The effect of target and non-target similarity on neural classification performance: a boost from confidence
Brain computer interaction (BCI) technologies have proven effective in utilizing single-trial classification algorithms to detect target images in rapid serial visualization presentation tasks. While many factors contribute to the accuracy of these algorithms, a critical aspect that is often overloo...
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| Published in | Frontiers in neuroscience Vol. 9; p. 270 |
|---|---|
| Main Authors | , , , , , , |
| Format | Journal Article |
| Language | English |
| Published |
Switzerland
Frontiers Research Foundation
05.08.2015
Frontiers Media S.A |
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| Online Access | Get full text |
| ISSN | 1662-453X 1662-4548 1662-453X |
| DOI | 10.3389/fnins.2015.00270 |
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| Abstract | Brain computer interaction (BCI) technologies have proven effective in utilizing single-trial classification algorithms to detect target images in rapid serial visualization presentation tasks. While many factors contribute to the accuracy of these algorithms, a critical aspect that is often overlooked concerns the feature similarity between target and non-target images. In most real-world environments there are likely to be many shared features between targets and non-targets resulting in similar neural activity between the two classes. It is unknown how current neural-based target classification algorithms perform when qualitatively similar target and non-target images are presented. This study address this question by comparing behavioral and neural classification performance across two conditions: first, when targets were the only infrequent stimulus presented amongst frequent background distracters; and second when targets were presented together with infrequent non-targets containing similar visual features to the targets. The resulting findings show that behavior is slower and less accurate when targets are presented together with similar non-targets; moreover, single-trial classification yielded high levels of misclassification when infrequent non-targets are included. Furthermore, we present an approach to mitigate the image misclassification. We use confidence measures to assess the quality of single-trial classification, and demonstrate that a system in which low confidence trials are reclassified through a secondary process can result in improved performance. |
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| AbstractList | Brain computer interaction (BCI) technologies have proven effective in utilizing single-trial classification algorithms to detect target images in rapid serial visualization presentation tasks. While many factors contribute to the accuracy of these algorithms, a critical aspect that is often overlooked concerns the feature similarity between target and non-target images. In most real-world environments there are likely to be many shared features between targets and non-targets resulting in similar neural activity between the two classes. It is unknown how current neural-based target classification algorithms perform when qualitatively similar target and non-target images are presented. This study address this question by comparing behavioral and neural classification performance across two conditions: first, when targets were the only infrequent stimulus presented amongst frequent background distracters; and second when targets were presented together with infrequent non-targets containing similar visual features to the targets. The resulting findings show that behavior is slower and less accurate when targets are presented together with similar non-targets; moreover, single-trial classification yielded high levels of misclassification when infrequent non-targets are included. Furthermore, we present an approach to mitigate the image misclassification. We use confidence measures to assess the quality of single-trial classification, and demonstrate that a system in which low confidence trials are reclassified through a secondary process can result in improved performance. Brain computer interaction (BCI) technologies have proven effective in utilizing single-trial classification algorithms to detect target images in rapid serial visualization presentation tasks. While many factors contribute to the accuracy of these algorithms, a critical aspect that is often overlooked concerns the feature similarity between target and non-target images. In most real-world environments there are likely to be many shared features between targets and non-targets resulting in similar neural activity between the two classes. It is unknown how current neural-based target classification algorithms perform when qualitatively similar target and non-target images are presented. This study address this question by comparing behavioral and neural classification performance across two conditions: first, when targets were the only infrequent stimulus presented amongst frequent background distracters; and second when targets were presented together with infrequent non-targets containing similar visual features to the targets. The resulting findings show that behavior is slower and less accurate when targets are presented together with similar non-targets; moreover, single-trial