The Connection Between Spatial and Mathematical Ability Across Development
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[1] Kelly S. Mix,et al. Separate but correlated: The latent structure of space and mathematics across development. , 2016, Journal of experimental psychology. General.
[2] D. Metzler,et al. Mental rotation: effects of dimensionality of objects and type of task. , 1988, Journal of Experimental Psychology: Human Perception and Performance.
[3] D. Lubinski,et al. Importance of Assessing Spatial Ability in Intellectually Talented Young Adolescents: A 20-Year Longitudinal Study. , 2001 .
[4] A. Tomarken,et al. Structural equation modeling: strengths, limitations, and misconceptions. , 2005, Annual review of clinical psychology.
[5] H. Barth,et al. Developmental change in numerical estimation. , 2013, Journal of experimental psychology. General.
[6] J. LeFevre,et al. Training young children on sequential relations among numbers and spatial decomposition: Differential transfer to number line and mental transformation tasks. , 2016, Developmental psychology.
[7] Kelly S. Mix,et al. Spatial Tools for Mathematical Thought , 2009, The Spatial Foundations of Language and Cognition.
[8] Catherine D. Bruce,et al. The role of 2D and 3D mental rotation in mathematics for young children: what is it? Why does it matter? And what can we do about it? , 2015 .
[9] Lukas Furst,et al. Multivariate Data Analysis With Readings , 2016 .
[10] Robert Plomin,et al. Why do spatial abilities predict mathematical performance? , 2014, Developmental science.
[11] Justin Halberda,et al. Links Between the Intuitive Sense of Number and Formal Mathematics Ability. , 2013, Child development perspectives.
[12] A. Heathcote,et al. Titrating decision processes in the mental rotation task. , 2015, Psychological review.
[13] E. Spelke,et al. Sources of mathematical thinking: behavioral and brain-imaging evidence. , 1999, Science.
[14] Michael Schneider,et al. Associations of non-symbolic and symbolic numerical magnitude processing with mathematical competence: a meta-analysis. , 2017, Developmental science.
[15] N. Newcombe. Picture This: Increasing Math and Science Learning by Improving Spatial Thinking. , 2010 .
[16] Steven L Franconeri,et al. Capacity for Visual Features in Mental Rotation , 2015, Psychological science.
[17] Ralph H Coleman. An analysis of certain components of mathematical ability, and an attempt to predict mathematical achievement in a specific situation , 1956 .
[18] Kelly S. Mix,et al. The relation between space and math: developmental and educational implications. , 2012, Advances in child development and behavior.
[19] S. Sorby,et al. The role of spatial training in improving spatial and calculus performance in engineering students , 2013 .
[20] Clark C. Presson,et al. Mental rotation and the perspective problem , 1973 .
[21] Linda B. Smith,et al. Grounding the Symbols for Place Value: Evidence From Training and Long-Term Exposure to Base-10 Models , 2017 .
[22] R. Cohen Kadosh,et al. Basic and Advanced Numerical Performances Relate to Mathematical Expertise but Are Fully Mediated by Visuospatial Skills , 2016, Journal of experimental psychology. Learning, memory, and cognition.
[23] Emily R. Fyfe,et al. Early Math Trajectories: Low-Income Children's Mathematics Knowledge From Ages 4 to 11. , 2017, Child development.
[24] D. Uttal,et al. The malleability of spatial skills: a meta-analysis of training studies. , 2013, Psychological bulletin.
[25] Gavin R. Price,et al. Numerical predictors of arithmetic success in grades 1-6. , 2014, Developmental science.
[26] Kelly S. Mix,et al. The Latent Structure of Spatial Skills and Mathematics: A Replication of the Two-Factor Model , 2017 .
[27] Jennifer M. Shephard,et al. Spatial versus object visualizers: A new characterization of visual cognitive style , 2005, Memory & cognition.
[28] J. Hamm,et al. Individual differences in the mixture ratio of rotation and nonrotation trials during rotated mirror/normal letter discriminations , 2012, Memory & Cognition.
[29] C. E. Bethell-Fox,et al. Mental rotation: effects of stimulus complexity and familiarity , 1988 .
[30] Korbinian Moeller,et al. The link between mental rotation ability and basic numerical representations , 2013, Acta psychologica.
[31] Manuel Santos-Trigo,et al. Mathematical Problem Solving , 2015 .
[32] K. Bollen. A New Incremental Fit Index for General Structural Equation Models , 1989 .
[33] Peer Soelberg,et al. On the Interpretation of Factor Analysis , 1968 .
[34] J. Lehto,et al. Some factors underlying mathematical performance: The role of visuospatial working memory and non-verbal intelligence , 2008 .
[35] C. Spearman,et al. "THE ABILITIES OF MAN". , 1928, Science.
[36] L. Aiken. Attitudes Toward Mathematics , 1970 .
[37] J. Moss,et al. Enhancing Children's Spatial and Numerical Skills through a Dynamic Spatial Approach to Early Geometry Instruction: Effects of a 32-Week Intervention , 2017 .
[38] R. MacCallum,et al. Sample size in factor analysis. , 1999 .
[39] S. Carey. Bootstrapping & the origin of concepts , 2004, Daedalus.
[40] C. Adcock,et al. Primary Mental Abilities. , 1971, The Journal of general psychology.
[41] C. Stein,et al. Structural equation modeling. , 2012, Methods in molecular biology.
[42] Minna Reuhkala. Mathematical Skills in Ninth-graders: Relationship with visuo-spatial abilities and working memory , 2001 .
