Results for '*Afferent Stimulation'

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  1.  27
    No relation between afferent facilitation induced by digital nerve stimulation and the latency of cutaneomuscular reflexes and somatosensory evoked magnetic fields.Sho Kojima, Hideaki Onishi, Kazuhiro Sugawara, Shota Miyaguchi, Hikari Kirimoto, Hiroyuki Tamaki, Hiroshi Shirozu & Shigeki Kameyama - 2014 - Frontiers in Human Neuroscience 8.
  2. Electrographic correlates of brain reactions to afferent stimuli in postcomatose unconscious states after severe brain injury.E. V. Sharova - 2005 - Human Physiology 31 (3):245-254.
     
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  3.  8
    Transcranial direct current stimulation alters sensorimotor modulation during cognitive representation of movement.Gaia Bonassi, Giovanna Lagravinese, Martina Putzolu, Alessandro Botta, Marco Bove, Elisa Pelosin & Laura Avanzino - 2022 - Frontiers in Human Neuroscience 16:862013.
    We recently demonstrated, by means of short latency afferent inhibition (SAI), that before an imagined movement, during the reaction time (RT), SAI decreases only in the movement-related muscle (sensorimotor modulation) and that a correlation exists between sensorimotor modulation and motor imagery (MI) ability. Excitatory anodal transcranial direct current stimulation (a-tDCS) on M1 could enhance the MI outcome; however, mechanisms of action are not completely known. Here, we assessed if a-tDCS on M1 prior to an MI task could affect sensorimotor (...)
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  4.  11
    A Critical Review of Cranial Electrotherapy Stimulation for Neuromodulation in Clinical and Non-clinical Samples.Tad T. Brunyé, Joseph E. Patterson, Thomas Wooten & Erika K. Hussey - 2021 - Frontiers in Human Neuroscience 15.
    Cranial electrotherapy stimulation is a neuromodulation tool used for treating several clinical disorders, including insomnia, anxiety, and depression. More recently, a limited number of studies have examined CES for altering affect, physiology, and behavior in healthy, non-clinical samples. The physiological, neurochemical, and metabolic mechanisms underlying CES effects are currently unknown. Computational modeling suggests that electrical current administered with CES at the earlobes can reach cortical and subcortical regions at very low intensities associated with subthreshold neuromodulatory effects, and studies using (...)
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  5.  5
    Closed-Loop Transcutaneous Auricular Vagal Nerve Stimulation: Current Situation and Future Possibilities.Yutian Yu, Jing Ling, Lingling Yu, Pengfei Liu & Min Jiang - 2022 - Frontiers in Human Neuroscience 15.
    Closed-loop transcutaneous auricular vagal nerve stimulation was officially proposed in 2020. This work firstly reviewed two existing CL-taVNS forms: motor-activated auricular vagus nerve stimulation and respiratory-gated auricular vagal afferent nerve stimulation, and then proposed three future CL-taVNS systems: electroencephalography -gated CL-taVNS, electrocardiography -gated CL-taVNS, and subcutaneous humoral signals -gated CL-taVNS. We also highlighted the mechanisms, targets, technical issues, and patterns of CL-taVNS. By reviewing, proposing, and highlighting, this work might draw a preliminary blueprint for the development of (...)
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  6.  17
    Specific sensorimotor interneuron circuits are sensitive to cerebellar-attention interactions.Jasmine L. Mirdamadi & Sean K. Meehan - 2022 - Frontiers in Human Neuroscience 16.
    Background: Short latency afferent inhibition provides a method to investigate mechanisms of sensorimotor integration. Cholinergic involvement in the SAI phenomena suggests that SAI may provide a marker of cognitive influence over implicit sensorimotor processes. Consistent with this hypothesis, we previously demonstrated that visual attention load suppresses SAI circuits preferentially recruited by anterior-to-posterior -, but not posterior-to-anterior -current induced by transcranial magnetic stimulation. However, cerebellar modulation can also modulate these same AP-sensitive SAI circuits. Yet, the consequences of concurrent cognitive and (...)
