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Bibliography
G.E.Alexander,, M.R.DeLong,, & P.L.Strick, (1986). Parallel organization of functionally segregated circuits linking basal ganglia and cortex. Annual Review of Neuroscience, 9, 357–381. doi:10.1146/annurev.ne.09.030186.002041
A.R.Aron,, D.Shohamy,, J.Clark,, C.Myers,, M.A.Gluck,, & R.A.Poldrack, (2004). Human midbrain sensitivity to cognitive feedback and uncertainty during classification learning. Journal of Neurophysiology, 92(2), 1144–1152. doi:10.1152/jn.01209.2003
R.N.Aslin,, J.R.Saffran,, & E.L.Newport, (1998). Computation of conditional probability statistics by 8 month-old infants. Psychological Science, 9(4), 321–324. doi:10.1111/1467-9280.00063
P.J.Bauer, (1996). What do infants recall of their lives? Memory for specific event by one to two-years olds. American Psychologist, 51, 29–41. doi:10.1037/0003-066X.51.1.29
P.J.Bauer,, & J.M.Mandler, (1989). One thing follows another: Effects of temporal structure on 1 to 2-years old’s recall of events. Developmental Psychology, 25(2), 197–206. doi:10.1037/0012-1649.25.2.197
K.T.Ciesielski,, P.G.Lesnik,, R.L.Savoy,, E.P.Grant,, & S.P.Ahlfors, (2006). Developmental neural networks in children performing a categorical N-Back Task. Neuroimage, 33, 980–990. doi:10.1016/j.neuroimage.2006.07.028
S.Corkin, (1968). Acquisition of motor skill after bilateral medial temporal-lobe excision. Neuropsychologia, 6, 255–265. doi:10.1016/0028-3932(68)90024-9
Y.M.Cycowicz,, D.Friedman,, J.G.Snodgrass,, & M.Duff, (2001). Recognition and source memory for pictures in children and adults. Neuropsychologia, 39, 255–267. doi:10.1016/S0028-3932(00)00108-1
A.R.Damasio,, P.J.Eslinger,, H.Damasio,, G.W.Van Hoesen,, & S.Cornell, (1985). Multimodal amnesic syndrome following bilateral temporal and basal forebrain damage. Archives of Neurology, 42, 252–259. doi:10.1001/archneur.1985.04060030070012
S.M.Daselaar,, S.A.Rombuts,, D.J.Veltman,, J.G.Raaijmakers,, & C.Jonker, (2003). Similar networks activated by young and old adults during the acquisition of a motor sequence. Neurobiology of Aging, 24(7), 1013–1019. doi:10.1016/S0197-4580(03)00030-7
D.V.DiGiulio,, M.Seidenberg,, D.S.O’Leary,, & N.Raz, (1994). Procedural and declarative memory. A developmental study. Brain and Cognition, 25, 79–91. doi:10.1006/brcg.1994.1024
A.Drummey,, & N.Newcombe, (1995). Remembering versus knowing the past: Children’s explicit and implicit memories for pictures. Journal of Experimental Child Psychology, 59, 549–565. doi:10.1006/jecp.1995.1025
K.Foerde,, R.A.Poldrack,, B.J.Knowlton,, F.W.Sabb,, S.Y.Bookheimer,, R.M.Bilder,, … R.F.Asarnow, (2008). Selective corticostriatal dysfunction in schizophrenia: Examinationof motor and cognitive skill learning. Neuropsychology, 22(1), 100–109. doi:10.1037/0894-4105.22.1.100
A.Gabriel,, C.Maillart,, M.Guillaume,, N.Stefaniak,, & T.Meulemans, (2011). Exploration of serial structure procedural learning in children with language impairment. Journal of the International Neuropsychological Society, 17, 336–343. doi:10.1017/S1355617710001724
A.Gabriel,, C.Maillart,, N.Stefaniak,, C.Lejeune,, L.Desmottes,, & T.Meulemans, (2013). Procedural learning in specific language impairment: Effects of sequence complexity. Journal of the International Neuropsychological Society, 19(3), 264–271. doi:10.1017/S1355617712001270
A.Gabriel,, N.Stefaniak,, C.Maillart,, X.Schmitz,, & T.Meulemans, (2012). Procedural visual learning in children with specific language impairment. American Journal of Speech Language Pathology, 21(4), 329–341.
