Computational anatomy
http://dbpedia.org/resource/Computational_anatomy
التشريح الحسابي (بالإنجليزية: Computational anatomy) هو مجال متعدد التخصصات في علم الأحياء يركز على التحقيق الكمي ونمذجة الأشكال التشريحية. يهتم التشريح الحسابي بتطوير وتطبيق الأساليب الرياضية والإحصائية وتحليل البيانات لنمذجة ومحاكاة الهياكل البيولوجية.
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Computational anatomy is an interdisciplinary field of biology focused on quantitative investigation and modelling of anatomical shapes variability. It involves the development and application of mathematical, statistical and data-analytical methods for modelling and simulation of biological structures.
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Computational anatomy
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تشريح حسابي
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48520204
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1118731570
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November 2016
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التشريح الحسابي (بالإنجليزية: Computational anatomy) هو مجال متعدد التخصصات في علم الأحياء يركز على التحقيق الكمي ونمذجة الأشكال التشريحية. يهتم التشريح الحسابي بتطوير وتطبيق الأساليب الرياضية والإحصائية وتحليل البيانات لنمذجة ومحاكاة الهياكل البيولوجية. يُعرف هذا المجال على نطاق واسع ويتضمن أسسًا في علم التشريح والرياضيات التطبيقية والرياضيات البحتة والتعلم الآلي والميكانيكا الحسابية والعلوم الحاسوبية والتصوير البيولوجي وعلم الأعصاب والفيزياء والإحصاء بالإضافة إلى الروابط القوية مع الميكانيكا الهندسية ليفسر بعض التخصصات الدقيقة مثل المعلوماتية العصبية التي تهتم بتنظيم بيانات علم الأعصاب من خلال تطبيق النماذج الحسابية والأدوات التحليلية.
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Computational anatomy is an interdisciplinary field of biology focused on quantitative investigation and modelling of anatomical shapes variability. It involves the development and application of mathematical, statistical and data-analytical methods for modelling and simulation of biological structures. The field is broadly defined and includes foundations in anatomy, applied mathematics and pure mathematics, machine learning, computational mechanics, computational science, biological imaging, neuroscience, physics, probability, and statistics; it also has strong connections with fluid mechanics and geometric mechanics. Additionally, it complements newer, interdisciplinary fields like bioinformatics and neuroinformatics in the sense that its interpretation uses metadata derived from the original sensor imaging modalities (of which magnetic resonance imaging is one example). It focuses on the anatomical structures being imaged, rather than the medical imaging devices. It is similar in spirit to the history of computational linguistics, a discipline that focuses on the linguistic structures rather than the sensor acting as the transmission and communication media. In computational anatomy, the diffeomorphism group is used to study different coordinate systems via coordinate transformations as generated via the Lagrangian and Eulerian velocities of flow in . The are constrained to be satisfying . The kinetic energy is defined through a norm with strictly more than two generalized, square-integrable derivatives for each component of the flow velocity, which guarantees that the flows in are diffeomorphisms. It also implies that the taken pointwise satisfying the is determined by its neighbors through spatial derivatives on the velocity field. This separates the discipline from the case of incompressible fluids for which momentum is a pointwise function of velocity. Computational anatomy intersects the study of Riemannian manifolds and nonlinear global analysis, where groups of diffeomorphisms are the central focus. Emerging high-dimensional theories of shape are central to many studies in computational anatomy, as are questions emerging from the fledgling field of shape statistics.The metric structures in computational anatomy are related in spirit to morphometrics, with the distinction that Computational anatomy focuses on an infinite-dimensional space of coordinate systems transformed by a diffeomorphism, hence the central use of the terminology , the metric space study of coordinate systems via diffeomorphisms.
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113
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