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Data Science

Data Science

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Learn how to analyze data effectively and manage databases with ease. Buy ads: https://telega.io/c/sql_databases

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📈 Telegram kanali Data Science analitikasi

Data Science (@sql_databases) Ingliz til segmentidagi kanali faol ishtirokchi. Hozirda hamjamiyat 70 778 obunachidan iborat bo'lib, Taʼlim toifasida 2 259-o'rinni va Hindiston mintaqasida 4 564-o'rinni egallagan.

📊 Auditoriya ko‘rsatkichlari va dinamika

невідомо sanasidan buyon loyiha tez o‘sib, 70 778 obunachiga ega bo‘ldi.

27 Avgust, 2026 dagi oxirgi ma’lumotlarga ko‘ra kanal barqaror faollikka ega. Oxirgi 30 kunda obunachilar soni -317 ga, so‘nggi 24 soatda esa -15 ga o‘zgardi va umumiy qamrov yuqori darajada qolmoqda.

  • Tasdiqlash holati: Tasdiqlanmagan
  • Jalb etish (ER): Auditoriya o‘rtacha 11.42% darajada jalb etiladi. Nashrdan keyingi dastlabki 24 soatda kontent odatda umumiy obunachilar sonining 2.47% ini tashkil etuvchi reaksiyalarni to‘playdi.
  • Post qamrovi: Har bir post o‘rtacha 8 084 marta ko‘riladi; birinchi sutkada odatda 1 749 ta ko‘rish yig‘iladi.
  • Reaksiyalar va o‘zaro ta’sir: Auditoriya faol: har bir postga o‘rtacha 0 ta reaksiya keladi.
  • Tematik yo‘nalishlar: Kontent database, learning, linkedin, udemy, 029k| kabi asosiy mavzularga jamlangan.

📝 Tavsif va kontent siyosati

Muallif resursni shaxsiy fikrni ifoda etish maydoni sifatida ta’riflaydi:
Learn how to analyze data effectively and manage databases with ease. Buy ads: https://telega.io/c/sql_databases

Yuqori yangilanish chastotasi (oxirgi ma’lumot 28 Avgust, 2026 da olingan) sababli kanal doimo dolzarb va katta qamrovli bo‘lib qoladi. Analitika auditoriya kontent bilan faol hamkorlik qilishini, uni Taʼlim toifasidagi muhim ta’sir nuqtasiga aylantirishini ko‘rsatadi.

70 778
Obunachilar
-1524 soatlar
-1477 kunlar
-31730 kunlar
Postlar arxiv
07 - NumPy Basics

06 - Mathematics for Python

⚠️ To be continued

05 - Fundamentals for Coding in Python

04 - Python Basics

03 - Setting up the Environment

02 - Introduction to Data Analytics

01 - Introduction to the Course

📖 The Data Analyst Course: Complete Data Analyst Bootcamp 🌟 4.5 - 20848 votes 💰 Original Price: $87.99 📖 Complete Data An
📖 The Data Analyst Course: Complete Data Analyst Bootcamp 🌟 4.5 - 20848 votes 💰 Original Price: $87.99
📖 Complete Data Analyst Training: Python, NumPy, Pandas, Data Collection, Preprocessing, Data Types, Data Visualization
🔊 Taught By: 365 Careers 🔗 Download Full Course 📤 Download All Courses

💡 How to choose the right graph for data visualization
💡 How to choose the right graph for data visualization

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📱Data Analysis and Databases 📱Advanced SQL Practice: Schema Changes

📂 Full description In this course, Scott Simpson explores the intricacies of using SQL to manipulate and alter the schema of existing databases. Learn how to add, modify, and remove columns efficiently, expand field lengths, and update data types by completing practical code challenges. Discover how to manage and structure data for a text-based chat application. Gain hands-on experience with SQL commands such as ALTER TABLE, CREATE TABLE, and UPDATE statements, as well as techniques to ensure data integrity and correct functionality. Use the interactive format of the course to test your solutions and immediately see the results in a practical learning experience. This course equips you with the necessary skills to maintain and optimize existing databases effectively.

