TY - JOUR A1 - Ehm, Jan-Henning A1 - Lonnemann, Jan A1 - Brandenburg, Janin A1 - Huschka, Sina Simone A1 - Hasselhorn, Marcus A1 - Lervag, Arne T1 - Exploring factors underlying children’s acquisition and retrieval of sound sound-symbol association skills JF - Journal of experimental child psychology N2 - Letter knowledge is considered an important cognitive foundation for learning to read. The underlying mechanisms of the association between letter knowledge and reading skills are, however, not fully understood. Acquiring letter knowledge depends on the ability to learn and retrieve sound–symbol pairings. In the current study, this process was explored by setting preschool children’s (N = 242, mean age = 5.57 years) performance in the acquisition and retrieval of a paired associate learning (PAL) task in relation to their letter knowledge as well as to their performance in tasks assessing precursors of reading skills (i.e., phonological awareness, rapid automatized naming, phonological short-term memory, backward recall, and response inhibition). Multiple regression analyses revealed that performance in the acquisition of the PAL task was significantly associated with phonological awareness and backward recall, whereas performance in the retrieval of the PAL task was significantly associated with rapid automatized naming, phonological awareness, and backward recall. Moreover, PAL proved to be mediating the relation between reading precursors and letter knowledge. Together, these findings indicate that the acquisition of letter knowledge may depend on a visual–verbal associative learning mechanism and that different factors contribute to the acquisition and retrieval of such visual–verbal associations. KW - Visual-verbal associative learning KW - Phonological awareness KW - Letter knowledge KW - Rapid automatized naming KW - Working memory KW - Reading Y1 - 2019 U6 - https://doi.org/10.1016/j.jecp.2018.07.006 SN - 0022-0965 SN - 1096-0457 VL - 177 SP - 86 EP - 99 PB - Elsevier CY - New York ER - TY - JOUR A1 - Lindner, Nadja A1 - Moeller, Korbinian A1 - Hildebrandt, Frauke A1 - Hasselhorn, Marcus A1 - Lonnemann, Jan T1 - Children's use of egocentric reference frames in spatial language is related to their numerical magnitude understanding JF - Frontiers in Psychology N2 - Numerical magnitude information is assumed to be spatially represented in the form of a mental number line defined with respect to a body-centred, egocentric frame of reference. In this context, spatial language skills such as mastery of verbal descriptions of spatial position (e.g., in front of, behind, to the right/left) have been proposed to be relevant for grasping spatial relations between numerical magnitudes on the mental number line. We examined 4- to 5-year-old’s spatial language skills in tasks that allow responses in egocentric and allocentric frames of reference, as well as their relative understanding of numerical magnitude (assessed by a number word comparison task). In addition, we evaluated influences of children’s absolute understanding of numerical magnitude assessed by their number word comprehension (montring different numbers using their fingers) and of their knowledge on numerical sequences (determining predecessors and successors as well as identifying missing dice patterns of a series). Results indicated that when considering responses that corresponded to the egocentric perspective, children’s spatial language was associated significantly with their relative numerical magnitude understanding, even after controlling for covariates, such as children’s SES, mental rotation skills, and also absolute magnitude understanding or knowledge on numerical sequences. This suggests that the use of egocentric reference frames in spatial language may facilitate spatial representation of numbers along a mental number line and thus seem important for preschoolers’ relative understanding of numerical magnitude. KW - spatial language KW - frames of reference KW - numerical development KW - mental number line KW - preschool children Y1 - 2022 U6 - https://doi.org/10.3389/fpsyg.2022.943191 SN - 1664-1078 SP - 1 EP - 13 PB - Frontiers CY - Lausanne, Schweiz ER - TY - GEN A1 - Lonnemann, Jan A1 - Hasselhorn, Marcus T1 - Frühe mathematische Bildung BT - Aktuelle Forschungstrends und Perspektiven T2 - Postprints der Universität