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Proceeding Paper

Questioning Family Farms’ Readiness to Adopt Digital Solutions †

by
Martina Francescone
1,*,
Chrysanthi Charatsari
2,
Evagelos D. Lioutas
3,
Luca Bartoli
1 and
Marcello De Rosa
1
1
Department of Economics and Law, University of Cassino and Southern Lazio, 03043 Cassino, Italy
2
Department of Agricultural Economics, School of Agriculture, Aristotle University of Thessaloniki, 54124 Thessaloniki, Greece
3
Department of Supply Chain Management, International Hellenic University, 60100 Katerini, Greece
*
Author to whom correspondence should be addressed.
Presented at the 17th International Conference of the Hellenic Association of Agricultural Economists, Thessaloniki, Greece, 2–3 November 2023.
Proceedings 2024, 94(1), 11; https://doi.org/10.3390/proceedings2024094011
Published: 22 January 2024

Abstract

:
This paper explores the adoption of digital solutions by Italian farmers. The hypothesis is that digital technology adoption relies on an articulated set of socioeconomic variables that deserve attention. To test this hypothesis, we analyzed data from the last census of Italian agriculture. The analysis showed significant differences in the adoption of digital technologies, which can be viewed from territorial, structural, and sociodemographic points of view. This casts some doubt on the fairness of the digital transition in rural areas, calling for the strengthening of rural policies at the beginning of the new programming period in 2023–2027.

1. Introduction

This paper analyzes the readiness of farmers to adopt digital technologies in Italian farms. More precisely, we aim to explore how multiple contexts (business, personal/social, spatial) interplay and affect farmers’ readiness to adopt digital solutions. This aspect is investigated through the lens of “omnibus context”, by evidencing the relevance of multiple contexts in innovation adoption [1].
Innovation adoption is a complex process involving various dimensions. Concerning digitalization, a growing body of literature has analyzed these factors by emphasizing the disruptive character of digitalization and the related risks of non-neutrality [2,3,4], which call for more responsible digital innovations [5]. Set against the background of potential beneficiaries, the concept of readiness plays a significant role in the adoption process of digital solutions in agricultural practices in that it emerges as a prerequisite for digitalization, emphasizing the broad gap between the current state of farmers and the ideal farmer 4.0 [4]. As pointed out in Heiman et al. [6] thresholds model of diffusion, microeconomic behavior, heterogeneity, and dynamics are the critical variables that explain innovation adoption. This paper focuses on the second dimension by analyzing heterogeneity in the readiness to adopt digital solutions among Italian farms. To do that, we performed a context-related analysis, taking into account the various dimensions of the “omnibus” context emphasized in the seminal works of Welter and Baker: business, social, and spatial [1,7].

2. Methodology

To test heterogeneity and neutrality issues, we refer to the readiness of farmers in adopting an innovation. This concept is analyzed with reference to digital solutions and is grounded on secondary data provided by the Italian Census of Agriculture of the National Institute of Statistics. More precisely, data were extracted from section F of the questionnaire (use of information or digital technologies by farms). A “looking behind the data” approach was adopted through an “omnibus” lens of analysis referring to the broad perspective of the context [7], which focuses on context-related variables: business (farm size, standard output, commercialization), social (farmer’s age, level of education) and spatial (regional level). To verify the eventual relationships between the context variables and digitalization, a χ2 test was carried out to test the following hypotheses:
H0: 
χ2 = 0 (no association between context variables and digital technologies).
H1: 
χ2 ≠ 0 (there is an association between context variables and the adoption of digital technologies).
The Chi-squared test was calculated through the following formula:
χ 2 = O b s e r v e d   f r e q u e n c i e s E x p e c t e d   f r e q u e n c i e s 2 E x p e c t e d   f r e q u e n c i e s

3. Results

Data from the Italian Agricultural Census demonstrate, on the one hand, the increase in the percentage of farms that have adopted digital technologies (from 3.8% to 25.8%) and, on the other hand, the relevance of context in shaping different trajectories of digitalization.

3.1. Business Context

As far as the business context is concerned, the utilized agricultural area, standard output, and marketing channels are considered. Table 1 allows us to reject the null hypothesis: as a matter of fact, large and economically viable farms are more digitalized than small-scale farms. Regarding marketing channels, farms directly selling to other farms or producers’ organizations are more equipped with digital technologies.