🔅 Advanced SQL Practice: Schema Changes 🌐 Author: Scott Simpson 🔰 Level: Advanced ⏰ Duration: 9m 🌀 Learn how to manage da
🔅 Advanced SQL Practice: Schema Changes 🌐 Author: Scott Simpson 🔰 Level: AdvancedDuration: 9m
🌀 Learn how to manage data for a text-based chat application by practicing schema modifications and data manipulation through interactive code challenges.
📗 Topics: Data Manipulation, SQL 📤 Join Data Analysis and Databases for more courses

📖 Types of Data Structures
+8
📖 Types of Data Structures

Key Concepts for Data Science Interviews 1. Data Cleaning and Preprocessing: Master techniques for cleaning, transforming, and preparing data for analysis, including handling missing data, outlier detection, data normalization, and feature engineering. 2. Statistics and Probability: Have a solid understanding of descriptive and inferential statistics, including distributions, hypothesis testing, p-values, confidence intervals, and Bayesian probability. 3. Linear Algebra and Calculus: Understand the mathematical foundations of data science, including matrix operations, eigenvalues, derivatives, and gradients, which are essential for algorithms like PCA and gradient descent. 4. Machine Learning Algorithms: Know the fundamentals of machine learning, including supervised and unsupervised learning. Be familiar with key algorithms like linear regression, logistic regression, decision trees, random forests, SVMs, and k-means clustering. 5. Model Evaluation and Validation: Learn how to evaluate model performance using metrics such as accuracy, precision, recall, F1 score, ROC-AUC, and confusion matrices. Understand techniques like cross-validation and overfitting prevention. 6. Feature Engineering: Develop the ability to create meaningful features from raw data that improve model performance. This includes encoding categorical variables, scaling features, and creating interaction terms. 7. Deep Learning: Understand the basics of neural networks and deep learning. Familiarize yourself with architectures like CNNs, RNNs, and frameworks like TensorFlow and PyTorch. 8. Natural Language Processing (NLP): Learn key NLP techniques such as tokenization, stemming, lemmatization, and sentiment analysis. Understand the use of models like BERT, Word2Vec, and LSTM for text data. 9. Big Data Technologies: Gain knowledge of big data frameworks and tools like Hadoop, Spark, and NoSQL databases that are used to process large datasets efficiently. 10. Data Visualization and Storytelling: Develop the ability to create compelling visualizations using tools like Matplotlib, Seaborn, or Tableau. Practice conveying your data findings clearly to both technical and non-technical audiences through visual storytelling. 11. Python and R: Be proficient in Python and R for data manipulation, analysis, and model building. Familiarity with libraries like Pandas, NumPy, Scikit-learn, and tidyverse is essential. 12. Domain Knowledge: Develop a deep understanding of the specific industry or domain you're working in, as this context helps you make more informed decisions during the data analysis and modeling process.

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Probability for Data Science
+6
Probability for Data Science

🔅 PREMIUM CHANNELS -◦-◦--◦--◦-◦--◦--◦-◦--◦--◦-◦--◦- 🔰 The Coding Space -◦-◦--◦--◦-◦--◦--◦-◦-- 216k| 🔰 Linkedin Learning Courses 122k| 🔰 Premium Udemy Courses 121k| 🔰 Web Development -◦-◦--◦- 098k| 🔰 Learn Python 091k| 🔰 JavaScript Courses 070k| 🔰 Machine Learning -◦-◦--◦- 065k| 🔰 DevOps Tutorials 056k| 🔰 Learn React and NextJs 049k| 🔰 Data Analysis and Databases -◦-◦--◦- 046k| 🔰 Linux and DevOps 042k| 🔰 Best Telegram Channels 040k| 🔰 100 Days of Python -◦-◦--◦- 036k| 🔰 Business Training 034k| 🔰 ChatGPT Mastery 033k| 🔰 Mobile Development -◦-◦--◦- 031k| 🔰 Zero to Mastery 030k| 🔰 Codedamn Courses 029k| 🔰 Udemy Learning -◦-◦--◦- 028k| 🔰 Linkedin Learning 028k| 🔰 React 101 028k| 🔰 Crypto Lessons -◦-◦--◦- 022k| 🔰 Coding Interview 021k| 🔰 Telegram's Shorts -◦-◦--◦--◦-◦--◦--◦-◦-- 🔰 Add Your Channel -◦-◦--◦--◦-◦--◦--◦-◦--◦--◦-◦--◦- 🔰 2hrs on top & 8hrs in channel!

SQL Cheatsheet ✅
SQL Cheatsheet ✅