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  7.  57
    Cerebral organoids and consciousness: how far are we willing to go?Andrea Lavazza & Marcello Massimini - 2018 - Journal of Medical Ethics 44 (9):613-614.
    In his interesting commentary, Joshua Shepherd raises two points—one related to epistemology, the other to ethics—about our article on human cerebral organoids.1 2 From the epistemological standpoint, he calls into question the need for a theory of consciousness. A theory of consciousness, for him, is not necessary because of the lack of consensus about the very nature of consciousness. Shepherd suggests that ‘given widespread disagreement, applying a theory of consciousness may not be helpful when attempting to diagnose the presence of (...)
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  8.  32
    Motion perception during selfmotion: The direct versus inferential controversy revisited.Alexander H. Wertheim - 1994 - Behavioral and Brain Sciences 17 (2):293-311.
    According to the traditional inferential theory of perception, percepts of object motion or stationarity stem from an evaluation of afferent retinal signals (which encode image motion) with the help of extraretinal signals (which encode eye movements). According to direct perception theory, on the other hand, the percepts derive from retinally conveyed information only. Neither view is compatible with a perceptual phenomenon that occurs during visually induced sensations of ego motion (vection). A modified version of inferential theory yields a model in (...)
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  9.  64
    Long-term potentiation: What's learning got to do with it?Tracey J. Shors & Louis D. Matzel - 1997 - Behavioral and Brain Sciences 20 (4):597-614.
    Long-term potentiation (LTP) is operationally defined as a long-lasting increase in synaptic efficacy following high-frequency stimulation of afferent fibers. Since the first full description of the phenomenon in 1973, exploration of the mechanisms underlying LTP induction has been one of the most active areas of research in neuroscience. Of principal interest to those who study LTP, particularly in the mammalian hippocampus, is its presumed role in the establishment of stable memories, a role consistent with descriptions of memory formation. Other (...)
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  10.  5
    Indirect Vibration of the Upper Limbs Alters Transmission Along Spinal but Not Corticospinal Pathways.Trevor S. Barss, David F. Collins, Dylan Miller & Amit N. Pujari - 2021 - Frontiers in Human Neuroscience 15.
    The use of upper limb vibration during exercise and rehabilitation continues to gain popularity as a modality to improve function and performance. Currently, a lack of knowledge of the pathways being altered during ULV limits its effective implementation. Therefore, the aim of this study was to investigate whether indirect ULV modulates transmission along spinal and corticospinal pathways that control the human forearm. All measures were assessed under CONTROL and ULV conditions while participants maintained a small contraction of the right flexor (...)
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  11. Afferent influence on central generators and the integration of proprioceptive input with afferent input from other modalities.M. B. Berkinblit, V. Y. Sidorova, B. N. Smetanin & T. V. Tkach - 1992 - Behavioral and Brain Sciences 15 (4):709-711.
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  12.  11
    The Afferent Nervous System from a New Aspect.Henry Head, W. H. R. Rivers & James Sherren - 1906 - Journal of Philosophy, Psychology and Scientific Methods 3 (10):271-275.
  13. Afferent fibers involved in defense reflexes from the respiratory tract.Hazel M. Coleridge & John Cg Coleridge - 1981 - In G. Adam, I. Meszaros & E. I. Banyai (eds.), Advances in Physiological Science. pp. 467-477.
  14. Single-afferent neurons and somatic sensation in humans.A. B. Vallbo - 1995 - In Michael S. Gazzaniga (ed.), The Cognitive Neurosciences. MIT Press. pp. 237--252.
     
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  15.  31
    Afferent isn't efferent, and language isn't logic, either.Derek Bickerton - 2003 - Behavioral and Brain Sciences 26 (3):286-287.
    Hurford's argument suffers from two major weaknesses. First, his account of neural mechanisms suggests no place in the brain where the two halves of a predicate-argument structure could come together. Second, his assumption that language and cognition must be based on logic is neither necessary nor particularly plausible, and leads him to some unlikely conclusions.
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  16.  23
    Afferent-efferent connections and ?neutrality-modifications? in perceptual and imaginative consciousness.Ralph D. Ellis - 1990 - Man and World 23 (1):23-33.
