Motion, Artifact Cancelling MIMO Method for Ambulatory Respiratory Rate Monitorin
Motion, Artifact Cancelling MIMO Method for Ambulatory Respiratory Rate Monitorin
批准号:
8702170
负责人:
Amit Gore
金额:
$23.02万
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:
2013-08-01 至 2016-07-31
关键词:
AlgorithmsAmbulatory MonitoringBreathingCaregiversChestChronic Obstructive Airway DiseaseClinicalDataData SetDiseaseEarly InterventionElectrocardiogramElectrodesEvaluationEventFutureGeneral WardGoalsGovernmentHealthHeart failureHome environmentImpedance PlethysmographyJointsLeadLung diseasesMachine LearningMeasurementMeasuresMethodsMichiganMonitorMorphologic artifactsMotionOutcomeOutputPatientsPatternPerformancePersonsProcessQuality of lifeResearchRespirationShortness of BreathSignal TransductionSourceSymptomsSystemTechniquesTestingTimeUniversitiesWorkanalogbaseclinical practicedata acquisitiondesigndigitalelectric impedanceexperiencehuman subjectimprovedinstrumentminiaturizeneglectnovelpreventprogramsprototypepublic health relevancerespiratorysedentarysignal processing
中文摘要
描述(由申请人提供):心力衰竭(HF)和/或慢性阻塞性肺疾病(COPD)患者的呼吸短促和呼吸困难与病情恶化直接相关。对这些患者的呼吸状态进行持续监测可以提醒护理人员进行早期干预以控制疾病症状,从而预防灾难性事件并改善生活质量。不幸的是,在临床实践中,由于执行这些测量的普遍困难,特别是在非插管的门诊环境中,对呼吸频率和模式的持续监测经常被忽视或忽视。目前捕获患者气道的测量方法是最准确的,但难以管理,并且通常对患者来说难以忍受,而依赖于捕获胸部运动的方法由于运动伪影而准确性较差。提出了一种基于mimo的运动伪影消除多导联阻抗测量方法,用于鲁棒动态呼吸频率监测。我们最近证明呼吸和运动伪影在多导联阻抗测量的流动受试者中理论上是可分离的。与呼吸信号相比,运动伪像是零星的、局部的高能非平稳事件。由于传统数据采集系统的动态范围有限和量化误差,源分离算法难以提取可靠的呼吸信号信息。所提出的MIMO系统方法通过将统计学习直接集成到模拟到数字转换过程中来克服这些限制。因此,这种小型化的硬件实现方法能够连续、实时和节能地跟踪被运动伪影破坏的呼吸信号。基于MIMO算法的初步研究显示了动态呼吸频率监测的良好效果。在本研究中,我们计划开发优化的MIMO系统硬件原型,以验证其在真实动态条件下的性能。我们相信,由于电极的常规使用,基于MIMO的多导联阻抗测量方法可能被临床医生和患者所接受。展望未来,在我们未来的工作中,我们设想将拟议的研究与ECG监测整合在一起,共享同一组电极,为普通病房以及门诊患者的家庭健康/健康监测提供连续和准确的心肺信息。
英文摘要
DESCRIPTION (provided by applicant): Shortness of breath and difficulty in breathing are directly associated with deteriorating conditions in patients with heart failure (HF) and/or chroni obstructive pulmonary disease (COPD). Continuous monitoring of respiratory status in these patients can alert caregivers to administer early interventions to manage disease symptoms, thus preventing catastrophic events and improving quality of life. Unfortunately, continuous monitoring of respiratory rate and pattern is often overlooked or neglected in clinical practice due to the general difficulty in performing these measurements, especially in non-intubated ambulatory settings. Present measurement methods that capture the patient's airway are most accurate but difficult to administer and often intolerable for the patient, whereas methods that rely on capturing chest motion historically suffer from poor accuracy due to motion artifacts. We propose a MIMO-based motion artifact cancelling multi-lead impedance measurement method for robust ambulatory respiratory rate monitoring. We have recently demonstrated that respiration and motion artifacts are theoretically separable in ambulatory subjects with multi-lead impedance measurements. The motion artifacts are sporadic and localized high energy non-stationary events compared to respiratory signals. Due to the limited dynamic range and quantization errors of the conventional data acquisition system, source separation algorithms struggle to extract reliable respiratory signal information. The proposed MIMO system approach overcomes these limitations by integrating statistical learning directly within analog to digital conversion process. As a result, this miniaturized hardware realization method enables continuous, real-time and power-efficient tracking of the respiratory signal corrupted by motion artifacts. Preliminary study of the MIMO based algorithm has shown promising results for ambulatory respiratory rate monitoring. In this research we plan to develop the optimized hardware prototype of the MIMO system to validate the performance under real ambulatory conditions. We believe that the MIMO based multi-lead imped- ance measurement method is likely to be accepted by both clinicians and patients due to routine use of electrodes. Going forward, in our future work we envision integrating the proposed research with ECG monitoring sharing same set of electrodes to provide continuous and accurate cardiorespiratory information for general ward as well as for home health/wellness monitoring of ambulatory patients.
期刊论文(1)
专著(0)
科研奖励(0)
会议论文
Virtual Spirometry and Activity Monitoring Using Multichannel Electrical Impedance Plethysmographs in Ambulatory Settings.
在动态环境中使用多通道电阻体积描记器进行虚拟肺活量测定和活动监测。
DOI:
10.1109/tbcas.2017.2688339
发表时间:
2017
期刊:
IEEE transactions on biomedical circuits and systems
影响因子:
5.1
作者:
[Khan,HassanAqeel, Gore,Amit, Ashe,Jeffrey, Chakrabartty,Shantanu]
通讯作者:
Chakrabartty,Shantanu
Motion, Artifact Cancelling MIMO Method for Ambulatory Respiratory Rate Monitorin
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批准号:8582895
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项目类别:
-
资助金额:$30.22万
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财政年份:2013
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负责人:Amit Gore
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依托单位:
海外基金