Results for 'brain gut interactions'

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  1.  18
    Altered brain‐gut axis in autism: Comorbidity or causative mechanisms?Emeran A. Mayer, David Padua & Kirsten Tillisch - 2014 - Bioessays 36 (10):933-939.
    The concept that alterated communications between the gut microbiome and the brain may play an important role in human brain disorders has recently received considerable attention. This is the result of provocative preclinical and some clinical evidence supporting early hypotheses about such communication in health and disease. Gastrointestinal symptoms are a common comorbidity in patients with autism spectrum disorders (ASD), even though the underlying mechanisms are largely unknown. In addition, alteration in the composition and metabolic products of the (...)
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  2.  26
    The Gut Microbiota–Brain Axis Expands Neurologic Function: A Nervous Rapport.Kylynda C. Bauer, Tobias Rees & Barton Brett Finlay - 2019 - Bioessays 41 (10):1800268.
    Does exploration of the gut microbiota–brain axis expand our understanding of what it means to be human? Recognition and conceptualization of a gut microbiota–brain axis challenges our study of the nervous system. Here, integrating gut microbiota–brain research into the metaorganism model is proposed. The metaorganism—an expanded, dynamic unit comprising the host and commensal organisms—asserts a radical blurring between man and microbe. The metaorganism nervous system interacts with the exterior world through microbial‐colored lenses. Ongoing studies have reported that (...)
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  3.  10
    The 4E approach to the human microbiome: Nested interactions between the gut‐brain/body system within natural and built environments.Ismael Palacios-García, Gwynne A. Mhuireach, Aitana Grasso-Cladera, John F. Cryan & Francisco J. Parada - 2022 - Bioessays 44 (6):2100249.
    The complexity of the human mind and its interaction with the environment is one of the main epistemological debates throughout history. Recent ideas, framed as the 4E perspective to cognition, highlight that human experience depends causally on both cerebral and extracranial processes, but also is embedded in a particular sociomaterial context and is a product of historical accumulation of trajectory changes throughout life. Accordingly, the human microbiome is one of the most intriguing actors modulating brain function and physiology. Here, (...)
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  4.  18
    Pretense: the context of possibilities.Monika Dunin-Kozicka & Arkadiusz Gut - 2022 - Phenomenology and the Cognitive Sciences 21 (5):1107-1130.
    In this paper, we deal with the issue of how it is possible for pretending children to engage in exploratory performances and entertain alternative states of affairs. We question the approach according to which pretenders must be capable of counterfactual reasoning. Instead, we follow an alternative action-based framework on cognition and thus pretense, which argues for a much more profound role of the context of play than the questioned Counterfactual Thinking Approach to Pretense (CTAP). First, we motivate this shift in (...)
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  5.  49
    Out of our skull, in our skin: the Microbiota-Gut-Brain axis and the Extended Cognition Thesis.Federico Boem, Gabriele Ferretti & Silvano Zipoli Caiani - 2021 - Biology and Philosophy 36 (2):1-32.
    According to a shared functionalist view in philosophy of mind, a cognitive system, and cognitive function thereof, is based on the components of the organism it is realized by which, indeed, play a causal role in regulating our cognitive processes. This led philosophers to suggest also that, thus, cognition could be seen as an extended process, whose vehicle can extend not only outside the brain but also beyond bodily boundaries, on different kinds of devices. This is what we call (...)
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  6.  38
    Moral judgment reloaded: a moral dilemma validation study.Julia F. Christensen, Albert Flexas, Margareta Calabrese, Nadine K. Gut & Antoni Gomila - 2014 - Frontiers in Psychology 5:95947.
    We propose a revised set of moral dilemmas for studies on moral judgment. We selected a total of 46 moral dilemmas available in the literature and fine-tuned them in terms of four conceptual factors (Personal Force, Benefit Recipient, Evitability and Intention) and methodological aspects of the dilemma formulation (word count, expression style, question formats) that have been shown to influence moral judgment. Second, we obtained normative codings of arousal and valence for each dilemma showing that emotional arousal in response to (...)
