Processing of numerical representation of fingers depends on their location in space
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[1] Michael Andres,et al. Actions, Words, and Numbers , 2008 .
[2] S. Dehaene,et al. The priming method: imaging unconscious repetition priming reveals an abstract representation of number in the parietal lobes. , 2001, Cerebral cortex.
[3] Wim Fias,et al. Passive Hand Movements Disrupt Adults’ Counting Strategies , 2011, Front. Psychology.
[4] M. H. Fischer,et al. Stimulating numbers: signatures of finger counting in numerosity processing , 2020, Psychological research.
[5] Avishai Henik,et al. Automatic activation of internal magnitudes: a study of developmental dyscalculia. , 2005, Neuropsychology.
[6] Etienne Olivier,et al. Response–effect compatibility of finger–numeral configurations in arithmetical context , 2010, Quarterly journal of experimental psychology.
[7] G. Ifrah,et al. Histoire universelle des chiffres , 1981 .
[8] Luisa Girelli,et al. Nature or Nurture in Finger Counting: A Review on the Determinants of the Direction of Number–Finger Mapping , 2011, Front. Psychology.
[9] G. Pellegrino,et al. Peripersonal space in the brain , 2015, Neuropsychologia.
[10] Darcy Hallett,et al. Finger-counting habits, not finger movements, predict simple arithmetic problem solving , 2020, Psychological research.
[11] K. Fuson. An Analysis of the Counting-On Solution Procedure in Addition , 2020, Addition and Subtraction.
[12] T. Meiser. Experimental Psychology: A case for methodological rigor and theoretical relevance , 2013 .
[13] B. Mazoyer,et al. Neural Correlates of Simple and Complex Mental Calculation , 2001, NeuroImage.
[14] M. Fayol,et al. Des doigts et des nombres , 2017, Psychologie Française.
[15] Michael W. L. Chee,et al. Neural correlates of symbolic and non-symbolic arithmetic , 2005, Neuropsychologia.
[16] Frank Domahs,et al. Embodied numerosity: Implicit hand-based representations influence symbolic number processing across cultures , 2010, Cognition.
[17] W. Reardon,et al. Apert syndrome results from localized mutations of FGFR2 and is allelic with Crouzon syndrome , 1995, Nature Genetics.
[18] P. Bryant. Children's Counting and Concepts of Number. By Karen C. Fuson , 1988 .
[19] Y. Coello,et al. EEG μ rhythm in virtual reality reveals that motor coding of visual objects in peripersonal space is task dependent , 2016, Cortex.
[20] H. Siebner,et al. Effector‐independent representations of simple and complex imagined finger movements: a combined fMRI and TMS study , 2003, The European journal of neuroscience.
[21] Martin H. Fischer,et al. When Digits Help Digits: Spatial–Numerical Associations Point to Finger Counting as Prime Example of Embodied Cognition , 2011, Front. Psychology.
[22] H. Wiese. Iconic and non-iconic stages in number development: the role of language , 2003, Trends in Cognitive Sciences.
[23] Z. Stark,et al. Apert syndrome: temporal lobe abnormalities on fetal brain imaging , 2015, Prenatal diagnosis.
[24] John Richards,et al. The Acquisition and Elaboration of the Number Word Sequence , 1982 .
[25] Philippe Pinel,et al. Distributed and Overlapping Cerebral Representations of Number, Size, and Luminance during Comparative Judgments , 2004, Neuron.
[26] Riitta Salmelin,et al. Cortical activation during a spatiotemporal tactile comparison task , 2004, NeuroImage.
[27] S. Dehaene,et al. Representation of number in the brain. , 2009, Annual review of neuroscience.
[28] Mauro Pesenti,et al. Finger Numeral Representations: More than Just Another Symbolic Code , 2011, Front. Psychology.
[29] Andrea Bender,et al. Fingers as a Tool for Counting – Naturally Fixed or Culturally Flexible? , 2011, Front. Psychology.
[30] Takashi Hanakawa,et al. Differential activity in the premotor cortex subdivisions in humans during mental calculation and verbal rehearsal tasks: a functional magnetic resonance imaging study , 2003, Neuroscience Letters.
[31] Korbinian Moeller,et al. Effects of Finger Counting on Numerical Development – The Opposing Views of Neurocognition and Mathematics Education , 2011, Front. Psychology.
[32] Brian Butterworth,et al. Are Subitizing and Counting Implemented as Separate or Functionally Overlapping Processes? , 2002, NeuroImage.
[33] Xavier Seron,et al. The role of vision in the development of finger-number interactions: Finger-counting and finger-montring in blind children. , 2011, Journal of experimental child psychology.
