研究了自闭症数据集,以确定自闭症和健康组之间的差异。为此,分析了这两组的静止状态功能磁共振成像(RS-FMRI)数据,并创建了大脑区域之间的连接网络。开发了几个分类框架,以区分组之间的连接模式。比较了统计推断和精度的最佳模型,并分析了精度和模型解释性之间的权衡。最后,据报道,分类精度措施证明了我们框架的性能。我们的最佳模型可以以71%的精度将自闭症和健康的患者分类为多站点I数据。
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预测基金绩效对投资者和基金经理都是有益的,但这是一项艰巨的任务。在本文中,我们测试了深度学习模型是否比传统统计技术更准确地预测基金绩效。基金绩效通常通过Sharpe比率进行评估,该比例代表了风险调整的绩效,以确保基金之间有意义的可比性。我们根据每月收益率数据序列数据计算了年度夏普比率,该数据的时间序列数据为600多个投资于美国上市大型股票的开放式共同基金投资。我们发现,经过现代贝叶斯优化训练的长期短期记忆(LSTM)和封闭式复发单元(GRUS)深度学习方法比传统统计量相比,预测基金的Sharpe比率更高。结合了LSTM和GRU的预测的合奏方法,可以实现所有模型的最佳性能。有证据表明,深度学习和结合能提供有希望的解决方案,以应对基金绩效预测的挑战。
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准确诊断自闭症谱系障碍(ASD),随后有效康复对该疾病的管理至关重要。人工智能(AI)技术可以帮助医生应用自动诊断和康复程序。 AI技术包括传统机器学习(ML)方法和深度学习(DL)技术。常规ML方法采用各种特征提取和分类技术,但在DL中,特征提取和分类过程是智能的,一体地完成的。诊断ASD的DL方法已经专注于基于神经影像动物的方法。神经成像技术是无侵入性疾病标志物,可能对ASD诊断有用。结构和功能神经影像技术提供了关于大脑的结构(解剖结构和结构连接)和功能(活性和功能连接)的实质性信息。由于大脑的复杂结构和功能,提出了在不利用像DL这样的强大AI技术的情况下使用神经影像数据进行ASD诊断的最佳程序可能是具有挑战性的。本文研究了借助DL网络进行以区分ASD进行的研究。还评估了用于支持ASD患者的康复工具,用于利用DL网络的支持患者。最后,我们将在ASD的自动检测和康复中提出重要挑战,并提出了一些未来的作品。
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痴呆症是一种神经精神脑障碍,通常会在一个或多个脑细胞停止部分或根本停止工作时发生。在疾病的早期阶段诊断这种疾病是从不良后果中挽救生命并为他们提供更好的医疗保健的至关重要的任务。事实证明,机器学习方法在预测疾病早期痴呆症方面是准确的。痴呆的预测在很大程度上取决于通常从归一化的全脑体积(NWBV)和地图集缩放系数(ASF)收集的收集数据类型,这些数据通常测量并从磁共振成像(MRIS)中进行校正。年龄和性别等其他生物学特征也可以帮助诊断痴呆症。尽管许多研究使用机器学习来预测痴呆症,但我们无法就这些方法的稳定性得出结论,而这些方法在不同的实验条件下更准确。因此,本文研究了有关痴呆预测的机器学习算法的性能的结论稳定性。为此,使用7种机器学习算法和两种功能还原算法,即信息增益(IG)和主成分分析(PCA)进行大量实验。为了检查这些算法的稳定性,IG的特征选择阈值从20%更改为100%,PCA尺寸从2到8。这导致了7x9 + 7x7 = 112实验。在每个实验中,都记录了各种分类评估数据。获得的结果表明,在七种算法中,支持向量机和天真的贝叶斯是最稳定的算法,同时更改选择阈值。同样,发现使用IG似乎比使用PCA预测痴呆症更有效。
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Neuroimaging-based prediction methods for intelligence and cognitive abilities have seen a rapid development in literature. Among different neuroimaging modalities, prediction based on functional connectivity (FC) has shown great promise. Most literature has focused on prediction using static FC, but there are limited investigations on the merits of such analysis compared to prediction based on dynamic FC or region level functional magnetic resonance imaging (fMRI) times series that encode temporal variability. To account for the temporal dynamics in fMRI data, we propose a deep neural network involving bi-directional long short-term memory (bi-LSTM) approach that also incorporates feature selection mechanism. The proposed pipeline is implemented via an efficient GPU computation framework and applied to predict intelligence scores based on region level fMRI time series as well as dynamic FC. We compare the prediction performance for different intelligence measures based on static FC, dynamic FC, and region level time series acquired from the Adolescent Brain Cognitive Development (ABCD) study involving close to 7000 individuals. Our detailed analysis illustrates that static FC consistently has inferior prediction performance compared to region level time series or dynamic FC for unimodal rest and task fMRI experiments, and in almost all cases using a combination of task and rest features. In addition, the proposed bi-LSTM pipeline based on region level time series identifies several shared and differential important brain regions across task and rest fMRI experiments that drive intelligence prediction. A test-retest analysis of the selected features shows strong reliability across cross-validation folds. Given the large sample size from ABCD study, our results provide strong evidence that superior prediction of intelligence can be achieved by accounting for temporal variations in fMRI.
