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Book 📖 📕 📘
Basic Math for Game Development with Unity 3D
https://t.me/c/2109572262/737
Complete Data Science Road Map🔥
with resources👇
1.Math and Statistics:
• Linear Algebra
• Calculus
• Probability
• Statistics
2.Languages:
• Python (
• NumPy,
• Pandas,
• Matplotlib,
• Seaborn )
• R
3. Data skills:
• Data Cleaning
• Exploratory Data Analysis
• Feature Engineering
4. Data Visualization:
• Matplotlib
• Seaborn
• Plotly
• Tableau
5.Machine Learning Basics:
• Supervised Learning
• Unsupervised Learning
• Regression
• Classification
• Clustering
6. ML Libraries:
• Scikit-Learn
• TensorFlow
• Keras
• PyTorch
7.Model Evaluation and Validation:
• Cross-Validation
• Hyperparameter Tuning
• Evaluation Metrics
8.Big Data Technologies:
• Apache Hadoop
• Apache Spark
9.Database:
• SQL Basics
• MySQL
• PostgreSQL
10.Deep Learning:
• Neural Networks
• CNN
• RNN
• Transfer Learning
11.Natural Language Processing (NLP):
• Tokenization
• Named Entity Recognition (NER)
• Sentiment Analysis
12.Time Series Analysis:
• Time Series Components
• Seasonal Decomposition
• Forecasting Methods
13.Model Deployment:
• Flask (for Python)
• Django (for Python)
• Docker
14.Version Control:
• Git
• GitHub
15. Cloud Platforms:
• AWS
• Azure
• GCP
16. Data Ethics and Privacy:
• Ethical Considerations
• Privacy Protection
17.Communication and Reporting:
• Data Storytelling
• Reporting Tools e.g.
- Jupyter Notebooks
- R Markdown
18.Continuous Learning:
• Stay Updated with Industry Trends
• Participate in Online Communities
• Join online Conferences
------------------- END --------------------
Some good resources to learn Data Science
Books:
• Python for Data Analysis
- by Wes McKinney
• Hands-On Machine Learning
- by Aurélien Géron
• The Art of Data Science
- by Roger D. Peng and Elizabeth M.
• Data Science from Scratch
-by Joel Grus
Blogs:
• Towards Data Science
• KDnuggets
• R-bloggers
• Flowingdata
• Analytics Vidhya
YouTube Channel
❯ Python ➟ Corey Schafer
❯ SQL ➟ Joey Blue
❯ Excel ➟ ExcelIsFun
❯ PowerBI ➟ Guy in a Cube
❯ Tableau ➟ Tableau Tim
❯ Mathematics ➟ 3Blue1Brown
❯ Statistics ➟ statquest
❯ Data Analyst ➟ AlexTheAnalyst
❯ ML, DL ➟ sentdex
Podcasts:
• Data Science at Home
• Talking Machines
• O'Reilly Data Science Podcast
• Linear Digressions
• DataFramed
Community and Forums:
Stack Overflow
Reddit - r/datascience:
Documentation and Guides:
1.Scikit-Learn Documentation:
Official documentation for the Scikit-Learn library.
2.Pandas Documentation: Official documentation for the Pandas library.
Websites to Learn Data Analytics for free.
Learn Data Analytics for free with these resources:
📶1. Excel: excel-practice-online.com
📶2. Tableau: tableau.com/learn/starter-…
📶3. PowerBi: powerbi.microsoft.com/en-us/learning/
📶4. SQL: w3schools.com
📶5. Python: freecodecamp.org/
Learn Python in a structured way !!!
Here's a FREE ROADMAP & RESOURCES to learn them 🚀🚀🚀
Reason(with examples):
all(): Returns True if all elements of the iterable are true (or if the iterable is empty). If any element is false, it returns False.
any(): Returns True if at least one element of the iterable is true. If the iterable is empty or all the false, it returns False.
The day you plant the seed is not the day you eat the fruit.
#motivation @javascript_resources @python_assets