3.2. Social Context

For this category, we took into account farmers’ age and their level of education. Table 2 shows the results, confirming the connection between the selected variables, more precisely, by indicating the following: (a) younger farmers are more equipped with digital technologies than their elderly counterparts; (b) the higher the level of education, the higher the rate of digitalization in the farms.

3.3. Spatial Context

The spatial context was here analyzed through the regional distribution of innovation in the Italian regions, which allows a digital gap among regions to emerge. As evident from Table 3, we can reject the null hypothesis and confirm the association between the selected variables. The digital divide between northern and central-southern Italy (with the exception of Tuscany) emerges.
Table 4 provides a synthesis of the empirical analysis through the lens of heterogeneity and neutrality in digital technology adoption. High levels of heterogeneity mark the endowment of digital technologies, which mostly penalize smaller farms, conducted by aged farmers prevailingly located in central and southern Italy.

4. Discussion and Conclusions

The analysis represents a first step towards a broader investigation concerning digitalization in the Italian farming sector and, as such, has limitations due to the lack of available data from the Italian census of agriculture. That is why we have conducted a study based on an “omnibus” context while waiting for more detailed data supporting a discrete context work. Moreover, an analysis of the other two elements of Heiman et al.’s [6] threshold model (“microlevel behavior” and “dynamics”) is required to excavate the complex process of innovation adoption. Despite these limits, we can agree with the recent literature emphasizing that heterogeneity and non-neutrality issues characterize digital technology adoption [2]. This paper confirms that the digital gap mainly affects smallholder, aged farmers located in southern and (surprisingly) central Italy. The results of the analysis cast some doubts on the potential capacity to fill the ambitious objectives expected in the long-term vision for rural areas 2040, where is the following is posited: the further development of rural areas is dependent on them being well connected between each other and to peri-urban and urban areas [8]. Based on our results, it seems difficult to answer the following question: how long is expected to be the “Long-Term Vision”?

Author Contributions

Conceptualization, M.F., C.C., E.D.L., L.B. and M.D.R.; methodology, M.F., C.C., E.D.L., L.B. and M.D.R.; software, M.F., C.C., E.D.L., L.B. and M.D.R.; validation, M.F., C.C., E.D.L., L.B. and M.D.R.; formal analysis, M.F., C.C., E.D.L., L.B. and M.D.R.; investigation, M.F., C.C., E.D.L., L.B. and M.D.R.; resources, M.F., C.C., E.D.L., L.B. and M.D.R.; data curation, M.F., C.C., E.D.L., L.B. and M.D.R.; writing—original draft preparation, M.F., C.C., E.D.L., L.B. and M.D.R.; writing—review and editing, M.F., C.C., E.D.L., L.B. and M.D.R.; visualization, M.F., C.C., E.D.L., L.B. and M.D.R.; supervision, M.F., C.C., E.D.L., L.B. and M.D.R.; project administration, M.F., C.C., E.D.L., L.B. and M.D.R.; funding acquisition, M.F., C.C., E.D.L., L.B. and M.D.R. All authors have read and agreed to the published version of the manuscript.

Funding

This research received no external funding.

Institutional Review Board Statement

This study was conducted in accordance with the Declaration of Helsinki. Ethical review and approval were waived for this study since the study was conducted in accordance with the Declaration of Helsinki and the EU General Data Protection Regulation.

Informed Consent Statement

Informed consent was obtained from all subjects involved in the study.

Data Availability Statement

The data presented in this study are available on request from the corresponding author (status: local repository).

Conflicts of Interest

The authors declare no conflicts of interest.