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  7.  27
    The Physicalized Mind and the Gut‐Brain Axis: Taking Mental Health Out of Our Heads.Lindsay Bruce & Sarah Lane Ritchie - 2018 - Zygon 53 (2):356-374.
    As it becomes increasingly plausible that the mind–brain is explicable in naturalistic terms, science‐and‐religion scholars have the opportunity to engage creatively and proactively with facets of brain‐related research that better inform our understanding of human well‐being. That is, once mental health is recognized as being a whole‐body phenomenon, exciting theological conversations can take place. One fascinating area of research involves the “gut–brain axis,” or the interactive relationship between the microbiome in the gastrointestinal tract (i.e., gut bacteria), the (...)
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  8. George L. Gerstein.Interactions Within Neuronal - 1990 - In J. McGaugh, Jerry Weinberger & G. Lynch (eds.), Brain Organization and Memory. Guilford Press.
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  9.  16
    Encultured minds, not error reduction minds.Robert Mirski, Mark H. Bickhard, David Eck & Arkadiusz Gut - 2020 - Behavioral and Brain Sciences 43.
    There are serious theoretical problems with the free-energy principle model, which are shown in the current article. We discuss the proposed model's inability to account for culturally emergent normativities, and point out the foundational issues that we claim this inability stems from.
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  10.  8
    Neurotropic enteroviruses co-opt “fair-weather-friend” commensal gut microbiota to drive host infection and central nervous system disturbances.Kevin B. Clark - 2019 - Behavioral and Brain Sciences 42.
    Some neurotropic enteroviruses hijack Trojan horse/raft commensal gut bacteria to render devastating biomimicking cryptic attacks on human/animal hosts. Such virus-microbe interactions manipulate hosts’ gut-brain axes with accompanying infection-cycle-optimizing central nervous system disturbances, including severe neurodevelopmental, neuromotor, and neuropsychiatric conditions. Co-opted bacteria thus indirectly influence host health, development, behavior, and mind as possible “fair-weather-friend” symbionts, switching from commensal to context-dependent pathogen-like strategies benefiting gut-bacteria fitness.
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  11. Are emotional states based in the brain? A critique of affective brainocentrism from a physiological perspective.Giovanna Colombetti & Eder Zavala - 2019 - Biology and Philosophy 34 (5):45.
    We call affective brainocentrism the tendency to privilege the brain over other parts of the organism when defining or explaining emotions. We distinguish two versions of this tendency. According to brain-sufficient, emotional states are entirely realized by brain processes. According to brain-master, emotional states are realized by both brain and bodily processes, but the latter are entirely driven by the brain: the brain is the master regulator of bodily processes. We argue that both (...)
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  12.  74
    Gutsy Moves: The Amygdala as a Critical Node in Microbiota to Brain Signaling.Caitlin S. M. Cowan, Alan E. Hoban, Ana Paula Ventura-Silva, Timothy G. Dinan, Gerard Clarke & John F. Cryan - 2018 - Bioessays 40 (1):1700172.
    The amygdala is a key brain area regulating responses to stress and emotional stimuli, so improving our understanding of how it is regulated could offer novel strategies for treating disturbances in emotion regulation. As we review here, a growing body of evidence indicates that the gut microbiota may contribute to a range of amygdala-dependent brain functions from pain sensitivity to social behavior, emotion regulation, and therefore, psychiatric health. In addition, it appears that the microbiota is necessary for normal (...)
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  13.  97
    The problem with brain GUTs: Conflation of different senses of “prediction” threatens metaphysical disaster.Michael L. Anderson & Tony Chemero - 2013 - Behavioral and Brain Sciences 36 (3):204-205.
