work with Agile & Scrum Methodologies   ∟📂 Collaborate with Cross-Functional Teams    ∟📂 Improve Technical Documentation & Decision-Making 📂 Real-World Experience & Leadership  ∟📂 Design & Build Scalable Software Systems   ∟📂 Contribute to Open-Source & Architectural Discussions    ∟📂 Mentor Developers & Lead Engineering Teams 📂 Interview Preparation & Career Growth  ∟📂 Solve System Design Challenges   ∟📂 Master Architectural Case Studies    ∟📂 Network & Apply for Software Architect Roles ✅ Get Hired as a Software Architect React "❤️" for More 👨‍💻

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Advanced programming concepts you should know 👇👇 1. Object-Oriented Programming (OOP) Think of it like real life: A car is an object with properties (color, speed) and methods (drive, brake). You build code using reusable objects. ✅ 2. Inheritance Like family traits: A child class gets features from a parent class. Example: A Dog class can inherit from an Animal class. ✅ 3. Polymorphism One thing, many forms. Like a button that does different things depending on the app. Same action, different results. ✅ 4. Encapsulation Hiding details to keep it clean. Like using a microwave—you press a button, don’t worry about how it works inside. ✅ 5. Recursion When a function calls itself. Like Russian dolls inside each other. Useful for problems like solving a maze or calculating factorials. ✅ 6. Asynchronous Programming Doing many things at once. Like cooking while waiting for a download. It avoids “blocking” other tasks. ✅ 7. APIs Like a waiter between your code and a service. You say, “Get me the weather,” the API brings the data for you. ✅ 8. Data Structures & Algorithms Data structures = ways to organize info (like shelves). Algorithms = steps to solve a problem (like a recipe). ✅ 9. Big-O Notation A way to measure how fast or slow your code runs as data grows. More efficient code = faster apps! ✅ 10. Design Patterns Reusable solutions to common coding problems. Like blueprints for building a house, but for code. React ♥️ for more

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💻 Programming Domains & Languages What to learn. Why to learn. Where you fit. 🧠 Data Analytics - Analyze data - Build reports - Find insights Languages: SQL, Python, R Tools: Excel, Power BI, Tableau Jobs: Data Analyst, BI Analyst, Business Analyst 🤖 Data Science & AI - Build models - Predict outcomes - Work with ML Languages: Python, R Libraries: pandas, numpy, scikit-learn, tensorflow Jobs: Data Scientist, ML Engineer, AI Engineer 🌐 Web Development - Build websites - Create web apps Frontend: HTML, CSS, JavaScript Backend: JavaScript, Python, Java, PHP Frameworks: React, Node.js, Django Jobs: Frontend, Backend, Full Stack Developer 📱 Mobile App Development - Build mobile apps Android: Kotlin, Java iOS: Swift Cross-platform: Flutter, React Native Jobs: Android, iOS, Mobile App Developer 🧩 Software Development - Build systems - Write core logic Languages: Java, C++, C#, Python Used in: Enterprise apps, Desktop software Jobs: Software Engineer, Application Developer 🛡️ Cybersecurity - Secure systems - Test vulnerabilities Languages: Python, C, C++, Bash Tools: Kali Linux, Metasploit Jobs: Security Analyst, Ethical Hacker ☁️ Cloud & DevOps - Deploy apps - Manage servers Languages: Python, Bash, Go Tools: AWS, Docker, Kubernetes Jobs: DevOps Engineer, Cloud Engineer 🎮 Game Development - Build games - Design mechanics Languages: C++, C# Engines: Unity, Unreal Engine Jobs: Game Developer, Game Designer 🎯 How to choose - Like data → Data Analytics - Like math → Data Science - Like building websites → Web Development - Like apps → Mobile Development - Like system logic → Software Development - Like security → Cybersecurity ✅ Smart strategy - Pick one domain - Master one language - Add tools slowly - Build projects 😊 Double Tap ♥️ For More

Full-Stack Development Basics You Should Know 🌐💡 1️⃣ What is Full-Stack Development? Full-stack dev means working on both the frontend (client-side) and backend (server-side) of a web application. 🔄 2️⃣ Frontend (What Users See) Languages & Tools: - HTML – Structure 🏗️ - CSS – Styling 🎨 - JavaScript – Interactivity ✨ - React.js / Vue.js – Frameworks for building dynamic UIs ⚛️ 3️⃣ Backend (Behind the Scenes) Languages & Tools: - Node.js, Python, PHP – Handle server logic 💻 - Express.js, Django – Frameworks ⚙️ - Database – MySQL, MongoDB, PostgreSQL 🗄️ 4️⃣ API (Application Programming Interface) - Connect frontend to backend using REST APIs 🤝 - Send and receive data using JSON 📦 5️⃣ Database Basics - SQL: Structured data (tables) 📊 - NoSQL: Flexible data (documents) 📄 6️⃣ Version Control - Use Git and GitHub to manage and share code 🧑‍💻 7️⃣ Hosting & Deployment - Host frontend: Vercel, Netlify 🚀 - Host backend: Render, Railway, Heroku ☁️ 8️⃣ Authentication - Implement login/signup using JWT, Sessions, or OAuth 🔐 💬 Tap ❤️ for more! #FullStack #WebDevelopment

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Core Data Structures Part 2 – Stacks Queues 📚📥📤 Stacks and queues are fundamental linear data structures used in many algorithms and real-world applications like undo operations, task scheduling, and more. 1️⃣ What is a Stack? A Stack is a Last-In-First-Out (LIFO) structure. Think of a stack of plates: you add (push) and remove (pop) from the top. Operations: • push(item) – Add item to the top • pop() – Remove item from the top • peek() – View top item without removing • is_empty() – Check if stack is empty Python Implementation (Using List)
stack = []

# Push
stack.append(10)
stack.append(20)

# Pop
print(stack.pop())  # 20

# Peek
print(stack[-1])    # 10

# Check empty
print(len(stack) == 0)
2️⃣ What is a Queue? A Queue is a First-In-First-Out (FIFO) structure. Think of a line at a ticket counter: first come, first served. Operations: • enqueue(item) – Add item to the rear • dequeue() – Remove item from the front • peek() – View front item • is_empty() – Check if queue is empty Python Implementation (Using collections.deque)
from collections import deque

queue = deque()

# Enqueue
queue.append(10)
queue.append(20)

# Dequeue
print(queue.popleft())  # 10

# Peek
print(queue[0])         # 20

# Check empty
print(len(queue) == 0)
3️⃣ Stack Using Linked List (Python)
class Node:
    def __init__(self, data):
        self.data = data
        self.next = None

class Stack:
    def __init__(self):
        self.top = None

    def push(self, data):
        node = Node(data)
        node.next = self.top
        self.top = node

    def pop(self):
        if not self.top:
            return None
        data = self.top.data
        self.top = self.top.next
        return data
4️⃣ Queue Using Linked List (Python)
class Node:
    def __init__(self, data):
        self.data = data
        self.next = None

class Queue:
    def __init__(self):
        self.front = self.rear = None

    def enqueue(self, data):
        node = Node(data)
        if not self.rear:
            self.front = self.rear = node
        else:
            self.rear.next = node
            self.rear = node

    def dequeue(self):
        if not self.front:
            return None
        data = self.front.data
        self.front = self.front.next
        if not self.front:
            self.rear = None
        return data
📝 Practice Tasks 1. Implement a stack using a list 2. Implement a queue using a list 3. Reverse a string using a stack 4. Check for balanced parentheses using a stack 5. Simulate a queue using two stacks Double Tap ♥️ For More

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