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机器学习在医学图像分析中发挥着越来越重要的作用,产卵在神经影像症的临床应用中的新进展。之前有一些关于机器学习和癫痫的综述,它们主要专注于电生理信号,如脑电图(EEG)和立体脑电图(SEENG),同时忽略癫痫研究中神经影像的潜力。 NeuroImaging在确认癫痫区域的范围内具有重要的优点,这对于手术后的前诊所评估和评估至关重要。然而,脑电图难以定位大脑中的准确癫痫病变区。在这篇综述中,我们强调了癫痫诊断和预后在癫痫诊断和预后的背景下神经影像学和机器学习的相互作用。我们首先概述癫痫诊所,MRI,DWI,FMRI和PET中使用的癫痫和典型的神经影像姿态。然后,我们在将机器学习方法应用于神经影像数据的方法:i)将手动特征工程和分类器的传统机器学习方法阐述了两种方法,即卷积神经网络和自动化器等深度学习方法。随后,详细地研究了对癫痫,定位和横向化任务等分割,本地化和横向化任务的应用,以及与诊断和预后直接相关的任务。最后,我们讨论了目前的成就,挑战和潜在的未来方向,希望为癫痫的计算机辅助诊断和预后铺平道路。
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作为自然现象的地震,历史上不断造成伤害和人类生活的损失。地震预测是任何社会计划的重要方面,可以增加公共准备,并在很大程度上减少损坏。然而,由于地震的随机特征以及实现了地震预测的有效和可靠模型的挑战,迄今为止努力一直不足,需要新的方法来解决这个问题。本文意识到​​这些问题,提出了一种基于注意机制(AM),卷积神经网络(CNN)和双向长短期存储器(BILSTM)模型的新型预测方法,其可以预测数量和最大幅度中国大陆各地区的地震为基于该地区的地震目录。该模型利用LSTM和CNN具有注意机制,以更好地关注有效的地震特性并产生更准确的预测。首先,将零阶保持技术应用于地震数据上的预处理,使得模型的输入数据更适当。其次,为了有效地使用空间信息并减少输入数据的维度,CNN用于捕获地震数据之间的空间依赖性。第三,使用Bi-LSTM层来捕获时间依赖性。第四,引入了AM层以突出其重要的特征来实现更好的预测性能。结果表明,该方法具有比其他预测方法更好的性能和概括能力。
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Seizure type identification is essential for the treatment and management of epileptic patients. However, it is a difficult process known to be time consuming and labor intensive. Automated diagnosis systems, with the advancement of machine learning algorithms, have the potential to accelerate the classification process, alert patients, and support physicians in making quick and accurate decisions. In this paper, we present a novel multi-path seizure-type classification deep learning network (MP-SeizNet), consisting of a convolutional neural network (CNN) and a bidirectional long short-term memory neural network (Bi-LSTM) with an attention mechanism. The objective of this study was to classify specific types of seizures, including complex partial, simple partial, absence, tonic, and tonic-clonic seizures, using only electroencephalogram (EEG) data. The EEG data is fed to our proposed model in two different representations. The CNN was fed with wavelet-based features extracted from the EEG signals, while the Bi-LSTM was fed with raw EEG signals to let our MP-SeizNet jointly learns from different representations of seizure data for more accurate information learning. The proposed MP-SeizNet was evaluated using the largest available EEG epilepsy database, the Temple University Hospital EEG Seizure Corpus, TUSZ v1.5.2. We evaluated our proposed model across different patient data using three-fold cross-validation and across seizure data using five-fold cross-validation, achieving F1 scores of 87.6% and 98.1%, respectively.
