Involvement Load Hypothesis Plus: Creating an Improved Predictive Model of Incidental Vocabulary Learning
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| Title: | Involvement Load Hypothesis Plus: Creating an Improved Predictive Model of Incidental Vocabulary Learning |
|---|---|
| Language: | English |
| Authors: | Yanagisawa, Akifumi (ORCID |
| Source: | Studies in Second Language Acquisition. Dec 2022 44(5):1279-1308. |
| Availability: | Cambridge University Press. 100 Brook Hill Drive, West Nyack, NY 10994. Tel: 800-872-7423; Tel: 845-353-7500; Fax: 845-353-4141; e-mail: subscriptions_newyork@cambridge.org; Web site: https://www.cambridge.org/core/what-we-publish/journals |
| Peer Reviewed: | Y |
| Page Count: | 30 |
| Publication Date: | 2022 |
| Document Type: | Journal Articles Information Analyses |
| Descriptors: | Cognitive Ability, Vocabulary Development, Meta Analysis, Linguistic Theory, Incidental Learning, Guidelines, Predictor Variables, Models, Accuracy, Second Language Learning, Second Language Instruction, Instructional Effectiveness, Teaching Methods |
| DOI: | 10.1017/S0272263121000577 |
| ISSN: | 0272-2631 1470-1545 |
| Abstract: | The present meta-analysis aimed to improve on Involvement Load Hypothesis (ILH) by incorporating it into a broader framework that predicts incidental vocabulary learning. Studies testing the ILH were systematically collected and 42 studies meeting our inclusion criteria were analyzed. The model-selection approach was used to determine the optimal statistical model (i.e., a set of predictor variables) that best predicts learning gains. Following previous findings, we investigated whether the prediction of the ILH improved by (a) examining the influence of each level of individual ILH components (need, search, and evaluation), (b) adopting optimal operationalization of the ILH components and test format grouping, and (c) including other empirically motivated variables. Results showed that the resulting models explained a greater variance in learning gains. Based on the models, we created incidental vocabulary learning formulas. Using these formulas, one can calculate the effectiveness index of activities to predict their relative effectiveness more accurately on incidental vocabulary learning. |
| Abstractor: | As Provided |
| Entry Date: | 2022 |
| Accession Number: | EJ1355955 |
| Database: | ERIC |
| FullText | Text: Availability: 0 |
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| Header | DbId: eric DbLabel: ERIC An: EJ1355955 AccessLevel: 3 PubType: Academic Journal PubTypeId: academicJournal PreciseRelevancyScore: 0 |
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| Items | – Name: Title Label: Title Group: Ti Data: Involvement Load Hypothesis Plus: Creating an Improved Predictive Model of Incidental Vocabulary Learning – Name: Language Label: Language Group: Lang Data: English – Name: Author Label: Authors Group: Au Data: <searchLink fieldCode="AR" term="%22Yanagisawa%2C+Akifumi%22">Yanagisawa, Akifumi</searchLink> (ORCID <externalLink term="https://orcid.org/0000-0002-7769-5758">0000-0002-7769-5758</externalLink>)<br /><searchLink fieldCode="AR" term="%22Webb%2C+Stuart%22">Webb, Stuart</searchLink> (ORCID <externalLink term="https://orcid.org/0000-0002-8297-4997">0000-0002-8297-4997</externalLink>) – Name: TitleSource Label: Source Group: Src Data: <searchLink fieldCode="SO" term="%22Studies+in+Second+Language+Acquisition%22"><i>Studies in Second Language Acquisition</i></searchLink>. Dec 2022 44(5):1279-1308. – Name: Avail Label: Availability Group: Avail Data: Cambridge University Press. 100 Brook Hill Drive, West Nyack, NY 10994. Tel: 800-872-7423; Tel: 845-353-7500; Fax: 845-353-4141; e-mail: subscriptions_newyork@cambridge.org; Web site: https://www.cambridge.org/core/what-we-publish/journals – Name: PeerReviewed Label: Peer Reviewed Group: SrcInfo Data: Y – Name: Pages Label: Page Count Group: Src Data: 30 – Name: DatePubCY Label: Publication Date Group: Date Data: 2022 – Name: TypeDocument Label: Document Type Group: TypDoc Data: Journal Articles<br />Information Analyses – Name: Subject Label: Descriptors Group: Su Data: <searchLink fieldCode="DE" term="%22Cognitive+Ability%22">Cognitive Ability</searchLink><br /><searchLink fieldCode="DE" term="%22Vocabulary+Development%22">Vocabulary Development</searchLink><br /><searchLink fieldCode="DE" term="%22Meta+Analysis%22">Meta Analysis</searchLink><br /><searchLink fieldCode="DE" term="%22Linguistic+Theory%22">Linguistic Theory</searchLink><br /><searchLink fieldCode="DE" term="%22Incidental+Learning%22">Incidental Learning</searchLink><br /><searchLink fieldCode="DE" term="%22Guidelines%22">Guidelines</searchLink><br /><searchLink fieldCode="DE" term="%22Predictor+Variables%22">Predictor Variables</searchLink><br /><searchLink fieldCode="DE" term="%22Models%22">Models</searchLink><br /><searchLink fieldCode="DE" term="%22Accuracy%22">Accuracy</searchLink><br /><searchLink fieldCode="DE" term="%22Second+Language+Learning%22">Second Language Learning</searchLink><br /><searchLink fieldCode="DE" term="%22Second+Language+Instruction%22">Second Language Instruction</searchLink><br /><searchLink fieldCode="DE" term="%22Instructional+Effectiveness%22">Instructional Effectiveness</searchLink><br /><searchLink fieldCode="DE" term="%22Teaching+Methods%22">Teaching Methods</searchLink> – Name: DOI Label: DOI Group: ID Data: 10.1017/S0272263121000577 – Name: ISSN Label: ISSN Group: ISSN Data: 0272-2631<br />1470-1545 – Name: Abstract Label: Abstract Group: Ab Data: The present meta-analysis aimed to improve on Involvement Load Hypothesis (ILH) by incorporating it into a broader framework that predicts incidental vocabulary learning. Studies testing the ILH were systematically collected and 42 studies meeting our inclusion criteria were analyzed. The model-selection approach was used to determine the optimal statistical model (i.e., a set of predictor variables) that best predicts learning gains. Following previous findings, we investigated whether the prediction of the ILH improved by (a) examining the influence of each level of individual ILH components (need, search, and evaluation), (b) adopting optimal operationalization of the ILH components and test format grouping, and (c) including other empirically motivated variables. Results showed that the resulting models explained a greater variance in learning gains. Based on the models, we created incidental vocabulary learning formulas. Using these formulas, one can calculate the effectiveness index of activities to predict their relative effectiveness more accurately on incidental vocabulary learning. – Name: AbstractInfo Label: Abstractor Group: Ab Data: As Provided – Name: DateEntry Label: Entry Date Group: Date Data: 2022 – Name: AN Label: Accession Number Group: ID Data: EJ1355955 |
| PLink | https://search.ebscohost.com/login.aspx?direct=true&site=eds-live&db=eric&AN=EJ1355955 |
| RecordInfo | BibRecord: BibEntity: Identifiers: – Type: doi Value: 10.1017/S0272263121000577 Languages: – Text: English PhysicalDescription: Pagination: PageCount: 30 StartPage: 1279 Subjects: – SubjectFull: Cognitive Ability Type: general – SubjectFull: Vocabulary Development Type: general – SubjectFull: Meta Analysis Type: general – SubjectFull: Linguistic Theory Type: general – SubjectFull: Incidental Learning Type: general – SubjectFull: Guidelines Type: general – SubjectFull: Predictor Variables Type: general – SubjectFull: Models Type: general – SubjectFull: Accuracy Type: general – SubjectFull: Second Language Learning Type: general – SubjectFull: Second Language Instruction Type: general – SubjectFull: Instructional Effectiveness Type: general – SubjectFull: Teaching Methods Type: general Titles: – TitleFull: Involvement Load Hypothesis Plus: Creating an Improved Predictive Model of Incidental Vocabulary Learning Type: main BibRelationships: HasContributorRelationships: – PersonEntity: Name: NameFull: Yanagisawa, Akifumi – PersonEntity: Name: NameFull: Webb, Stuart IsPartOfRelationships: – BibEntity: Dates: – D: 01 M: 12 Type: published Y: 2022 Identifiers: – Type: issn-print Value: 0272-2631 – Type: issn-electronic Value: 1470-1545 Numbering: – Type: volume Value: 44 – Type: issue Value: 5 Titles: – TitleFull: Studies in Second Language Acquisition Type: main |
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