2015
DOI: 10.18608/jla.2015.21.7
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Know thy student! Combining learning analytics and critical reflections to develop a targeted intervention for promoting self-regulated learning.

Abstract: It is well established that a student's capacity to regulate his or her own learning is a key determinant of academic success, suggesting that interventions targeting improvements in self-regulation will have a positive impact on academic performance. However, to evaluate the success of such interventions, the self-regulatory characteristics of students need to be established. This paper examines the self-regulatory characteristics of a cohort of second-year allied health students, using the evaluation of resp… Show more

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Cited by 31 publications
(54 citation statements)
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“…to the learning platforms [13,[18][19][20][21][22][23]. Of these, three studies only recorded connections to the platform or folder and not the specific learning items contained within [18,19,21].…”
Section: Learning Analytics Data Typesmentioning
confidence: 99%
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“…to the learning platforms [13,[18][19][20][21][22][23]. Of these, three studies only recorded connections to the platform or folder and not the specific learning items contained within [18,19,21].…”
Section: Learning Analytics Data Typesmentioning
confidence: 99%
“…tests, quizzes), and four studies used URL links to external websites. The majority (14 out of 19) of the studies used more than one type of e-learning resource and six studies used a single type [13,19,24,28,30,31]. Table 3a List of learning analytics data type There were 14 papers which documented learning outcomes (Table 3c) as measured by either an end-of-course exam [22-24, 27, 30, 32, 33] or a combination with course assessments [12,13,19,20,25,31,34].…”
Section: Figure 1 Flowchart Of Search Processmentioning
confidence: 99%
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“…Outras duas técnicas que foram utilizadas, foram a classificação e a análise de agrupamento, ambas com dois trabalhos encontrados na literatura. Os trabalhos de classificação (Bondareva, et al, 2013), (Sabourin, Mott, & Lester, 2012) tiveram como foco o comparativo de múltiplos algoritmos de classificação de dados provindos de sistemas de tutores inteligentes e os trabalhos de análise de agrupamento (Lawanto, Santoso, Lawanto, & Goodridge, 2014), (Colthorpe, Zimbardi, Ainscough, & Anderson, 2015) tiveram o objetivo de identificar padrões ou perfis comportamentais de autorregulação.…”
Section: Terceira Questão De Pesquisaunclassified
“…Além desses, outros trabalhos utilizaram abordagens baseada em Mineração de Dados Educacionais, nos quais utilizam técnicas como Mineração de Processos (Schoor & Bannert, 2012), (Sonnenberg & Bannert, 2015), Análise de agrupamento (Lawanto, Santoso, Lawanto, & Goodridge, 2014), (Colthorpe, Zimbardi, Ainscough, & Anderson, 2015) e Algoritmos de Classificação (Bondareva, et al, 2013), (Sabourin, Mott, & Lester, 2012 Figura 5: Área de pesquisa declarada na análise dos dados.…”
Section: Quarta Questão De Pesquisaunclassified