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近年来,随着传感器和智能设备的广泛传播,物联网(IoT)系统的数据生成速度已大大增加。在物联网系统中,必须经常处理,转换和分析大量数据,以实现各种物联网服务和功能。机器学习(ML)方法已显示出其物联网数据分析的能力。但是,将ML模型应用于物联网数据分析任务仍然面临许多困难和挑战,特别是有效的模型选择,设计/调整和更新,这给经验丰富的数据科学家带来了巨大的需求。此外,物联网数据的动态性质可能引入概念漂移问题,从而导致模型性能降解。为了减少人类的努力,自动化机器学习(AUTOML)已成为一个流行的领域,旨在自动选择,构建,调整和更新机器学习模型,以在指定任务上实现最佳性能。在本文中,我们对Automl区域中模型选择,调整和更新过程中的现有方法进行了审查,以识别和总结将ML算法应用于IoT数据分析的每个步骤的最佳解决方案。为了证明我们的发现并帮助工业用户和研究人员更好地实施汽车方法,在这项工作中提出了将汽车应用于IoT异常检测问题的案例研究。最后,我们讨论并分类了该领域的挑战和研究方向。
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在这项工作中,我们审查并评估了一个具有公开可用和广泛使用的数据集的深度学习知识追踪(DLKT)模型,以及学习编程的新型学生数据集。评估的DLKT模型已重新实现,用于评估先前报告的结果的可重复性和可复制性。我们测试在与模型的主要架构上独立于模型的比较模型中找到的不同输入和输出层变化,以及在某些研究中隐含地和明确地使用的不同最大尝试计数选项。几个指标用于反映评估知识追踪模型的质量。评估的知识追踪模型包括Vanilla-DKT,两个长短期内存深度知识跟踪(LSTM-DKT)变体,两个动态键值存储器网络(DKVMN)变体,以及自我细致的知识跟踪(SAKT)。我们评估Logistic回归,贝叶斯知识跟踪(BKT)和简单的非学习模型作为基准。我们的结果表明,DLKT模型一般优于非DLKT模型,DLKT模型之间的相对差异是微妙的,并且在数据集之间经常变化。我们的研究结果还表明,通常的纯模型,例如平均预测,比更复杂的知识追踪模型更好地表现出更好的性能,尤其是在准确性方面。此外,我们的公制和封路数据分析显示,用于选择最佳模型的度量标准对模型的性能有明显的影响,并且该度量选择可以影响模型排名。我们还研究了输入和输出层变化的影响,过滤出长期尝试序列,以及随机性和硬件等非模型属性。最后,我们讨论模型性能可重量和相关问题。我们的模型实现,评估代码和数据作为本工作的一部分发布。
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2019年12月,一个名为Covid-19的新型病毒导致了迄今为止的巨大因果关系。与新的冠状病毒的战斗在西班牙语流感后令人振奋和恐怖。虽然前线医生和医学研究人员在控制高度典型病毒的传播方面取得了重大进展,但技术也证明了在战斗中的重要性。此外,许多医疗应用中已采用人工智能,以诊断许多疾病,甚至陷入困境的经验丰富的医生。因此,本调查纸探讨了提议的方法,可以提前援助医生和研究人员,廉价的疾病诊断方法。大多数发展中国家难以使用传统方式进行测试,但机器和深度学习可以采用显着的方式。另一方面,对不同类型的医学图像的访问已经激励了研究人员。结果,提出了一种庞大的技术数量。本文首先详细调了人工智能域中传统方法的背景知识。在此之后,我们会收集常用的数据集及其用例日期。此外,我们还显示了采用深入学习的机器学习的研究人员的百分比。因此,我们对这种情况进行了彻底的分析。最后,在研究挑战中,我们详细阐述了Covid-19研究中面临的问题,我们解决了我们的理解,以建立一个明亮健康的环境。
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Over the years, Machine Learning models have been successfully employed on neuroimaging data for accurately predicting brain age. Deviations from the healthy brain aging pattern are associated to the accelerated brain aging and brain abnormalities. Hence, efficient and accurate diagnosis techniques are required for eliciting accurate brain age estimations. Several contributions have been reported in the past for this purpose, resorting to different data-driven modeling methods. Recently, deep neural networks (also referred to as deep learning) have become prevalent in manifold neuroimaging studies, including brain age estimation. In this review, we offer a comprehensive analysis of the literature related to the adoption of deep learning for brain age estimation with neuroimaging data. We detail and analyze different deep learning architectures used for this application, pausing at research works published to date quantitatively exploring their application. We also examine different brain age estimation frameworks, comparatively exposing their advantages and weaknesses. Finally, the review concludes with an outlook towards future directions that should be followed by prospective studies. The ultimate goal of this paper is to establish a common and informed reference for newcomers and experienced researchers willing to approach brain age estimation by using deep learning models