Potsdam : Humanwissenschaftliche Reihe N2 - Im vorliegenden Beitrag werden aktuelle Forschungstrends im Bereich der frühen mathematischen Bildung im Kontext jüngst formulierter Zieldimensionen für die frühe mathematische Bildung (siehe Benz et al., 2017) dargestellt. Es wird auf spielbasierte Fördermaßnahmen, Kompetenzen im Bereich „Raum und Form“, den Einfluss sprachlicher Parameter auf die Entwicklung mathematischer Kompetenzen sowie auf mathematikbezogene Kompetenzen frühpädagogischer Fachkräfte eingegangen. Darüber hinaus werden die Ergebnisse einer aktuellen Feldstudie zur Förderung früher mathematischer Kompetenzen (siehe Dillon, Kannan, Dean, Spelke & Duflo, 2017) vorgestellt. Abschließend wird die Entwicklung und Implementierung anschlussfähiger Bildungskonzepte als eine der zentralen Herausforderungen zukünftiger Forschungs- und Bildungsbemühungen diskutiert N2 - Current research trends in the field of early mathematical education are presented in the context of recently formulated target dimensions of early mathematical education (see Benz et al., 2017). Game-based approaches, competencies in the field of “space and form”, the influence of language skills on the development of mathematical competencies, as well as mathematics-related competencies of early childhood educators are discussed. In addition, the results of a recent field study on a preschool intervention intended to enhance children's early mathematical skills (see Dillon, Kannan, Dean, Spelke, & Duflo, 2017) are presented. Finally, we discuss the development and implementation of aligned educational concepts as one of the central challenges of future research and educational activities. T3 - Zweitveröffentlichungen der Universität Potsdam : Humanwissenschaftliche Reihe - 636 KW - frühe mathematische Bildung KW - Zieldimensionen KW - Gelingensbedingungen KW - Anschlussfähigkeit Y1 - 2020 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-441484 SN - 1866-8364 IS - 636 SP - 129 EP - 134 ER - TY - JOUR A1 - Lonnemann, Jan A1 - Hasselhorn, Marcus T1 - Frühe mathematische Bildung T1 - Early Mathematics Education BT - Aktuelle Forschungstrends und Perspektiven BT - Current Research Trends and Perspectives JF - Frühe Bildung N2 - Im vorliegenden Beitrag werden aktuelle Forschungstrends im Bereich der frühen mathematischen Bildung im Kontext jüngst formulierter Zieldimensionen für die frühe mathematische Bildung (siehe Benz et al., 2017) dargestellt. Es wird auf spielbasierte Fördermaßnahmen, Kompetenzen im Bereich „Raum und Form“, den Einfluss sprachlicher Parameter auf die Entwicklung mathematischer Kompetenzen sowie auf mathematikbezogene Kompetenzen frühpädagogischer Fachkräfte eingegangen. Darüber hinaus werden die Ergebnisse einer aktuellen Feldstudie zur Förderung früher mathematischer Kompetenzen (siehe Dillon, Kannan, Dean, Spelke & Duflo, 2017) vorgestellt. Abschließend wird die Entwicklung und Implementierung anschlussfähiger Bildungskonzepte als eine der zentralen Herausforderungen zukünftiger Forschungs- und Bildungsbemühungen diskutiert N2 - Current research trends in the field of early mathematical education are presented in the context of recently formulated target dimensions of early mathematical education (see Benz et al., 2017). Game-based approaches, competencies in the field of “space and form”, the influence of language skills on the development of mathematical competencies, as well as mathematics-related competencies of early childhood educators are discussed. In addition, the results of a recent field study on a preschool intervention intended to enhance children's early mathematical skills (see Dillon, Kannan, Dean, Spelke, & Duflo, 2017) are presented. Finally, we discuss the development and implementation of aligned educational concepts as one of the central challenges of future research and educational activities. KW - early mathematical education KW - target dimensions KW - conditions of success KW - alignment Y1 - 2018 U6 - https://doi.org/10.1026/2191-9186/a000379 SN - 2191-9186 SN - 2191-9194 VL - 7 IS - 3 SP - 129 EP - 134 PB - Hogrefe CY - Göttingen ER - TY - JOUR A1 - Lonnemann, Jan A1 - Müller, Christian A1 - Büttner, Gerhard A1 - Hasselhorn, Marcus T1 - The influence of visual-spatial skills on the association between processing of nonsymbolic numerical magnitude and number word