文件名称:BCI_MI_CSP_DNN

  • 所属分类:
  • matlab例程
  • 资源属性:
  • 上传时间:
  • 2019-09-27
  • 文件大小:
  • 14.15mb
  • 下载次数:
  • 3次
  • 提 供 者:
  • 渔舟***
  • 相关连接:
  • 下载说明:
  • 别用迅雷下载,失败请重下,重下不扣分!

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BCI_MI_CSP_DNN是一种基于matlab的运动图像脑电信号分类程序。
基于matlab深度学习工具箱编写了BCI_MI_CSP_DNN程序
本程序的原理基于CSP和DNN算法
这个程序的性能是基于BCI竞赛II数据集II
提出了一种基于深度学习的运动图像脑电信号分类方法。在预处理原始脑电图信号的基础上,采用共空间模型(CSP)方法提取脑电图特征矩阵,并将其输入深度神经网络(DNN)进行训练和分类。我们的工作在BCI Competition II Dataset III上进行了实验测试,提出了最佳的DNN框架,准确率达到83.6%。(In this study, our goal was to use deep learning methods to improve the classification performance of motor imagery EEG signals. Therefore, we propose a classification method based on deep learning for motor imagery EEG signals. Based on the pre-processed raw EEG signals, a co-space model (CSP) method is used to extract the EEG feature matrix, which is then fed to a deep neural network (DNN) for training and classification. Our work was tested experimentally on the BCI Competition II Dataset III dataset, and the best DNN fr a mework was proposed, achieving an accuracy of 83.6%.)
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下载文件列表

文件名大小更新时间
BCI_MI_CSP_DNN\.git\COMMIT_EDITMSG 25 2019-03-24
BCI_MI_CSP_DNN\.git\config 252 2019-03-24
BCI_MI_CSP_DNN\.git\description 73 2019-03-24
BCI_MI_CSP_DNN\.git\FETCH_HEAD 122 2019-03-24
BCI_MI_CSP_DNN\.git\HEAD 23 2019-03-24
BCI_MI_CSP_DNN\.git\hooks\applypatch-msg.sample 478 2019-03-24
BCI_MI_CSP_DNN\.git\hooks\commit-msg.sample 896 2019-03-24
BCI_MI_CSP_DNN\.git\hooks\fsmonitor-watchman.sample 3327 2019-03-24
BCI_MI_CSP_DNN\.git\hooks\post-update.sample 189 2019-03-24
BCI_MI_CSP_DNN\.git\hooks\pre-applypatch.sample 424 2019-03-24
BCI_MI_CSP_DNN\.git\hooks\pre-commit.sample 1638 2019-03-24
BCI_MI_CSP_DNN\.git\hooks\pre-push.sample 1348 2019-03-24
BCI_MI_CSP_DNN\.git\hooks\pre-rebase.sample 4898 2019-03-24
BCI_MI_CSP_DNN\.git\hooks\pre-receive.sample 544 2019-03-24
BCI_MI_CSP_DNN\.git\hooks\prepare-commit-msg.sample 1492 2019-03-24
BCI_MI_CSP_DNN\.git\hooks\update.sample 3610 2019-03-24
BCI_MI_CSP_DNN\.git\index 1188 2019-03-24
BCI_MI_CSP_DNN\.git\info\exclude 240 2019-03-24
BCI_MI_CSP_DNN\.git\logs\HEAD 315 2019-03-24
BCI_MI_CSP_DNN\.git\logs\refs\heads\master 315 2019-03-24
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BCI_MI_CSP_DNN\.git\objects\33\63a1baeb881f845333ec166abb4457e1695b2a 209 2019-03-24
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BCI_MI_CSP_DNN\Bandpass_filter.m 1060 2018-09-30
BCI_MI_CSP_DNN\CSP_extraction_feature.m 2463 2019-02-26
BCI_MI_CSP_DNN\CSP_feature.mat 6683 2019-03-24
BCI_MI_CSP_DNN\Data_preprocessing.m 518 2019-02-23
BCI_MI_CSP_DNN\DNN.m 2087 2019-03-12
BCI_MI_CSP_DNN\DNN_predict.m 465 2019-02-22
BCI_MI_CSP_DNN\Four_layer_BPNN.m 860 2019-02-23
BCI_MI_CSP_DNN\graz_data\CSP_train.mat 1661222 2019-02-23
BCI_MI_CSP_DNN\graz_data\dataset_BCIcomp1.mat 7742184 2002-11-15
BCI_MI_CSP_DNN\graz_data\dataset_BCIcomp1_bandpassfilter.mat 7435278 2019-07-21
BCI_MI_CSP_DNN\graz_data\labels_data_set_iii.mat 336 2004-06-06
BCI_MI_CSP_DNN\label.mat 351 2019-02-23
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