updated svd denoising
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47
README.md
47
README.md
@@ -6,7 +6,6 @@ This repository demonstrates how core linear algebra concepts -- least squares,
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Rather than treating data science as a collection of tools, this project builds everything from first principles and connects theory to implementation through jupyter notebooks.
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---
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## Structure
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@@ -22,6 +21,27 @@ LICENSE # project license
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Each notebook is self-contained and moves from theory to implementation to visualization.
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## Dependencies
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* **Python 3**
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* **NumPy** -- linear algebra
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* **Pandas** -- data handling
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* **Matplotlib** -- visualization
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* **Pillow** -- imaging library
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## How to Run
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```bash
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git clone https://gitlab.com/psark/ds-for-la.git
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cd ds-for-la
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pip install requirements.txt
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jupyter notebook
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```
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Open any notebook inside the `notebooks/` folder.
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---
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## Topics
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@@ -83,16 +103,6 @@ For color images, this is applied independently to each channel (R, G, B).
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---
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## Dependencies
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* **Python 3**
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* **NumPy** -- linear algebra
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* **Pandas** -- data handling
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* **Matplotlib** -- visualization
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* **Pillow** -- imaging library
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---
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## Key Takeaways
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* Data science problems can be framed as:
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@@ -111,20 +121,6 @@ For color images, this is applied independently to each channel (R, G, B).
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* compression
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* interpretability
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---
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## How to Run
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```bash
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git clone <your-repo-url>
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cd data-science-linear-algebraist
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pip install requirements.txt
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jupyter notebook
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```
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Open any notebook inside the `notebooks/` folder.
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---
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@@ -132,7 +128,6 @@ Open any notebook inside the `notebooks/` folder.
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This project is part of a broader effort to translate a background in pure mathematics into practical data science and machine learning skills.
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---
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## Future Work
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pandas
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numpy
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matplotlib
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pillow
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pillow
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scikit-image
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