CRCNS: Optimality principles of auditory representations
CRCNS: Optimality principles of auditory representations
批准号:
8647961
负责人:
KECHEN ZHANG
金额:
$31.87万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2013
资助国家:
美国
项目状态:
已结题
起止时间:
2013-07-01 至 2018-06-30
关键词:
AdoptedAdvertisingAffectAlgorithmsAnimalsAuditoryAuditory areaAuditory systemBehaviorBrainCallithrixCallithrix jacchus jacchusCebidaeCodeCommitCommunicationComplexComputer softwareCuesDataDevelopmentDisciplineDoctor of PhilosophyEducationEducational process of instructingEnsureEvolutionEyeFundingGoalsHeterogeneityHumanInferior ColliculusInterdisciplinary StudyInternationalInternetJournalsLeadLiteratureLocationMeasuresMethodsModalityModelingMonkeysNeural Network SimulationNeuronsNeurosciencesNon-linear ModelsOutcomeOutputPeer ReviewPopulationPopulation DistributionsPositioning AttributePostdoctoral FellowPreparationProcessPropertyQualifyingRecording of previous eventsRecurrenceResearchResearch InfrastructureResearch MethodologyResearch PersonnelResearch TrainingResponse to stimulus physiologySensorySignal TransductionSolidSound LocalizationSourceStagingStimulusStructureStudentsSystemTechniquesTimeTrainingUnderrepresented MinorityUniversitiesUpdateWomanWorkauditory pathwayauditory stimulusawakebasebrain researchcell typecomputational neurosciencedata sharingdesignengineering designgraduate studentimprovedmeetingsnervous system disorderneural prosthesisneurophysiologyoperationoptimismoutreachpractical applicationrelating to nervous systemresearch studyresponsesensorsoundtoolundergraduate student
中文摘要
描述(由申请人提供):我们的项目将集中在听觉系统的感官表征上,有两个总体目标。首先,我们将采用一种实验策略,要求对听觉系统进行最佳探测。我们将通过改进一种优化设计方法,确定不同空间位置的复杂声音刺激在清醒绒猴听觉通路的多个阶段是如何表现的,这种优化设计方法最近由同一团队的合作研究实现。这种方法在线工作,在神经生理记录过程中,通过产生声音刺激来最大化从层次神经网络模型中获得的信息。在线实验获得的模型提供了在三维空间中对丰富声音刺激的复杂听觉反应的准确描述,同时我们也获得了下丘和听觉皮层的复杂反应特性如何由听觉通路中较低水平的多个声音定位线索组合而产生的合理网络解释。其次,我们将从神经种群针对现实世界情况进行优化的假设开始,我们将确定实验中测量的神经元反应特性的丰富多样性和异质性是否可以通过假设来解释,即它们实际上形成了针对自然声音进行优化的有效种群。预期的结果是对声音定位神经元群体复杂性的原则性计算解释,包括与各种功能细胞类型相关的所有多样性和可变性。
英文摘要
DESCRIPTION (provided by applicant): Our project will be focused on sensory representations in the auditory system with two overall objectives. First, we will adopt an experimental strategy that calls for optimal probing of the auditory system. We will determine how complex sound stimuli at different spatial locations are represented at multiple stages of the auditory pathway in awake marmoset monkeys by improving an optimal design approach recently made feasible by the collaborative research by the same team. This method works online, during neurophysiological recording, by generating sound stimuli that maximize the information gained about a hierarchical neural network model. A model attained from the online experiment provides an accurate description of complex auditory responses to rich sound stimuli in three dimensional space, and at the same time we also obtain a plausible network explanation of how complex response properties in inferior colliculus and auditory cortex might arise from combining multiple sound localization cues at lower levels in the auditory pathway. Second, we will start with the hypothesis that neural populations are optimized for real world situations, and we will determine whether the rich variety and heterogeneity of neuronal response properties measured in experiments can be explained by the hypothesis that they actually form an efficient population optimized for natural sounds. The expected outcome is a principled computational explanation for the complexity of neuronal populations for sound localization, including all the diversity and variability associated with various functional cell types.
Intellectual merit: Understanding the relationship between neural activity and the stimuli from the external world is one of the basic goals in systems neuroscience. Our collaborative research may help resolve a longstanding problem in auditory neuroscience concerning how neuronal responses in auditory cortex and inferior colliculus represent space over the full 360¿ range of azimuths and elevations. Our approach is very general and should apply readily to other sensory modalities as well. In particular, the optimal design method can obtain a global picture of the stimulus-response landscape as fast as possible, and this speedy feature is especially valuable for working with awake and behaving animals, and even humans. Our results may extend to many disciplines whenever one needs to efficiently probe a parameterized input-output system, or to optimize a population of sensors. For example, the ideas and the methods developed here could be used to guide practical neuromorphic engineering designs or to optimize populations of artificial sensors, which may find many practical applications. Our results will also provide a solid conceptual basis and a set of modeling tools to qualify abnormal or diseased states of the auditory system at both the cortical and subcortical levels for processing of complex sound signals. This progress could lead to the development of viable therapies for various neurological disorders, and it could improve the development of neural prostheses by better parsing complex auditory scenes with the help of sound localization cues.
Broader impact: This project contributes to teaching at several levels. It will provide research training to two graduate students and the results of these studies are expected to constitute the bulk of their Ph.D. theses. In addition, a postdoctoral fellow will receive research training in collaborative research in computational neuroscience. Efforts will be made to include participation from students and researchers over a wide demographic, and the positions will be broadly advertised to ensure that qualified underrepresented candidates are aware of the opportunities. This research will also be integrated into our educational efforts by incorporating results into courses developed for both graduate and undergraduate students at Johns Hopkins University. The training, educational and outreach components will directly affect a large number of students and other groups outside of the university by exposing them to open problems and interdisciplinary research methods in neurophysiology and computational neuroscience. The PI and co-PIs are committed to advancement of women and underrepresented minorities in research and education. Furthermore, the proposed work will strengthen our infrastructure for further studies by pioneering new recording techniques that are based on closed-loop automated stimulus design. The research will be disseminated in many venues, including national and international meetings and peer reviewed journals. When applicable, our results will be disseminated in popular, non-technical literature as well. All software associated with this work will be made freely available on the internet, and appropriate subsets of the data collected for this project will be made available on the CRCNS-funded data sharing facility.
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CRCNS: Optimality principles of auditory representations
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批准号:8692555
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项目类别:
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资助金额:$31.02万
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财政年份:2013
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负责人:KECHEN ZHANG
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依托单位:
CRCNS: Optimality principles of auditory representations
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批准号:9119825
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项目类别:
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资助金额:$29.49万
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财政年份:2013
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负责人:KECHEN ZHANG
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依托单位:
CRCNS: Optimality principles of auditory representations
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批准号:9285759
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项目类别:
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资助金额:$28.94万
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财政年份:2013
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负责人:KECHEN ZHANG
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依托单位:
Information Processing in the Inferior Colliculus
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批准号:8642613
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项目类别:
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资助金额:$50.87万
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财政年份:1978
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负责人:KECHEN ZHANG
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依托单位:
国内基金
海外基金
小型类人猿合唱节奏的功能假说——宣
示社会关系(Social bond
advertising) ——验证研究
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批准号:
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项目类别:省市级项目
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资助金额:10.0万元
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批准年份:2025
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负责人:马海港
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依托单位: