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Abstract

Details

Policy Matters
Type: Book
ISBN: 978-1-80382-481-9

Article
Publication date: 13 November 2023

Teresa Helena Moreno

The purpose of this paper is to make visible the field's propensity to center whiteness even in engaging inclusive practices in information literacy classrooms. This paper offers…

Abstract

Purpose

The purpose of this paper is to make visible the field's propensity to center whiteness even in engaging inclusive practices in information literacy classrooms. This paper offers abolitionist pedagogy as a means to understand and address these concerns.

Design/methodology/approach

This paper uses interdisciplinary research methods in the fields of education, library science, feminist studies, Black studies and abolition studies to examine and provide an analysis of current information literacy practices by using abolitionist pedagogy to articulate how it is possible to expand information literacy instruction practices.

Findings

Current information literacy practices and methods that seek to create inclusive learning environments for racialized and minoritized learners rely on a set of institutionalized practices such as critical information literacy and culturally sustaining pedagogies. An examination of these practices through an abolitionist pedagogical lens reveals how the field has engaged in reductive and uncritical engagement with these methods despite employing them to create inclusive spaces. Using abolitionist pedagogy as a lens, this critical essay examines the field's foundations in whiteness and illustrates pathways for transformative educational justice.

Originality/value

There has been much work on inclusive teaching practices that discusses challenging information literacy structures' reliance on dominant culture.? To date, there has been little to no scholarship on how information literacy practices could engage in abolitionist pedagogical praxis.

Details

Reference Services Review, vol. 52 no. 1
Type: Research Article
ISSN: 0090-7324

Keywords

Article
Publication date: 17 January 2024

Xueqi Wang, Graham Squires and David Dyason

Homeownership for younger generations is exacerbated by the deterioration in affordability worldwide. As a result, the role of parental support in facilitating homeownership…

Abstract

Purpose

Homeownership for younger generations is exacerbated by the deterioration in affordability worldwide. As a result, the role of parental support in facilitating homeownership requires attention. This study aims to assess the influence of parental wealth and housing tenure as support mechanisms to facilitate homeownership for their children.

Design/methodology/approach

This study uses data from a representative survey of the New Zealand population.

Findings

Parents who are homeowners tend to offer more financial support to their children than those who rent. Additionally, the financial support increases when parents have investment housing as well. The results further reveal differences in financial support when considering one-child and multi-child families. The intergenerational transmission of wealth inequality appears to be more noticeable in multi-child families, where parental housing tenure plays a dominant role in determining the level of financial support provided to offspring.

Originality/value

The insights gained serve as a basis for refining housing policies to better account for these family transfers and promote equitable access to homeownership.

Details

International Journal of Housing Markets and Analysis, vol. ahead-of-print no. ahead-of-print
Type: Research Article
ISSN: 1753-8270

Keywords

Article
Publication date: 27 September 2023

Veera Harsha Vardhan Jilludimudi, Daniel Zhou, Eric Rubstov, Alexander Gonzalez, Will Daknis, Erin Gunn and David Prawel

This study aims to collect real-time, in situ data from polymer melt extrusion (ME) 3D printing and use only the collected data to non-destructively identify printed parts that…

Abstract

Purpose

This study aims to collect real-time, in situ data from polymer melt extrusion (ME) 3D printing and use only the collected data to non-destructively identify printed parts that contain defects.

Design/methodology/approach

A set of sensors was created to collect real-time, in situ data from polymer ME 3D printing. A variance analysis was completed to identify an “acceptable” range for filament diameter on a popular desktop 3D printer. These data were used as the basis of a quality evaluation process to non-destructively identify spatial regions of printed parts in multi-part builds that contain defects.

Findings

Anomalous parts were correctly identified non-destructively using only in situ collected data.

Research limitations/implications

This methodology was developed by varying the filament diameter, one of the most common reasons for print failure in ME. Numerous other printing parameters are known to create faults in melt extruded parts, and this methodology can be extended to analyze other parameters.

Originality/value

To the best of the authors’ knowledge, this is the first report of a non-destructive evaluation of 3D-printed part quality using only in situ data in ME. The value is in improving part quality and reliability in ME, thereby reducing 3D printing part errors, plastic waste and the associated cost of time and material.

Open Access
Article
Publication date: 16 August 2023

Meriam Trabelsi, Elena Casprini, Niccolò Fiorini and Lorenzo Zanni

This study analyses the literature on artificial intelligence (AI) and its implications for the agri-food sector. This research aims to identify the current research streams, main…

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Abstract

Purpose

This study analyses the literature on artificial intelligence (AI) and its implications for the agri-food sector. This research aims to identify the current research streams, main methodologies used, findings and results delivered, gaps and future research directions.

Design/methodology/approach

This study relies on 69 published contributions in the field of AI in the agri-food sector. It begins with a bibliographic coupling to map and identify the current research streams and proceeds with a systematic literature review to examine the main topics and examine the main contributions.

Findings

Six clusters were identified: (1) AI adoption and benefits, (2) AI for efficiency and productivity, (3) AI for logistics and supply chain management, (4) AI for supporting decision making process for firms and consumers, (5) AI for risk mitigation and (6) AI marketing aspects. Then, the authors propose an interpretive framework composed of three main dimensions: (1) the two sides of AI: the “hard” side concerns the technology development and application while the “soft” side regards stakeholders' acceptance of the latter; (2) level of analysis: firm and inter-firm; (3) the impact of AI on value chain activities in the agri-food sector.

Originality/value

This study provides interpretive insights into the extant literature on AI in the agri-food sector, paving the way for future research and inspiring practitioners of different AI approaches in a traditionally low-tech sector.

Details

British Food Journal, vol. 125 no. 13
Type: Research Article
ISSN: 0007-070X

Keywords

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