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    Por favor, use este identificador para citar o enlazar este ítem:https://uvadoc.uva.es/handle/10324/78335

    Título
    Thermal noise lowers the accuracy of rotationally invariant harmonics of diffusion MRI data and their robustness to experimental variations
    Autor
    París I Brandrés, Guillem LluisAutoridad UVA Orcid
    Pieciak, TomászAutoridad UVA
    Jones K., Derek
    Aja Fernández, SantiagoAutoridad UVA Orcid
    Tristán Vega, AntonioAutoridad UVA Orcid
    Veraart, Jelle
    Año del Documento
    2025
    Editorial
    Wiley
    Descripción
    Producción Científica
    Documento Fuente
    Magnetic Resonance in Medicine, 2025, p. 1-16
    Resumen
    Purpose: Rotational invariants (RIs) are at the root of many dMRI applications.Among others, they are presented as a sensible way of reducing the dimension-ality of biophysical models. While thermal noise impact on diffusion metrics hasbeen well studied, little is known on its effect on spherical harmonics-based RI(RISH) features and derived markers. In this work, we evaluate the effect of noiseon RISH features and downstream Standard Model Imaging (SMI) estimates. Theory and Methods: Using simulated and test/retest multishell MRI data,we assess the accuracy and precision of RISH features and SMI parameters inthe presence of thermal noise, as well as its robustness to variations in protocoldesign. We further propose and evaluate correction strategies that bypass theneed of rotational invariant features as an intermediate step. Results: Both RISH features and SMI estimates are impacted by SNR-dependentRician biases. However, higher-order RISH features are susceptible to a sec-ondary noise-related source of bias, which not only depends on SNR, but alsoprotocol and underlying microstructure. Rician bias-correcting techniques areinsufficient to maximize the accuracy of RISH and SMI features, or to ensureconsistency across protocols. SMI estimators that avoid RISH features by fit-ting the model to the directional diffusion MRI data outperform RISH-basedapproaches in accuracy, repeatability, and reproducibility across acquisitionprotocols. Conclusions: RISH features are increasingly used in dMRI analysis, yet theyare prone to various sources of noise that lower their accuracy and reproducibil-ity. Understanding the impact of noise and mitigating such biases is critical tomaximize the validity, repeatability, and reproducibility of dMRI studies.
    Materias (normalizadas)
    Modelos biofísicos
    Imágenes ponderadas por difusión
    Sesgo de Rician
    Invariantes rotacionales
    Imágenes del modelo estándar
    ISSN
    0740-3194
    Revisión por pares
    SI
    DOI
    10.1002/mrm.70035
    Patrocinador
    National Institute of NeurologicalDisorders and Stroke, Grant Number: R01 NS088040
    Narodowa Agencja Wymiany Akademickiej, Grant Number: PPN/BEK/2019/1/00421
    Consejería de Educación, Junta de Castilla y León, Grant Number: Orden EDU/1100/2017 12/12
    EPSRC Centre for Doctoral Training in Medical Imaging, Grant Number: EP/M029778/1
    Agencia Estatal de Investigación (AEI), Grant Numbers: PID2021-124407NB-I00 y TED2021-130758B-I00
    Junta de Castilla y León, Grant Number: VA156P24
    European Social Fund Plus
    Krajowy Naukowy Osrodek Wiodacy, Grant Number: 692/STYP/13/2018
    National Institute of Biomedical Imaging and Bioengineering, Grant Number: NIH P41 EB017183
    Open access funding provided by FEDER European Funds and the Junta De Castilla y León under the Research and Innovation Strategy for Smart Specialization (RIS3) of Castilla y León 2021-2027.
    Version del Editor
    https://onlinelibrary.wiley.com/doi/epdf/10.1002/mrm.70035
    Propietario de los Derechos
    © 2025 The Author(s)
    Idioma
    eng
    URI
    https://uvadoc.uva.es/handle/10324/78335
    Tipo de versión
    info:eu-repo/semantics/publishedVersion
    Derechos
    openAccess
    Aparece en las colecciones
    • DEP71 - Artículos de revista [369]
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    Universidad de Valladolid

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