The Audible Human Project
有声人类计划
基本信息
- 批准号:8531700
- 负责人:
- 金额:$ 29.72万
- 依托单位:
- 依托单位国家:美国
- 项目类别:
- 财政年份:2010
- 资助国家:美国
- 起止时间:2010-08-01 至 2015-07-31
- 项目状态:已结题
- 来源:
- 关键词:3-DimensionalAcousticsAdvanced DevelopmentAnatomyAnimal ModelAnimal TestingAuscultationCanis familiarisCardiovascular systemCharacteristicsCommunity Health EducationComputer SimulationData SetDevelopmentDiagnosticDiagnostic ProcedureDimensionsDiseaseEducationEducational process of instructingEnvironmentFeedbackFemaleFundingGenerationsGoalsGrantHearingHome environmentHumanHuman bodyHydrothoraxImaging technologyIntestinesJournalsLasersLungMeasurementMechanicsMedicalMedical Device DesignsMedical EducationMedical ImagingMedical ResearchMedicineMethodologyMethodsMetricModalityModelingMonitorMucous body substanceObesityOperative Surgical ProceduresOral cavityOutpatientsPathologyPatientsPercussionPhysiciansPleural effusion disorderPneumothoraxPositioning AttributeProductionPropertyPublic HealthPulmonary EmphysemaResearchResearch PersonnelResearch TrainingResourcesSimulateSkinSourceStethoscopesStudentsSurfaceTactileTechnologyTimeTreesUltrasonographyUnited States National Library of MedicineValidationVisible Human ProjectVisionVisualization softwareWorkacoustic imagingbasecombatdesignemergency service responderexperienceglottishapticshuman subjectimaging modalityimprovedmalemanphantom modelpressurepublic health relevancesensorsimulationskillssoundsuccesstooltransmission processtumorvalidation studiesvirtualvirtual realityweb site
项目摘要
DESCRIPTION (provided by applicant): The Visible Human Project (VHP) of the National Library of Medicine has catalyzed the development of advanced visualization software that has aided in anatomy education and has been an invaluable resource to biomedical researchers. It has aided in the development of numerous technologies, with applications spanning from improving imaging technology to simulating surgical procedures. Our long-term goal is to develop a comparable "Audible Human Project" (AHP). This would accurately simulate the production, transmission and noninvasive measurement of naturally-occurring sounds associated with cardiovascular, pulmonary and gastro-intestinal function. It would also model externally introduced sounds, for example via percussion at the skin surface. Constructed from a baseline of acoustic characteristics recorded for specific human subjects with specific pathologies and sensors, the Audible Human model extrapolates the acoustic characteristics for virtual patients with different pathologies and anatomical dimensions. It also simulates access to the pathologies of virtual patients using different acoustic sensors from the original recording sensor. Such a comprehensive tool would have a significant impact on medical education and research. It could catalyze the development of new inexpensive, portable auscultative methods, as well as more advanced multimode acoustic imaging modalities. From an educational perspective, recent studies have emphasized the continued importance of skilled auscultation in medicine and the fact that this skill is in decline among younger physicians. The AHP could help provide a more effective educational experience. A student would not just listen to audio recordings, but would be able to interactively vary anatomy and pathology, as well as sensor position, type and contact pressure, so as to hear, "see" and "feel" (in a haptic environment) the results and associate them with quantifiable metrics. The goal of this 5-year R01 application (which builds upon a R03 pilot grant that received a priority score of 126) is to develop and experimentally validate comprehensive male and female upper torso acoustic models capable of representing healthy and specific pathological conditions, including pneumothorax, pleural effusion, hydrothorax, mucous plugs, emphysema, obesity and masses (tumors) in the lung. These models will simulate breath sound generation, transmission and measurement via contact and non-contact sensors on the torso surface. They will also simulate the transmission and measurement of externally introduced sound via introduction of sound at the glottis into the bronchial airway tree or via percussion on the torso surface. In order to achieve this goal, the following specific aims will be undertaken: (1) Develop the AHP computer simulation model to simulate breath sound generation, how specific lung pathologies alter the acoustic environment, and how different contact acoustic sensor dynamics alter measurements; (2) Perform mechanical phantom model studies to evaluate and refine the AHP computer model; (3) Perform canine animal model studies to further refine the AHP computer model; and (4) Perform human subject studies to validate the AHP computer model.
PUBLIC HEALTH RELEVANCE: The envisioned comprehensive Audible Human Project, like the Visible Human Project, will be relevant to both medical research and education. It would significantly impact public health by catalyzing the development of improved medical diagnostic techniques and by providing a more effective educational paradigm for teaching stethoscopic skills, which are in decline as noted in recent studies. The student would not just listen to audio recordings but would be able to interactively vary anatomy and disease, as well as stethoscope characteristics and hear, "see" and "feel" the results.
