| PatchMatch based Inpainting |
| ===================================== |
| This library implements the PatchMatch based inpainting algorithm. It provides both C++ and Python interfaces. |
| This implementation is heavily based on the implementation by Younesse ANDAM: |
| (younesse-cv/PatchMatch)[https://github.com/younesse-cv/PatchMatch], with some bugs fix. |
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| Usage |
| ------------------------------------- |
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| You need to first install OpenCV to compile the C++ libraries. Then, run `make` to compile the |
| shared library `libpatchmatch.so`. |
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| For Python users (example available at `examples/py_example.py`) |
|
|
| ```python |
| import patch_match |
| |
| image = ... # either a numpy ndarray or a PIL Image object. |
| mask = ... # either a numpy ndarray or a PIL Image object. |
| result = patch_match.inpaint(image, mask, patch_size=5) |
| ``` |
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| For C++ users (examples available at `examples/cpp_example.cpp`) |
|
|
| ```cpp |
| #include "inpaint.h" |
| |
| int main() { |
| cv::Mat image = ... |
| cv::Mat mask = ... |
| |
| cv::Mat result = Inpainting(image, mask, 5).run(); |
| |
| return 0; |
| } |
| ``` |
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| README and COPYRIGHT by Younesse ANDAM |
| ------------------------------------- |
| @Author: Younesse ANDAM |
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| @Contact: younesse.andam@gmail.com |
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| Description: This project is a personal implementation of an algorithm called PATCHMATCH that restores missing areas in an image. |
| The algorithm is presented in the following paper |
| PatchMatch A Randomized Correspondence Algorithm |
| for Structural Image Editing |
| by C.Barnes,E.Shechtman,A.Finkelstein and Dan B.Goldman |
| ACM Transactions on Graphics (Proc. SIGGRAPH), vol.28, aug-2009 |
| |
| For more information please refer to |
| http://www.cs.princeton.edu/gfx/pubs/Barnes_2009_PAR/index.php |
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| Copyright (c) 2010-2011 |
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| Requirements |
| ------------------------------------- |
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| To run the project you need to install Opencv library and link it to your project. |
| Opencv can be download it here |
| http://opencv.org/downloads.html |
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