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name="category">licenseinfo:work.rightsreserved</field><field name="category.top">licenseinfo:work.rightsreserved</field><field name="allMeta">alle Rechte vorbehalten</field><field name="allMeta">all rights reserved</field><field name="allMeta">/creativecommons/r/reserved/0.9/88x31.png</field><field name="allMeta">[DE-28]Urheberrechtsschutz 1.0$gRights Statements$uhttp://rightsstatements.org/vocab/InC/1.0/</field><field name="allMeta">http://rightsstatements.org/vocab/InC/1.0/</field><field name="allMeta">http://rightsstatements.org/vocab/InC/1.0/</field><field name="mods.title">Contributions to models of single neuron computation in striatum and cortex</field><field name="mods.title.main">Contributions to models of single neuron computation in striatum and cortex</field><field name="mods.title.subtitle"></field><field name="mods.nameIdentifier">gnd:1079690727</field><field name="mods.nameIdentifier">gnd:136258794</field><field name="mods.nameIdentifier">gnd:141827793</field><field 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Dr. James Surmeier</field><field name="mods.name.top">Universität Rostock Fakultät für Informatik und Elektrotechnik</field><field name="mods.author">Youwei Zheng</field><field name="mods.place">Rostock</field><field name="mods.publisher">Universität Rostock</field><field name="mods.genre">epub.dissertation</field><field name="mods.identifier">10.18453/rosdok_id00001634</field><field name="mods.identifier">http://purl.uni-rostock.de/rosdok/id00001634</field><field name="mods.identifier">urn:nbn:de:gbv:28-diss2015-0184-4</field><field name="mods.subject">dendrite</field><field name="mods.subject">spine</field><field name="mods.subject">modeling</field><field name="mods.subject">simulation</field><field name="mods.subject">shaft</field><field name="mods.subject">STDP</field><field name="mods.abstract">A deeper understanding is required of how a single neuron utilizes its nonlinear subcellular devices to generate complex neuronal dynamics. 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Kompartiment-Modelle werden formuliert von Nervenzellen im Kortex und Striatum, die elektrophysiologisch fundiert sind, um spezifische Fragen zu adressieren: i) Inwiefern implementieren Projektionen vom Striatum ortsabhängige dendritische Integration, um Assoziationens-basierte Berechnungen zu realisieren? ii) Inwiefern nutzen kortikale Zellen den Typ und den Ort, um die durch sie realisierten Berechnungen zu optimieren?</field><field name="mods.dateIssued">2015</field><field name="mods.yearIssued">2015</field><field name="mods.type">epub.dissertation</field><field name="search_result_link_text">1
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        rosdok/id00001634842190716MODS updated during RosDok migration in June 2021DissertationHochschulschrift1079690727YouweiZheng1986-VerfasserInautContributions to models of single neuron computation in striatum and cortexen136258794Prof. Dr.AdelindeUhrmacherUniversität Rostock, Institut für InformatikAkademischeR BetreuerIndgs141827793Dr.LarsSchwabeUniversität Rostock, Institut für InformatikAkademischeR BetreuerIndgsProf. Dr.JamesSurmeierNorthwestern University, PhysiologieAkademischeR BetreuerIndgs10085032-7Universität RostockFakultät für Informatik und ElektrotechnikGrad-verleihende Institutiondgg10.18453/rosdok_id00001634http://purl.uni-rostock.de/rosdok/id00001634urn:nbn:de:gbv:28-diss2015-0184-4000 Allgemeines, Wissenschaft570 Biowissenschaften, BiologieFakultät für Informatik und Elektrotechnikfrei zugänglich (Open Access)Lizenz Metadaten: CC0Nutzungsrechte erteiltalle Rechte vorbehaltenUniversität RostockRostock2015monographic20152015Universitätsbibliothek RostockRostock20152015A deeper understanding is required of how a single neuron utilizes its nonlinear subcellular devices to generate complex neuronal dynamics. Two compartmental models of cortex and striatum are accurately formulated and firmly grounded in the experimental reality of electrophysiology to address the questions: how striatal projection neurons implement location-dependent dendritic integration to carry out association-based computation and how cortical pyramidal neurons strategically exploit the type and location of synaptic contacts to enrich its computational capacities.Neuronale Zellen transformieren kontinuierliche Signale in diskrete Zeitserien von Aktionspotentialen und kodieren damit Perzeptionen und interne Zustände. Kompartiment-Modelle werden formuliert von Nervenzellen im Kortex und Striatum, die elektrophysiologisch fundiert sind, um spezifische Fragen zu adressieren: i) Inwiefern implementieren Projektionen vom Striatum ortsabhängige dendritische Integration, um Assoziationens-basierte Berechnungen zu realisieren? ii) Inwiefern nutzen kortikale Zellen den Typ und den Ort, um die durch sie realisierten Berechnungen zu optimieren?dendritespinemodelingsimulationshaftSTDPUniversitätsbibliothek Rostockhttp://purl.uni-rostock.de/rosdok/id00001634
      
    
  
  
    
