A novel fluid-solid coupling framework integrating FLIP and shape matching methods

Author(s):  
Yang Gao ◽  
Shuai Li ◽  
Hong Qin ◽  
Aimin Hao
Author(s):  
Bodo Rosenhahn ◽  
Thomas Brox ◽  
Daniel Cremers ◽  
Hans-Peter Seidel

Author(s):  
LOUISA LAM ◽  
CHING Y. SUEN

Whilst the design of skeletonization algorithms has been a very active research area, methodologies for an automatic evaluation of the quality of the results remain to be developed. The difficulty rests on the fact that certain geometric properties considered desirable in skeletons (especially for pattern recognition applications) are not easily quantifiable by means other than human vision. The attempt here is to develop distance measures based on shape matching methods, and to compare skeletons to references in terms of these distances. Three such methods have been adapted for this purpose, and the results are found to be highly correlated for the samples tested.


2012 ◽  
Vol 38 (6) ◽  
pp. 889 ◽  
Author(s):  
Yu ZHOU ◽  
Jun-Tao LIU ◽  
Xiang BAI
Keyword(s):  

2009 ◽  
Vol 28 (12) ◽  
pp. 3007-3009
Author(s):  
Wang-gen WAN ◽  
Ji-cheng LIN ◽  
Xiao-qing YU ◽  
Huan DING ◽  
Xiao-hui TAN

Polymers ◽  
2021 ◽  
Vol 13 (12) ◽  
pp. 1910
Author(s):  
Hun-Jin Jeong ◽  
Se-Won Lee ◽  
Myoung Wha Hong ◽  
Young Yul Kim ◽  
Kyoung Duck Seo ◽  
...  

The meniscus has poor intrinsic regenerative capability, and its injury inevitably leads to articular cartilage degeneration. Although there are commercialized off-the-shelf alternatives to achieve total meniscus regeneration, each has its own shortcomings such as individualized size matching issues and inappropriate mechanical properties. We manufactured a polycaprolactone-based patient-specific designed framework via a Computed Tomography scan images and 3D-printing technique. Then, we completed the hybrid-scaffold by combining the 3D-printed framework and mixture micro-size composite which consists of polycaprolactone and sodium chloride to create a cell-friendly microenvironment. Based on this hybrid-scaffold with an autograft cell source (fibrochondrocyte), we assessed mechanical and histological results using the rabbit total meniscectomy model. At postoperative 12-week, hybrid-scaffold achieved neo-meniscus tissue formation, and its shape was maintained without rupture or break away from the knee joint. Histological and immunohistochemical analysis results showed obvious ingrowth of the fibroblast-like cells and chondrocyte cells as well as mature lacunae that were embedded in the extracellular matrix. Hybrid-scaffolding resulted in superior shape matching as compared to original meniscus tissue. Histological analysis showed evidence of extensive neo-meniscus cell ingrowth. Additionally, the hybrid-scaffold did not induce osteoarthritis on the femoral condyle surface. The 3D-printed hybrid-scaffold may provide a promising approach that can be applied to those who received total meniscal resection, using patient-specific design and autogenous cell source.


Author(s):  
Haotian Wu ◽  
Yaonan Wang ◽  
Hui Zhang ◽  
Xiaofang Yuan ◽  
Xianen Zhou

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