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http://dx.doi.org/10.4218/etrij.2019-0501

Divergence of knowledge production strategies for emerging technologies between late industrialized countries: Focusing on quantum technology  

Kang, Inje (School of Business and Technology Management, Korea Advanced Science and Technology)
Choung, Jae-Yong (School of Business and Technology Management, Korea Advanced Science and Technology)
Kang, Dong-in (School of Business and Technology Management, Korea Advanced Science and Technology)
Park, Inyong (School of Business and Technology Management, Korea Advanced Science and Technology)
Publication Information
ETRI Journal / v.43, no.2, 2021 , pp. 246-259 More about this Journal
Abstract
Traditional wisdom on how late industrialized countries follow the technology trajectories of preceding economies is in need of reformation as these countries have attained industrial leadership in a growing number of fields. However, current understandings about these countries' development of their emerging technologies have yet to investigate the divergence of idiosyncratic technology trajectories. The aim of this paper was to explore how their knowledge production strategies in emerging technology sectors are diverging. Specifically, this research examines the changing patterns of knowledge production in quantum technology in South Korea and China by developing a knowledge portfolio and knowledge strategic diagram. According to the knowledge portfolio, the relative literature position differs. In the knowledge strategic diagram, there are diverging patterns in the emerging keywords sector. This paper contributes to the literature by demonstrating the diverging strategies of late industrialized countries in their transition from catch-up to post-catch-up paradigms and provides policy implications for countries developing an idiosyncratic trajectory in emerging technology sectors.
Keywords
emerging technologies; knowledge production strategies; late industrialized countries; quantum technology;
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1 Y. W. Chuang et al., Forging into the innovation lead - A comparative analysis of scientific capacity, IJIM 14 (2010), 511-529.
2 D. Archibugi and M. Pianta, Aggregate convergence and sectoral specialization in innovation, J. Evol. Econ. 4 (1994), 17-33.   DOI
3 Y. Uchida and P. Cook, The transformation of competitive advantage in East Asia: An analysis of technological trade specialization, World Dev. 33 (2005), 701-728.   DOI
4 C. Quintana-Garcia and C. A. Benavides-Velasco, Innovative competence, exploration and exploitation: The influence of technological diversification, Res. Policy 37 (2008), 492-507.   DOI
5 J. Zhang, Y. Yan, and J. Guan, Scientific relatedness in solar energy: A comparative study between the USA and China, Scientometrics 102 (2015), 1595-1613.   DOI
6 J. Oh, Y. Shin, and M. Chung, How to find the new economic engine in terms of industry, Weekly Economic Review Report, Hyundai Research Institute (HRI), Seoul, Rep. of Korea, 2018.
7 H. Choi, Ready-steady-go for emerging technologies in post catch-up countries: A longitudinal network analysis of nanotech in Korea, Tech Anal. Strateg. 29 (2017), 946-959.   DOI
8 W. Xiaobo, D. Wei, and W. Yueqi, China's ICT industry: Catch-up trends, challenges and policy implications, China Int. J. 11 (2013), 117-139.   DOI
9 R. Rothwell and M. Dodgson, The handbook of industrial innovation, Edward, Elgar, Cheltenham, 1994.
10 C. Y. Wong and K. L. Goh, Catch-up models of science and technology: A theorization of the Asian experience from bi-logistic growth trajectories, Technol. Forecast Soc. 95 (2015), 312-327.   DOI
11 M. Hu and J. A. Mathews, China' national innovative capacity, Res. Policy 37 (2008), 1465-1479.   DOI
12 J. H. Eun, K. Lee, and G. Wu, Explaining the "university-run enterprises" in China: A theoretical framework for university-industry relationship in developing countries and its application to China, Res. Policy 35 (2006), 1329-1346.   DOI
13 Q. Lu, China's leap into the information age: Innovation and organization in the computer industry, Oxford University Press, Oxford, 2000.
14 J. Chen and W. G. Qu, A new technological learning in China, Technovation 23 (2003), 861-867.   DOI
15 H. Lee, Y. Choi, and K. Kim, Quantum information communication, The new future of ICT, Issue Monitor Report, KPMG, 2017.