F.Gheysen,, H.Van Waelvelde,, & W.Fias, (2011). Impaired visuo-motor sequence learning in developmental coordination disorder. Research in Developmental Disabilities, 32, 749–756. doi:10.1016/j.ridd.2010.11.005
M.A.Gluck,, D.Shohamy,, & C.E.Myers, (2002). How do people solve the “weather prediction task”? Individual variability in strategies for probabilistic category learning. Learning & Memory, 9, 408–418. doi:10.1101/lm.45202
S.T.Grafton,, E.Hazeltine,, & R.Ivry, (1995). Functional mapping of sequences learning in normal humans. Journal of Cognitive Neuroscience, 7, 497–510. doi:10.1162/jocn.1995.7.4.497
A.Graybiel, (2008). Habits, rituals and the evaluative brain. Annual Review of Neuroscience, 31, 359–387. doi:10.1146/annurev.neuro.29.051605.112851
M.M.Haith,, & M.E.McCarty, (1990). Stability of visual expectations at 3.0 months of age. Developmental Psychology, 26, 68–74. doi:10.1037/0012-1649.26.1.68
M.Hedenius,, J.Persson,, A.Tremblay,, E.Adi-Japha,, J.Veríssimo,, C.D.Dye,, … M.T.Ullman, (2011). Grammar predicts procedural learning and consolidation deficits in children with specific language impairment. Research in Developmental Disabilities, 32, 2362–2375. doi:10.1016/j.ridd.2011.07.026
G.M.Jackson,, S.R.Jackson,, J.Harrison,, L.Henderson,, & C.Kennard, (1995). Serial reaction time learning and Parkinson’s disease: Evidence for a procedural learning deficit. Neuropsychologia, 33(5), 577–593. doi:10.1016/0028-3932(95)00010-Z
K.Janacsek,, J.Fiser,, & D.Nemeth, (2012). The best time to acquire new skills: Age-related differences in implicit sequence learning across the human lifespan. Developmental Science, 15(4), 496–505. doi:10.1111/desc.2012.15.issue-4
C.Karatekin,, D.J.Marcus,, & T.White, (2007). Oculomotor and manual indexes of incidental and intentional spatial sequence learning during middle childhood and adolescence. Journal of Experimental Child Psychology, 96, 107–130. doi:10.1016/j.jecp.2006.05.005
F.Kémeny,, & A.Lukács, (2010). Impaired procedural learning in language impairment: Results from probabilistic categorization. Journal of Clinical and Experimental Neuropsychology, 32(3), 249–258.
B.J.Knowlton,, J.A.Mangels,, & L.R.Squire, (1996). A neostriatal habit learning system in humans. Science, 273, 1399–1402. doi:10.1126/science.273.5280.1399
B.J.Knowlton,, & T.D.Moody, (2008). Procedural learning in humans. In J.H.Byrne (Ed.), Learning and memory: A comprehensive reference, Volume 3: Memory Systems. (pp. 321–340). Los Angeles, CA: Elsevier.
B.J.Knowlton,, L.R.Squire,, & M.A.Gluck, (1994). Probabilistic classification learning in amnesia. Learning and Memory, 1(2), 106–120.