      2015-12-03T13:54:59.629Z
      2023-08-08T10:06:24.654Z
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Two compartmental models of cortex and striatum are accurately formulated and firmly grounded in the experimental reality of electrophysiology to address the questions: how striatal projection neurons implement location-dependent dendritic integration to carry out association-based computation and how cortical pyramidal neurons strategically exploit the type and location of synaptic contacts to enrich its computational capacities.</field><field name="mods.abstract">Neuronale Zellen transformieren kontinuierliche Signale in diskrete Zeitserien von Aktionspotentialen und kodieren damit Perzeptionen und interne Zustände. Kompartiment-Modelle werden formuliert von Nervenzellen im Kortex und Striatum, die elektrophysiologisch fundiert sind, um spezifische Fragen zu adressieren: i) Inwiefern implementieren Projektionen vom Striatum ortsabhängige dendritische Integration, um Assoziationens-basierte Berechnungen zu realisieren? ii) Inwiefern nutzen kortikale Zellen den Typ und den Ort, um die durch sie realisierten Berechnungen zu optimieren?</field><field name="mods.dateIssued">2015</field><field name="mods.yearIssued">2015</field><field name="ir.identifier">[xslt]Saxon</field><field name="recordIdentifier">rosdok/id00001634</field><field name="purl">https://purl.uni-rostock.de/rosdok/id00001634</field><field name="ppn">842190716</field><field name="doi">10.18453/rosdok_id00001634</field><field name="urn">urn:nbn:de:gbv:28-diss2015-0184-4</field><field name="ir.creator.result">Youwei Zheng</field><field name="ir.creator.sort">Zheng Youwei</field><field name="ir.title.result">Contributions to models of single neuron computation in striatum and cortex</field><field name="ir.doctype.result">Dissertation</field><field name="ir.doctype_en.result">doctoral thesis</field><field name="ir.originInfo.result">Universität Rostock, 2015</field><field name="ir.abstract300.result">A deeper understanding is required of how a single neuron utilizes its nonlinear subcellular devices to generate complex neuronal dynamics. Two compartmental models of cortex and striatum are accurately formulated and firmly grounded in the experimental reality of electrophysiology to address the…</field><field name="ir.creator_all">Youwei Zheng</field><field name="ir.title_all">Contributions to models of single neuron computation in striatum and cortex</field><field name="ir.location_all">Universitätsbibliothek Rostock</field><field name="ir.location_all">http://purl.uni-rostock.de/rosdok/id00001634</field><field name="ir.creator_all">1079690727</field><field name="ir.creator_all">Youwei</field><field name="ir.creator_all">Zheng</field><field name="ir.creator_all">1986-</field><field name="ir.creator_all"></field><field name="ir.creator_all">VerfasserIn</field><field name="ir.creator_all">aut</field><field name="ir.creator_all">136258794</field><field name="ir.creator_all">Prof. Dr.</field><field name="ir.creator_all">Adelinde</field><field name="ir.creator_all">Uhrmacher</field><field name="ir.creator_all">Universität Rostock, Institut für Informatik</field><field name="ir.creator_all"></field><field name="ir.creator_all">AkademischeR BetreuerIn</field><field name="ir.creator_all">dgs</field><field name="ir.creator_all">141827793</field><field name="ir.creator_all">Dr.</field><field name="ir.creator_all">Lars</field><field name="ir.creator_all">Schwabe</field><field name="ir.creator_all">Universität Rostock, Institut für Informatik</field><field name="ir.creator_all"></field><field name="ir.creator_all">AkademischeR BetreuerIn</field><field name="ir.creator_all">dgs</field><field name="ir.creator_all">Prof. Dr.</field><field name="ir.creator_all">James</field><field name="ir.creator_all">Surmeier</field><field name="ir.creator_all">Northwestern University, Physiologie</field><field name="ir.creator_all"></field><field name="ir.creator_all">AkademischeR BetreuerIn</field><field name="ir.creator_all">dgs</field><field name="ir.creator_all">10085032-7</field><field name="ir.creator_all">Universität Rostock</field><field name="ir.creator_all">Fakultät für Informatik und Elektrotechnik</field><field name="ir.creator_all"></field><field name="ir.creator_all">Grad-verleihende Institution</field><field name="ir.creator_all">dgg</field><field name="ir.identifier">[doi]10.18453/rosdok_id00001634</field><field name="ir.identifier">[purl]http://purl.uni-rostock.de/rosdok/id00001634</field><field name="ir.identifier">[urn]urn:nbn:de:gbv:28-diss2015-0184-4</field><field name="ir.oai.setspec.open_access">open_access</field><field name="ir.pubyear_start">2015</field><field name="ir.pubyear_end">2015</field><field name="ir.epoch_class.facet">epoch:21th_century</field><field name="ir.language_class.facet">rfc5646:en</field><field name="ir.doctype_class.facet">doctype:epub.dissertation</field><field name="ir.accesscondition_class.facet">accesscondition:openaccess</field><field name="ir.sdnb_class.facet">SDNB:000</field><field name="ir.sdnb_class.facet">SDNB:570</field><field name="ir.institution_class.facet">institution:unirostock.ief</field><field name="ir.state_class.facet">state:published</field></doc></add>