描述(由申请人提供):美国国家医学图书馆的可视人体项目(VHP)促进了高级可视化软件的发展,该软件有助于解剖学教育,并已成为生物医学研究人员的宝贵资源。它帮助开发了许多技术,应用范围从改进成像技术到模拟外科手术。我们的长期目标是开发一个类似的“可听人类项目”(AHP)。这将准确地模拟与心血管、肺和胃肠功能相关的自然发生的声音的产生、传输和非侵入性测量。它还可以模拟外部引入的声音,例如通过在皮肤表面的敲击。根据为具有特定病理和传感器的特定人类受试者记录的声学特性的基线构建,可听人模型推断具有不同病理和解剖尺寸的虚拟患者的声学特性。它还模拟使用来自原始记录传感器的不同声学传感器访问虚拟患者的病理。这样一个全面的工具将对医学教育和研究产生重大影响。它可以促进新的廉价,便携式听诊方法的发展,以及更先进的多模式声学成像模式。从教育的角度来看,最近的研究强调了熟练的听诊在医学中的持续重要性,以及这种技能在年轻医生中正在下降的事实。AHP可以帮助提供更有效的教育经验。学生不仅可以听录音,还可以交互地改变解剖学和病理学,以及传感器位置、类型和接触压力,以便听到、“看到”和“感觉到”(在触觉环境中)结果,并将它们与可量化的指标相关联。这项为期5年的R 01申请(建立在R 03试点资助的基础上,获得了126分的优先级)的目标是开发和实验验证能够代表健康和特定病理状况的综合男性和女性上躯干声学模型,包括气胸、胸腔积液、胸腔积液、粘液栓、肺气肿、肥胖和肺部肿块(肿瘤)。这些模型将通过躯干表面上的接触式和非接触式传感器模拟呼吸声的产生、传输和测量。他们还将通过将声门处的声音引入支气管气道树或通过敲击躯干表面来模拟外部引入声音的传输和测量。为了实现这一目标,将进行以下具体目标:(1)开发AHP计算机模拟模型,以模拟呼吸声生成、特定肺部病变如何改变声学环境以及不同接触式声学传感器动力学如何改变测量结果;(2)进行机械体模模型研究,以评估和改进AHP计算机模型;(3)进行犬动物模型研究以进一步改进AHP计算机模型;以及(4)进行人类受试者研究以验证AHP计算机模型。
公共卫生相关性:设想中的综合性可听人项目,就像可视人项目一样,将与医学研究和教育相关。它将通过促进改进的医疗诊断技术的发展和为教授听诊器技能提供更有效的教育模式来显著影响公共卫生,正如最近的研究所指出的那样,听诊器技能正在下降。学生不仅可以听录音,还可以交互地改变解剖结构和疾病,以及听诊器的特征,并听到,“看到”和“感觉”结果。
项目成果
期刊论文数量(15)
专著数量(0)
科研奖励数量(0)
会议论文数量(0)
专利数量(0)
Dynamic viscoelastic models of human skin using optical elastography.
使用光弹力图的人体皮肤的动态粘弹性模型。
- DOI:10.1088/0031-9155/60/17/6975
- 发表时间:2015-09-07
- 期刊:
- 影响因子:3.5
- 作者:Kearney SP;Khan A;Dai Z;Royston TJ
- 通讯作者:Royston TJ
A model of lung parenchyma stress relaxation using fractional viscoelasticity.
使用分数粘弹性的肺实质释放模型。
- DOI:10.1016/j.medengphy.2015.05.003
- 发表时间:2015-08
- 期刊:
- 影响因子:2.2
- 作者:Dai Z;Peng Y;Mansy HA;Sandler RH;Royston TJ
- 通讯作者:Royston TJ
Ultra wideband (0.5-16 kHz) MR elastography for robust shear viscoelasticity model identification.
- DOI:10.1088/0031-9155/59/24/7717
- 发表时间:2014-12-21
- 期刊:
- 影响因子:3.5
- 作者:Liu Y;Yasar TK;Royston TJ
- 通讯作者:Royston TJ
Geometric features of pig airways using computed tomography.
- DOI:10.14814/phy2.12995
- 发表时间:2016-10
- 期刊:
- 影响因子:2.5
- 作者:Azad MK;Mansy HA;Gamage PT
- 通讯作者:Gamage PT
Generation of Pig Airways using Rules Developed from the Measurements of Physical Airways.
使用根据物理气道测量制定的规则生成猪气道。
- DOI:10.4172/2155-9538.1000203
- 发表时间:2016
- 期刊:
- 影响因子:0
- 作者:Azad,MdKhurshidul;Mansy,HansenA
- 通讯作者:Mansy,HansenA
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THOMAS J ROYSTON其他文献
THOMAS J ROYSTON的其他文献
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{{ truncateString('THOMAS J ROYSTON', 18)}}的其他基金
Online Multivariate Statistical Neural Imaging Data Analysis
在线多元统计神经成像数据分析
- 批准号:
7989731 - 财政年份:2010
- 资助金额:
$ 29.72万 - 项目类别:
Online Multivariate Statistical Neural Imaging Data Analysis
在线多元统计神经成像数据分析
- 批准号:
8099695 - 财政年份:2010
- 资助金额:
$ 29.72万 - 项目类别:
A MULTIMODE SONIC & ULTRASONIC DIAGNOSTIC IMAGING METHOD
多模式索尼克
- 批准号:
6730912 - 财政年份:2003
- 资助金额:
$ 29.72万 - 项目类别:
A MULTIMODE SONIC & ULTRASONIC DIAGNOSTIC IMAGING METHOD
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6394737 - 财政年份:2000
- 资助金额:
$ 29.72万 - 项目类别:
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