classification yielded high levels of misclassification when infrequent non-targets are included. Furthermore, we present an approach to mitigate the image misclassification. We use confidence measures to assess the quality of single-trial classification, and demonstrate that a system in which low confidence trials are reclassified through a secondary process can result in improved performance.Brain computer interaction (BCI) technologies have proven effective in utilizing single-trial classification algorithms to detect target images in rapid serial visualization presentation tasks. While many factors contribute to the accuracy of these algorithms, a critical aspect that is often overlooked concerns the feature similarity between target and non-target images. In most real-world environments there are likely to be many shared features between targets and non-targets resulting in similar neural activity between the two classes. It is unknown how current neural-based target classification algorithms perform when qualitatively similar target and non-target images are presented. This study address this question by comparing behavioral and neural classification performance across two conditions: first, when targets were the only infrequent stimulus presented amongst frequent background distracters; and second when targets were presented together with infrequent non-targets containing similar visual features to the targets. The resulting findings show that behavior is slower and less accurate when targets are presented together with similar non-targets; moreover, single-trial classification yielded high levels of misclassification when infrequent non-targets are included. Furthermore, we present an approach to mitigate the image misclassification. We use confidence measures to assess the quality of single-trial classification, and demonstrate that a system in which low confidence trials are reclassified through a secondary process can result in improved performance. |
| Author | Cecotti, Hubert Ries, Anthony J. McDowell, Kaleb Marathe, Amar R. Lawhern, Vernon J. Lance, Brent J. Touryan, Jonathan |
| AuthorAffiliation | 1 Translational Neuroscience Branch, US Army Research Laboratory, Human Research and Engineering Directorate Aberdeen Proving Grounds, MD, USA 3 Intelligent Systems Research Centre, School of Computing and Intelligent Systems, University of Ulster Londonderry, UK 2 Department of Computer Science, University of Texas at San Antonio San Antonio, TX, USA |
| AuthorAffiliation_xml | – name: 3 Intelligent Systems Research Centre, School of Computing and Intelligent Systems, University of Ulster Londonderry, UK – name: 1 Translational Neuroscience Branch, US Army Research Laboratory, Human Research and Engineering Directorate Aberdeen Proving Grounds, MD, USA – name: 2 Department of Computer Science, University of Texas at San Antonio San Antonio, TX, USA |
| Author_xml | – sequence: 1 givenname: Amar R. surname: Marathe fullname: Marathe, Amar R. – sequence: 2 givenname: Anthony J. surname: Ries fullname: Ries, Anthony J. – sequence: 3 givenname: Vernon J. surname: Lawhern fullname: Lawhern, Vernon J. – sequence: 4 givenname: Brent J. surname: Lance fullname: Lance, Brent J. – sequence: 5 givenname: Jonathan surname: Touryan fullname: Touryan, Jonathan – sequence: 6 givenname: Kaleb surname: McDowell fullname: McDowell, Kaleb – sequence: 7 givenname: Hubert surname: Cecotti fullname: Cecotti, Hubert |
| BackLink | https://www.ncbi.nlm.nih.gov/pubmed/26347597$$D View this record in MEDLINE/PubMed |
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| ContentType | Journal Article |
| Copyright | 2015. This work is licensed under http://creativecommons.org/licenses/by/4.0/ (the “License”). Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License. Copyright © 2015 Marathe, Ries, Lawhern, Lance, Touryan, McDowell and Cecotti. 2015 Marathe, Ries, Lawhern, Lance, Touryan, McDowell and Cecotti |
| Copyright_xml | – notice: 2015. This work is licensed under http://creativecommons.org/licenses/by/4.0/ (the “License”). Notwithstanding the ProQuest Terms and Conditions, you may use this content in accordance with the terms of the License. – notice: Copyright © 2015 Marathe, Ries, Lawhern, Lance, Touryan, McDowell and Cecotti. 2015 Marathe, Ries, Lawhern, Lance, Touryan, McDowell and Cecotti |
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| Keywords | classification rapid serial visual presentation EEG brain-computer interface single-trial analysis confidence |
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| Notes | ObjectType-Article-1 SourceType-Scholarly Journals-1 ObjectType-Feature-2 content type line 14 content type line 23 Edited by: Sergio Martinoia, University of Genova, Italy This article was submitted to Neural Technology, a section of the journal Frontiers in Neuroscience These authors have contributed equally to this work. Reviewed by: Emiliano Brunamonti, University of Rome Sapienza, Italy; Fabien Lotte, INRIA (National Institute for Computer Science and Control), France; Antonio Malgaroli, University San Raffaele, Italy |
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| Title | The effect of target and non-target similarity on neural classification performance: a boost from confidence |
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