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1. |
Record Nr. |
UNISALENTO991000804399707536 |
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Autore |
Hsu, D. Frank |
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Titolo |
Cyclic neofields and combinatorial designs / D. Frank Hsu |
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Pubbl/distr/stampa |
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Berlin ; New York : Springer-Verlag, 1980 |
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ISBN |
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Descrizione fisica |
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vi, 230 p. : ill. ; 24 cm. |
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Collana |
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Lecture notes in mathematics, 0075-8434 ; 824 |
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Classificazione |
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Disciplina |
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Soggetti |
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Algebraic fields |
Block designs |
Combinatorial designs and configurations |
Cyclotomy |
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Lingua di pubblicazione |
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Formato |
Materiale a stampa |
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Livello bibliografico |
Monografia |
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Note generali |
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Bibliography: p. 224-226. |
Includes index. |
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2. |
Record Nr. |
UNISA996205407603316 |
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Titolo |
Journal of human evolution |
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Pubbl/distr/stampa |
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ISSN |
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Disciplina |
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Soggetti |
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Human evolution |
Anatomy, Comparative |
Anthropology |
Biological Evolution |
Homme |
Periodical |
Periodicals. |
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Lingua di pubblicazione |
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Formato |
Materiale a stampa |
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Livello bibliografico |
Periodico |
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Note generali |
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3. |
Record Nr. |
UNINA9910299922003321 |
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Autore |
Alimohammadi Mona |
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Titolo |
Aortic Dissection: Simulation Tools for Disease Management and Understanding / / by Mona Alimohammadi |
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Pubbl/distr/stampa |
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Cham : , : Springer International Publishing : , : Imprint : Springer, , 2018 |
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ISBN |
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Edizione |
[1st ed. 2018.] |
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Descrizione fisica |
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1 online resource (XXIX, 179 p. 92 illus., 85 illus. in color.) |
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Collana |
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Springer Theses, Recognizing Outstanding Ph.D. Research, , 2190-5053 |
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Disciplina |
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Soggetti |
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Biomedical engineering |
Fluid mechanics |
Heart - Surgery |
Biomedical Engineering and Bioengineering |
Engineering Fluid Dynamics |
Cardiac Surgery |
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Lingua di pubblicazione |
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Formato |
Materiale a stampa |
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Livello bibliografico |
Monografia |
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Nota di bibliografia |
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Includes bibliographical references and index. |
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Sommario/riassunto |
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This thesis addresses computation fluid dynamics modelling of aortic dissection (AD), in order to generate in silico diagnostic information and assess ‘virtual surgery’ outcomes. The thesis introduces several important advances in the modelling of aortic dissection and lays essential groundwork for further development of this technology. The work thesis represents a unique and major step forward in our understanding of AD using a patient-specific, systematic and coherent simulation approach, and is currently the most advanced work available on AD. . |
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