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Programming Resources | Python | Javascript | Artificial Intelligence Updates | Computer Science Courses | AI Books

Programming Resources | Python | Javascript | Artificial Intelligence Updates | Computer Science Courses | AI Books

@programming_guide

Everything about programming for beginners
* Python programming
* Java programming
* App development
* Machine Learning
* Data Science

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Post #3708 1.67K
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  • 👍 7
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Post #3707 1.79K
🤖 Want to become a Machine Learning Engineer? This free roadmap will get you there! 🚀

📚 Math & Statistics
⦁ Probability 🎲
⦁ Inferential statistics 📊
⦁ Regression analysis 📈
⦁ A/B testing 🔍
⦁ Bayesian stats 🔢
⦁ Calculus & Linear algebra 🧮🔠

🐍 Python
⦁ Variables & data types ✏️
⦁ Control flow 🔄
⦁ Functions & modules 🔧
⦁ Error handling ❌
⦁ Data structures 🗂️
⦁ OOP basics 🧱
⦁ APIs 🌐
⦁ Algorithms & data structures 🧠

🧪 ML Prerequisites
⦁ EDA with NumPy & Pandas 🔍
⦁ Data visualization 📉
⦁ Feature engineering 🛠️
⦁ Encoding types 🔐

⚙️ Machine Learning Fundamentals
⦁ Supervised: Linear Regression, KNN, Decision Trees 📊
⦁ Unsupervised: K-Means, PCA, Hierarchical Clustering 🧠
⦁ Reinforcement: Q-Learning, DQN 🕹️
⦁ Solve regression 📈 & classification 🧩 problems

🧠 Neural Networks
⦁ Feedforward networks 🔄
⦁ CNNs for images 🖼️
⦁ RNNs for sequences 📚 
  Use TensorFlow, Keras & PyTorch

🕸️ Deep Learning
⦁ CNNs, RNNs, LSTMs for advanced tasks

🚀 ML Project Deployment
⦁ Version control 🗃️
⦁ CI/CD & automated testing 🔄🚚
⦁ Monitoring & logging 🖥️
⦁ Experiment tracking 🧪
⦁ Feature stores & pipelines 🗂️🛠️
⦁ Infrastructure as Code 🏗️
⦁ Model serving & APIs 🌐

💡 React ❤️ for more!
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Post #3706 1.76K
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Post #3705 1.86K
🎯 Frontend Developer Tips

✅ Prioritize UX
✅ Keep components reusable
✅ Avoid unnecessary re-renders
✅ Write accessible UI
✅ Maintain consistency
✅ Test across devices

☁️ Backend Engineering Tips

✅ Validate all user input
✅ Log errors properly
✅ Use environment variables
✅ Design scalable APIs
✅ Cache frequent requests
✅ Write clean documentation
  • 👍 4
Post #3703 1.89K
✅ Step-by-Step Approach to Learn Programming 💻🚀

➊ Pick a Programming Language 
Start with beginner-friendly languages that are widely used and have lots of resources. 
✔ Python – Great for beginners, versatile (web, data, automation) 
✔ JavaScript – Perfect for web development 
✔ C++ / Java – Ideal if you're targeting DSA or competitive programming 
Goal: Be comfortable with syntax, writing small programs, and using an IDE.

➋ Learn Basic Programming Concepts 
Understand the foundational building blocks of coding: 
✔ Variables, data types 
✔ Input/output 
✔ Loops (for, while) 
✔ Conditional statements (if/else) 
✔ Functions and scope 
✔ Error handling 
Tip: Use visual platforms like W3Schools, freeCodeCamp, or Sololearn.

➌ Understand Data Structures  Algorithms (DSA) 
✔ Arrays, Strings 
✔ Linked Lists, Stacks, Queues 
✔ Hash Maps, Sets 
✔ Trees, Graphs 
✔ Sorting  Searching 
✔ Recursion, Greedy, Backtracking 
✔ Dynamic Programming 
Use GeeksforGeeks, NeetCode, or Striver's DSA Sheet.

➍ Practice Problem Solving Daily 
✔ LeetCode (real interview Qs) 
✔ HackerRank (step-by-step) 
✔ Codeforces / AtCoder (competitive) 
Goal: Focus on logic, not just solutions.

