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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

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Everything about programming for beginners * Python programming * Java programming * App development * Machine Learning * Data Science Managed by: @love_data

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๐Ÿ“ˆ Analytical overview of Telegram channel Programming Resources | Python | Javascript | Artificial Intelligence Updates | Computer Science Courses | AI Books

Channel Programming Resources | Python | Javascript | Artificial Intelligence Updates | Computer Science Courses | AI Books (@programming_guide) in the English language segment is an active participant. Currently, the community unites 56 111 subscribers, ranking 2 375 in the Technologies & Applications category and 6 527 in the India region.

๐Ÿ“Š Audience metrics and dynamics

Since its creation on ะฝะตะฒั–ะดะพะผะพ, the project has demonstrated rapid growth, gathering an audience of 56 111 subscribers.

According to the latest data from 09 June, 2026, the channel demonstrates stable activity. Although there has been a change in the number of participants by 105 over the last 30 days and by 12 over the last 24 hours, overall reach remains high.

  • Verification status: Not verified
  • Engagement rate (ER): The average audience engagement rate is 2.63%. Within the first 24 hours after publication, content typically collects 0.84% reactions from the total number of subscribers.
  • Post reach: On average, each post receives 1 473 views. Within the first day, a publication typically gains 470 views.
  • Reactions and interaction: The audience actively supports content: the average number of reactions per post is 3.
  • Thematic interests: Content is focused on key topics such as algorithm, structure, stack, javascript, programming.

๐Ÿ“ Description and content policy

The author describes the resource as a platform for expressing subjective opinions:
โ€œEverything about programming for beginners * Python programming * Java programming * App development * Machine Learning * Data Science Managed by: @love_dataโ€

Thanks to the high frequency of updates (latest data received on 10 June, 2026), the channel maintains relevance and a high level of publication reach. Analytics show that the audience actively interacts with content, making it an important point of influence in the Technologies & Applications category.

56 111
Subscribers
+1224 hours
+527 days
+10530 days
Posts Archive
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๐Ÿ’ป Popular Coding Languages & Their Uses ๐Ÿš€ There are many programming languages, each serving different purposes. Here are some key ones you should know: ๐Ÿ”น 1. Python โ€“ Beginner-friendly, versatile, and widely used in data science, AI, web development, and automation. ๐Ÿ”น 2. JavaScript โ€“ Essential for frontend and backend web development, powering interactive websites and applications. ๐Ÿ”น 3. Java โ€“ Used for enterprise applications, Android development, and large-scale systems due to its stability. ๐Ÿ”น 4. C++ โ€“ High-performance language ideal for game development, operating systems, and embedded systems. ๐Ÿ”น 5. C# โ€“ Commonly used in game development (Unity), Windows applications, and enterprise software. ๐Ÿ”น 6. Swift โ€“ The go-to language for iOS and macOS development, known for its efficiency. ๐Ÿ”น 7. Go (Golang) โ€“ Designed for high-performance applications, cloud computing, and network programming. ๐Ÿ”น 8. Rust โ€“ Focuses on memory safety and performance, making it great for system-level programming. ๐Ÿ”น 9. SQL โ€“ Essential for database management, allowing efficient data retrieval and manipulation. ๐Ÿ”น 10. Kotlin โ€“ Popular for Android app development, offering modern features compared to Java. ๐Ÿ”ฅ React โค๏ธ for more ๐Ÿ˜Š๐Ÿš€

