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๐ค AโZ of Data Science
A โ Analytics
Extracting insights from data using statistical and computational methods.
B โ Big Data
Large and complex datasets that require special tools to process and analyze.
C โ Correlation
Measure of how strongly two variables move together.
D โ Data Cleaning
Fixing or removing incorrect, incomplete, or duplicate data.
E โ Exploratory Data Analysis (EDA)
Initial investigation of data patterns using visualizations and statistics.
F โ Feature Engineering
Creating new input features to improve model performance.
G โ Graphs
Visual representations like bar charts, histograms, and scatter plots to understand data.
H โ Hypothesis Testing
Statistical method to determine if a hypothesis about data is supported.
I โ Imputation
Filling in missing data with estimated values.
J โ Join
Combining data from different tables based on a common key.
K โ KPI (Key Performance Indicator)
Measurable value that shows how well a model or business is performing.
L โ Linear Regression
Model to predict a target variable based on linear relationships.
M โ Machine Learning
Using algorithms to learn from data and make predictions.
N โ NumPy
Popular Python library for numerical and array operations.
O โ Outliers
Extreme values that can distort data analysis and model results.
P โ Pandas
Python library for data manipulation and analysis using DataFrames.
Q โ Query
Request for information from a database using SQL or similar languages.
R โ Regression
Technique for modeling and analyzing the relationship between variables.
S โ SQL (Structured Query Language)
Language used to manage and retrieve data from relational databases.
T โ Time Series
Data collected over time intervals, used for forecasting.
U โ Unstructured Data
Data without a predefined format like text, images, or videos.
V โ Visualization
Converting data into charts and graphs to find patterns and insights.
W โ Web Scraping
Extracting data from websites using tools or scripts.
X โ XML (eXtensible Markup Language)
Format used to store and transport structured data.
Y โ YAML
Data format used in configuration files, often in data pipelines.
Z โ Zero-Variance Feature
A feature with the same value across all observations, offering no useful signal.
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Post #3947
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