[43] M. Hegarty,et al. Types of visual–spatial representations and mathematical problem solving. , 1999 .
[44] Andrew M. Lovett,et al. Modeling Spatial Abstraction during Mental Rotation , 2014, CogSci.
[45] M. Stieff. Sex Differences in the Mental Rotation of Chemistry Representations , 2013 .
[46] Kelly S. Mix,et al. Spatial Training Improves Children's Mathematics Ability , 2014 .
[47] Brian N. Verdine,et al. Contributions of executive function and spatial skills to preschool mathematics achievement. , 2014, Journal of experimental child psychology.
[48] W. Kline. A synthesis of two factor analyses of intermediate algebra , 1959 .
[49] J. Hamm,et al. A model of rotated mirror/normal letter discriminations , 2010, Memory & cognition.
[50] S. Dehaene,et al. A Magnitude Code Common to Numerosities and Number Symbols in Human Intraparietal Cortex , 2007, Neuron.
[51] Elizabeth A. L. Stine-Morrow,et al. Do “Brain-Training” Programs Work? , 2016, Psychological science in the public interest : a journal of the American Psychological Society.
[52] J. Moss,et al. Effects of mental rotation training on children’s spatial and mathematics performance: A randomized controlled study , 2015, Trends in Neuroscience and Education.
[53] Daniel Ansari,et al. Common and segregated neural pathways for the processing of symbolic and nonsymbolic numerical magnitude: An fMRI study , 2010, NeuroImage.
[54] J. Guilford,et al. The Description of Spatial-Visualization Abilities , 1957 .
[55] Susan Goldin-Meadow,et al. Mental Transformation Skill in Young Children: The Role of Concrete and Abstract Motor Training , 2018, Cogn. Sci..
[56] M. G. McGee. Human spatial abilities: psychometric studies and environmental, genetic, hormonal, and neurological influences. , 1979, Psychological bulletin.
[57] Thomas F. Shipley,et al. Thinking About Spatial Thinking: New Typology, New Assessments , 2015 .
[58] Barry D. Biddlecomb,et al. A comparison of predictors of early emerging gender differences in mathematics competency , 2008 .
[59] D. Gerbing,et al. Viability of exploratory factor analysis as a precursor to confirmatory factor analysis , 1996 .
[60] M. Witt. School based working memory training: Preliminary finding of improvement in children’s mathematical performance , 2011, Advances in cognitive psychology.
[61] Ana R. Delgado,et al. Cognitive mediators and sex-related differences in mathematics , 2004 .
[62] Pirjo Aunio,et al. Visuospatial working memory and early numeracy , 2003, Educational and Child Psychology.
[63] M. Casey,et al. Mediators of gender differences in mathematics college entrance test scores: a comparison of spatial skills with internalized beliefs and anxieties. , 1997, Developmental psychology.
[64] S. Vandenberg,et al. Mental Rotations, a Group Test of Three-Dimensional Spatial Visualization , 1978, Perceptual and motor skills.
[65] Vladimir M. Sloutsky,et al. Transfer of Mathematical Knowledge: The Portability of Generic Instantiations , 2009 .
[66] Percival G. Matthews,et al. Making Space for Spatial Proportions , 2017, Journal of learning disabilities.
[67] Catherine D. Bruce,et al. The role of 2D and 3D mental rotation in mathematics for young children: what is it? Why does it matter? And what can we do about it? , 2014, ZDM.
[68] David F. Lohman,et al. Spatial abilities as traits, processes, and knowledge. , 1988 .
[69] K. Holyoak,et al. Teaching the Conceptual Structure of Mathematics , 2012 .
[70] Sian L. Beilock,et al. The relation between spatial skill and early number knowledge: the role of the linear number line. , 2012, Developmental psychology.
[71] Thomas Lowrie,et al. Visuospatial training improves elementary students’ mathematics performance , 2017, The British journal of educational psychology.
[72] A. Chatterjee. The neural organization of spatial thought and language. , 2008, Seminars in speech and language.
[73] Catherine D. Bruce,et al. Mental Rotation With Tangible Three-Dimensional Objects: A New Measure Sensitive to Developmental Differences in 4- to 8-Year-Old Children , 2015 .
[74] Mary K. Hoard,et al. Sex differences in spatial cognition, computational fluency, and arithmetical reasoning. , 2000, Journal of experimental child psychology.
[75] E. Spelke,et al. Language and Conceptual Development series Core systems of number , 2004 .
[76] R. Rummel. Applied Factor Analysis , 1970 .
[77] M. Barnes,et al. Working memory and mathematics: A review of developmental, individual difference, and cognitive approaches. , 2010 .
[78] M. Battista. Spatial Visualization and Gender Differences in High School Geometry. , 1990 .
[79] D. Lubinski,et al. Spatial ability for STEM domains: Aligning over 50 years of cumulative psychological knowledge solidifies its importance. , 2009 .
[80] M. Hegarty,et al. A dissociation between object manipulation spatial ability and spatial orientation ability , 2001, Memory & cognition.
[81] R. Shepard,et al. Mental Rotation of Three-Dimensional Objects , 1971, Science.
[82] R. Skemp. REFLECTIVE INTELLIGENCE AND MATHEMATICS , 1961 .
[83] Michael C. Pyryt. Human cognitive abilities: A survey of factor analytic studies , 1998 .
[84] Robert L. Goldstone,et al. Proximity and Precedence in Arithmetic , 2010, Quarterly journal of experimental psychology.
[85] R. Siegler,et al. The Development of Numerical Estimation , 2003, Psychological science.