3D scattering microphantom sample to assess quantitative accuracy in tomographic phase microscopy techniques

Por um escritor misterioso
Last updated 28 março 2025
3D scattering microphantom sample to assess quantitative accuracy in  tomographic phase microscopy techniques
3D scattering microphantom sample to assess quantitative accuracy in  tomographic phase microscopy techniques
Multi-material multi-photon 3D laser micro- and nanoprinting
3D scattering microphantom sample to assess quantitative accuracy in  tomographic phase microscopy techniques
De-scattering with Excitation Patterning enables rapid wide-field
3D scattering microphantom sample to assess quantitative accuracy in  tomographic phase microscopy techniques
Phase unwrapping using deep learning in holographic tomography
3D scattering microphantom sample to assess quantitative accuracy in  tomographic phase microscopy techniques
第二十九期】华沙理工大学Piotr Zdankowski与Wojciech Krauze教授计算
3D scattering microphantom sample to assess quantitative accuracy in  tomographic phase microscopy techniques
Computational Phase Microscopy
3D scattering microphantom sample to assess quantitative accuracy in  tomographic phase microscopy techniques
Photonics, Free Full-Text
3D scattering microphantom sample to assess quantitative accuracy in  tomographic phase microscopy techniques
Sensors, Free Full-Text
3D scattering microphantom sample to assess quantitative accuracy in  tomographic phase microscopy techniques
3D-printed biological cell phantom for testing 3D quantitative
3D scattering microphantom sample to assess quantitative accuracy in  tomographic phase microscopy techniques
De-scattering with Excitation Patterning enables rapid wide-field
3D scattering microphantom sample to assess quantitative accuracy in  tomographic phase microscopy techniques
Smart computational light microscopes (SCLMs) of smart

© 2014-2025 startwindsor.com. All rights reserved.