Author of the publication

Physics-Guided Loss Functions Improve Deep Learning Performance in Inverse Scattering.

, , , and . IEEE Trans. Computational Imaging, (2022)

Please choose a person to relate this publication to

To differ between persons with the same name, the academic degree and the title of an important publication will be displayed. You can also use the button next to the name to display some publications already assigned to the person.

 

Other publications of authors with the same name

Highly Efficient and Scalable Framework for High-Speed Super-Resolution Microscopy., , , , and . IEEE Access, (2021)Physics-Guided Loss Functions Improve Deep Learning Performance in Inverse Scattering., , , and . IEEE Trans. Computational Imaging, (2022)Application of Subspace-Based Distorted-Born Iteration Method in Imaging Biaxial Anisotropic Scatterer., , , , , , and . IEEE Trans. Computational Imaging, (2020)MiShape: 3D Shape Modelling of Mitochondria in Microscopy., , , , and . CoRR, (2023)Auxiliary Network: Scalable and agile online learning for dynamic system with inconsistently available inputs., , , and . CoRR, (2020)Solving Phaseless Highly Nonlinear Inverse Scattering Problems With Contraction Integral Equation for Inversion., , , and . IEEE Trans. Computational Imaging, (2020)Physics-based machine learning for subcellular segmentation in living cells., , , , , , and . Nat. Mach. Intell., 3 (12): 1071-1080 (2021)Physics-guided Loss Functions Improve Deep Learning Performance in Inverse Scattering., , , and . CoRR, (2021)Classification of Hyperspectral or Trichromatic Measurements of Ocean Color Data into Spectral Classes., and . Sensors, 16 (3): 413 (2016)Image Inpainting with Hypergraphs for Resolution Improvement in Scanning Acoustic Microscopy., , , , , and . CVPR Workshops, page 3113-3122. IEEE, (2023)