Academic literature on the topic 'Interhemispheric processing'

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Journal articles on the topic "Interhemispheric processing"

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Banich, Marie T., and Joel I. Shenker. "Investigations of interhemispheric processing: Methodological considerations." Neuropsychology 8, no. 2 (1994): 263–77. http://dx.doi.org/10.1037/0894-4105.8.2.263.

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Catts, S. V., P. B. Ward, J. R. Garvey, and N. McConaghy. "SEPs and interhemispheric processing in schizophrenia." Electroencephalography and Clinical Neurophysiology 61, no. 3 (1985): S175. http://dx.doi.org/10.1016/0013-4694(85)90674-1.

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Soshi, Takahiro. "Neural Coupling between Interhemispheric and Frontoparietal Functional Connectivity during Semantic Processing." Brain Sciences 13, no. 11 (2023): 1601. http://dx.doi.org/10.3390/brainsci13111601.

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Interhemispheric and frontoparietal functional connectivity have been reported to increase during explicit information processing. However, it is unclear how and when interhemispheric and frontoparietal functional connectivity interact during explicit semantic processing. Here, we tested the neural coupling hypothesis that explicit semantic processing promotes neural activity in the nondominant right hemispheric areas, owing to synchronization with enhanced frontoparietal functional connectivity at later processing stages. We analyzed electroencephalogram data obtained using a semantic priming
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Banich, Marie T., Sara Goering, Neal Stolar, and Aysenil Belger. "Interhemispheric Processing in Left- and Right-Handers." International Journal of Neuroscience 54, no. 3-4 (1990): 197–208. http://dx.doi.org/10.3109/00207459008986636.

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Bocci, Tommaso, Davide Barloscio, Laura Parenti, et al. "O201 Interhemispheric processing in hyperkinetic movement disorders." Clinical Neurophysiology 128, no. 9 (2017): e242. http://dx.doi.org/10.1016/j.clinph.2017.07.209.

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Bayard, Sophie, Nadia Gosselin, Manon Robert, and Maryse Lassonde. "Inter- and Intra-hemispheric Processing of Visual Event-related Potentials in the Absence of the Corpus Callosum." Journal of Cognitive Neuroscience 16, no. 3 (2004): 401–14. http://dx.doi.org/10.1162/089892904322926746.

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Interhemispheric differences of the N100 latency in visual evoked potentials have been used to estimate interhemispheric transfer time (e.g., Saron & Davidson, 1989). Recent work has also suggested that the P300 component could reflect the efficacy of interhemispheric transmission (Polich & Hoffman, 1998). The purpose of the present study was to study the differential role of the corpus callosum (CC) and anterior commissure (AC) in the interhemispheric propagation of these two electrophysiological components. Thus, the amplitude and latency distribution of the N100 and P300 components
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Takeuchi, Naoyuki, Yutaka Oouchida, and Shin-Ichi Izumi. "Motor Control and Neural Plasticity through Interhemispheric Interactions." Neural Plasticity 2012 (2012): 1–13. http://dx.doi.org/10.1155/2012/823285.

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The corpus callosum, which is the largest white matter structure in the human brain, connects the 2 cerebral hemispheres. It plays a crucial role in maintaining the independent processing of the hemispheres and in integrating information between both hemispheres. The functional integrity of interhemispheric interactions can be tested electrophysiologically in humans by using transcranial magnetic stimulation, electroencephalography, and functional magnetic resonance imaging. As a brain structural imaging, diffusion tensor imaging has revealed the microstructural connectivity underlying interhe
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Christman, Stephen D., and Ruth E. Propper. "Superior episodic memory is associated with interhemispheric processing." Neuropsychology 15, no. 4 (2001): 607–16. http://dx.doi.org/10.1037/0894-4105.15.4.607.

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Putnam, Mary Colvin, Megan S. Steven, Karl W. Doron, Adam C. Riggall, and Michael S. Gazzaniga. "Cortical Projection Topography of the Human Splenium: Hemispheric Asymmetry and Individual Differences." Journal of Cognitive Neuroscience 22, no. 8 (2010): 1662–69. http://dx.doi.org/10.1162/jocn.2009.21290.

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The corpus callosum is the largest white matter pathway in the human brain. The most posterior portion, known as the splenium, is critical for interhemispheric communication between visual areas. The current study employed diffusion tensor imaging to delineate the complete cortical projection topography of the human splenium. Homotopic and heterotopic connections were revealed between the splenium and the posterior visual areas, including the occipital and the posterior parietal cortices. In nearly one third of participants, there were homotopic connections between the primary visual cortices,
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Kim, Sangyub, Joonwoo Kim, and Kichun Nam. "Electrophysiological Evidence Reveals the Asymmetric Transfer from the Right to Left Hemisphere as Key to Reading Proficiency." Brain Sciences 13, no. 4 (2023): 621. http://dx.doi.org/10.3390/brainsci13040621.

