Road Freight Quality Management in Industry 4.0: International Experience and Perspectives in Kazakhstan
Abstract
:1. Introduction
2. Literature Review
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- the quality of trade and transport-related infrastructure (Butkus et al. 2023; Sénquiz-Díaz 2021),
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- the competence and quality of logistics services (Gaudenzi et al. 2021; Ricardianto et al. 2023),
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- the frequency with which shipments reach the consignee within the scheduled or expected timeframe (Cuppett et al. 2022; Ghansah et al. 2023), and
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- the ability to track and trace consignments (Gomez et al. 2019; Wang et al. 2019).
- Quality of trade and transport-related infrastructure (Butkus et al. 2023; Sénquiz-Díaz 2021);
- Competence and quality of logistics services (Gaudenzi et al. 2021; Ricardianto et al. 2023);
- Frequency with which shipments reach the consignee within a scheduled or expected timeframe (Cuppett et al. 2022; Ghansah et al. 2023);
- Ability to track and trace consignments (Gomez et al. 2019; Wang et al. 2019).
3. Materials and Methodology
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- the ease of arranging competitively priced shipments (price factor; we introduce the notation LPIP1 (World Bank 2023d)),
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- the efficiency of the customs clearance process (institutional factor; we introduce the notation LPIC1 (World Bank 2023e)),
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- the quality of trade and transport-related infrastructure (quality factor; we introduce the notation LPIQ1 (World Bank 2023g)),
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- the competence and quality of logistics services (quality factor; we introduce the notation LPIQ2 (World Bank 2023c)),
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- the frequency with which shipments reach the consignee within the scheduled or expected timeframe (quality factor; we introduce the notation LPIQ3 (World Bank 2023f)), and
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- the ability to track and trace consignments (quality factor; we introduce the notation LPIQ4 (World Bank 2023b)).
4. Results
4.1. A Factor Analysis of the Impact of Road Freight Transport on the Development of ICT Goods Exports
4.2. Prospects for the Development of ICT Goods Exports in Kazakhstan through the Improvement of Quality Management of Road Freight Transport
4.3. Strategic Vision for Improving Road Freight Transport in Industry 4.0 Based on Quality Management in the Digital Ecosystems of Transport and Logistics Services
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- a comprehensive consideration of all stakeholders’ interests and a general discussion of the order, allowing them to agree to correct interests that conflict with each other;
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- uninterrupted operation of management information systems with minimal risks of technical failures because they are managed by a human manager;
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- the possibility of flexible adjustment of the transport and logistics scheme in the process of road freight transportation;
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- quality assurance due to its triple control by AI, manager, and customers.
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- Due to the noted advantages, the new scheme is most preferable.
5. Discussion
- quality of trade- and transport-related infrastructure (correlation: 34.30%, confirms Butkus et al. (2023); Sénquiz-Díaz (2021)),
- competence and quality of logistics services (correlation: 34.90%, confirms Gaudenzi et al. (2021); Ricardianto et al. (2023)),
- the frequency with which shipments reach the consignee within the scheduled or expected timeframe (correlation: 29.05%, confirms Cuppett et al. (2022); Ghansah et al. (2023)), and
- The ability to track and trace consignments (correlation: 33.80%, confirms Gomez et al. (2019); Wang et al. (2019)).
