A Catalyst for China’s High-Tech Export Competitiveness: Perspective of Technological Innovation
Abstract
:1. Introduction
2. Theoretical Analysis and Research Questions
3. Model Setting and Variable Selection
3.1. Model Setting
3.2. Variable Selection
- (1)
- Explained Variable: Export Competitiveness
- ①
- Trade Competitiveness Index (TC)
- ②
- Revealed Comparative Advantage Index (RCA)
- ③
- International market share (MSI)
- ④
- Intra-industry Trade Index (IiT)
- ⑤
- Export Competitiveness Index (ECI)
- (2)
- Core Explanatory Variable: Technological Innovation
- (3)
- Mediating Variable: Industrial Upgrading
- (4)
- Control Variables: Government Support, Education Level, and Market Openness
4. Empirical Studies
4.1. Data Description
4.2. Analysis of Benchmark Regression
- (1)
- Endogeneity Tests
- (2)
- Parameter Estimation Results
- (3)
- Robustness Testing
- (4)
- Heterogeneity Analysis
4.3. Analysis of Mediation Effects
- (1)
- Impact of Technological Innovation on Industrial Upgrading
- (2)
- Mediation Effect Test
5. Discussion
5.1. Research Findings
5.2. Generalization of Findings
5.3. Implications of Findings
5.4. Policy Recommendations
5.5. Limitations and Future Research
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Variables | Measurement | Literature | Data Sources |
---|---|---|---|
Export Competitiveness (Eci) | Yan (2006) [60] | China Statistical Yearbook, National Bureau of Statistics of China (NBSC), China High-Tech Industry Statistical Yearbook, Statistical Yearbooks of 30 Provinces and Municipalities, EPS Database. | |
Technological Innovation (Ti) | Internal R&D expenditure (Ti1), Patent application volume (Ti2) | Zhang et al. (2011) [63], Xie and Liao (2017) [62] | China High-Tech Industry Statistical Yearbook, China Statistical Yearbook, National Bureau of Statistics of China (NBSC). |
Industrial Upgrading (Upgra) | Ratio of high-tech industry output to total industrial output | Zhen and Yang (2022) [64] | China High-Tech Industry Statistical Yearbook, China Statistical Yearbook on Science and Technology, China Torch Statistical Yearbook, China Industrial Statistical Yearbook, Statistical Yearbooks of 30 Provinces and Municipalities. |
Government Support (Gov) | Ratio of government technology expenditure to total fiscal expenditure | Zhang et al. (2016) [63] | China Statistical Yearbook, National Bureau of Statistics of China (NBSC). |
Education Level (Edu) | Student-to-teacher ratio at universities | Yu and Fan (2022) [67] | China Statistical Yearbook, National Bureau of Statistics of China (NBSC). |
Market Openness (Open) | Ratio of total trade (imports plus exports) to GDP | Han et al. (2023) [68] | China Statistical Yearbook, National Bureau of Statistics of China (NBSC), Statistical Yearbooks of 30 Provinces and Municipalities. |
(1) Stage 1 | (2) Stage 2 | |
---|---|---|
L.Ti | 0.9438 *** (62.74) | |
LnTi | 0.3786 *** (8.48) | |
LnEdu | 0.1384 (0.54) | 4.6096 *** (6.46) |
LnGov | 0.1260 *** (2.62) | 0.2137 (1.55) |
LnOpen | −0.0284 (−1.05) | 0.7520 *** (9.97) |
Cons | 0.9234 (1.24) | −17.2408 *** (−8.25) |
N | 300 | 300 |
R2 | 0.972 | 0.725 |
Fixed Effects | ||||
---|---|---|---|---|
LnTi1 | 0.3267 *** (6.67) | 0.2652 *** (5.22) | 0.1947 *** (3.40) | 0.3218 *** (5.51) |
LnEdu | 2.7251 *** (3.69) | 2.9526 *** (4.01) | 2.6568 *** (3.79) | |
LnGov | 0.3744 *** (2.59) | 0.2041 (1.46) | ||
LnOpen | 0.7084 *** (5.88) | |||
Constant | −5.5729 *** (−9.03) | −12.6290 *** (−6.29) | −10.8756 *** (−5.18) | −11.0494 *** (−5.55) |
Observations | 330 | 330 | 330 | 330 |
R2 | 0.13 | 0.17 | 0.19 | 0.27 |
Fixed Effects | ||||
---|---|---|---|---|
