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Learn Pandas - Python Data のアプリ分析 10月5日

Learn Pandas - Python Data

Learn Pandas - Python Data

  • Shahbaz Khan
  • Apple App ストア
  • 有料
  • 教育
Master Pandas, the most popular Python library for data manipulation and analysis, with the most comprehensive and interactive learning app. Whether you are a complete beginner or leveling up your data skills, this is your all-in-one path to becoming a professional Data Analyst or Data Scientist. COMPLETE CURRICULUM - 100+ Lessons Start from scratch and become job-ready with our structured learning path: Pandas Core : - Introduction to Pandas: Why Pandas, installation, ecosystem, vs Excel - Pandas Data Structures: Series, DataFrames, indexes, multi-index - Data Loading and Saving: read_csv, read_excel, read_json, read_sql, to_csv, to_excel - Data Inspection and Exploration: head, tail, info, describe, dtypes, shape, memory_usage - Data Transformation: apply, map, replace, astype, rename, pivot, melt - Data Cleaning: Missing values, duplicates, outliers, type conversion, validation - Working with Text Data: str accessor, regex, splitting, joining, text extraction - Pandas with Databases: read_sql, to_sql, SQLAlchemy, SQLite, PostgreSQL - Performance Optimization: Vectorization, eval, query engine, chunksize, categorical types - Advanced Pandas: Custom accessors, extension arrays, evaluator, query optimization - Pandas for Data Science: Feature engineering, data pipelines, ETL workflows Python Fundamentals: - Python basics essential for data analysis: variables, data types, operators - Functions and modules: definitions, arguments, lambda, map/filter/reduce - Data structures: lists, tuples, dictionaries, sets, strings - File handling: reading/writing files, CSV, JSON parsing - Object-oriented programming: classes, inheritance, encapsulation - Error handling: try/except, custom exceptions, logging Data Science Fundamentals: - Overview of Data Science: The data science lifecycle, roles, tools - Data Collection Techniques: APIs, surveys, databases, web scraping, sensors - Understanding and Summarizing Data: Descriptive statistics, central tendency, dispersion - Data Cleaning and Preparation: Handling missing data, outliers, normalization, encoding - Statistical Analysis: Hypothesis testing, confidence intervals, correlation, regression - Advanced Machine Learning Concepts: Cross-validation, feature selection, ensemble methods - Model Deployment and Monitoring: APIs, batch prediction, model drift, retraining - Data Engineering Basics: ETL pipelines, data warehouses, ELT, data lakes Polars - Modern DataFrames : - High-performance DataFrame library as a Pandas alternative - Lazy evaluation and query optimization - Rust-powered performance for large datasets - When to choose Polars over Pandas - Interoperability between Polars and Pandas CODE PLAYGROUND - Practice What You Learn: - Write and execute Python code on your device - See results instantly - no computer needed - Pandas DataFrame output displayed in readable format - Syntax highlighting and error detection - Save your code snippets for later AI TUTOR - Your 24/7 Data Science Mentor: - Ask any Pandas, Python, or data analysis question - Debug your data pipeline with AI assistance GAMIFIED LEARNING - Stay Motivated: - Daily learning streaks with progress tracking - XP points and level progression - Study reminders with push notifications POWERFUL ORGANIZATION TOOLS: - Bookmarks: Save lessons for quick access - Notes: Write personal notes on any lesson - Code Snippets: Store reusable Python/Pandas code blocks - Search: Find anything instantly across 1200+ lessons - Dark mode for comfortable night learning LEARN OFFLINE - Anytime, Anywhere: - All content are offline access - Study on your commute without internet - Perfect for flights, remote areas, or limited data PERFECT FOR: - Students learning Python for data analysis - Researchers handling datasets - Business analysts working with CSV and SQL - Career changers entering data science - Interview preparation for data roles
Learn Pandas - Python Data

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