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Titlebook: Marine Pelagic Cyanobacteria: Trichodesmium and other Diazotrophs; E. J. Carpenter,D. G. Capone,J. G. Rueter Book 1992 Springer Science+Bu

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41#
發(fā)表于 2025-3-28 18:14:32 | 只看該作者
42#
發(fā)表于 2025-3-28 22:18:38 | 只看該作者
43#
發(fā)表于 2025-3-28 23:04:38 | 只看該作者
K. G. Sellnerccuracy was evaluated using both synthetic and clinical data. The former comprised CBCT images, acquired using a deformable anthropomorphic brain phantom. The latter meanwhile, consisted of four 3D digital subtraction angiography (DSA) images of one patient, acquired before, during and after surgica
44#
發(fā)表于 2025-3-29 05:43:56 | 只看該作者
45#
發(fā)表于 2025-3-29 09:37:02 | 只看該作者
46#
發(fā)表于 2025-3-29 12:31:44 | 只看該作者
Tracy A. Villarealme processing steps like whole brain tractography, atlas registration or clustering. We compare it to four state of the art bundle recognition methods on 20 different bundles in a total of 105 subjects from the Human Connectome Project. Results are anatomically convincing even for difficult tracts,
47#
發(fā)表于 2025-3-29 18:31:09 | 只看該作者
48#
發(fā)表于 2025-3-29 20:59:04 | 只看該作者
Gary A. Borstad,Edward J. Carpenter,Jim F. R. Gower segmentations of intra-cochlear anatomical structures, which are obtained with a previously published method, in the real pre-implantation and the artifact-corrected CTs. We show that the proposed method leads to an average surface error of 0.18?mm which is about half of what could be achieved with
49#
發(fā)表于 2025-3-29 23:55:21 | 只看該作者
Edward J. Carpenter,Douglas G. Caponesuch training data are often unavailable. This paper presents an anti-aliasing?(AA) and self super-resolution?(SSR) algorithm that needs no external training data. It takes advantage of the fact that the in-plane slices of those MR images contain high frequency information. Our algorithm consists of
50#
發(fā)表于 2025-3-30 06:02:08 | 只看該作者
David M. Karl,Ricardo Letelier,Dale V. Hebel,David F. Bird,Christopher D. Winnopose a novel image reconstruction method for breast cancer DOT imaging. Our method is highlighted by two components: (i) a deep learning network with a novel hybrid loss, and (ii) a distribution transfer learning module. Our model is designed to focus on lesion specific information and small recons
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