➎ Build Mini Projects 
✔ Calculator 
✔ To-do list app 
✔ Weather app (using APIs) 
✔ Quiz app 
✔ Rock-paper-scissors game 
Projects solidify your concepts.

➏ Learn Git  GitHub 
✔ Initialize a repo 
✔ Commit  push code 
✔ Branch and merge 
✔ Host projects on GitHub 
Must-have for collaboration.

➐ Learn Web Development Basics 
✔ HTML – Structure 
✔ CSS – Styling 
✔ JavaScript – Interactivity 
Then explore: 
✔ React.js 
✔ Node.js + Express 
✔ MongoDB / MySQL

➑ Choose Your Career Path 
✔ Web Dev (Frontend, Backend, Full Stack) 
✔ App Dev (Flutter, Android) 
✔ Data Science / ML 
✔ DevOps / Cloud (AWS, Docker)

➒ Work on Real Projects  Internships 
✔ Build a portfolio 
✔ Clone real apps (Netflix UI, Amazon clone) 
✔ Join hackathons 
✔ Freelance or open source 
✔ Apply for internships

➓ Stay Updated  Keep Improving 
✔ Follow GitHub trends 
✔ Dev YouTube channels (Fireship, etc.) 
✔ Tech blogs (Dev.to, Medium) 
✔ Communities (Discord, Reddit, X)

🎯 Remember: 
• Consistency > Intensity 
• Learn by building 
• Debugging is learning 
• Track progress weekly

Useful WhatsApp Channels to Learn Programming Languages 👇

Python Programming: https://whatsapp.com/channel/0029VaiM08SDuMRaGKd9Wv0L

JavaScript: https://whatsapp.com/channel/0029VavR9OxLtOjJTXrZNi32

C++ Programming: https://whatsapp.com/channel/0029VbBAimF4dTnJLn3Vkd3M

Java Programming: https://whatsapp.com/channel/0029VamdH5mHAdNMHMSBwg1s

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  • ❤ 3
Post #3701 1.76K
⚙️ MERN Stack Developer Roadmap

📂 HTML/CSS/JavaScript Fundamentals
∟📂 MongoDB (Installation, Collections, CRUD)
∟📂 Express.js (Setup, Routing, Middleware)
∟📂 React.js (Components, Hooks, State, Props)
∟📂 Node.js Basics (npm, modules, HTTP server)
∟📂 Backend API Development (REST endpoints)
∟📂 Frontend-State Management (useState, useEffect, Context/Redux)
∟📂 MongoDB + Mongoose (Schemas, Models)
∟📂 Authentication (JWT, bcrypt, Protected Routes)
∟📂 React Router (Navigation, Dynamic Routing)
∟📂 Axios/Fetch API Integration
∟📂 Error Handling & Validation
∟📂 File Uploads (Multer, Cloudinary)
∟📂 Deployment (Vercel Frontend, Render/Heroku Backend, MongoDB Atlas)
∟📂 Projects (Todo App → E-commerce → Social Media Clone)
∟✅ Apply for Fullstack / Frontend Roles

💬 Tap ❤️ for more!
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Post #3699 1.84K
Essential Python Libraries to build your career in Data Science 📊👇

1. NumPy:
- Efficient numerical operations and array manipulation.

2. Pandas:
- Data manipulation and analysis with powerful data structures (DataFrame, Series).

3. Matplotlib:
- 2D plotting library for creating visualizations.

4. Seaborn:
- Statistical data visualization built on top of Matplotlib.

5. Scikit-learn:
- Machine learning toolkit for classification, regression, clustering, etc.

6. TensorFlow:
- Open-source machine learning framework for building and deploying ML models.

7. PyTorch:
- Deep learning library, particularly popular for neural network research.

8. SciPy:
- Library for scientific and technical computing.

9. Statsmodels:
- Statistical modeling and econometrics in Python.

10. NLTK (Natural Language Toolkit):
- Tools for working with human language data (text).

11. Gensim:
- Topic modeling and document similarity analysis.

12. Keras:
- High-level neural networks API, running on top of TensorFlow.

13. Plotly:
- Interactive graphing library for making interactive plots.

14. Beautiful Soup:
- Web scraping library for pulling data out of HTML and XML files.

15. OpenCV:
- Library for computer vision tasks.

As a beginner, you can start with Pandas and NumPy for data manipulation and analysis. For data visualization, Matplotlib and Seaborn are great starting points. As you progress, you can explore machine learning with Scikit-learn, TensorFlow, and PyTorch.