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  14.  21
    When Cultures Meet: The Landscape of “Social” Interactions between the Host and Its Indigenous Microbes.Naama Geva-Zatorsky, Eran Elinav & Sven Pettersson - 2019 - Bioessays 41 (10):1900002.
    Animals exist as biodiverse composite organisms that include microbial residents, eukaryotic cells, and organs that collectively form a human being. Through an interdependent relationship and an inherent ability to transmit and reciprocate stimuli in a bidirectional way, a human body or the holobiont secures growth, health, and reproduction. As such, the survival of a holobiont is dependent on the maintenance of biological order including metabolic homeostasis by tight regulation of the communication between its eukaryotic and prokaryotic residents. In this review (...)
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  15. Brain network interactions in health and disease.Deanna M. Barch - 2013 - Trends in Cognitive Sciences 17 (12):603-605.
  16.  52
    Brain-Computer Interaction and Medical Access to the Brain: Individual, Social and Ethical Implications.Elisabeth Hildt - 2010 - Studies in Ethics, Law, and Technology 4 (3).
    This paper discusses current clinical applications and possible future uses of brain-computer interfaces as a means for communication, motor control and entertainment. After giving a brief account of the various approaches to direct brain-computer interaction, the paper will address individual, social and ethical implications of BCI technology to extract signals from the brain. These include reflections on medical and psychosocial benefits and risks, user control, informed consent, autonomy and privacy as well as ethical and social issues implicated (...)
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  17.  9
    Brain–Heart Interaction and the Experience of Flow While Playing a Video Game.Shiva Khoshnoud, Federico Alvarez Igarzábal & Marc Wittmann - 2022 - Frontiers in Human Neuroscience 16.
    The flow state – an experience of complete absorption in an activity – is linked with less self-referential processing and increased arousal. We used the heart-evoked potential, an index representing brain–heart interaction, as well as indices of peripheral physiology to assess the state of flow in individuals playing a video game. 22 gamers and 21 non-gamers played the video game Thumper for 25 min while their brain and cardiorespiratory signals were simultaneously recorded. The more participants were absorbed in (...)
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  18.  6
    Brain-actuated interaction.José del R. Millán, Frédéric Renkens, Josep Mouriño & Wulfram Gerstner - 2004 - Artificial Intelligence 159 (1-2):241-259.
  19. The mind and the machine. On the conceptual and moral implications of brain-machine interaction.Maartje Schermer - 2009 - NanoEthics 3 (3):217-230.
    Brain-machine interfaces are a growing field of research and application. The increasing possibilities to connect the human brain to electronic devices and computer software can be put to use in medicine, the military, and entertainment. Concrete technologies include cochlear implants, Deep Brain Stimulation, neurofeedback and neuroprosthesis. The expectations for the near and further future are high, though it is difficult to separate hope from hype. The focus in this paper is on the effects that these new technologies (...)
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  20.  7
    Demonstrating brain-level interactions between working memory load and driving demand level using fNIRS.Jochem Rieger, Jakob Scheunemann, Klas Ihme, Frank Köster, Meike Jipp & Anirudh Unni - 2018 - Frontiers in Human Neuroscience 12.
  21.  12
    Symbiotic Brain-Machine interaction: Beyond control and monitoring.Ricardo Chavarriaga - 2018 - Frontiers in Human Neuroscience 12.
  22.  41
    Cognition Beyond the Brain: Computation, Interactivity, and Human Artifice.Charles Lassiter - 2015 - Philosophical Psychology 28 (8):1245-1249.
  23.  29
    Physics of brain-mind interaction.John C. Eccles - 1990 - Behavioral and Brain Sciences 13 (4):662-663.
  24.  38
    Multiple scales of brain-mind interactions.Lester Ingber - 1995 - Behavioral and Brain Sciences 18 (2):360-362.
    Posner & Raichle'sImages of mindis an excellent educational book and very well written. Some flaws as a scientific publication are: (a) the accuracy of the linear subtraction method used in PET is subject to scrutiny by further research at finer spatial-temporal resolutions; (b) lack of accuracy of the experimental paradigm used for EEG complementary studies.
