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Data Analytics AβZ ππ
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°οΈ A β Analytics
Understanding, interpreting, and presenting data-driven insights.
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±οΈ B β BI Tools (Power BI, Tableau)
For dashboards and data visualization.
Β©οΈ C β Cleaning Data
Remove nulls, duplicates, fix types, handle outliers.
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³ D β Data Wrangling
Transform raw data into a usable format.
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΄ E β EDA (Exploratory Data Analysis)
Analyze distributions, trends, and patterns.
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΅ F β Feature Engineering
Create new variables from existing data to enhance analysis or modeling.
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Ά G β Graphs & Charts
Visuals like histograms, scatter plots, bar charts to make sense of data.
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· H β Hypothesis Testing
A/B testing, t-tests, chi-square for validating assumptions.
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Έ I β Insights
Meaningful takeaways that influence decisions.
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Ή J β Joins
Combine data from multiple tables (SQL/Pandas).
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Ί K β KPIs
Key metrics tracked over time to evaluate success.
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» L β Linear Regression
A basic predictive model used frequently in analytics.
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Ό M β Metrics
Quantifiable measures of performance.
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½ N β Normalization
Scale features for consistency or comparison.
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ΎοΈ O β Outlier Detection
Spot and handle anomalies that can skew results.
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ΏοΈ P β Python
Go-to programming language for data manipulation and analysis.
π Q β Queries (SQL)
Use SQL to retrieve and analyze structured data.
π R β Reports
Present insights via dashboards, PPTs, or tools.
π S β SQL
Fundamental querying language for relational databases.
π T β Tableau
Popular BI tool for data visualization.
π U β Univariate Analysis
Analyzing a single variable's distribution or properties.
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V β Visualization
Transform data into understandable visuals.
π W β Web Scraping
Extract public data from websites using tools like BeautifulSoup.
π X β XGBoost (Advanced)
A powerful algorithm used in machine learning-based analytics.
π Y β Year-over-Year (YoY)
Common time-based metric comparison.
π Z β Zero-based Analysis
Analyzing from a baseline or zero point to measure true change.
π¬ Tap β€οΈ for more!
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