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
- Afrianto, Irawan, Ali Khumaidi, and Adriyendi. 2020. Model of autonomous unmanned on-road and aerial vehicle carriers for precision agricultural transport 4.0: A literature review. Materials Science and Engineering 879: 012019. [Google Scholar] [CrossRef]
- Ainalis, Daniel, Chris Thorne, and David Cebon. 2023. Techno-economic comparison of an electric road system and hydrogen for decarbonising the UK’s long-haul road freight. Research in Transportation Business and Management 48: 100914. [Google Scholar] [CrossRef]
- Audonin, Aliaksei, Ardak Turginbayeva, Askar Askerov, and Dimash Yergobek. 2020. Modern economic and logistical trends in Eurasia: How do new trans-Eurasian mega-projects influence to national economic growth. E3S Web of Conferences 159: 06009. [Google Scholar] [CrossRef]
- Butkus, Michael, Alma Mačiulytė-Šniukienė, and Kristina Matuzevičiūtė. 2023. Transport infrastructure investments as a factor of economic growth of European Union countries. TalTech Journal of European Studies 13: 150–76. [Google Scholar] [CrossRef]
- Chatti, Walid. 2020. Information and communication technologies, road freight transport, and environmental sustainability. Environmental Economics 11: 124–32. [Google Scholar] [CrossRef]
- Cuppett, Maxwell, Richard M. Schein, Gede Pramana, Brad E. Dicianno, and Mark R. Schmeler. 2022. Investigating factors from assistive technology professionals that impact the timeliness of wheelchair service delivery: A cross-sectional study. Disability and Rehabilitation: Assistive Technology 18: 1522–26. [Google Scholar] [CrossRef]
- Dadsena, Krishna Kumar, Sarada Prasad Sarmah, Vallayil Narayana Achutha Naikan, Kaliyan Mathiyazhagan, and Vasco Sanchez Rodrigues. 2023. Performance measurement of road freight transportation: A case of trucking industry. Transport Policy 137: 125–40. [Google Scholar] [CrossRef]
- Elgazar, Sohaila Hassan, Nicoleta Tipi, and Eric Tchouamou Njoya. 2023. The role of technology in enabling sustainable road freight transport operation: Challenges and opportunities. In Cases on International Business Logistics in the Middle East. Hershey: IGI Global, pp. 251–64. [Google Scholar] [CrossRef]
- Farchi, Chayma, Fadwa Farchi, Badr Touzi, and Ahmed Mousrij. 2023. A sustainable performance assessment system for road freight transport based on artificial neural networks. Ingenierie des Systemes d’Information 28: 647–53. [Google Scholar] [CrossRef]
- Gaudenzi, Barbara, Ilenia Confente, and Ivan Russo. 2021. Logistics service quality and customer satisfaction in B2B relationships: A qualitative comparative analysis approach. TQM Journal 33: 125–40. [Google Scholar] [CrossRef]
- Ghansah, Frank Ato, Weisheng Lu, and Benjamin Kwaku Ababio. 2023. Quality assurance of cross-border construction logistics and supply chain during the COVID-19 pandemic: Evidence from the Hong Kong–Mainland China links. International Journal of Logistics Research and Applications, 1–21. [Google Scholar] [CrossRef]
- Gomez, Diego, Cesar Viloria, Steven Llerena, and Nel Tinoco. 2019. IoT cargo weight tracking system for supply chains. Lecture notes in computer science (including subseries lecture notes in artificial intelligence and lecture notes in bioinformatics). LNCS 11756: 365–79. [Google Scholar] [CrossRef]
- Günay, Gürkan. 2023. Shipment size and vehicle choice modeling for road freight transport: A geographical perspective. Transportation Research Part A: Policy and Practice 173: 103732. [Google Scholar] [CrossRef]
- Heinbach, Christoph, Friedemann Kammler, and Oliver Thomas. 2022a. Exploring design requirements of fleet telematics systems supporting road freight transportation: A digital service side perspective [Conference presentation]. Paper presented at the 17th International Conference on Wirtschaftsinformatik, Nürnberg, WI, USA, February 21–23. [Google Scholar]
- Heinbach, Christoph, Jan Heinrich Beinke, Friedemann Kammler, and Oliver Thomas. 2022b. Data-driven forwarding: A typology of digital platforms for road freight transport management. Electronic Markets 32: 807–28. [Google Scholar] [CrossRef] [PubMed]
- IMD. 2023. World Competitiveness Online. Available online: https://worldcompetitiveness.imd.org/ (accessed on 27 June 2023).
- Mijailovic, Djordje, Yury Klochkov, Milan Misic, Aleksandar Pavlovic, and Marija Zahar Djordjevic. 2022. ICT leadership as an enabler of business performances: An integrative approach. International Journal for Quality Research 16: 177–92. [Google Scholar] [CrossRef]
- Popkova, Elena Gennadievna, and Bruno Sergio Sergi. 2020. A digital economy to develop policy related to transport and logistics. Predictive lessons from Russia. Land Use Policy 99: 105083. [Google Scholar] [CrossRef]
- Popkova, Elena Gennadievna, Bruno Sergio Sergi, Mojtaba Rezaei, and Alberto Ferraris. 2021. Digitalisation in transport and logistics: A roadmap for entrepreneurship in Russia. International Journal of Technology Management 87: 7–28. [Google Scholar] [CrossRef]
- Prasad, Anubhav Kumar, and Dharm Raj Singh. 2020. Modified least cost method for solving transportation problem. Proceedings on Engineering Sciences 2: 269–80. [Google Scholar] [CrossRef]
- Report Linker. 2023. Road Freight Market Outlook 2022–2026. Available online: https://www.reportlinker.com/clp/global/6316 (accessed on 27 June 2023).