Free Notes & Books to learn Data Science: https://t.me/datasciencefree

Python Project Ideas: https://t.me/dsabooks/85

Best Resources to learn Python & Data Science 👇👇

Python Tutorial

Data Science Course by Kaggle

Machine Learning Course by Google

Best Data Science & Machine Learning Resources

Interview Process for Data Science Role at Amazon

Python Interview Resources

Join @free4unow_backup for more free courses

Like for more ❤️

ENJOY LEARNING👍👍
  • ❤ 7
Post #3697 2.07K
PROJECT IDEAS ✨

🟢 Beginner Level (Python Foundations)

👉| Number Guessing Game (CLI + GUI)
👉| To-Do List App (File-based / Tkinter)
👉| Weather App using API
👉| Password Generator & Strength Checker
👉| URL Shortener
👉| Calculator with Voice Input
👉| Quiz App with Score Tracking
👉| Basic Web Scraper (News / Jobs)
👉| Expense Tracker
👉| Chatbot using Rule-Based Logic

🟡 Intermediate Level (Data + ML Basics)

👉| Movie Recommendation System
👉| Stock Price Visualization Dashboard
👉| Email Spam Classifier
👉| Resume Parser using NLP
👉| Face Detection App (OpenCV)
👉| Fake News Detection
👉| Handwritten Digit Recognition
👉| Twitter / Reddit Sentiment Analyzer
👉| House Price Prediction
👉| OCR System (Image → Text)

🔵 Advanced Level (AI Systems & Real-World Products)

👉| Voice Assistant (Jarvis-like)
👉| Real-Time Face Recognition System
👉| AI Interview Bot
👉| Autonomous Web Scraping Agent
👉| YouTube Video Summarizer (NLP + LLMs)
👉| AI Study Planner
👉| ChatGPT-powered Customer Support Bot
👉| Recommendation Engine with Deep Learning
👉| Fraud Detection System
👉| Document Question Answering System

🔴 Expert / Startup-Level (AI Agents & Full Products)

👉| Multi-Agent Task Automation System
👉| AI Coding Assistant (like Copilot mini)
👉| Personalized Learning AI Coach
👉| Autonomous Trading Bot
👉| AI Content Creation Pipeline (Reels, Blogs, Shorts)
👉| AI Research Assistant
👉| Smart Resume Matching System
👉| AI SaaS for Social Media Automation
👉| Real-Time Speech Translation System
👉| End-to-End AI Search Engine
  • ❤ 13
Post #3695 2.22K
Where Each Programming Language Shines 🚀👨🏻‍💻

❯ C ➟ OS Development, Embedded Systems, Game Engines
❯ C++ ➟ Game Development, High-Performance Applications, Financial Systems
❯ Java ➟ Enterprise Software, Android Development, Backend Systems
❯ C# ➟ Game Development (Unity), Windows Applications, Enterprise Software
❯ Python ➟ AI/ML, Data Science, Web Development, Automation
❯ JavaScript ➟ Frontend Web Development, Full-Stack Apps, Game Development
❯ Golang ➟ Cloud Services, Networking, High-Performance APIs
❯ Swift ➟ iOS/macOS App Development
❯ Kotlin ➟ Android Development, Backend Services
❯ PHP ➟ Web Development (WordPress, Laravel)
❯ Ruby ➟ Web Development (Ruby on Rails), Prototyping
❯ Rust ➟ Systems Programming, High-Performance Computing, Blockchain
❯ Lua ➟ Game Scripting (Roblox, WoW), Embedded Systems
❯ R ➟ Data Science, Statistics, Bioinformatics
❯ SQL ➟ Database Management, Data Analytics
❯ TypeScript ➟ Scalable Web Applications, Large JavaScript Projects
❯ Node.js ➟ Backend Development, Real-Time Applications
❯ React ➟ Modern Web Applications, Interactive UIs
❯ Vue ➟ Lightweight Frontend Development, SPAs
❯ Django ➟ Scalable Web Applications, AI/ML Backend
❯ Laravel ➟ Full-Stack PHP Development
❯ Blazor ➟ Web Apps with .NET
❯ Spring Boot ➟ Enterprise Java Applications, Microservices
❯ Ruby on Rails ➟ Startup Web Apps, MVP Development
❯ HTML/CSS ➟ Web Design, UI Development
❯ GIT ➟ Version Control, Collaboration
❯ Linux ➟ Server Management, Security, DevOps
❯ DevOps ➟ Infrastructure Automation, CI/CD
❯ CI/CD ➟ Continuous Deployment & Testing
❯ Docker ➟ Containerization, Cloud Deployments
❯ Kubernetes ➟ Scalable Cloud Orchestration
❯ Microservices ➟ Distributed Systems, Scalable Backends
❯ Selenium ➟ Web Automation Testing
❯ Playwright ➟ Modern Browser Automation