  17.  36
    Sensory stimulation for patients with disorders of consciousness: from stimulation to rehabilitation.Carlo Abbate, Pietro D. Trimarchi, Isabella Basile, Anna Mazzucchi & Guya Devalle - 2014 - Frontiers in Human Neuroscience 8.
  18. Effects of Deep Brain Stimulation on the lived experience of Obsessive-Compulsive Disorder patients.Sanneke de Haan, Erik Rietveld, Martin Stokhof & Damiaan Denys - 2015 - PLoS ONE 10 (8):1-29.
    Deep Brain Stimulation (DBS) is a relatively new, experimental treatment for patients suffering from treatment-refractory Obsessive Compulsive Disorder (OCD). The effects of treatment are typically assessed with psychopathological scales that measure the amount of symptoms. However, clinical experience indicates that the effects of DBS are not limited to symptoms only: patients for instance report changes in perception, feeling stronger and more confident, and doing things unreflectively. Our aim is to get a better overview of the whole variety of changes (...)
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  19. Stimulating good practice - What an embodied cognition approach could mean for Deep Brain Stimulation practice.Sanneke de Haan, Erik Rietveld & Damiaan Denys - 2014 - American Journal of Bioethics Neuroscience 5 (4).
    We whole-heartedly agree with Mecacci and Haselager(2014) on the need to investigate the psychosocial effects of deep brain stimulation (DBS), and particularly to find out how to prevent adverse psychosocial effects. We also agree with the authors on the value of an embodied, embedded, enactive approach (EEC) to the self and the mind–brain problem. However, we do not think this value primarily lies in dissolving a so-called “maladaptation” of patients to their DBS device. In this comment, we challenge three (...)
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  20.  17
    Role of capsaicin-sensitive afferent nerves in initiation and maintenance of pathological pain.Gábor Jancsó, Mária Dux & Péter Sántha - 1997 - Behavioral and Brain Sciences 20 (3):454-455.
    This commentary provides experimental data in support of the critical role of capsaicin-sensitive primary afferent fibers in the initiation and maintenance of pathological pain. The demonstration of capsaicin-induced, centrally-evoked cutaneous hyperalgesia, and of neuroplastic changes elicited by the degeneration of C-fiber primary afferent terminals following peripheral nerve damage, indicates a significant contribution of capsaicin-sensitive sensory ganglion neurons in the development of pathological pain conditions. [coderre & katz].
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  21.  8
    The Afferent Nervous System from a New Aspect. [REVIEW]Shepherd Ivory Franz - 1906 - Journal of Philosophy, Psychology and Scientific Methods 3 (10):271-275.
  22.  11
    Integration of predictions and afferent signals in body ownership.Marie Chancel, Birgit Hasenack & H. Henrik Ehrsson - 2021 - Cognition 212 (C):104722.
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  23. Stimulating brains, altering minds.W. Glannon - 2009 - Journal of Medical Ethics 35 (5):289-292.
    Deep-brain stimulation has been used to treat advanced Parkinson disease and other neurological and psychiatric disorders that have not responded to other treatments. While deep-brain stimulation can modulate overactive or underactive regions of the brain and thereby improve motor function, it can also cause changes in a patient’s thought and personality. This paper discusses the trade-offs between the physiological benefit of this technique and the potential psychological harm.
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  24. Deep Brain Stimulation, Authenticity and Value.Pugh Jonathan, Maslen Hannah & Savulescu Julian - 2017 - Cambridge Quarterly of Healthcare Ethics 26 (4):640-657.
    Deep brain stimulation has been of considerable interest to bioethicists, in large part because of the effects that the intervention can occasionally have on central features of the recipient’s personality. These effects raise questions regarding the philosophical concept of authenticity. In this article, we expand on our earlier work on the concept of authenticity in the context of deep brain stimulation by developing a diachronic, value-based account of authenticity. Our account draws on both existentialist and essentialist approaches to (...)
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  25.  27
    Dichotic stimulation and retention.Lloyd R. Peterson & Susan Kroener - 1964 - Journal of Experimental Psychology 68 (2):125.
