MMV_Im2Im: An Open Source Microscopy Machine Vision Toolbox for Image-to-Image Transformation
Justin Sonneck, Jianxu Chen

TL;DR
MMV_Im2Im is an open-source Python toolbox that simplifies applying deep learning-based image-to-image transformations across various biomedical imaging tasks, promoting research and development in bioimaging analysis.
Contribution
This work introduces MMV_Im2Im, a versatile, open-source framework for biomedical image-to-image transformation, integrating state-of-the-art machine learning techniques.
Findings
Effective across ten biomedical problems
Facilitates development of new image analysis algorithms
Supports diverse bioimaging applications
Abstract
Over the past decade, deep learning (DL) research in computer vision has been growing rapidly, with many advances in DL-based image analysis methods for biomedical problems. In this work, we introduce MMV_Im2Im, a new open-source python package for image-to-image transformation in bioimaging applications. MMV_Im2Im is designed with a generic image-to-image transformation framework that can be used for a wide range of tasks, including semantic segmentation, instance segmentation, image restoration, and image generation, etc.. Our implementation takes advantage of state-of-the-art machine learning engineering techniques, allowing researchers to focus on their research without worrying about engineering details. We demonstrate the effectiveness of MMV_Im2Im on more than ten different biomedical problems, showcasing its general potentials and applicabilities. For computational biomedical…
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Taxonomy
TopicsCell Image Analysis Techniques · Image Processing Techniques and Applications · Advanced Electron Microscopy Techniques and Applications