References

  1. Baker, T.; Welter, F. Contextualizing Entrepreneurship Theory; Routledge: London, UK, 2020. [Google Scholar]
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  3. Schnebelin, E.; Labarthe, P.; Touzard, J.-M. How digitalisation interacts with ecologisation? Perspectives from actors of the French Agricultural Innovation System. J. Rural. Stud. 2021, 86, 599–610. [Google Scholar] [CrossRef]
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  6. Heiman, A.; Ferguson, J.; Zilberman, D. Marketing and technology adoption and diffusion. Appl. Econ. Perspect. Policy 2020, 42, 21–30. [Google Scholar] [CrossRef]
  7. Welter, F. Contextualizing entrepreneurship—Conceptual Challenges and Ways Forward. Entrep. Theory Pract. 2011, 35, 165–184. [Google Scholar] [CrossRef]
  8. European Commission. Communication from the Commission to the European Parliament, the Council, the European economic and social committee and the committee of the regions, A long-term Vision for the EU’s Rural Areas—Towards stronger, connected, resilient and prosperous rural areas by 2040. COM(2021) 345 final. Available online: https://eur-lex.europa.eu/legal-content/EN/TXT/?uri=CELEX%3A52021DC0345 (accessed on 18 January 2024).
Table 1. Business context: contingencies.
Table 1. Business context: contingencies.
UAA *Standard Output (€)Marketing Channels
Digitalized Digitalized Digitalized
<1 ha−23,439.26109<4000−53,212.28313direct selling18,405.31721
1–4.99−31,060.089154000–15,000−18,421.39692other farms380.0263797
5–9.996243.86427515,000–50,00015,856.57355food industries−2662.394058
10–19.9913,098.3352350,000–500,00046,163.80925trade companies−19,229.80497
20–49.9917,973.52573>500,0009613.297256producers’ organ.3106.855436
50–99.999954.075728
>100 ha7229.549277
χ2118,320.64χ2204,114.61χ213,710.74
normalized χ20.104429163normalized χ20.180150458normalized χ20.015388227
Cramer’s V0.323155013Cramer’s V0.424441349Cramer’s V0.124049294
* UAA: Utilized Agricultural Area.
Table 2. Social context: contingencies.
Table 2. Social context: contingencies.
Farmer’s AgeLevel of Education
digitalizedNo education−0.1261882
<4018,612.745Primary school certificate−0.1076158
41–6423,308.333Secondary school certificate−0.0316419
≥65 −41,921.078Professional (agricultural) qualification diploma0.1816126
Professional (not agricultural) qualification diploma0.0645273
High school specialized (agriculture) diploma0.2048297
High school Diploma0.0384361
University degree in agriculture0.3292959
University degree 0.0860448
χ258575.165χ276,320.052
normalized χ20.0518122normalized χ20.0675083
Cramer’s V0.227623Cramer’s V0.2598236
Table 3. Spatial context: contingencies.
Table 3. Spatial context: contingencies.
Northern ItalyCentral ItalySouthern Italy
Digitalized Digitalized Digitalized
Piedmont8196.55208Tuscany3805.572Abruzzo−3511.128
Valle D’Aosta385.60472Umbria−124.20022Molise−1536.2406
Lombardy10,357.3808Marche−384.33698Campania−5605.2783
Veneto8298.92492Lazio−2809.738Apulia−19,642.919
Friuli Venezia Giulia2237.31579 Basilicata−2835.9181
Liguria501.470861 Calabria−9059.9993
Emilia Romagna8353.71655 Sicily−11,795.249
Bolzano8715.99573 Sardinia1305.3146
Trento5147.15973
χ2128,435.44
normalized χ20.1133564
Cramer’s V0.3366845
Table 4. Synthesis of the results.
Table 4. Synthesis of the results.
HeterogeneityNeutralityWho Is Excluded?
Business contextYes NoSmall-size farms
Social contextYes No Aged and low educated farmers
Spatial contextYes No Central (but Tuscany) and southern regions
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MDPI and ACS Style

Francescone, M.; Charatsari, C.; Lioutas, E.D.; Bartoli, L.; De Rosa, M. Questioning Family Farms’ Readiness to Adopt Digital Solutions. Proceedings 2024, 94, 11. https://doi.org/10.3390/proceedings2024094011

AMA Style

Francescone M, Charatsari C, Lioutas ED, Bartoli L, De Rosa M. Questioning Family Farms’ Readiness to Adopt Digital Solutions. Proceedings. 2024; 94(1):11. https://doi.org/10.3390/proceedings2024094011

Chicago/Turabian Style

Francescone, Martina, Chrysanthi Charatsari, Evagelos D. Lioutas, Luca Bartoli, and Marcello De Rosa. 2024. "Questioning Family Farms’ Readiness to Adopt Digital Solutions" Proceedings 94, no. 1: 11. https://doi.org/10.3390/proceedings2024094011

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