Improving EEG reading of brain states for clinical applications using a data-driven joint model of FMRI and EEG
Improving EEG reading of brain states for clinical applications using a data-driven joint model of FMRI and EEG
批准号:
EP/I01487X/1
负责人:
Richard Wise
金额:
$13.56万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2011
资助国家:
英国
项目状态:
已结题
起止时间:
2011 至 --
中文摘要
近年来,研究人员通过神经成像技术对人脑的功能进行了大量研究。不同的技术各有长处和短处,每种技术都提供了一个从不同角度了解大脑功能的窗口。测量与不同感觉、思想和感觉相关的大脑活动的数量和位置的两种最常见的方法是脑电(EEG)和功能磁共振成像(FMRI)。EEG通过连接在头皮上的电极记录大量神经细胞协同活动产生的电信号。然而,功能磁共振成像使用核磁共振扫描仪记录与神经活动变化相关的局部血氧变化。EEG的优势是能够检测到神经活动的快速变化(毫秒时间分辨率),但缺乏精确定位大脑活动位置(空间分辨率)的能力。然而,功能磁共振成像具有良好的空间分辨率(几毫米),但时间分辨率较差(几秒钟),因为信号依赖于血液流动的变化:大脑的管道。因此,fMRI和EEG可以被认为是对EEG的补充,FMRI提供大脑活动的时间和地点。然而,尽管在研究中非常有用,医生和科学家也希望开发这些神经成像技术用于实际应用,这些技术依赖于读取大脑状态或测量大脑活动。这些包括但不限于脑机接口(BCI,使用大脑信号控制设备的残疾患者)、针对大脑的新药效果的评估以及癫痫的诊断(大脑内癫痫的类型和来源)。在某些情况下,EEG已经在这些应用中使用了很多年,并且具有便携式和相对便宜的相当大的优势,因此适合于常规的实验室或临床环境。为什么脑电的用处有限?正如我们已经看到的,它的空间分辨率相对较差,但它也可能不敏感,因为来自大脑的许多信号存在并混合在一起。功能磁共振成像是一种较新的技术,能够很好地区分不同的大脑活动模式,但需要核磁共振扫描仪:显然不是便携式的,而且相对昂贵。在像我们卡迪夫大学脑研究成像中心(Cubric)这样的研究实验室里,同时进行EEG和fMRI已经成为可能。我们的研究建议旨在提高EEG区分不同大脑状态或对特定类型刺激的反应的能力,如疼痛、药物或控制脑梗死。为了利用脑电的日常实用优势,我们希望提高它的独立能力。我们将在这个项目中使用功能磁共振成像来帮助我们做到这一点。功能磁共振成像如何帮助我们改善脑电?我们将在健康志愿者身上同时进行脑电和功能磁共振测量。我们将把这两种类型的测量联系在一起,形成一个从数据中得出的统计模型。该程序将发现EEG和fMRI数据之间的关联或关联。EEG信号的细微特征通常不容易识别,但与神经活动源的空间位置相关,将通过与擅长精确定位空间位置的fMRI数据的关联来突出。在建立了EEG和fMRI数据之间的数学关系并将其编码后,将仅使用EEG数据来模拟fMRI扫描。这些模拟的fMRI扫描将被使用,应用我们所知道的通过fMRI表示大脑活动的知识来解释EEG信号,有效地提高其空间分辨率。这将提高EEG本身区分大脑状态的能力,以便在BCI、药物开发和临床条件下使用。
英文摘要
In recent years researchers have learned a great deal about the function of the human brain through neuroimaging techniques. Different techniques have their own strengths and weaknesses and each offers a window on brain function with a different perspective. Two of the most common methods for measuring the amount and location of brain activity associated with different sensations, thoughts and feelings are electroencephalography (EEG) and functional magnetic resonance imaging (fMRI). EEG records from electrodes attached to the scalp the electrical signals from co-ordinated activity of large numbers of nerve cells. FMRI, however, records using an MRI scanner, the local changes in blood oxygenation associated with alterations in neural activity. EEG has the advantage of being able to detect rapid changes in neural activity (millisecond temporal resolution) but suffers from a poor ability to pinpoint the location of brain activity (spatial resolution). FMRI, however, has good spatial resolution (a few millimetres) but poor temporal resolution (a few seconds) because the signal relies on changes in blood flow: the plumbing of the brain. FMRI and EEG can therefore be regarded as complementary with EEG giving the 'when' and fMRI giving the 'where' of brain activity.However, while very useful in research, doctors and scientists want also to develop these neuroimaging techniques for practical uses which rely on reading the state of the brain or measuring the activity of the brain. These include, but are not limited to, brain-computer interfaces (BCI, disabled patients using brain signals to control a device), assessment of the effects of new medicines targeted at the brain and the diagnosis of epilepsy (the type and source of seizures from within the brain). EEG has been used, for many years in some cases, in these applications and has the considerable advantage of being portable and comparatively cheap and therefore appropriate for a routine lab or clinical setting. Why is the usefulness of EEG limited? As we have seen, its spatial resolution is comparatively poor but it can also be insensitive because of many signals from the brain being present and mixing together. FMRI is a more recent technique able to discriminate very well different patterns of brain activity but requires an MRI scanner: clearly not portable and comparatively expensive. In research labs such as ours at Cardiff University Brain Research Imaging Centre (CUBRIC), it has become possible to perform EEG and fMRI simultaneously. Our research proposal aims to improve the ability of EEG to discriminate different brain states or responses to specific types of stimulation, such as pain, drugs or for control of BCIs. To exploit the day-to-day practical advantages of EEG we wish to improve its stand alone capabilities. We will use fMRI in this project to help us do this. How can fMRI help us to improve EEG? We will use EEG and fMRI measurements acquired simultaneously on healthy volunteers. We will relate these two types of measurements together in what it known as a statistical model derived from the data. This procedure will discover associations or correlations between the EEG and fMRI data. Subtle features of the EEG signal, which are not normally easily identified but which are associated with the spatial location of the source of neural activity, will be highlighted by their association with the fMRI data, which is good at pinpointing locations in space. Having established and codified the relationship between the EEG and fMRI data in mathematical terms, EEG data alone will be used to simulate fMRI scans. These simulated fMRI scans will be used, applying what we know about the representation of brain activity by fMRI, to interpret the EEG signal effectively improving its spatial resolution. This will improve the ability of EEG on its own to tell the difference between brain states for the uses in BCI, development of medicines and clinical conditions.
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批准号:EP/S025901/1
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依托单位:
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批准号:MR/K014129/1
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依托单位:
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