- Ricardianto, Prasadja, Elvira Christy, Yosi Pahala, Andjar Budi Wibawanti, and Endri Endri. 2023. Digitalization and logistics service quality: Evidence from Indonesian national shipping companies. International Journal of Data and Network Science 7: 781–90. [Google Scholar] [CrossRef]
- Sénquiz-Díaz, Cynthia. 2021. Transport infrastructure quality and logistics performance in exports. Economics 9: 107–24. [Google Scholar] [CrossRef]
- Tadesse, Mahlet Demere, Helen Zewdie Kine, Girma Gebresenbet, Lorant Tavasszy, and David Ljungberg. 2022. Key logistics performance indicators in low-income countries: The case of the import–export chain in Ethiopia. Sustainability 14: 12204. [Google Scholar] [CrossRef]
- Tostes, Karine Meire Leite, Daiane de Moura Borges Maria, Karine Ramos da Rosa Bellon, Romano Timofeiczyk, and Marcio Pereira da Rocha. 2022. Drawback customs regime as an instrument to stimulate exports in the Brazilian timber sector. Floresta e Ambiente 29: e20210031. [Google Scholar] [CrossRef]
- Tyagi, Nitin Kumar, and Mukta Goyal. 2021. Blockchain-based smart contract for issuance of country-of-origin certificate for Indian customs exports clearance. Concurrency Computation 35: e6249. [Google Scholar] [CrossRef]
- Wang, Aihua, Jin Li, and Yanzhen Wang. 2022. Does ICT promote digitizable product trade?—Evidence from Chinese exports to the “Belt and Road” countries. Journal of International Trade and Economic Development 31: 953–65. [Google Scholar] [CrossRef]
- Wang, Shu, Xuejian Gong, Wei Zhang, Mulang Song, Liang Hou, and Roger J. Jiao. 2019. Design of a smart sensing and analysis system for truck cargo weight tracking and fleet operation optimal planning. Paper presented at the IISE Annual Conference and Expo, Norcross, GA, USA, May 18–21. [Google Scholar]
- World Bank. 2023a. ICT Goods Exports (% of Total Goods Exports). Available online: https://data.worldbank.org/indicator/TX.VAL.ICTG.ZS.UN?view=chart (accessed on 27 June 2023).
- World Bank. 2023b. Logistics Performance Index: Ability to Track and Trace Consignments (1 = Low to 5 = High). Available online: https://data.worldbank.org/indicator/LP.LPI.TRAC.XQ?view=chart (accessed on 27 June 2023).
- World Bank. 2023c. Logistics Performance Index: Competence and Quality of Logistics Services (1 = Low to 5 = High). Available online: https://data.worldbank.org/indicator/LP.LPI.LOGS.XQ?view=chart (accessed on 27 June 2023).
- World Bank. 2023d. Logistics Performance Index: Ease of Arranging Competitively Priced Shipments (1 = Low to 5 = High). Available online: https://data.worldbank.org/indicator/LP.LPI.ITRN.XQ?view=chart (accessed on 27 June 2023).
- World Bank. 2023e. Logistics Performance Index: Efficiency of the Customs Clearance Process (1 = Low to 5 = High). Available online: https://data.worldbank.org/indicator/LP.LPI.CUST.XQ?view=chart (accessed on 27 June 2023).
- World Bank. 2023f. Logistics Performance Index: Frequency with Which Shipments Reach Consignee within Scheduled or Expected Time (1 = Low to 5 = High). Available online: https://data.worldbank.org/indicator/LP.LPI.TIME.XQ?view=chart (accessed on 27 June 2023).
- World Bank. 2023g. Logistics Performance Index: Quality of Trade and Transport-Related Infrastructure (1 = Low to 5 = High). Available online: https://data.worldbank.org/indicator/LP.LPI.INFR.XQ?view=chart (accessed on 27 June 2023).