sequence skills JF - Journal of experimental child psychology N2 - Nonsymbolic numerical magnitude processing skills are assumed to be fundamental to mathematical learning. Recent findings suggest that visual–spatial skills account for associations between children’s performance in visually presented nonsymbolic numerical magnitude comparison tasks and their performance in visually presented arithmetic tasks. The aim of the current study was to examine whether associations between children’s performance in visually presented tasks assessing nonsymbolic numerical magnitude processing skills and their performance in tasks assessing early mathematical skills, which do not involve visual stimulation, may also be mediated by visual–spatial skills. This line of reasoning is based on the assumption that children make use of mental visualization processes when working on tasks assessing early mathematical skills, such as knowledge of the sequence of number words, even when these tasks do not involve visual stimulation. We assessed 4- to 6-year-old children’s performance in a nonsymbolic numerical magnitude comparison task, in tasks concerning knowledge of the sequence of number words, and in a developmental test to assess visual–spatial skills. Children’s nonsymbolic numerical magnitude processing skills were found to be associated with their number word sequence skills. This association was fully mediated by interindividual differences in visual–spatial skills. The effect size of this mediation effect was small. We assume that the ability to construct mental visualizations constitutes the key factor underlying this mediation effect. KW - Approximate number system KW - Numerical magnitude processing KW - Number word sequence skills KW - Visual-spatial skills KW - Mental visualization KW - Mental number line Y1 - 2018 U6 - https://doi.org/10.1016/j.jecp.2018.09.018 SN - 0022-0965 SN - 1096-0457 VL - 178 SP - 184 EP - 197 PB - Elsevier CY - New York ER - TY - JOUR A1 - Lonnemann, Jan A1 - Li, Su A1 - Zhao, Pei A1 - Linkersdörfer, Janosch A1 - Lindberg, Sven A1 - Hasselhorn, Marcus T1 - Differences in Counting Skills Between Chinese and German Children Are Accompanied by Differences in Processing of Approximate Numerical Magnitude Information JF - Frontiers in Psychology N2 - Human beings are supposed to possess an approximate number system (ANS) dedicated to extracting and representing approximate numerical magnitude information as well as an object tracking system (OTS) for the rapid and accurate enumeration of small sets. It is assumed that the OTS and the ANS independently contribute to the acquisition of more elaborate numerical concepts. Chinese children have been shown to exhibit more elaborate numerical concepts than their non-Chinese peers, but it is still an open question whether similar cross-national differences exist with regard to the underlying systems, namely the ANS and the OTS. In the present study, we investigated this question by comparing Chinese and German preschool children with regard to their performance in a non-symbolic numerical magnitude comparison task (assessing the ANS) and in an enumeration task (assessing the OTS). In addition, we compared children’s counting skills. To ensure that possible between-group differences could not be explained by differences in more general performance factors, we also assessed children’s reasoning ability and processing speed. Chinese children showed a better counting performance and a more accurate performance in the non-symbolic numerical magnitude comparison task. These differences in performance could not be ascribed to differences in reasoning abilities and processing speed. In contrast, Chinese and German children did not differ significantly in the enumeration of small sets. The superior counting performance of Chinese children was thus found to be reflected in the ANS but not in the OTS. KW - approximate number system KW - subitizing KW - counting KW - cross-national comparison KW - preschool Y1 - 2019 U6 - https://doi.org/10.3389/fpsyg.2018.02656 SN - 1664-1078 VL - 9 PB - Frontiers Research Foundation CY - Lausanne ER - TY - GEN A1 - Lonnemann, Jan A1 - Li, Su A1 - Zhao, Pei A1 - Linkersdörfer, Janosch A1 - Lindberg, Sven A1 - Hasselhorn, Marcus T1 - Differences in Counting Skills Between Chinese and German Children Are Accompanied