  26.  19
    How does the B-afferent classification apply to vagal afferent neurons?J. S. Davison & K. A. Sharkey - 1990 - Behavioral and Brain Sciences 13 (2):301-302.
  27. Brain stimulation for treatment and enhancement in children: an ethical analysis.Hannah Maslen, Brian D. Earp, Roi Cohen Kadosh & Julian Savulescu - 2014 - Frontiers in Human Neuroscience 8.
    Davis called for “extreme caution” in the use of non-invasive brain stimulation to treat neurological disorders in children, due to gaps in scientific knowledge. We are sympathetic to his position. However, we must also address the ethical implications of applying this technology to minors. Compensatory trade-offs associated with NIBS present a challenge to its use in children, insofar as these trade-offs have the effect of limiting the child’s future options. The distinction between treatment and enhancement has some normative force (...)
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  28.  56
    Brain stimulation and conscious experience.Daniel A. Pollen - 2004 - Consciousness and Cognition 13 (3):626-645.
    Libet discovered that a substantial duration (> 0.5-1.0 s) of direct electrical stimulation of the surface of the somatosensory cortex at threshold currents is required before human subjects can report that a conscious somatosensory experience had occurred. Using a reaction time method we confirm that a similarly long stimulation duration at threshold currents is required for activation of elementary visual experiences (phosphenes) in human subjects following stimulation of the surface of the striate cortex. However, the reaction times (...)
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  29.  14
    Transcranial stimulation of the developing brain: a plea for extreme caution.Nick J. Davis - 2014 - Frontiers in Human Neuroscience 8.
  30. Brain stimulation.T. Z. Aziz & J. F. Stein - 1987 - In Richard Langton Gregory (ed.), The Oxford companion to the mind. New York: Oxford University Press. pp. 129--136.
     
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  31.  22
    Stimulating debate: ethics in a multidisciplinary functional neurosurgery committee.P. J. Ford - 2006 - Journal of Medical Ethics 32 (2):106-109.
    Multidisciplinary healthcare committees meet regularly to discuss patients’ candidacy for emerging functional neurosurgical procedures, such as Deep Brain Stimulation . Through debate and discussion around the surgical candidacy of particular patients, functional neurosurgery programs begin to mold practice and policy supported both by scientific evidence and clear value choices. These neurosurgical decisions have special considerations not found in non-neurologic committees. The professional time used to resolve these conflicts provides opportunities for the emergence of careful, ethical practices simultaneous with the (...)
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  32.  9
    Auditory Stimulation Training With Technically Manipulated Musical Material in Preschool Children With Specific Language Impairments: An Explorative Study.Ingo Roden, Kaija Früchtenicht, Gunter Kreutz, Friedrich Linderkamp & Dietmar Grube - 2019 - Frontiers in Psychology 10.
    Auditory stimulation training (AST) has been proposed as a potential treatment for chil-dren with specific language impairments (SLI). The current study was designed to test this as-sumption by using an AST with technically modulated musical material (ASTM) in a random-ized control group design. A total of 101 preschool children (62 male, 39 females; mean age = 4.52 years, SD = 0.62) with deficits in speech comprehension and poor working memory ca-pacity were randomly allocated into one of two treatment groups (...)
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  33.  70
    Brain stimulation and conscious experience: Electrical stimulation of the cortical surface at a threshold current evokes sustained neuronal activity only after a prolonged latency.Daniel A. Pollen - 2006 - Consciousness and Cognition 15 (3):560-565.
    Libet demonstrated that a substantial duration (>0.5-1.0 s) of direct electrical stimulation of the surface of a sensory cortex at a threshold or liminal current is required before a subject can experience a percept. Libet and his co-workers originally proposed that the result could be due either to spatial and temporal facilitation of the underlying neurons or additionally to a prolonged central processing time. However, over the next four decades, Libet chose to attribute the prolonged latency for evoking conscious (...)
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  34.  13
    B-afferents: An important afferent input to the autonomic reflexes.Akira Niijima - 1990 - Behavioral and Brain Sciences 13 (2):314-314.