LnTi2 | 0.5289 *** (8.36) | 0.4556 *** (6.50) | 0.3865 *** (4.58) | 0.5538 *** (6.57) |
LnEdu | 1.7892 ** (2.35) | 2.0589 *** (2.63) | 1.5663 ** (2.11) | |
LnGov | 0.2211 (1.46) | 0.0360 (0.25) | ||
LnOpen | 0.7100 *** (6.12) | |||
Constant | −6.3542 *** (−10.83) | −10.8177 *** (−5.44) | −10.0554 *** (−4.90) | −9.6695 *** (−4.99) |
Observations | 330 | 330 | 330 | 330 |
R2 | 0.19 | 0.20 | 0.21 | 0.30 |
Eastern Region | Central Region | Western Region | |
---|---|---|---|
Fixed Effects | |||
LnTi1 | 0.04436 (0.61) | 0.7132 *** (6.37) | 0.2555 ** (2.52) |
LnEdu | −0.5123 (−0.97) | 1.4478 (1.19) | 5.0655 *** (3.38) |
LnGov | 0.0539 (0.43) | −0.3672 * (−1.78) | 0.6236 * (1.94) |
LnOpen | 0.7963 *** (5.51) | 0.2715 (1.16) | 0.7425 *** (3.52) |
Constant | 1.2057 (0.70) | −15.8905 *** (−4.37) | −15.0948 *** (−3.62) |
Observations | 121 | 88 | 121 |
R2 | 0.30 | 0.54 | 0.28 |
Fixed Effects | ||||
---|---|---|---|---|
LnTi1 | 0.5316 *** (12.02) | 0.4759 *** (10.38) | 0.5050 *** (9.69) | 0.4988 *** (8.88) |
LnEdu | 2.4643 *** (3.69) | 2.3704 *** (3.53) | 2.3847 *** (3.54) | |
LnGov | −0.1544 (−1.17) | −0.1462 (−1.08) | ||
LnOpen | −0.0342 (−0.29) | |||
Constant | −8.5235 *** (−15.29) | −14.9042 *** (−8.23) | −15.6274 *** (−8.17) | −15.6190 *** (−8.15) |
Observations | 330 | 330 | 330 | 330 |
R2 | 0.33 | 0.35 | 0.36 | 0.36 |
Fixed Effects | ||||
---|---|---|---|---|
LnTi1 | 0.2543 *** (4.47) | 0.2778 *** (4.61) | 0.2892 *** (4.21) | 0.3367 *** (4.57) |
LnEdu | −1.0257 (−1.17) | −1.0632 (−1.20) | −1.1750 (−1.33) | |
LnGov | −0.0604 (−0.35) | −0.1240 (−0.70) | ||
LnOpen | 0.2642 * (1.74) | |||
Constant | −4.8080 *** (−6.71) | −2.1564 (−0.91) | −2.4378 (−0.97) | −2.4988 (−1.00) |
Observations | 329 | 329 | 329 | 329 |
R2 | 0.07 | 0.06 | 0.07 | 0.08 |
Fixed Effects | Fixed Effects | |||
---|---|---|---|---|
LnUpgra | 0.3188 *** (5.19) | 0.3015 *** (5.21) | ||
LnTi1 | 0.3267 *** (6.67) | 0.3218 *** (5.51) | 0.1572 *** (2.75) | 0.1714 *** (2.72) |
LnEdu | 2.6568 *** (3.79) | 1.9378 *** (2.83) | ||
LnGov | 0.2041 (1.46) | 0.2482 * (1.84) | ||
LnOpen | 0.7084 *** (5.88) | 0.7187 *** (6.22) | ||
Constant | −5.5729 *** (−9.03) | −11.0494 *** (−5.55) | −2.8553 *** (−3.61) | −6.3405 *** (−3.00) |
Observations | 300 | 330 | 330 | 330 |
R2 | 0.13 | 0.27 | 0.20 | 0.33 |
Fixed Effects | ||||
---|---|---|---|---|
L.LnUpgra1 | 0.1524 ** (2.52) | 0.1279 ** (2.27) | ||
LnUpgra1 | −0.1083 * (−1.74) | −0.1268 ** (−2.20) | ||
LnTi1 | 0.3267 *** (6.67) | 0.3218 *** (5.51) | 0.2522 *** (4.68) | 0.2820 *** (4.37) |
LnEdu | 2.6568 *** (3.79) | 2.0927 *** (2.98) | ||
LnGov | 0.2041 (1.46) | 0.1371 (0.98) | ||
LnOpen | 0.7084 *** (5.88) | 0.6937 *** (5.67) | ||
Constant | −5.5729 *** (−9.03) | −11.0494 *** (−5.55) | −4.5167 *** (−6.41) | −9.1708 *** (−4.72) |
Observations | 300 | 330 | 298 | 298 |
R2 | 0.13 | 0.27 | 0.11 | 0.25 |
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Hu, G.; Zhang, X.; Zhu, T. A Catalyst for China’s High-Tech Export Competitiveness: Perspective of Technological Innovation. Sustainability 2024, 16, 2169. https://doi.org/10.3390/su16052169
Hu G, Zhang X, Zhu T. A Catalyst for China’s High-Tech Export Competitiveness: Perspective of Technological Innovation. Sustainability. 2024; 16(5):2169. https://doi.org/10.3390/su16052169
Chicago/Turabian StyleHu, Genhua, Xuejian Zhang, and Tingting Zhu. 2024. "A Catalyst for China’s High-Tech Export Competitiveness: Perspective of Technological Innovation" Sustainability 16, no. 5: 2169. https://doi.org/10.3390/su16052169
APA StyleHu, G., Zhang, X., & Zhu, T. (2024). A Catalyst for China’s High-Tech Export Competitiveness: Perspective of Technological Innovation. Sustainability, 16(5), 2169. https://doi.org/10.3390/su16052169