16 IITP, ICT R&D mid/long-term technology roadmap 2022, 2018.
17 L. Kim, The dynamics of Samsung's technological learning in semiconductors, Calif. Manag. Rev. 39 (1997), 86-100.   DOI
18 M. C. Hu and J. A. Mathews, Innovative capacity in East Asia, Res. Policy 34 (2005), 1322-1349.   DOI
19 H. S. Joo and K. Lee, Samsung's catch-up with Sony: An analysis using US patent data, J. Asia Pac. Econ. 15 (2010), 271-287.   DOI
20 M. C. Hu, Knowledge flows and innovation capability: The patenting trajectory of Taiwan's thin film transistor-liquid crystal display industry, Technol. Forecast Soc. 75 (2008), 1423-1438.   DOI
21 E. Y. Seo, J. Y. Choung, and H. R. Hwang, The changing patterns of knowledge production of catch-up firms during the forging-ahead period: Case study of Samsung Electronics Co. (SEC), IEEE Trans. Eng. Manag. 66 (2019), 621-635.   DOI
22 U. Schmoch, Evaluation of technology strategies of companies by means of MDS maps, Int. J. Technol. Manage. 10 (1995), 426-440.
23 Q. H. Pu, Q. J. Lyu, and H. Y. Su, Bibliometric analysis of scientific publications in transplantation journals from Mainland China, Japan, South Korea and Taiwan between 2006 and 2015, BMJ Open 6 (2016), no. 8, https://doi.org/10.1136/bmjopen-2016-011623   DOI
24 W. Song, In search of post catch-up innovation system, Policy Research, Science and Technology Policy Institute (STEPI), Sejong, Rep. of Korea, 2006.
25 K. Brockhoff, Instruments for patent data analysis in business firms, Technovation 12 (1992), 41-58.   DOI
26 H. Grupp and S. Hienze, International orientation: Efficiency of and regard for research in East and West Germany, Scientometrics 29 (1994), 83-113.   DOI
27 P. Nagpaul, Visualizing cooperation networks of elite institutions in India, Scientometrics 54 (2002), 213-228.   DOI
28 M. J. Cobo et al., A note on the ITS topic evolution in the period 2000-2009 at T-ITS, IEEE Trans. Intell. Transportation Syst. 13 (2011), 413-420.   DOI
29 J. Lee et al., A bibliometric analysis on LED research, J. Inf. Manag. 42 (2011), 1-26.
30 K. Lee and C. Lim, Technological regimes, catch-up and leapfrogging: Findings from the Korean Industries, Res. Policy 30 (2001), 459-483.   DOI
31 J. Y. Choung, H. R. Hwang, and W. Song, Transitions of innovation activities in latecomer countries: An exploratory case study of South Korea, World Dev. 54 (2014), 156-167.   DOI
32 European Commission, Quantum technologies flagship final report, High-level Steering Committee, 2017.
33 I. Park et al., Exploring promising technology in ICT sector using patent network and promising index based on patent information, ETRI J. 38 (2016), 405-415.   DOI
34 Y. S. Yoon et al., Exploring the dynamic knowledge structure of studies on the Internet of things: Keyword analysis, ETRI J. 40 (2018), 745-758.   DOI
35 N. Shibata, Y. Kajikawa, and I. Sakata, Measuring relatedness between communities in a citation network, J. Am. Soc. Inf. Sci. Technol. 62 (2011), 1360-1369.   DOI
36 J. K. Kim, Y. Kim, and C. H. Lee, Trade, investment and economic interdependence between South Korea and China, Asian Econ. J. 20 (2006), 379-392.   DOI
37 KISTEP, Preliminary feasibility study report: Mid/Long-term technology development program of quantum information communication, 2016.
38 M. Kwon, Current status of legislation of promoting future key technology, quantum information communication technology, Issue Report, National IT Industry Promotion Agency (NIPA), 2018.
39 S. Cho, Research trend of quantum computer and implication, ICT Spot Issue, Institute of Information & Communications Technology Planning & Evaluation (IITP), 2018.
40 C. H. Kwan, The rise of China and Asia's flying-geese pattern of economic development: An empirical analysis based on US import statistics, RIETI Discussion Paper Series, Research Institute of Economy, Trade & Industry (RIETI), 2002.
41 X. Lu, China's development model: An alternative strategy for technological catch-up, SLTMP Working Paper Series, University of Oxford, 2008.
42 R. Feynman, Simulating physics with computers, Int. J. Theor. Phys. 21 (1982), 467-488.   DOI
43 C. H. Bennet and G. Brassard, Proceedings of the IEEE international conference on computers, systems and signal processing, Bangalore, India, 1984.
44 J. Anders et al., Towards IC-based quantum sensing-recent achievements and future research trends, in Proc. Eur. Solid-State Device Res, Conf. (Dresden, Germany), 2018, pp. 122-125.