by Differences in Processing of Approximate Numerical Magnitude Information T2 - Postprints der Universität Potsdam Humanwissenschaftliche Reihe N2 - Human beings are supposed to possess an approximate number system (ANS) dedicated to extracting and representing approximate numerical magnitude information as well as an object tracking system (OTS) for the rapid and accurate enumeration of small sets. It is assumed that the OTS and the ANS independently contribute to the acquisition of more elaborate numerical concepts. Chinese children have been shown to exhibit more elaborate numerical concepts than their non-Chinese peers, but it is still an open question whether similar cross-national differences exist with regard to the underlying systems, namely the ANS and the OTS. In the present study, we investigated this question by comparing Chinese and German preschool children with regard to their performance in a non-symbolic numerical magnitude comparison task (assessing the ANS) and in an enumeration task (assessing the OTS). In addition, we compared children’s counting skills. To ensure that possible between-group differences could not be explained by differences in more general performance factors, we also assessed children’s reasoning ability and processing speed. Chinese children showed a better counting performance and a more accurate performance in the non-symbolic numerical magnitude comparison task. These differences in performance could not be ascribed to differences in reasoning abilities and processing speed. In contrast, Chinese and German children did not differ significantly in the enumeration of small sets. The superior counting performance of Chinese children was thus found to be reflected in the ANS but not in the OTS. T3 - Zweitveröffentlichungen der Universität Potsdam : Humanwissenschaftliche Reihe - 546 KW - approximate number system KW - subitizing KW - counting KW - cross-national comparison KW - preschool Y1 - 2019 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-427425 SN - 1866-8364 IS - 546 ER - TY - GEN A1 - Lindner, Nadja A1 - Moeller, Korbinian A1 - Hildebrandt, Frauke A1 - Hasselhorn, Marcus A1 - Lonnemann, Jan T1 - Children's use of egocentric reference frames in spatial language is related to their numerical magnitude understanding T2 - Zweitveröffentlichungen der Universität Potsdam : Humanwissenschaftliche Reihe N2 - Numerical magnitude information is assumed to be spatially represented in the form of a mental number line defined with respect to a body-centred, egocentric frame of reference. In this context, spatial language skills such as mastery of verbal descriptions of spatial position (e.g., in front of, behind, to the right/left) have been proposed to be relevant for grasping spatial relations between numerical magnitudes on the mental number line. We examined 4- to 5-year-old’s spatial language skills in tasks that allow responses in egocentric and allocentric frames of reference, as well as their relative understanding of numerical magnitude (assessed by a number word comparison task). In addition, we evaluated influences of children’s absolute understanding of numerical magnitude assessed by their number word comprehension (montring different numbers using their fingers) and of their knowledge on numerical sequences (determining predecessors and successors as well as identifying missing dice patterns of a series). Results indicated that when considering responses that corresponded to the egocentric perspective, children’s spatial language was associated significantly with their relative numerical magnitude understanding, even after controlling for covariates, such as children’s SES, mental rotation skills, and also absolute magnitude understanding or knowledge on numerical sequences. This suggests that the use of egocentric reference frames in spatial language may facilitate spatial representation of numbers along a mental number line and thus seem important for preschoolers’ relative understanding of numerical magnitude. T3 - Zweitveröffentlichungen der Universität Potsdam : Humanwissenschaftliche Reihe - 815 KW - spatial language KW - frames of reference KW - numerical development KW - mental number line KW - preschool children Y1 - 2023 U6 - http://nbn-resolving.de/urn/resolver.pl?urn:nbn:de:kobv:517-opus4-581270 SN - 1866-8364 IS - 815 ER -