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  25.  12
    Demonstrating brain-level interactions between working memory load and frustration while driving using functional near-infrared spectroscopy.Anirudh Unni, Benedikt Kretzmeyer, Klas Ihme, Frank Koester, Meike Jipp & Jochem Rieger - 2018 - Frontiers in Human Neuroscience 12.
  26.  19
    Inhibitory control in mind and brain: An interactive race model of countermanding saccades.Leanne Boucher, Thomas J. Palmeri, Gordon D. Logan & Jeffrey D. Schall - 2007 - Psychological Review 114 (2):376-397.
  27.  56
    Microbiota-gut-brain research: A critical analysis.Katarzyna B. Hooks, Jan Pieter Konsman & Maureen A. O'Malley - 2019 - Behavioral and Brain Sciences 42:1-40.
    Microbiota-gut-brain research is a fast-growing field of inquiry with important implications for how human brain function and behaviour are understood. Researchers manipulate gut microbes to reveal connections between intestinal microbiota and normal brain functions or pathological states. Many claims are made about causal relationships between gut microbiota and human behaviour. By uncovering these relationships, MGB research aims to offer new explanations of mental health and potential avenues of treatment. So far, limited evaluation has been made of MGB's (...)
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  28.  14
    A Deep Evolutionary Approach to Bioinspired Classifier Optimisation for Brain-Machine Interaction.Jordan J. Bird, Diego R. Faria, Luis J. Manso, Anikó Ekárt & Christopher D. Buckingham - 2019 - Complexity 2019:1-14.
    This study suggests a new approach to EEG data classification by exploring the idea of using evolutionary computation to both select useful discriminative EEG features and optimise the topology of Artificial Neural Networks. An evolutionary algorithm is applied to select the most informative features from an initial set of 2550 EEG statistical features. Optimisation of a Multilayer Perceptron is performed with an evolutionary approach before classification to estimate the best hyperparameters of the network. Deep learning and tuning with Long Short-Term (...)
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  29.  19
    Microbiota-gut-brain research: A plea for an interdisciplinary approach and standardization.Mattia Andreoletti & Maria Rescigno - 2019 - Behavioral and Brain Sciences 42.
    Hooks et al. note that microbiota-gut-brain research suffers from serious methodological flaws and interpretative issues. We suggest two corrective measures: first, taking more seriously the need of interdisciplinary work; second, interpreting some of the methodological issues as ordinary challenges of standardization, typical of emerging disciplines.
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  30.  10
    Editorial: Can't Get You Out of My Head: Brain-Body Interactions in Perseverative Cognition.Cristina Ottaviani, Julian F. Thayer, Bart Verkuil, Hugo D. Critchley & Jos F. Brosschot - 2017 - Frontiers in Human Neuroscience 11.
  31.  17
    It takes guts to grow a brain.Betty Diamond, Patricio T. Huerta, Kevin Tracey & Bruce T. Volpe - 2011 - Bioessays 33 (8):588-591.
    A new study entitled “Normal gut microbiota modulates brain development and behavior”, published in the Proceedings of the National Academy of Sciences, requires that we reconsider the notion that the brain is an immune‐privileged site. The authors demonstrate that intestinal microbiota must be present within a set time‐frame for normal synaptogenesis to occur in the brain. In the absence of intestinal microbiota, histopathological and behavioral abnormalities arise. These observations necessitate a new look at the many interconnections of (...)
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  32.  31
    Increasing reproducibility and interpretability of microbiota-gut-brain studies on human neurocognition and intermediary microbial metabolites.Esther Aarts & Sahar El Aidy - 2019 - Behavioral and Brain Sciences 42.