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人工神经网络(ANN)能够学习,纠正错误和将大量原始数据转化为治疗和护理的有用医疗决策,这增加了增强患者安全和护理质量的普及。因此,本文审查了ANN的关键作用为患者医疗保健决策提供有价值的见解和有效的疾病诊断。我们彻底审查了现有文献中的不同类型的ANN,以便为复杂应用程序进行高级ANNS适配。此外,我们还调查Ann的各种疾病诊断和治疗的进步,例如病毒,皮肤,癌症和Covid-19。此外,我们提出了一种名为ConxNet的新型深度卷积神经网络(CNN)模型,用于提高Covid-19疾病的检测准确性。 ConxNet经过培训并使用不同的数据集进行测试,它达到了超过97%的检测精度和精度,这明显优于现有型号。最后,我们突出了未来的研究方向和挑战,例如算法的复杂性,可用数据,隐私和安全性,以及与ANN的生物传染集成。这些研究方向需要大幅关注改善医疗诊断和治疗应用的ANN的范围。
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最近,深度学习模型从脑成像数据中诊断神经精神疾病的应用已越来越关注。但是,实际上,基于操作磁共振成像数据探索大脑功能连通性的相互作用对于研究精神疾病至关重要。由于注意力缺陷和多动症(ADHD)是一种在早期很难诊断的一种慢性疾病,因此使用机器学习模型在危急状况之前治疗患者有必要提高此类疾病的诊断准确性。在这项研究中,我们利用了医学成像数据中的大脑功能连接性与模型特征的动力学,这可以提取正常对照(NC)和ADHD之间的大脑功能相互作用的差异。为了满足这一要求,我们使用贝叶斯连接点更改点模型,使用局部二进制编码方法和内核分层极端学习机来检测大脑动力学,以分类功能。为了验证我们的模型,我们在几个现实世界的儿童数据集上尝试了它,与最新模型相比,我们的结果达到了较高的分类率。
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在神经科学领域,脑活动分析总是被认为是一个重要领域。精神分裂症(SZ)是一种严重影响世界各地人民的思想,行为和情感的大脑障碍。在Sz检测中被证明是一种有效的生物标志物的脑电图(EEG)。由于其非线性结构,EEG是非线性时间序列信号,并利用其进行调查,这是对其的影响。本文旨在利用深层学习方法提高基于EEG基于SZ检测的性能。已经提出了一种新的混合深度学习模型(精神分裂症混合神经网络),已经提出了卷积神经网络(CNN)和长短期存储器(LSTM)的组合。 CNN网络用于本地特征提取,LSTM已用于分类。所提出的模型仅与CNN,仅限LSTM和基于机器学习的模型进行了比较。已经在两个不同的数据集上进行了评估所有模型,其中数据集1由19个科目和数据集2组成,由16个科目组成。使用不同频带上的各种参数设置并在头皮上使用不同的电极组来进行几个实验。基于所有实验,显然提出的混合模型(SZHNN)与其他现有型号相比,拟议的混合模型(SZHNN)提供了99.9%的最高分类精度。该建议的模型克服了不同频带的影响,甚至没有5个电极显示出91%的更好的精度。该拟议的模型也在智能医疗保健和远程监控应用程序的医疗器互联网上进行评估。
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Mapping the connectome of the human brain using structural or functional connectivity has become one of the most pervasive paradigms for neuroimaging analysis. Recently, Graph Neural Networks (GNNs) motivated from geometric deep learning have attracted broad interest due to their established power for modeling complex networked data. Despite their superior performance in many fields, there has not yet been a systematic study of how to design effective GNNs for brain network analysis. To bridge this gap, we present BrainGB, a benchmark for brain network analysis with GNNs. BrainGB standardizes the process by (1) summarizing brain network construction pipelines for both functional and structural neuroimaging modalities and (2) modularizing the implementation of GNN designs. We conduct extensive experiments on datasets across cohorts and modalities and recommend a set of general recipes for effective GNN designs on brain networks. To support open and reproducible research on GNN-based brain network analysis, we host the BrainGB website at https://braingb.us with models, tutorials, examples, as well as an out-of-box Python package. We hope that this work will provide useful empirical evidence and offer insights for future research in this novel and promising direction.