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Post #3694 2.35K
⚙️ Basic Programming Elements You Should Know 💻

These elements are the building blocks of every program. They allow programs to store data, perform operations, and execute instructions.

Variable
A variable is a named storage location used to store data in memory. Its value can change during program execution.

Example:
age = 26
name = "Ajay"

Here:
• age stores a number
• name stores text

Variables help store information that programs can use later.

Constant

A constant is a value that does not change during program execution. Constants are used when a value should remain fixed.

Example:
PI = 3.14159
MAX_USERS = 100

By convention, constants are often written in uppercase. They help prevent accidental modification of important values.

Data Type
A data type defines the kind of data a variable stores.

Common data types include:
• Integer: count = 10
• Float: price = 19.99
• String: city = "Jodhpur"
• Boolean: is_active = True

Data types help the computer understand how to process and store data.

Operator
Operators are symbols used to perform operations on values or variables.

• Arithmetic Operators: a = 10; b = 5; print(a + b)
• Comparison Operators: print(a > b)
• Logical Operators: x = True; y = False; print(x and y)

Operators are used in calculations and decision-making.

Expression
An expression is a combination of values, variables, and operators that produces a result.

Example: result = (10 + 5) * 2

Here the expression (10 + 5) * 2 is evaluated first, and the result is stored in result.

Expressions are commonly used in calculations and conditions.

Statement
A statement is a single instruction that the computer executes.

Example:
score = 90
print(score)

Each line represents a statement telling the computer what to do. Programs are made up of many statements executed in sequence.

⭐ Key Idea
Basic programming elements such as variables, constants, data types, operators, expressions, and statements form the core of writing programs.

Understanding these concepts makes it much easier to learn any programming language.

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  • ❤ 7
Post #3692 2.48K
"Open Data Structures" is another very useful free resource for anyone studying data structures and algorithms. 📚✨

The book discusses the implementation and analysis of basic structures: array-based lists, linked lists, hash tables, binary trees, red-black trees, heaps, sorting algorithms, graphs, and data structures for working with integers. 🔍🧮

This is a full-fledged open textbook for studying one of the fundamental topics of computer science and a good reference that's worth keeping on hand. 💻🌟

https://opendatastructures.org/ods-python.pdf 📄
  • ❤ 4
Post #3690 2.41K
✅ Step-by-Step Approach to Learn Programming 💻🚀

➊ Pick a Programming Language 
Start with beginner-friendly languages that are widely used and have lots of resources. 
✔ Python – Great for beginners, versatile (web, data, automation) 
✔ JavaScript – Perfect for web development 
✔ C++ / Java – Ideal if you're targeting DSA or competitive programming 
Goal: Be comfortable with syntax, writing small programs, and using an IDE.

➋ Learn Basic Programming Concepts 
Understand the foundational building blocks of coding: 
✔ Variables, data types 
✔ Input/output 
✔ Loops (for, while) 
✔ Conditional statements (if/else) 
✔ Functions and scope 
✔ Error handling 
Tip: Use visual platforms like W3Schools, freeCodeCamp, or Sololearn.