    In this commentary, we point to guidelines for performing human neuroimaging studies and their reporting in microbiota-gut-brain articles. Moreover, we provide a view on interpretational issues in MGB studies, with a specific focus on gut microbiota–derived metabolites. Thus, extending the target article, we provide recommendations to the field to increase reproducibility and relevance of this type of MGB study.
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  33.  21
    Somatic multiplicities: The microbiome-gut-brain axis and the neurobiologized educational subject.James Reveley - 2024 - Educational Philosophy and Theory 56 (1):52-62.
    Therapeutic translations of the microbiome-gut-brain (MGB) axis are reconstructing the educational subject in a manner amenable to Foucauldian analysis. Yet, at the same time, under the sway of MGB research social scientists are taking a biosocial turn that threatens the integrity of Foucault’s historicizing philosophical project. Meeting that challenge head-on, this article argues that the MGB axis augments the neurobiological constitution of the educational subject by means of a dietetic mode of subjectivation. Absent a pedagogical element, there is a (...)
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  34.  27
    Interactive Brain Activity: Review and Progress on EEG-Based Hyperscanning in Social Interactions.Difei Liu, Shen Liu, Xiaoming Liu, Chong Zhang, Aosika Li, Chenggong Jin, Yijun Chen, Hangwei Wang & Xiaochu Zhang - 2018 - Frontiers in Psychology 9.
    When individuals interact with others, perceived information is transmitted among their brains. The EEG-based hyperscanning technique, which provides an approach to explore dynamic brain activities between two or more interactive individuals and their underlying neural mechanisms, has been applied to study different aspects of social interactions since 2010. Recently there has been an increase in research on EEG-based hyperscanning of social interactions. This paper summarizes the application of EEG-based hyperscanning on the dynamic brain activities during social (...)
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  35.  20
    Brains have a gut feeling about fat storage.Dave Speijer - 2012 - Bioessays 34 (4):275-276.
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  36.  11
    Nourishing the gut microbiota: The potential of prebiotics in microbiota-gut-brain axis research.Boushra Dalile, Kristin Verbeke, Lukas Van Oudenhove & Bram Vervliet - 2019 - Behavioral and Brain Sciences 42.
    Dietary fiber and prebiotics consistently modulate microbiota composition and function and hence may constitute a powerful tool in microbiota-gut-brain axis research. However, this is largely ignored in Hooks et al.’s analysis, which highlights the limitations of probiotics in establishing microbiome-mediated effects on neurobehavioral functioning and neglects discussing the potential of prebiotics in warranting the microbiota's role in such effects.
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  37. Beyond brain regions: Network perspective of cognition–emotion interactions.Luiz Pessoa - 2012 - Behavioral and Brain Sciences 35 (3):158-159.
    Lindquist et al. provide a convincing case against what they call the locationist account of emotion. Their quantitative approach elegantly illustrates the shortcomings of this still-entrenched viewpoint. Here, I discuss how a network perspective will advance our understanding of structure-function mappings in general, and the relationship between emotion and cognition in the brain.
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  38.  23
    Interaction-Dominant Causation in Mind and Brain, and Its Implication for Questions of Generalization and Replication.Sebastian Wallot & Damian G. Kelty-Stephen - 2018 - Minds and Machines 28 (2):353-374.
    The dominant assumption about the causal architecture of the mind is, that it is composed of a stable set of components that contribute independently to relevant observables that are employed to measure cognitive activity. This view has been called component-dominant dynamics. An alternative has been proposed, according to which the different components are not independent, but fundamentally interdependent, and are not stable basic properties of the mind, but rather an emergent feature of the mind given a particular task context. This (...)
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  39. Mind-brain interaction: Mentalism yes, dualism no.Roger W. Sperry - 1980 - Neuroscience 5 (2):195-206.
  40. Brain to computer communication: Ethical perspectives on interaction models. [REVIEW]Guglielmo Tamburrini - 2009 - Neuroethics 2 (3):137-149.