[34] J. Gerstmann. SYNDROME OF FINGER AGNOSIA, DISORIENTATION FOR RIGHT AND LEFT, AGRAPHIA AND ACALCULIA: LOCAL DIAGNOSTIC VALUE , 1940 .
[35] Oliver Lindemann,et al. Finger posing primes number comprehension , 2017, Cognitive Processing.
[36] S. Goldin-Meadow,et al. Making children gesture brings out implicit knowledge and leads to learning. , 2007, Journal of experimental psychology. General.
[37] Marie-Pascale Noël,et al. Numerical Estimation in Adults with and without Developmental Dyscalculia. , 2012 .
[38] Wolzt,et al. World Medical Association Declaration of Helsinki: ethical principles for medical research involving human subjects. , 2003, The Journal of the American College of Dentists.
[39] C. Hulme,et al. The cognitive foundations of early arithmetic skills: It is counting and number judgment, but not finger gnosis, that count. , 2016, Journal of experimental child psychology.
[40] Elizabeth M. Brannon,et al. Numerosity processing in early visual cortex , 2017, NeuroImage.
[41] Bruno Rossion,et al. A rapid, objective and implicit measure of visual quantity discrimination , 2018, Neuropsychologia.
[42] Mauro Pesenti,et al. Masked priming effect with canonical finger numeral configurations , 2008, Experimental Brain Research.
[43] Michael Andres,et al. Finger-based representation of mental arithmetic , 2015 .
[44] S. Pika,et al. How to Order a Beer , 2009 .
[45] Jiajie Zhang,et al. The Involvement of the Inferior Parietal Cortex in the Numerical Stroop Effect and the Distance Effect in a Two-digit Number Comparison Task , 2006, Journal of Cognitive Neuroscience.
[46] Friedemann Pulvermüller,et al. You can count on the motor cortex: Finger counting habits modulate motor cortex activation evoked by numbers , 2012, NeuroImage.
[47] Frank Domahs,et al. Mind the gap between both hands: Evidence for internal finger-based number representations in children's mental calculation , 2008, Cortex.
[48] Y. Coello,et al. Embodied perception of objects and people in space: Towards a unified theoretical framework , 2015 .
[49] D. Burr,et al. A Visual Sense of Number , 2007, Current Biology.
[50] M. Noël,et al. Does finger training increase young children's numerical performance? , 2008, Cortex.
[51] Susan C. Levine,et al. Assessing early arithmetic abilities: Effects of verbal and nonverbal response types on the calculation performance of middle-and low-income children , 1994 .
[52] H. Nuerk,et al. A large-scale survey on finger counting routines, their temporal stability and flexibility in educated adults , 2018, PeerJ.
[53] B. Butterworth,et al. A Head for Figures , 1999, Science.
[54] S. Goldin-Meadow,et al. Gesturing makes learning last , 2008, Cognition.
[55] Mauro Pesenti,et al. Place and summation coding for canonical and non-canonical finger numeral representations , 2010, Cognition.
[56] Marie-Pascale Noël,et al. Is Finger-counting Necessary for the Development of Arithmetic Abilities? , 2011, Front. Psychology.
[57] F. Galante,et al. Peripersonal and interpersonal space in virtual and real environments: Effects of gender and age , 2016 .
[58] R. C. Oldfield. The assessment and analysis of handedness: the Edinburgh inventory. , 1971, Neuropsychologia.
[59] Michael Andres,et al. Selective interference of finger movements on basic addition and subtraction problem solving. , 2013, Experimental psychology.
[60] B. Butterworth. The development of arithmetical abilities. , 2005, Journal of child psychology and psychiatry, and allied disciplines.
[61] G. Rizzolatti,et al. Afferent properties of periarcuate neurons in macaque monkeys. I. Somatosensory responses , 1981, Behavioural Brain Research.
[62] Susan C. Levine,et al. Differential calculation abilities in young children from middle- and low-income families. , 1992 .
[63] Andrea Bender,et al. Nature and culture of finger counting: Diversity and representational effects of an embodied cognitive tool , 2012, Cognition.
[64] Elizabeth M. Brannon,et al. Numerical encoding in early visual cortex , 2019, Cortex.
[65] M. Thioux,et al. Neuroanatomical Substrates of Arabic Number Processing, Numerical Comparison, and Simple Addition: A PET Study , 2000, Journal of Cognitive Neuroscience.
[66] E. Mayer,et al. A pure case of Gerstmann syndrome with a subangular lesion. , 1999, Brain : a journal of neurology.
[67] H. Wiese. Numbers, language, and the human mind , 2003 .
[68] Melissa E. Libertus,et al. Parallels in Stimulus-Driven Oscillatory Brain Responses to Numerosity Changes in Adults and Seven-Month-Old Infants , 2011, Developmental neuropsychology.