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Top 10 important data science concepts 1. Data Cleaning: Data cleaning is the process of identifying and correcting or removing errors, inconsistencies, and inaccuracies in a dataset. It is a crucial step in the data science pipeline as it ensures the quality and reliability of the data. 2. Exploratory Data Analysis (EDA): EDA is the process of analyzing and visualizing data to gain insights and understand the underlying patterns and relationships. It involves techniques such as summary statistics, data visualization, and correlation analysis. 3. Feature Engineering: Feature engineering is the process of creating new features or transforming existing features in a dataset to improve the performance of machine learning models. It involves techniques such as encoding categorical variables, scaling numerical variables, and creating interaction terms. 4. Machine Learning Algorithms: Machine learning algorithms are mathematical models that learn patterns and relationships from data to make predictions or decisions. Some important machine learning algorithms include linear regression, logistic regression, decision trees, random forests, support vector machines, and neural networks. 5. Model Evaluation and Validation: Model evaluation and validation involve assessing the performance of machine learning models on unseen data. It includes techniques such as cross-validation, confusion matrix, precision, recall, F1 score, and ROC curve analysis. 6. Feature Selection: Feature selection is the process of selecting the most relevant features from a dataset to improve model performance and reduce overfitting. It involves techniques such as correlation analysis, backward elimination, forward selection, and regularization methods. 7. Dimensionality Reduction: Dimensionality reduction techniques are used to reduce the number of features in a dataset while preserving the most important information. Principal Component Analysis (PCA) and t-SNE (t-Distributed Stochastic Neighbor Embedding) are common dimensionality reduction techniques. 8. Model Optimization: Model optimization involves fine-tuning the parameters and hyperparameters of machine learning models to achieve the best performance. Techniques such as grid search, random search, and Bayesian optimization are used for model optimization. 9. Data Visualization: Data visualization is the graphical representation of data to communicate insights and patterns effectively. It involves using charts, graphs, and plots to present data in a visually appealing and understandable manner. 10. Big Data Analytics: Big data analytics refers to the process of analyzing large and complex datasets that cannot be processed using traditional data processing techniques. It involves technologies such as Hadoop, Spark, and distributed computing to extract insights from massive amounts of data. Best Data Science & Machine Learning Resources: https://topmate.io/coding/914624 Credits: https://t.me/datasciencefun Like if you need similar content ๐Ÿ˜„๐Ÿ‘ Hope this helps you ๐Ÿ˜Š

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โšก 25 Tools to Supercharge Your Coding Workflow ๐Ÿ’ป๐Ÿš€ โœ… Visual Studio Code โœ… Sublime Text โœ… Postman โœ… Insomnia โœ… Figma โœ… Notion โœ… Obsidian โœ… Slack โœ… Discord โœ… GitKraken โœ… Tower โœ… Raycast โœ… Warp Terminal โœ… iTerm2 โœ… Hyper โœ… Docker โœ… Kubernetes โœ… Vercel โœ… Netlify โœ… Heroku โœ… Supabase โœ… PlanetScale โœ… Railway โœ… UptimeRobot ๐Ÿ”ฅ React โ€œโค๏ธโ€ if you use any of these!

Top 10 programming languages & frameworks for beginner web developers: 1. HTML/CSS โ€“ Basics of web structure & styling 2. JavaScript โ€“ Adds interactivity 3. Python โ€“ Backend & versatility 4. PHP โ€“ Server-side scripting 5. SQL โ€“ Database management 6. Ruby on Rails โ€“ Easy backend framework 7. Node.js โ€“ JavaScript backend runtime 8. React โ€“ Popular frontend library 9. Angular โ€“ Framework for building dynamic UIs 10. Bootstrap โ€“ Simplifies responsive design