B.J.Knowlton,, L.R.Squire,, J.S.Paulsen,, N.R.Swerdlow,, & M.Swenson, (1996). Dissociations within non declarative memory in Huntington’s disease. Neuropsychology, 10(4), 538–548. doi:10.1037/0894-4105.10.4.538
S.Lehericy,, M.Ducros,, P.-F.Van de Moortele,, C.Francois,, L.Thivard,, C.Poupon,, … D.-S.Kim, (2004). Diffusion tensor fiber tracking shows distinct corticostriatal circuits in humans. Annals of Neurology, 55(4), 522–529. doi:10.1002/(ISSN)1531-8249
C.Lejeune,, C.Catale,, S.Willems,, & T.Meulemans, (2013). Intact procedural motor sequence learning in developmental coordination disorder. Research in Developmental Disabilities, 34, 1974–1981. doi:10.1016/j.ridd.2013.03.017
J.A.Lum,, G.Conti-Ramsden,, A.T.Morgan,, & M.T.Ullman, (2014). Procedural learning deficits in specific language impairment (SLI): A meta-analysis of serial reaction time task performance. Cortex, 51, 1–10. doi:10.1016/j.cortex.2013.10.011
J.A.G.Lum,, & D.Blese, (2012). Declarative and procedural memory in Danish speaking children with specific language impairment. Journal of Communication Disorders, 45, 46–58. doi:10.1016/j.jcomdis.2011.09.001
J.A.G.Lum,, G.Conti-Ramsden,, D.Page,, & M.T.Ullman, (2011). Working, declarative and procedural memory in specific language impairment. Cortex. doi:10.1016/j.cortex.2011.06.001
J.A.G.Lum,, C.Gelgic,, & G.Conti-Ramsden, (2010). Procedural and declarative memory in children with and without specific language impairment. International Journal of Language&Communication Disorders, 45(1), 96–107. doi:10.3109/13682820902752285
R.Marsh,, G.M.Alexander,, M.G.Packard,, H.Zhu,, & B.S.Peterson, (2005). Perceptual-motor skill learning in Gilles de la Tourette syndrome. Evidence for multiple procedural learning and memory systems. Neuropsychologia, 43, 1456–1465. doi:10.1016/j.neuropsychologia.2004.12.012
C.Mayor-Dubois,, P.Maeder,, P.Zesiger,, & E.Roulet-Perez, (2010). Visuo-motor and cognitive procedural learning in children with basal ganglia pathology. Neuropsychologia, 48, 2009–2017. doi:10.1016/j.neuropsychologia.2010.03.022
C.Mayor-Dubois,, M.Van der Linden,, P.Zesiger,, & E.Roulet-Perez, (2012). Non-declarative learning in children with Specific Language Impairment: Predicting regularities in the visuo-motor, phonological, and cognitive domains. Child Neuropsychology. doi:10.1080/09297049.2012.734293
T.Meulemans,, M.Van der Linden,, & P.Perruchet, (1998). Implicit sequence learning in children. Journal of Experimental Child Psychology, 69, 199–221. doi:10.1006/jecp.1998.2442
B.Milner, (1962). Les troubles de la mémoire accompagnant des lésions hippocampiques bilatérales. Colloques Internationaux du Centre National de la Recherche Scientifique. Physiologie de L’Hippocampe. Paris: Centre National de la Recherche Scientifique.
D.Muslimovic,, B.Post,, J.D.Speelman,, & B.Schmand, (2007). Motor procedural learning in Parkinson’s disease. Brain, 130, 2887–2897. doi:10.1093/brain/awm211
C.A.Nelson, (1997). The neurobiological basis of early memory development. In N.Cowan (Ed.), The development of memory in childhood. Sussex: Psychology Press.
N.S.Newcombe,, M.E.Lloyd,, & K.R.Ratliff, (2007). Development of episodic and autobiographical memory: A cognitive neuroscience perspective. In R.V.Kail (Ed.), Advances in child development and behavior (pp. 37–85). San Diego: Elsevier.
M.J.Nissen,, & P.Bullemer, (1987). Attentional requirements of learning: Evidence from performance measures. Cognitive Psychology, 19, 1–32. doi:10.1016/0010-0285(87)90002-8
M.G.Packard,, & B.J.Knowlton, (2002). Learning and memory functions of the basal ganglia. Annual Review of Neuroscience, 25, 563–593. doi:10.1146/annurev.neuro.25.112701.142937
A.J.Parkin, (1997). The development of procedural and declarative memory. In N.Cowan (Ed.), The development of memory in childhood. Sussex: Psychology Press.