[69] James T. Townsend,et al. The Stochastic Modeling of Elementary Psychological Processes , 1983 .
[70] Joonkoo Park,et al. A neural basis for the visual sense of number and its development: A steady-state visual evoked potential study in children and adults , 2017, Developmental Cognitive Neuroscience.
[71] Martin H. Fischer,et al. Finger counting habits modulate spatial-numerical associations , 2008, Cortex.
[72] Arjan C. ter Horst,et al. Spatial dependency of action simulation , 2011, Experimental Brain Research.
[73] M. H. Fischer,et al. Foundations of Embodied Cognition: Volume 1: Perceptual and Emotional Embodiment , 2016 .
[74] S. Dehaene,et al. The enigma of Gerstmann's syndrome revisited: a telling tale of the vicissitudes of neuropsychology. , 2010, Brain : a journal of neurology.
[75] Y. Coello. Action Spaces Representation in Social Contexts , 2018, Diversity in Harmony - Insights from Psychology.
[76] David C. Geary,et al. Children's Mathematical Development: Research and Practical Applications , 1996 .
[77] L. Jäncke,et al. Cortical activations during paced finger-tapping applying visual and auditory pacing stimuli. , 2000, Brain research. Cognitive brain research.
[78] Stanislas Dehaene,et al. The Organization of Brain Activations in Number Comparison: Event-Related Potentials and the Additive-Factors Method , 1996, Journal of Cognitive Neuroscience.
[79] Brian Butterworth,et al. Dexterity with numbers: rTMS over left angular gyrus disrupts finger gnosis and number processing , 2005, Neuropsychologia.
[80] Justine C. Cléry,et al. Frontier of Self and Impact Prediction , 2018, Front. Psychol..
[81] T. Jaeger,et al. Categorical Data Analysis: Away from ANOVAs (transformation or not) and towards Logit Mixed Models. , 2008, Journal of memory and language.
[82] Philippe Pinel,et al. Tuning Curves for Approximate Numerosity in the Human Intraparietal Sulcus , 2004, Neuron.
[83] Michael L. Anderson,et al. The relation between finger gnosis and mathematical ability: why redeployment of neural circuits best explains the finding , 2013, Front. Psychol..
[84] Arnaud Badets,et al. Role of an ideomotor mechanism in number processing. , 2013, Experimental psychology.
[85] Julia Anghileri,et al. Scaffolding practices that enhance mathematics learning , 2006 .
[86] Timothy Edward John Behrens,et al. Response-Selection-Related Parietal Activation during Number Comparison , 2004, Journal of Cognitive Neuroscience.
[87] Iain D. Gilchrist,et al. Testing a Simplified Method for Measuring Velocity Integration in Saccades Using a Manipulation of Target Contrast , 2011, Front. Psychology.
[88] C. Hilton. Fingers Matter: The Development of Strategies for Solving Arithmetic Problems in Children With Apert Syndrome , 2019, Front. Educ..
[89] Satoshi Endo,et al. Contribution of the motor system to the perception of reachable space: an fMRI study , 2014, The European journal of neuroscience.
[90] A. Badets,et al. Une approche idéomotrice de la cognition , 2015, L’Année psychologique.
[91] Makoto Ito,et al. Time courses of brain activation and their implications for function: A multichannel near-infrared spectroscopy study during finger tapping , 2007, Neuroscience Research.
[92] B. M. de Jong,et al. Brain activity related to serial cognitive performance resembles circuitry of higher order motor control , 1996, Experimental Brain Research.
[93] S. Dehaene,et al. Exact and Approximate Arithmetic in an Amazonian Indigene Group , 2004, Science.
[94] M. Noël,et al. Finger gnosia: a predictor of numerical abilities in children? , 2005, Child neuropsychology : a journal on normal and abnormal development in childhood and adolescence.
[95] A. Ardila,et al. Angular gyrus syndrome revisited: Acalculia, finger agnosia, right-left disorientation and semantic aphasia , 2000 .
[96] Michael Kristensen,et al. Statistical analyses of repeated measures in physiological research: a tutorial. , 2004, Advances in physiology education.
[97] Xavier Seron,et al. Finger–digit compatibility in Arabic numeral processing , 2006, Quarterly journal of experimental psychology.
[98] Martin Hughes,et al. Children and Number: Difficulties in Learning Mathematics , 1986 .
[99] T. Lucas,et al. The effects of acute cortical somatosensory deafferentation on grip force control , 2016, Cortex.
[100] Christine Schiltz,et al. The neural signature of numerosity by separating numerical and continuous magnitude extraction in visual cortex with frequency-tagged EEG , 2020, Proceedings of the National Academy of Sciences.
[101] Y. Coello,et al. Foundations of embodied cognition, Perceptual and Emotional Embodiment. , 2016 .