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The present investigation aimed to explore the interhemispheric interactions that contribute to changes in reading proficiency by examining the processing of visual word recognition in relation to word familiarity. A lexical decision task was administered to 25 participants, and their electrophysiological activity was recorded. A behavioral analysis showed the faster and more accurate processing of highly familiar words compared to less familiar ones. An event-related potential analysis uncovered an asymmetric familiarity effect over the N100 and N400 components across the two hemispheres, ind
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Dissertations / Theses on the topic "Interhemispheric processing"

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Baird, Lyndsay. "Interhemispheric communication during face processing." Thesis, University of Glasgow, 2009. http://theses.gla.ac.uk/1295/.

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It is widely acknowledged that the cerebral hemispheres do not operate in isolation during the processing of complex visual stimuli. Patterns of interhemispheric communication are believed to be integral to cognitive abilities yet despite this, both the circumstances under which communication takes and the nature of the information that can be communicated remain relatively poorly understood. The experiments in this thesis address the nature of interhemispheric communication during the processing of face and identity information using a range of divided visual field paradigms. The first line o
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Prichard, Eric Charles. "Interhemispheric Communication and Prose Processing." University of Toledo / OhioLINK, 2013. http://rave.ohiolink.edu/etdc/view?acc_num=toledo1370359769.

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Scherer, Lilian Cristine. "The impact of aging and language proficiency on the interhemispheric dynamics for discourse processing." Florianópolis, SC, 2007. http://repositorio.ufsc.br/xmlui/handle/123456789/90604.

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Tese (doutorado) - Universidade Federal de Santa Catarina, Centro de Comunicação e Expressão. Programa de Pós-graduação em Letras/Inglês e Literatura Correspondente<br>Made available in DSpace on 2012-10-23T12:50:20Z (GMT). No. of bitstreams: 1 243410.pdf: 3961775 bytes, checksum: 90928f53426d6537947c7d82ae4ce6a5 (MD5)<br>O estudo do cérebro bilíngüe e em fase de envelhecimento pode trazer evidências importantes para nossa compreensão da dinâmica cerebral no processamento lingüístico. Há uma necessidade de se implementarem estudos que investiguem o processamento do discurso por estas populaçõe
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Endraß, Tanja [Verfasser]. "Interhemispheric processing : evidence from behavioral and electrophysiological studies / von Tanja Endraß." 2004. http://d-nb.info/972528539/34.

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Yeh, Chih, and 葉遲. "Linking Lateralized Syntactic Processing, Interhemispheric Communication, and Language Performance — An Event-Related potential study." Thesis, 2018. http://ndltd.ncl.edu.tw/handle/4722nc.

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碩士<br>國立臺灣大學<br>語言學研究所<br>107<br>Prior studies have found reliable structural-based syntactic processing (indexed by the P600 responses) in the left hemispheres (LH) in young right-handers without familial sinistrality (FS-) but bilaterally in FS+ young adults, leading to the hypothesis that the right hemisphere (RH) is capable of structural analysis. RH P600 responses are usually masked via inter-hemispheric suppression; however, little is known about factors modulating such suppression and whether the RH of left-lateralized individuals can still acquire P600 responses. To unravel the puzzles
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Brochu, Barbeau Elise. "Transfert et traitement de l’information visuomotrice dans le cerveau autiste : intégrité et hétérogénéité." Thèse, 2014. http://hdl.handle.net/1866/11785.

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En plus de la triade de symptômes caractérisant l’autisme, ce trouble neurodévelopmental est associé à des particularités perceptives et motrices et, au niveau cérébral, par une connectivité atypique entre les différentes régions du cerveau. Au niveau anatomique, un des résultats les plus communs est la réduction du corps calleux. Toutefois, des effets directs de cette altération anatomique sur l’intégrité et l’efficacité du transfert interhémisphérique restent à être démontrés. Pour la présente thèse, trois différentes études investiguent différents aspects du traitement de l’information visu
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Books on the topic "Interhemispheric processing"

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Skirda, Ross J. Differentiation of uncommon beliefs as a function of the proficiency of interhemispheric processing. s.n.], 1992.

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Book chapters on the topic "Interhemispheric processing"

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Fujikawa, Shoya, Shun Sawai, Ryosuke Yamamoto, and Hideki Nakano. "Assessment of Brain Inhibitory Function in Physical Therapy." In Physical Therapy - Towards Evidence-Based Practice [Working Title]. IntechOpen, 2023. http://dx.doi.org/10.5772/intechopen.1003275.