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This is a quick and easy guide to the four main categories: Supervised, Unsupervised, Semi-Supervised, and Reinforcement Learning. 1. Supervised Learning In supervised learning, the model learns from examples that already have the answers (labeled data). The goal is for the model to predict the correct result when given new data. Some common supervised learning algorithms include: โžก๏ธ Linear Regression โ€“ For predicting continuous values, like house prices. โžก๏ธ Logistic Regression โ€“ For predicting categories, like spam or not spam. โžก๏ธ Decision Trees โ€“ For making decisions in a step-by-step way. โžก๏ธ K-Nearest Neighbors (KNN) โ€“ For finding similar data points. โžก๏ธ Random Forests โ€“ A collection of decision trees for better accuracy. โžก๏ธ Neural Networks โ€“ The foundation of deep learning, mimicking the human brain. 2. Unsupervised Learning With unsupervised learning, the model explores patterns in data that doesnโ€™t have any labels. It finds hidden structures or groupings. Some popular unsupervised learning algorithms include: โžก๏ธ K-Means Clustering โ€“ For grouping data into clusters. โžก๏ธ Hierarchical Clustering โ€“ For building a tree of clusters. โžก๏ธ Principal Component Analysis (PCA) โ€“ For reducing data to its most important parts. โžก๏ธ Autoencoders โ€“ For finding simpler representations of data. 3. Semi-Supervised Learning This is a mix of supervised and unsupervised learning. It uses a small amount of labeled data with a large amount of unlabeled data to improve learning. Common semi-supervised learning algorithms include: โžก๏ธ Label Propagation โ€“ For spreading labels through connected data points. โžก๏ธ Semi-Supervised SVM โ€“ For combining labeled and unlabeled data. โžก๏ธ Graph-Based Methods โ€“ For using graph structures to improve learning. 4. Reinforcement Learning In reinforcement learning, the model learns by trial and error. It interacts with its environment, receives feedback (rewards or penalties), and learns how to act to maximize rewards. Popular reinforcement learning algorithms include: โžก๏ธ Q-Learning โ€“ For learning the best actions over time. โžก๏ธ Deep Q-Networks (DQN) โ€“ Combining Q-learning with deep learning. โžก๏ธ Policy Gradient Methods โ€“ For learning policies directly. โžก๏ธ Proximal Policy Optimization (PPO) โ€“ For stable and effective learning. Join our WhatsApp channel: https://whatsapp.com/channel/0029Va8v3eo1NCrQfGMseL2D Like if you need similar content ๐Ÿ˜„๐Ÿ‘ Hope this helps you ๐Ÿ˜Š

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Which data type is used to store decimal numbers in Java?
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Which of these is a valid function in C++?
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What does print(a > b) return in Python if a = 10, b = 5?*
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Which loop prints numbers from 1 to 5 in Java?
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What is the correct way to declare a variable in Python?
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Getting job offers as a developer involves several steps:๐Ÿ‘จโ€๐Ÿ’ป๐Ÿš€ 1. Build a Strong Portfolio: Create a portfolio of projects that showcase your skills. Include personal projects, open-source contributions, or freelance work. This demonstrates your abilities to potential employers.๐Ÿ‘จโ€๐Ÿ’ป 2. Enhance Your Skills: Stay updated with the latest technologies and trends in your field. Consider taking online courses, attending workshops, or earning certifications to bolster your skills.๐Ÿš€ 3. Network: Attend industry events, conferences, and meetups to connect with professionals in your field. Utilize social media platforms like LinkedIn to build a professional network.๐Ÿ”ฅ 4. Resume and Cover Letter: Craft a tailored resume and cover letter for each job application. Highlight relevant skills and experiences that match the job requirements.๐Ÿ“‡ 5. Job Search Platforms: Utilize job search websites like LinkedIn, Indeed, Glassdoor, and specialized platforms like Stack Overflow Jobs, GitHub Jobs, or AngelList for tech-related positions. ๐Ÿ” 6. Company Research: Research companies you're interested in working for. Customize your application to show your genuine interest in their mission and values.๐Ÿ•ต๏ธโ€โ™‚๏ธ 7. Prepare for Interviews: Be ready for technical interviews. Practice coding challenges, algorithms, and data structures. Also, be prepared to discuss your past projects and problem-solving skills.๐Ÿ“ 8. Soft Skills: Develop your soft skills like communication, teamwork, and problem-solving. Employers often look for candidates who can work well in a team and communicate effectively.๐Ÿ’ป 9. Internships and Freelancing: Consider internships or freelancing opportunities to gain practical experience and build your resume. ๐Ÿ  10. Personal Branding: Maintain an online presence by sharing your work, insights, and thoughts on platforms like GitHub, personal blogs, or social media. This can help you get noticed by potential employers.๐Ÿ‘ฆ 11. Referrals: Reach out to your network and ask for referrals from people you know in the industry. Employee referrals are often highly valued by companies.๐ŸŒˆ 12. Persistence: The job search process can be challenging. Don't get discouraged by rejections. Keep applying, learning, and improving your skills.๐Ÿ’ฏ 13. Negotiate Offers: When you receive job offers, negotiate your salary and benefits. Research industry standards and be prepared to discuss your expectations.๐Ÿ“‰ Remember that the job search process can take time, so patience is key. By focusing on these steps and continuously improving your skills and network, you can increase your chances of receiving job offers as a developer.