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Theoretical analysis of novel quasi-3D microscopy of cell deformation
Jun Qiu
, Andrew D. Baik
, X. Lucas Lu
, Elizabeth M.C. Hillman
, Zhuo Zhuang
, Cheng Dong
, X. Edward Guo
Biomedical Engineering
Institute for Computational and Data Sciences (ICDS)
Materials Research Institute (MRI)
Penn State Cancer Institute
Cancer Institute, Experimental Therapeutics
Research output
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Contribution to journal
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Article
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peer-review
6
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Engineering
Signal-to-Noise Ratio
100%
Fluid Flow
100%
Dimensional Space
100%
Finite Element Method
50%
Two Dimensional
50%
Numerical Model
50%
Temporal Resolution
50%
Point Spread Function
50%
Gaussian White Noise
50%
Theoretical Basis
50%
Strain State
50%
Dynamic Loads
50%
Digital Image Correlation
50%
Shear Flow
50%
Dimensional Image
50%
Digital Image Correlation Technique
50%
Keyphrases
Cell Deformation
100%
Quasi-three-dimensional
100%
Signal-to-noise Ratio
28%
Fluid Flow
28%
Strain Measurement
28%
Three-dimensional Space
28%
High Temporal Resolution
14%
Two Dimensional
14%
3D Image
14%
Fluorescent Image
14%
Finite Element Analysis
14%
Computational Study
14%
Mechanical Behavior
14%
Numerical Model
14%
Fluid Shear
14%
Microscopic Techniques
14%
Uniform Flow
14%
Point Spread Function
14%
Strain State
14%
Dynamic Loading
14%
Digital Image Correlation
14%
Shear Flow
14%
Axial Deformation
14%
Three-dimensional Field
14%
Additive White Gaussian Noise
14%
Orthogonal Planes
14%
Three-dimensional Dynamics
14%
Digital Image Correlation Technique
14%
Material Science
Strain Measurement
100%
Fluid Flow
100%
Signal-to-Noise Ratio
100%
Finite Element Method
50%
Mechanical Property
50%
Microscopy
50%
Dynamic Loads
50%
Shear Flow
50%