➌ Understand Data Structures  Algorithms (DSA) 
✔ Arrays, Strings 
✔ Linked Lists, Stacks, Queues 
✔ Hash Maps, Sets 
✔ Trees, Graphs 
✔ Sorting  Searching 
✔ Recursion, Greedy, Backtracking 
✔ Dynamic Programming 
Use GeeksforGeeks, NeetCode, or Striver's DSA Sheet.

➍ Practice Problem Solving Daily 
✔ LeetCode (real interview Qs) 
✔ HackerRank (step-by-step) 
✔ Codeforces / AtCoder (competitive) 
Goal: Focus on logic, not just solutions.

➎ Build Mini Projects 
✔ Calculator 
✔ To-do list app 
✔ Weather app (using APIs) 
✔ Quiz app 
✔ Rock-paper-scissors game 
Projects solidify your concepts.

➏ Learn Git  GitHub 
✔ Initialize a repo 
✔ Commit  push code 
✔ Branch and merge 
✔ Host projects on GitHub 
Must-have for collaboration.

➐ Learn Web Development Basics 
✔ HTML – Structure 
✔ CSS – Styling 
✔ JavaScript – Interactivity 
Then explore: 
✔ React.js 
✔ Node.js + Express 
✔ MongoDB / MySQL

➑ Choose Your Career Path 
✔ Web Dev (Frontend, Backend, Full Stack) 
✔ App Dev (Flutter, Android) 
✔ Data Science / ML 
✔ DevOps / Cloud (AWS, Docker)

➒ Work on Real Projects  Internships 
✔ Build a portfolio 
✔ Clone real apps (Netflix UI, Amazon clone) 
✔ Join hackathons 
✔ Freelance or open source 
✔ Apply for internships

➓ Stay Updated  Keep Improving 
✔ Follow GitHub trends 
✔ Dev YouTube channels (Fireship, etc.) 
✔ Tech blogs (Dev.to, Medium) 
✔ Communities (Discord, Reddit, X)

🎯 Remember: 
• Consistency > Intensity 
• Learn by building 
• Debugging is learning 
• Track progress weekly

Useful WhatsApp Channels to Learn Programming Languages 👇

Python Programming: https://whatsapp.com/channel/0029VaiM08SDuMRaGKd9Wv0L

JavaScript: https://whatsapp.com/channel/0029VavR9OxLtOjJTXrZNi32

C++ Programming: https://whatsapp.com/channel/0029VbBAimF4dTnJLn3Vkd3M

Java Programming: https://whatsapp.com/channel/0029VamdH5mHAdNMHMSBwg1s

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  • ❤ 8
Post #3686 2.01K
✅ 🔤 A–Z of Web Development

A – API (Application Programming Interface)
Allows communication between different software systems.

B – Backend
The server-side logic and database operations of a web app.

C – CSS (Cascading Style Sheets)
Used to style and layout HTML elements.

D – DOM (Document Object Model)
Tree structure representation of web pages used by JavaScript.

E – Express.js
Minimal Node.js framework for building backend applications.

F – Frontend
Client-side part users interact with (HTML, CSS, JS).

G – Git
Version control system to track changes in code.

H – Hosting
Making your website or app available online.

I – IDE (Integrated Development Environment)
Software used to write and manage code (e.g., VS Code).

J – JavaScript
Scripting language that adds interactivity to websites.

K – Keywords
Important for SEO and also used in programming languages.

L – Lighthouse
Tool for testing website performance and accessibility.

M – MongoDB
NoSQL database often used in full-stack apps.

N – Node.js
JavaScript runtime for server-side development.

O – OAuth
Protocol for secure authorization and login.

P – PHP
Server-side language used in platforms like WordPress.

Q – Query Parameters
Used in URLs to send data to the server.

R – React
JavaScript library for building user interfaces.

S – SEO (Search Engine Optimization)
Improving site visibility on search engines.

T – TypeScript
A superset of JavaScript with static typing.

U – UI (User Interface)
Visual part of an app that users interact with.

V – Vue.js
Progressive JavaScript framework for building UIs.

W – Webpack
Module bundler for optimizing web assets.

X – XML
Markup language used for data sharing and transport.

Y – Yarn
JavaScript package manager alternative to npm.

Z – Z-index
CSS property to control element stacking on the page.