  35. Brain stimulation in the study of neuronal functions for conscious sensory experiences.Benjamin W. Libet - 1982 - Human Neurobiology 1:235-42.
  36.  31
    Stimulating the Self: The Influence of Conceptual Frameworks on Reactions to Deep Brain Stimulation.Giulio Mecacci & W. F. G. Haselager - 2014 - American Journal of Bioethics Neuroscience 5 (4):30-39.
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  37.  25
    Zero-stimulation for parameter setting.Robin Freidin & A. Carlos Quicoli - 1989 - Behavioral and Brain Sciences 12 (2):338-339.
  38.  27
    Brain stimulation and the threshold of conscious experience.Benjamin Libet - 1966 - In John C. Eccles (ed.), Brain and Conscious Experience. Springer. pp. 165--181.
  39. Deep Brain Stimulation e sintesi uomo-macchina: la possibilità di una prospettiva fenomenologica.Giuseppe Comerci & Sarah Songhorian - 2024 - Rivista Internazionale di Filosofia e Psicologia 15 (1):61-72.
    _Riassunto_: La _Deep Brain Stimulation _(DBS) è un dispositivo annoverato tra le interfacce-cervello computer e che si qualifica come una promettente soluzione medica per far fronte al decorso di alcune malattie neurodegenerative come il Parikinson. Decenni di utilizzo clinico della DBS hanno permesso di comprenderne gli effetti collaterali e il loro impatto sul PIAAAS (_Personality, Identity, Agency, Authenticity, Autonomy and Self_). In tal senso, per sondare cambiamenti psicologici legati all’uso della DBS si è fatto ricorso a metodi quantitativi, come (...)
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  40.  58
    Stimulation Parameters Used During Repetitive Transcranial Magnetic Stimulation for Motor Recovery and Corticospinal Excitability Modulation in SCI: A Scoping Review.Nabila Brihmat, Didier Allexandre, Soha Saleh, Jian Zhong, Guang H. Yue & Gail F. Forrest - 2022 - Frontiers in Human Neuroscience 16.
    There is a growing interest in non-invasive stimulation interventions as treatment strategies to improve functional outcomes and recovery after spinal cord injury. Repetitive transcranial magnetic stimulation is a neuromodulatory intervention which has the potential to reinforce the residual spinal and supraspinal pathways and induce plasticity. Recent reviews have highlighted the therapeutic potential and the beneficial effects of rTMS on motor function, spasticity, and corticospinal excitability modulation in SCI individuals. For this scoping review, we focus on the stimulation (...)
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  41.  14
    Stimulating Research and Development of New Antibiotics While Ensuring Sustainable Use and Access: Further Insights from the DRIVE-AB Project and Others.Esther Bettiol, Judith Hackett & Stephan Harbarth - 2018 - Journal of Law, Medicine and Ethics 46 (s1):5-8.
    Global discussions are ongoing on how to stimulate antibiotic research and development in order to provide patients with new antibiotics able to address the challenges of antimicrobial resistance. In this supplement, we present nine articles derived from the research performed as part of the Innovative Medicine Initiative-funded DRIVE-AB project and others. These publications provide new evidence and arguments in the debate around economic incentives to stimulate antibiotic innovation, including characteristics, implementation and governance.
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  42.  66
    Deep Brain Stimulation, Continuity over Time, and the True Self.Sven Nyholm & Elizabeth O’Neill - 2016 - Cambridge Quarterly of Healthcare Ethics 25 (4):647-658.
    One of the topics that often comes up in ethical discussions of deep brain stimulation (DBS) is the question of what impact DBS has, or might have, on the patient’s self. This is often understood as a question of whether DBS poses a “threat” to personal identity, which is typically understood as having to do with psychological and/or narrative continuity over time. In this article, we argue that the discussion of whether DBS is a “threat” to continuity over time (...)
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  43. Deep Brain Stimulation for Treatment Resistant Depression: Postoperative Feelings of Self-Estrangement, Suicide Attempt and Impulsive–Aggressive Behaviours.Frederic Gilbert - 2013 - Neuroethics 6 (3):473-481.