45 C. L. Degen, F. Reinhard, and P. Cappellaro, Quantum sensing, Rev. Mod. Phys. 89 (2017), no. 3, https://doi.org/10.1103/RevModPhys.89.035002.   DOI
46 R. Feynman, Quantum mechanical computers, Found Phys. 16 (1985), 507-531.   DOI
47 P. W. Shor, Algorithms for quantum computation: Discrete logarithms and factoring, in Proc. Annu. Symp Foundation Comput. Sci. (Santa Fe, NM, USA), 1994, pp. 124-134.
48 J. A. Mathews, National systems of economic learning: The case of technology diffusion management in East Asia, Int. J. Technol. Manag. 22 (2001), 455-479.   DOI
49 M. C. Hu, Technological innovation capabilities in the thin film transistor-liquid crystal display industries of Japan, Korea, and Taiwan, Res. Policy 41 (2012), 541-555.   DOI
50 M. Callon, J. P. Courtial, and F. Laville, Co-word analysis as a tool for describing the network of interactions between basic and technological research: The case of polymer chemistry, Scientometrics 22 (1991), 155-205.   DOI
51 L. Kim, Stages of development of industrial technology in a developing country: A model, Res. Policy 9 (1980), 254-277.   DOI
52 R. Murray et al., Industry perspectives on quantum technologies, OSA Industry Development Associates (OIDA), 2015.
53 L. K. Grover, A fast quantum mechanical algorithm for database search, in Proc. Annu. ACM Symp. Theory Comput. (Philadelphia, PA, USA), 1996, pp. 212-219.
54 KAIST, ICT R&D technology roadmap 2040: Quantum information communication, Internal KAIST Report: unpublished.
55 I. Cho et al., ICT Level survey report, Institute of Information & Communications Technology Planning & Evaluation (IITP), 2018.
56 K. Lee, Schumpeterian analysis of economic catch-up: Knowledge, path-creation, and the middle-income trap, Cambridge University Press, Cambridge, UK, 2013.
57 K. Lee, M. Jee, and J. H. Eun, Assessing China's economic catch-up at the firm level and beyond: Washington Consensus, East Asian Consensus and the Beijing Model, Ind. Innov. 18 (2011), 487-507.   DOI
58 H. R. Hwang, J. Y. Choung, and W. C. Song, Post catch-up theory: Direction and agenda, J. Technol. Inno. 20 (2012), 75-114.
59 M. Hobday, Innovation in East Asia: The challenge to Japan, Edward, Elgar, Cheltenham, 1995.
60 A. Filippetti and A. Peyrache, The patterns of technological capabilities of countries: A dual approach using composite indicators and data envelopment analysis, World Dev. 39 (2011), 1108-1121.   DOI
61 A. Nekar, Old is gold? The value of temporal exploration in the creation of new knowledge, Manag. Sci. 49 (2003), 211-229.   DOI
62 C. Y. Wu and J. A. Mathews, Knowledge flows in the solar photovoltaic industry: Insights from patenting by Taiwan, Korea, and China, Res. Policy 41 (2012), 524-540.   DOI
63 J. Henry and D. Mayle, Managing innovation and change, Sage, London, UK, 2002.
64 W. Kim and J. Seong, Catching-up and post catching-up strategies of latecomer firms: Evidence from Samsung Semiconductor, Asian J Technol. Inno. 18 (2010), 115-142.   DOI
65 J. A. Mathews, Strategy and the crystal cycle, Calif. Manag. Rev. 47 (2005), 6-32.   DOI
66 J. A. Mathews, M. C. Hu, and C. Y. Wu, Fast-follower industrial dynamics: the case of Taiwan's emergent solar photovoltaic industry, Ind. Innov. 18 (2011), 177-202.   DOI
67 K. Lee and J. Ki, Rise of latecomers and catch-up cycles in the world steel industry, Res. Policy 46 (2017), 365-375.   DOI
68 J. Y. Choung and H. R. Hwang, National systems of innovation: Institutional linkages and performances in the case of Korea and Taiwan, Scientometrics 48 (2000), 413-426.   DOI
69 J. Y. Choung and H. R. Hwang, The evolutionary patterns of knowledge production in Korea, Scientometrics 94 (2013), 629-650.   DOI
70 C. Y. Wong and K. L. Goh, Growth behavior of publications and patents: A comparative study on selected Asian economies, J. Inform. 4 (2010), 460-474.   DOI
71 W. Glanzel, K. Debackere, and M. Meyer, 'Triad' or 'tetrad'?, On global changes in a dynamic world, Scientometrics 74 (2007), 71-88.   DOI