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Harmonization Benchmarking Tool for Neuroimaging Datasets

2022-11-15 · Tom Osika, Ebrahim Ebrahim, Martin Styner, Marc Niethammer, Thomas Sawyer, Andinet Enquobahrie

A major data pre-processing step for large, multi-site studies is to handle site effects by harmonizing data, generating a dataset that enables more powerful analyses and more robust algorithms. There is a wide variety of data harmonization techniques, but there are few tools that streamline the process of harmonizing data, comparing across techniques, and benchmarking new techniques. In this paper, we introduce HArmonization BEnchmarking Tool (HABET), an open source tool for generating harmonized images and evaluating the performance of different harmonization algorithms. To demonstrate the capabilities of HABET, we harmonize diffusion MRI images from the Adolescent Brain and Cognitive Development (ABCD) study using two different approaches, and we compare their performance.

📄 PDF Abstract BibTeX arXiv:2211.07869

Code (1)

KitwareMedical/habet 공식 구현

Tasks

BenchmarkingDiffusion MRI

Methods 이 논문이 사용한 방법론

Diffusion Diffusion models generate samples by gradually removing noise from a signal, and their training objective can be expressed as a reweighted variational lower-bound…

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