- Woźniak, Joanna, Grzegorz Budzik, Łukasz Przeszłowski, Pawel Fudali, Tomasz Dziubek, and Andrej Paszkiewicz. 2022. Analysis of the quality of products manufactured with the application of additive manufacturing technologies with the possibility of applying the Industry 4.0 conception. International Journal for Quality Research 16: 831–50. [Google Scholar] [CrossRef]
- Zanne, Marine, Elen Twrdy, Robert Muha, and Milan Batista. 2023. The impact of migration of road freight transport services on economic indicators in selected EU countries. Promet Traffic Traffico 35: 271–84. [Google Scholar] [CrossRef]
- Zhou, Zhang, and Xian Wan. 2022. Does the sharing economy technology disrupt incumbents? Exploring the influences of mobile digital freight matching platforms on road freight logistics firms. Production and Operations Management 31: 117–37. [Google Scholar] [CrossRef]
Factor Type | Factor | Factor in the Literature |
---|---|---|
Institutional factor | Ease of arranging competitively priced shipments | Prasad and Singh (2020), Tadesse et al. (2022) |
Price factor | The efficiency of the customs clearance process | Tostes et al. (2022), Tyagi and Goyal (2021) |
Quality factors | Quality of trade- and transport-related infrastructure | Butkus et al. (2023), Sénquiz-Díaz (2021) |
Competence and quality of logistics services | Gaudenzi et al. (2021), Ricardianto et al. (2023) | |
The frequency with which shipments reach the consignee within the scheduled or expected timeframe | Cuppett et al. (2022), Ghansah et al. (2023) | |
Ability to track and trace consignments | Gomez et al. (2019), Wang et al. (2019) |
Analysis of Variance | |||||||||
---|---|---|---|---|---|---|---|---|---|
Sum of Squares | df | Mean Square | F | Sig. | |||||
Regression | 1,870,352 | 6 | 311,725 | 5.086 | 0.000 | ||||
Residual | 10,419,988 | 170 | 61,294 | ||||||
Total | 12,290,340 | 176 | |||||||
Coefficients | |||||||||
Unstandardized Coefficients | Standardized Coefficients | t | Sig. | Correlations | |||||
B | Std. Error | Beta | Zero-Order | Partial | Part | ||||
(Constant) | −8.701 | 4.751 | −1.831 | 0.069 | |||||
LPI_P1 | 6.217 | 3.209 | 0.344 | 1.938 | 0.054 | 0.358 | 0.147 | 0.137 | |
LPI_C1 | 0.488 | 3.864 | 0.031 | 0.126 | 0.900 | 0.327 | 0.010 | 0.009 | |
LPI_Q1 | 1.211 | 4.329 | 0.091 | 0.280 | 0.780 | 0.343 | 0.021 | 0.020 | |
LPI_Q2 | 3.981 | 5.186 | 0.270 | 0.768 | 0.444 | 0.349 | 0.059 | 0.054 | |
LPI_Q3 | −7.304 | 3.658 | −0.456 | −1.997 | 0.047 | 0.295 | −0.151 | −0.141 | |
LPI_Q4 | 1.213 | 3.863 | 0.082 | 0.314 | 0.754 | 0.338 | 0.024 | 0.022 |
Research Questions (RQs) | Vision for Road Freight Transport in Industry 4.0 | |||
---|---|---|---|---|
Existing Vision in Published Literature | The New Vision Proposed and Presented in This Article | |||
Available Response to RQ | Reinforcement with Literature | New Response to RQ | Quantitative Measurement | |
RQ1: What factors of road freight transport determine ICT goods exports? | Quantitative factors | Quality factors (correlation): | ||
The efficiency of the customs clearance process (institutional factor); | Tostes et al. (2022), Tyagi and Goyal (2021) | Quality of trade and transport-related infrastructure | 34.30% | |
Competence and quality of logistics services | 34.90% | |||
Ease of arranging competitively priced shipments (price factor). | Prasad and Singh (2020), Tadesse et al. (2022) | The frequency with which shipments reach the consignee within the scheduled or expected timeframe | 29.50% | |
Ability to track and trace consignments | 33.80% |
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Tazhiyev, R.O.; Dirsehan, T.; Baimukhanbetova, E.E.; Sandykbaeva, U.D. Road Freight Quality Management in Industry 4.0: International Experience and Perspectives in Kazakhstan. Economies 2024, 12, 218. https://doi.org/10.3390/economies12080218
Tazhiyev RO, Dirsehan T, Baimukhanbetova EE, Sandykbaeva UD. Road Freight Quality Management in Industry 4.0: International Experience and Perspectives in Kazakhstan. Economies. 2024; 12(8):218. https://doi.org/10.3390/economies12080218
Chicago/Turabian StyleTazhiyev, Rashid Oiykbayevich, Taskin Dirsehan, Elmira Esenbekovna Baimukhanbetova, and Urikkul Duisenovna Sandykbaeva. 2024. "Road Freight Quality Management in Industry 4.0: International Experience and Perspectives in Kazakhstan" Economies 12, no. 8: 218. https://doi.org/10.3390/economies12080218
APA StyleTazhiyev, R. O., Dirsehan, T., Baimukhanbetova, E. E., & Sandykbaeva, U. D. (2024). Road Freight Quality Management in Industry 4.0: International Experience and Perspectives in Kazakhstan. Economies, 12(8), 218. https://doi.org/10.3390/economies12080218