نتایج جستجو برای: fcn

تعداد نتایج: 531  

Journal: :CoRR 2017
Rens Janssens Guodong Zeng Guoyan Zheng

We present a method to address the challenging problem of segmentation of lumbar vertebrae from CT images acquired with varying fields of view. Our method is based on cascaded 3D Fully Convolutional Networks (FCNs) consisting of a localization FCN and a segmentation FCN. More specifically, in the first step we train a regression 3D FCN (we call it “LocalizationNet”) to find the bounding box of ...

Journal: :CoRR 2017
Holger Roth Hirohisa Oda Yuichiro Hayashi Masahiro Oda Natsuki Shimizu Michitaka Fujiwara Kazunari Misawa Kensaku Mori

Recent advances in 3D fully convolutional networks (FCN) have made it feasible to produce dense voxel-wise predictions of full volumetric images. In this work, we show that a multi-class 3D FCN trained on manually labeled CT scans of seven abdominal structures (artery, vein, liver, spleen, stomach, gallbladder, and pancreas) can achieve competitive segmentation results, while avoiding the need ...

Journal: :CoRR 2017
Bharat Singh Hengduo Li Abhishek Sharma Larry S. Davis

We present R-FCN-3000, a large-scale real-time object detector in which objectness detection and classification are decoupled. To obtain the detection score for an RoI, we multiply the objectness score with the fine-grained classification score. Our approach is a modification of the R-FCN architecture in which position-sensitive filters are shared across different object classes for performing ...

Journal: :Computerized medical imaging and graphics : the official journal of the Computerized Medical Imaging Society 2018
Holger R Roth Hirohisa Oda Xiangrong Zhou Natsuki Shimizu Ying Yang Yuichiro Hayashi Masahiro Oda Michitaka Fujiwara Kazunari Misawa Kensaku Mori

Recent advances in 3D fully convolutional networks (FCN) have made it feasible to produce dense voxel-wise predictions of volumetric images. In this work, we show that a multi-class 3D FCN trained on manually labeled CT scans of several anatomical structures (ranging from the large organs to thin vessels) can achieve competitive segmentation results, while avoiding the need for handcrafting fea...

Journal: :CoRR 2016
Huabin Zheng Jingyu Wang Zhengjie Huang Yang Yang Rong Pan

OCR character segmentation for multilingual printed documents is difficult due to the diversity of different linguistic characters. Previous approaches mainly focus on monolingual texts and are not suitable for multilinguallingual cases. In this work, we particularly tackle the Chinese/English mixed case by reframing it as a semantic segmentation problem. We take advantage of the successful arc...

Journal: :The Annals of thoracic surgery 1998
L S Ritter J G Copeland P F McDonagh

BACKGROUND Leukocytes rapidly accumulate in the heart early in reperfusion after ischemia, contributing to reperfusion injury. The purpose of this study was to determine whether treatment with the selectin blocker fucoidin (FCN) would attenuate early leukocyte retention in coronary venules and capillaries during low flow reperfusion. METHODS Isolated rat hearts subjected to 30 minutes of 37 d...

2017
Jianxu Chen Sreya Banerjee Abhinav Grama Walter J. Scheirer Danny Ziyi Chen

In this paper, we consider the problem of automatically segmenting neuronal cells in dual-color confocal microscopy images. This problem is a key task in various quantitative analysis applications in neuroscience, such as tracing cell genesis in Danio rerio (zebrafish) brains. Deep learning, especially using fully convolutional networks (FCN), has profoundly changed segmentation research in bio...

Journal: :IEEE transactions on neural networks 2000
David Zhang Sankar K. Pal

A system design methodology for fuzzy clustering neural networks (FCNs) is presented. This methodology emphasizes coordination between FCN model definition, architectural description, and systolic implementation. Two mapping strategies both from FCN model to system architecture and from the given architecture to systolic arrays are described. The effectiveness of the methodology is illustrated ...

Journal: :CoRR 2016
Willem P. Sanberg Gijs Dubbelman Peter H. N. de With

Recently, vision-based Advanced Driver Assist Systems have gained broad interest. In this work, we investigate free-space detection, for which we propose to employ a Fully Convolutional Network (FCN). We show that this FCN can be trained in a self-supervised manner and achieve similar results compared to training on manually annotated data, thereby reducing the need for large manually annotated...

Journal: :CoRR 2017
Yancheng Bai Bernard Ghanem

Face detection is a fundamental problem in computer vision. It is still a challenging task in unconstrained conditions due to significant variations in scale, pose, expressions, and occlusion. In this paper, we propose a multi-branch fully convolutional network (MB-FCN) for face detection, which considers both efficiency and effectiveness in the design process. Our MB-FCN detector can deal with...

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