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早期发现阿尔茨海默氏病对于部署干预措施和减慢疾病进展至关重要。在过去的十年中,已经探索了许多机器学习和深度学习算法,目的是为阿尔茨海默氏症建立自动检测。数据增强技术和先进的深度学习体系结构的进步已经在该领域开辟了新的边界,研究正在快速发展。因此,这项调查的目的是概述有关阿尔茨海默氏病诊断深度学习模型的最新研究。除了对众多数据源,神经网络架构以及常用的评估措施进行分类外,我们还对实施和可重复性进行了分类。我们的目标是协助感兴趣的研究人员跟上最新的发展,并将早期的调查作为基准。此外,我们还指出了该主题的未来研究方向。
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在全球范围内,有实质性的未满足需要有效地诊断各种疾病。不同疾病机制的复杂性和患者人群的潜在症状具有巨大挑战,以发展早期诊断工具和有效治疗。机器学习(ML),人工智能(AI)区域,使研究人员,医师和患者能够解决这些问题的一些问题。基于相关研究,本综述解释了如何使用机器学习(ML)和深度学习(DL)来帮助早期识别许多疾病。首先,使用来自Scopus和Science(WOS)数据库的数据来给予所述出版物的生物计量研究。对1216个出版物的生物计量研究进行了确定,以确定最多产的作者,国家,组织和最引用的文章。此次审查总结了基于机器学习的疾病诊断(MLBDD)的最新趋势和方法,考虑到以下因素:算法,疾病类型,数据类型,应用和评估指标。最后,该文件突出了关键结果,并向未来的未来趋势和机遇提供了解。
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Structural alterations have been thoroughly investigated in the brain during the early onset of schizophrenia (SCZ) with the development of neuroimaging methods. The objective of the paper is an efficient classification of SCZ in 2 different classes: Cognitive Normal (CN), and SCZ using magnetic resonance imaging (MRI) images. This paper proposed a lightweight 3D convolutional neural network (CNN) based framework for SCZ diagnosis using MRI images. In the proposed model, lightweight 3D CNN is used to extract both spatial and spectral features simultaneously from 3D volume MRI scans, and classification is done using an ensemble bagging classifier. Ensemble bagging classifier contributes to preventing overfitting, reduces variance, and improves the model's accuracy. The proposed algorithm is tested on datasets taken from three benchmark databases available as open-source: MCICShare, COBRE, and fBRINPhase-II. These datasets have undergone preprocessing steps to register all the MRI images to the standard template and reduce the artifacts. The model achieves the highest accuracy 92.22%, sensitivity 94.44%, specificity 90%, precision 90.43%, recall 94.44%, F1-score 92.39% and G-mean 92.19% as compared to the current state-of-the-art techniques. The performance metrics evidenced the use of this model to assist the clinicians for automatic accurate diagnosis of SCZ.
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Pneumonia, a respiratory infection brought on by bacteria or viruses, affects a large number of people, especially in developing and impoverished countries where high levels of pollution, unclean living conditions, and overcrowding are frequently observed, along with insufficient medical infrastructure. Pleural effusion, a condition in which fluids fill the lung and complicate breathing, is brought on by pneumonia. Early detection of pneumonia is essential for ensuring curative care and boosting survival rates. The approach most usually used to diagnose pneumonia is chest X-ray imaging. The purpose of this work is to develop a method for the automatic diagnosis of bacterial and viral pneumonia in digital x-ray pictures. This article first presents the authors' technique, and then gives a comprehensive report on recent developments in the field of reliable diagnosis of pneumonia. In this study, here tuned a state-of-the-art deep convolutional neural network to classify plant diseases based on images and tested its performance. Deep learning architecture is compared empirically. VGG19, ResNet with 152v2, Resnext101, Seresnet152, Mobilenettv2, and DenseNet with 201 layers are among the architectures tested. Experiment data consists of two groups, sick and healthy X-ray pictures. To take appropriate action against plant diseases as soon as possible, rapid disease identification models are preferred. DenseNet201 has shown no overfitting or performance degradation in our experiments, and its accuracy tends to increase as the number of epochs increases. Further, DenseNet201 achieves state-of-the-art performance with a significantly a smaller number of parameters and within a reasonable computing time. This architecture outperforms the competition in terms of testing accuracy, scoring 95%. Each architecture was trained using Keras, using Theano as the backend.
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