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Interhemispheric inhibition is an inhibitory function of the brain that enables complex human locomotion and plays an important role in motor control. Traditionally, interhemispheric inhibition has been assessed using transcranial magnetic stimulation, functional magnetic resonance imaging, and electroencephalography. However, motor overflow and bimanual coordinated movements have recently attracted attention as behavioral indices involving interhemispheric inhibition. Motor overflow is defined as the presence of involuntary movements or weak muscle activity that appears with voluntary movemen
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Banich, Marie T. "Interhemispheric Interaction: Mechanisms of Unified Processing." In Hemispheric Communication: Mechanisms and Models. Routledge, 2020. http://dx.doi.org/10.4324/9781315789156-9.

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Berardi, Nicoletta, and Adriana Fiorentini. "Interhemispheric Transfer of Spatial and Temporal Frequency Information." In Cerebral Asymmetries in Sensory and Perceptual Processing. Elsevier, 1997. http://dx.doi.org/10.1016/s0166-4115(97)80070-2.

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Cook, Norman D. "Bihemispheric Language: How the Two Hemispheres Collaborate in the Processing of Language." In The Speciation of Modern Homo Sapiens. British Academy, 2004. http://dx.doi.org/10.5871/bacad/9780197263112.003.0010.

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Speech production in most people is strongly lateralized to the left hemisphere (LH), but language understanding is generally a bilateral activity. At every level of linguistic processing that has been investigated experimentally, the right hemisphere (RH) has been found to make characteristic contributions, from the processing of the affective aspects of intonation, through the appreciation of word connotations, the decoding of the meaning of metaphors and figures of speech, to the understanding of the overall coherency of verbal humour, paragraphs and short stories. If both hemispheres are i
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Belichenko, Pavel V. "The morphological substrate for communication." In Rett Disorder and the Developing Brain. Oxford University PressNew York, NY, 2001. http://dx.doi.org/10.1093/oso/9780192630834.003.0011.

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Abstract It is a consistent finding in the study of human language brain areas that 90-95% of right-handed people have a left dominant language hemisphere while the majority ofleft-handed people do not have a right dominant hemisphere (Milner 1974; Hecaen et al. 1981; Beaton 1997; Moffat et al. 1998; Tzourio et al. 1998). The neocortical areas, Broca’s motor speech areas 44, 45 and Wernicke’s sensory speech area 22 are known to play an important role in human language processing (for review see Mesulam 1990). There are a few major and several minor factors which influence speech dominance. Chi
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Ptak, Radek, and Armin Schnider. "Neuropsychological rehabilitation of higher cortical functions after brain damage." In Oxford Textbook of Neurorehabilitation. Oxford University Press, 2015. http://dx.doi.org/10.1093/med/9780199673711.003.0022.

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Neuropsychological interventions for impairments of higher cognitive functions can be divided into four approaches:�restoration of function, compensation, physiological stimulations, and metacognitive strategies. Training that aims to restore an impaired function or to increase processing speed or capacity is repetitive and highly stereotyped. For some cognitive domains (such as memory), restoration of function is mostly impossible; consequently, training mainly relies on compensatory strategies. A�third type of approach is applied in neglect rehabilitation and uses physiological stimulations
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Benarroch, Eduardo E. "Neocortical Organization and Circuits." In Neuroscience for Clinicians, edited by Eduardo E. Benarroch. Oxford University Press, 2021. http://dx.doi.org/10.1093/med/9780190948894.003.0024.

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The cerebral cortex consists of multiple areas that differ from each other in terms of microstructural architecture, functional specialization, connectivity with other areas, and topographic organization. All cortical areas share a fundament cell composition, consisting of excitatory (principal) projection neurons, primarily pyramidal neurons, and different subtypes of local inhibitory GABAergic interneurons. Most pyramidal neurons participate in intra- or interhemispheric corticocortical connections; some project to subcortical targets, including the thalamus, basal ganglia, brainstem, and sp
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Ptak, Radek, and Armin Schnider. "Neuropsychological rehabilitation of higher cortical functions after brain damage." In Oxford Textbook of Neurorehabilitation, edited by Volker Dietz, Nick S. Ward, and Christopher Kennard. Oxford University Press, 2020. http://dx.doi.org/10.1093/med/9780198824954.003.0022.

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Neuropsychological interventions for impairments of higher cognitive functions can be divided into four different approaches: restoration of function, compensation, physiological stimulations, and metacognitive strategies. Training that aims to restore an impaired function or to increase processing speed or capacity is repetitive and often stereotyped. Such training may lead to task-specific learning with little generalization, as may be observed in particular in the domain of attention rehabilitation. However, it remains a matter of debate whether such practice effects really reflect the rest
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Conference papers on the topic "Interhemispheric processing"

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Ghosh, B., P. Swami, T. Gandhi, J. Santhosh, and S. Anand. "Interhemispheric interaction and cause of hindrance during handedness activity: An electro-physiological evidence." In 2009 International Multimedia, Signal Processing and Communication Technologies (IMPACT-2009). IEEE, 2009. http://dx.doi.org/10.1109/mspct.2009.5164208.

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