    Brain Computer Interfaces (BCIs) enable one to control peripheral ICT and robotic devices by processing brain activity on-line. The potential usefulness of BCI systems, initially demonstrated in rehabilitation medicine, is now being explored in education, entertainment, intensive workflow monitoring, security, and training. Ethical issues arising in connection with these investigations are triaged taking into account technological imminence and pervasiveness of BCI technologies. By focussing on imminent technological developments, ethical reflection is informatively grounded into realistic protocols of brain-to-computer (...)
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  41.  14
    The Heart, the Gut, and Brain Death in Japan.Haruko Akatsu - 1990 - Hastings Center Report 20 (2):2-2.
  42.  46
    Neuropsychological inference with an interactive brain: A critique of the “locality” assumption.Martha J. Farah - 1994 - Behavioral and Brain Sciences 17 (1):43-61.
    When cognitive neuropsychologists make inferences about the functional architecture of the normal mind from selective cognitive impairments they generally assume that the effects of brain damage are local, that is, that the nondamaged components of the architecture continue to function as they did before the damage. This assumption follows from the view that the components of the functional architecture are modular, in the sense of being informationally encapsulated. In this target article it is argued that this “locality” assumption is (...)
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  43.  7
    Interaction of discourse processing impairments, communicative participation, and verbal executive functions in people with chronic traumatic brain injury.Julia Büttner-Kunert, Sarah Blöchinger, Zofia Falkowska, Theresa Rieger & Charlotte Oslmeier - 2022 - Frontiers in Psychology 13.
    IntroductionEspecially in the chronic phase, individuals with traumatic brain injury may still have impairments at the discourse level, even if these remain undetected by conventional aphasia tests. As a consequence, IwTBI may be impaired in conversational behavior and disadvantaged in their socio-communicative participation. Even though handling discourse is thought to be a basic requirement for participation and quality of life, only a handful of test procedures assessing discourse disorders have been developed so far. The MAKRO Screening is a recently (...)
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  44.  16
    Practical guidelines for gut microbiome analysis in microbiota-gut-brain axis research.Mireia Valles-Colomer, Gwen Falony, Sara Vieira-Silva & Jeroen Raes - 2019 - Behavioral and Brain Sciences 42.
    The microbiota-gut-brain axis field is at an exciting stage, but the most recent developments in microbiota research still have to find their way into MGB studies. Here we outline the standards for microbiome data generation, the appropriate statistical techniques, and the covariates that should be included in MGB studies to optimize discovery and translation to clinical applications.
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  45.  76
    Mind-brain interaction and violation of physical laws.D. L. Wilson - 1999 - Journal of Consciousness Studies 6 (8-9):8-9.
  46.  24
    Mobile Brain/Body Imaging (MoBI) of Physical Interaction with Dynamically Moving Objects.Evelyn Jungnickel & Klaus Gramann - 2016 - Frontiers in Human Neuroscience 10.
  47.  21
    Brain and the immune system: Multiple sites of interaction.Hymie Anisman & Robert M. Zacharko - 1985 - Behavioral and Brain Sciences 8 (3):395-396.
  48.  38
    Mind-brain interaction and psi.Frank B. Dilley - 1988 - Southern Journal of Philosophy 26 (4):469-80.
  49. Hemispheric interaction and the mind-brain problem.R. W. Sperry - 1966 - In John C. Eccles (ed.), Brain and Conscious Experience. Springer. pp. 298--313.
     
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  50.  15
    Interactions on the interactive brain.Martha J. Farah - 1994 - Behavioral and Brain Sciences 17 (1):90-104.
    When cognitive neuropsychologists make inferences about the functional architecture of the normal mind from selective cognitive impairments they generally assume that the effects of brain damage are local, that is, that the nondamaged components of the architecture continue to function as they did before the damage. This assumption follows from the view that the components of the functional architecture are modular, in the sense of being informationally encapsulated. In this target article it is argued that this “locality” assumption is (...)
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