    The goal of this article is to shed light on Deep Brain Stimulation (DBS) postoperative suicidality risk factors within Treatment Resistant Depression (TRD) patients, in particular by focusing on the ethical concern of enrolling patient with history of self-estrangement, suicide attempts and impulsive–aggressive inclinations. In order to illustrate these ethical issues we report and review a clinical case associated with postoperative feelings of self-estrangement, self-harm behaviours and suicide attempt leading to the removal of DBS devices. Could prospectively identifying and (...)
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  44.  20
    Stimulating the Dorsolateral Prefrontal Cortex Decreases the Asset Bubble: A tDCS Study.Xuejun Jin, Cheng Chen, Xue Zhou & Xiaolan Yang - 2019 - Frontiers in Psychology 10:436402.
    Many studies have discussed the neural basis of asset bubbles. They found that the dorsolateral prefrontal cortex (DLPFC) played an important role in bubble formation, but whether a causal relationship exists and the mechanism of the effect of the DLPFC on bubbles remains unsettled. Using transcranial direct current stimulation (tDCS), we modulated the activity of the DLPFC and investigated the causal relationship between the DLPFC and the asset bubble in the classical learning-to-forecast experiment. 126 subjects were randomly divided into (...)
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  45. Stimulating Creativity in Groups through Mental Simulation.Keith Markman, Elaine Wong, Laura Kray & Adam Galinsky - 2009 - In E. A. Mannix (ed.), Creativity in Groups (Research on Managing Groups and Teams, Vol. 12). Emerald Group Publishing. pp. 111-134.
    A growing literature has recognized the importance of mental simulation (e.g., imagining alternatives to reality) in sparking creativity. In this chapter, we examine how counterfactual thinking, or imagining alternatives to past outcomes, affects group creativity. We explore these effects by articulating a model that considers the influence of counterfactual thinking on both the cognitive and social processes known to impact group creative performance. With this framework, we aim to stimulate research on group creativity from a counterfactual perspective.
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  46.  59
    Stimulating E-Business Capabilities and Digital Marketing Strategies on Business Performance in E-Commerce Industry.Federico Del Giorgio Solfa, Sandra Cristina De Oliveira & Fernando Rogelio Simonato - 2023 - International Journal of Computations Information and Manufacturing (Ijcim) 3 (2):1-12.
    This study investigates how e-business capabilities and digital marketing strategies jointly influence business performance in the e-commerce industry, which has experienced unprecedented growth driven by technological advancements and changing consumer behavior. E-business capabilities encompass the use of technology and digital infrastructure, while digital marketing strategies are employed to attract and retain online customers. The study examines the effect of e-business capabilities through digital marketing strategies on the customer satisfaction and loyalty of UAE e-commerce industry. The research is descriptive and explanatory, (...)
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  47. Deep Brain Stimulation and the Search for Identity.Karsten Witt, Jens Kuhn, Lars Timmermann, Mateusz Zurowski & Christiane Woopen - 2011 - Neuroethics 6 (3):499-511.
    Ethical evaluation of deep brain stimulation as a treatment for Parkinson’s disease is complicated by results that can be described as involving changes in the patient’s identity. The risk of becoming another person following surgery is alarming for patients, caregivers and clinicians alike. It is one of the most urgent conceptual and ethical problems facing deep brain stimulation in Parkinson’s disease at this time. In our paper we take issue with this problem on two accounts. First, we elucidate (...)
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  48.  21
    Optokinetic Stimulation Modulates Neglect for the Number Space: Evidence from Mental Number Interval Bisection.Konstantinos Priftis, Marco Pitteri, Francesca Meneghello, Carlo Umiltà & Marco Zorzi - 2012 - Frontiers in Human Neuroscience 6.
  49.  38
    Electrical stimulation and the neurobiology of language.George A. Ojemann - 1983 - Behavioral and Brain Sciences 6 (2):221-230.
  50.  20
    Stimulating Autonomy: DBS and the Prospect of Choosing to Control Ourselves Through Stimulation.Sara Goering - 2015 - American Journal of Bioethics Neuroscience 6 (4):1-3.
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