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Book part
Publication date: 28 January 2011

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History of Special Education
Type: Book
ISBN: 978-0-85724-629-5

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Living Life to the Fullest: Disability, Youth and Voice
Type: Book
ISBN: 978-1-83909-445-3

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Book part
Publication date: 16 September 2019

Lorien Pratt

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Link
Type: Book
ISBN: 978-1-78769-654-9

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Book part
Publication date: 23 June 2017

David Grayson

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Take Care
Type: Book
ISBN: 978-1-78714-292-3

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Book part
Publication date: 4 October 2023

Alisoun Milne and Mary Larkin

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Family Carers and Caring
Type: Book
ISBN: 978-1-80043-346-5

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Book part
Publication date: 10 December 2018

Tony Langham

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Reputation Management
Type: Book
ISBN: 978-1-78756-607-1

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Book part
Publication date: 10 December 2018

Tony Langham

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Reputation Management
Type: Book
ISBN: 978-1-78756-607-1

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Book part
Publication date: 4 December 2023

Stuart Cartland

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Constructing Realities
Type: Book
ISBN: 978-1-83797-546-4

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Article
Publication date: 6 February 2017

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Personnel Review, vol. 46 no. 1
Type: Research Article
ISSN: 0048-3486

Open Access
Article
Publication date: 21 March 2024

Giovanni De Luca and Monica Rosciano

The tourist industry has to adopt a big data-driven foresight approach to enhance decision-making in a post-COVID international landscape still marked by significant uncertainty…

Abstract

Purpose

The tourist industry has to adopt a big data-driven foresight approach to enhance decision-making in a post-COVID international landscape still marked by significant uncertainty and in which some megatrends have the potential to reshape society in the next decades. This paper, considering the opportunity offered by the application of the quantitative analysis on internet new data sources, proposes a prediction method using Google Trends data based on an estimated transfer function model.

Design/methodology/approach

The paper uses the time-series methods to model and predict Google Trends data. A transfer function model is used to transform the prediction of Google Trends data into predictions of tourist arrivals. It predicts the United States tourism demand in Italy.

Findings

The results highlight the potential expressed by the use of big data-driven foresight approach. Applying a transfer function model on internet search data, timely forecasts of tourism flows are obtained. The two scenarios emerged can be used in tourism stakeholders’ decision-making process. In a future perspective, the methodological path could be applied to other tourism origin markets, to other internet search engine or other socioeconomic and environmental contexts.

Originality/value

The study raises awareness of foresight literacy in the tourism sector. Secondly, it complements the research on tourism demand forecasting by evaluating the performance of quantitative forecasting techniques on new data sources. Thirdly, it is the first paper that makes the United States arrival predictions in Italy. Finally, the findings provide immediate valuable information to tourism stakeholders that could be used to make decisions.

Details

Journal of Tourism Futures, vol. ahead-of-print no. ahead-of-print
Type: Research Article
ISSN: 2055-5911

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