💬 Tap ❤️ for more!
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Post #3684 2.51K
✅ Programming Language Fun Facts 🧠💻

1️⃣ Python 🐍
⦁ Created by Guido van Rossum in 1991
⦁ Known for readability and simplicity
⦁ Tops 2025 charts in AI, data science, and automation

2️⃣ JavaScript 🌐
⦁ Invented in just 10 days by Brendan Eich (1995)
⦁ Runs in every modern web browser
⦁ Powers 95%+ of websites

3️⃣ C 🖥️
⦁ Developed by Dennis Ritchie between 1969-73
⦁ Backbone of OS kernels and embedded systems
⦁ Foundation for C++, C#, Objective-C

4️⃣ Java ☕
⦁ Released by Sun Microsystems in 1995
⦁ “Write once, run anywhere” mantra
⦁ Powers Android apps and enterprise software

5️⃣ Rust 🦀
⦁ Launched by Mozilla in 2010
⦁ Focuses on memory safety without a garbage collector
⦁ Popular for system-level programming

6️⃣ Go (Golang) 🐹
⦁ Created at Google in 2009
⦁ Designed for simplicity and performance
⦁ Great for backend and microservices

7️⃣ TypeScript 🔷
⦁ Microsoft’s superset of JavaScript (2012)
⦁ Adds static typing
⦁ Hot in large frontend projects

💬 Tap ❤️ for more!
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Post #3682 2.29K
✅ Essential Tools for Data Analytics 📊🛠️

🔣 1️⃣ Excel / Google Sheets
• Quick data entry & analysis
• Pivot tables, charts, functions
• Good for early-stage exploration

💻 2️⃣ SQL (Structured Query Language)
• Work with databases (MySQL, PostgreSQL, etc.)
• Query, filter, join, and aggregate data
• Must-know for data from large systems

🐍 3️⃣ Python (with Libraries)
• Pandas – Data manipulation
• NumPy – Numerical analysis
• Matplotlib / Seaborn – Data visualization
• OpenPyXL / xlrd – Work with Excel files

📊 4️⃣ Power BI / Tableau
• Create dashboards and visual reports
• Drag-and-drop interface for non-coders
• Ideal for business insights & presentations

📁 5️⃣ Google Data Studio
• Free dashboard tool
• Connects easily to Google Sheets, BigQuery
• Great for real-time reporting

🧪 6️⃣ Jupyter Notebook
• Interactive Python coding
• Combine code, text, and visuals in one place
• Perfect for storytelling with data

🛠️ 7️⃣ R Programming (Optional)
• Popular in statistical analysis
• Strong in academic and research settings

☁️ 8️⃣ Cloud & Big Data Tools
• Google BigQuery, Snowflake – Large-scale analysis
• Excel + SQL + Python still work as a base

💡 Tip:
Start with Excel + SQL + Python (Pandas) → Add BI tools for reporting.

💬 Tap ❤️ for more!
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Post #3679 2.03K
C Syntax Cheatsheet👨🏻‍💻📝
  • ❤ 2
Post #3678 1.94K
𝗙𝗥𝗘𝗘 𝗢𝗻𝗹𝗶𝗻𝗲 𝗠𝗮𝘀𝘁𝗲𝗿𝗰𝗹𝗮𝘀𝘀 𝗢𝗻 𝗗𝗮𝘁𝗮 𝗔𝗻𝗮𝗹𝘆𝘁𝗶𝗰𝘀 ( 𝗕𝘂𝘀𝗶𝗻𝗲𝘀𝘀 𝗔𝗻𝗮𝗹𝘆𝘁𝗶𝗰𝘀)😍

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Post #3677 1.94K
If you are starting a new project, you must first choose a tech stack.

Project starter pack:

- Backend: .NET
- Mobile: .NET MAUI(or AvaloniaUI or Uno)
- Frontend: Blazor or Angular
- Database: SQL Server or PostgreSQL
- Testing: xUnit + NSubstitute

Depending on the project type, mix and match various technologies.

This list has evolved over time because the key is to have a tech stack that allows you to build a robust and maintainable product.

Not just to follow trends.

Web Development Best Resources
∟📂 topmate.io/coding/930165

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Post #3676 1.97K
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