R.A.Poldrack,, J.Clark,, E.J.Paré-Blagoev,, D.Shohamy,, J.Creso Moyano,, C.Myers,, & M.A.Gluck, (2001). Interactive memory systems in the human brain. Nature, 414, 546–550. doi:10.1038/35107080
R.A.Poldrack,, V.Prabhakaran,, C.A.Seger,, & J.D.E.Gabrieli, (1999). Striatal activation during acquisition of a cognitive skill. Neuropsychology, 13(4), 564–574. doi:10.1037/0894-4105.13.4.564
R.A.Poldrack,, F.W.Sabb,, K.Foerde,, S.M.Tom,, R.F.Asarnow,, S.Y.Bookheimer,, & B.J.Knowlton, (2005). The neural correlates of motor skill automaticity. Journal of Neuroscience, 25(22), 5356–5364. doi:10.1523/JNEUROSCI.3880-04.2005
S.L.Rauch,, P.J.Whalen,, C.R.Savage,, T.Curran,, A.Kendrick,, H.D.Brown,, … B.R.Rosen, (1997). Striatal recruitment during an implicit sequence learning task as measured by functional magnetic resonance imaging. Human Brain Mapping, 5(2), 124–132. doi:10.1002/(SICI)1097-0193(1997)5:2<>1.0.CO;2-V
K.Rubia,, A.B.Smith,, J.Woolley,, C.Nosarti,, I.Heyman,, E.Taylor,, & M.Brammer, (2006). Progressive increase of frontostriatal brain activation from childhood to adulthood during event-related tasks of cognitive control. Human Brain Mapping, 27(12), 973–993. doi:10.1002/hbm.v27:12
T.Savion-Lemieu,, J.A.Bailey,, & V.B.Penhune, (2009). Developmental contributions to motor sequence learning. Experimental Brain Research, 195, 293–306. doi:10.1007/s00221-009-1786-5
C.A.Seger,, & C.M.Cincotta, (2005). The roles of the Caudate Nucleus in human classification learning. The Journal of Neuroscience, 25(11), 2941–2951. doi:10.1523/JNEUROSCI.3401-04.2005
D.Shohamy,, C.E.Myers,, S.Grossman,, J.Sage,, M.A.Gluck,, & R.A.Poldrack, (2004). Cortico-striatal contributions to feedback-based learning: Converging data from neuroimaging and neuropsychology. Brain, 127(4), 851–859. doi:10.1093/brain/awh100
P.H.Smith,, T.Loboschefski,, B.K.Davidson,, & W.E.Dixon, Jr, (1997). Scripts and checkerboards: The influence of ordered visual information on remembering locations in infancy. Infant Behavior and Development, 20, 549–552. doi:10.1016/S0163-6383(97)90044-8
E.D.Stefanova,, V.S.Kostic,, L.Ziropadja,, M.Markovic,, & G.G.Ocic, (2000). Visuomotor skill learning on serial reaction time task in patients with early Parkinson’s disease. Movement Disorders, 15(6), 1095–1103. doi:10.1002/1531-8257(200011)15:6<1095::AID-MDS1006>3.0.CO;2-R
K.M.Thomas,, R.H.Hunt,, N.Vizueta,, T.Sommer,, S.Durston,, Y.Yang,, & M.S.Worden, (2004). Evidence of developmental differences in implicit sequence learning: An fMRI study of children and adults. Journal of Cognitive Neuroscience, 16(8), 1339–1351. doi:10.1162/0898929042304688
K.M.Thomas,, & C.A.Nelson, (2001). Serial reaction time learning in preschool- and school-age children. Journal of Experimental Child Psychology, 79, 364–387. doi:10.1006/jecp.2000.2613
J.B.Tomblin,, E.Mainela-Arnold,, & X.Zhang, (2007). Procedural learning in adolescent with and without specific language impairment. Language Learning and Development, 3(4), 269–293.
M.Van der Linden, (2009). Les troubles de la mémoire, troubles de la retention à long terme. In M.Poncelet, S.Majerus, & M.Van der Linden (Eds.), Traité de Neuropsychologie de l’enfant. Marseille: Solal.
B.Weierman,, & B.Meier, (2012). Incidental sequence learning across the lifespan. Cognition, 123, 380–391. doi:10.1016/j.cognition.2012.02.010
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