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Practical Lossless Volumetric Medical Image Compression via Tri-Plane Context Tree Learning.
Summary
A new tri-plane context tree (TCT) method achieves lossless compression for volumetric medical images. This approach rivals deep learning performance without needing extensive computation or training data.
Area of Science:
- Medical Imaging
- Data Compression
- Computer Vision
Background:
- Lossless compression is crucial for volumetric medical images in clinical and research settings.
- Traditional methods lack efficiency, while deep neural network (DNN) methods require significant computational resources.
- Resource-constrained environments face challenges deploying advanced compression techniques.
Purpose of the Study:
- To develop a high-performance, lossless compression method for volumetric medical images.
- To create a method that avoids deep neural networks (DNNs) and external training data.
- To address the limitations of existing compression techniques in terms of efficiency and computational cost.
Main Methods:
- Proposed a novel tri-plane context tree (TCT)-based method for lossless volumetric medical image compression.
- Introduced a compact tri-plane context representation for efficient 3D context modeling.
- Developed an input-specific TCT model with adaptive binary tree structure, dynamically selecting predictors and feature extractors.
- Learned the TCT model by optimizing minimum description length (MDL) from a subset of the input volume, avoiding offline training.
Main Results:
- Achieved compression performance comparable to recent deep neural network (DNN)-based methods across multiple datasets.
- Demonstrated low computational cost and fast coding speeds.
- The method is highly applicable in practical, resource-constrained settings.
Conclusions:
- The proposed TCT-based method offers a viable alternative for lossless volumetric medical image compression.
- It provides high compression efficiency without the computational burden of DNNs.
- The method's adaptability and efficiency make it suitable for real-world clinical and research applications.
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