| Literature DB >> 27911926 |
Abstract
With the globalization of the world economy, international innovation collaboration has taken place all over the world. This study selects three emerging technologies (3D printing, big data and carbon nanotubes and graphene technology) among 20 countries as the research objects, using three patent-based indicators and network relationship analysis to reflect international collaboration patterns. Then we integrate empirical analyses to show effecting factors of international collaboration degrees by using panel data. The results indicate that while 3D printing technology is associated with a "balanced collaboration" mode, big data technology is more accurately described by a radial pattern, centered on the United States, and carbon nanotubes and graphene technology exhibits "small-world" characteristics in this respect. It also shows that the factors GDP per capita (GPC), R&D expenditure (RDE) and the export of global trade value (ETV) negatively affect the level of international collaboration. It could be useful for China and other developing countries to make international scientific and technological collaboration strategies and policies in the future.Entities:
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Year: 2016 PMID: 27911926 PMCID: PMC5135128 DOI: 10.1371/journal.pone.0167772
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Indicator analysis of 20 countries.
| 3D printing | Big data | Carbon nanotubes and graphene | |||||||
|---|---|---|---|---|---|---|---|---|---|
| SHII | SHIA | SHAI | SHII | SHIA | SHAI | SHII | SHIA | SHAI | |
| US | 8.69% | 12.97% | 18.89% | 1.30% | 2.26% | 15.96% | 13.94% | 2.64% | 14.62% |
| Germany | 8.88% | 10.29% | 14.23% | 12.50% | 7.50% | 21.95% | 31.48% | 8.14% | 39.41% |
| Japan | 0.79% | 4.16% | 2.87% | 1.64% | 3.02% | 3.48% | 4.36% | 3.41% | 4.14% |
| South Korea | 1.63% | 12.23% | 20.29% | 0.00% | 0.00% | 0.00% | 5.31% | 1.98% | 5.41% |
| UK | 27.71% | 42.17% | 19.30% | 32.00% | 26.00% | 30.43% | 25.53% | 14.04% | 26.19% |
| Canada | 23.81% | 42.86% | 18.75% | 17.39% | 10.43% | 15.00% | 15.00% | 35.00% | 13.33% |
| Israel | 5.56% | 11.11% | 0.00% | 25.00% | 25.00% | 18.18% | 0.18% | 0.00% | 2.00% |
| Netherlands | 37.93% | 17.24% | 46.88% | 9.09% | 26.36% | 22.22% | 8.00% | 7.02% | 20.00% |
| Switzerland | 22.45% | 40.82% | 48.15% | 40.00% | 20.00% | 40.00% | 25.00% | 50.00% | 25.00% |
| France | 21.69% | 31.33% | 21.05% | 0.59% | 0.00% | 12.50% | 15.52% | 13.79% | 15.52% |
| Australia | 50.00% | 33.33% | 60.00% | 10.00% | 20.00% | 0.00% | 44.44% | 24.32% | 44.44% |
| Italy | 16.00% | 20.00% | 4.76% | 100.00% | 30.00% | 35.58% | 60.00% | 20.00% | 33.33% |
| Sweden | 17.78% | 24.44% | 19.05% | 25.00% | 0.00% | 40.00% | 50.00% | 50.00% | 50.00% |
| Belgium | 23.53% | 35.29% | 26.67% | 0.21% | 0.00% | 0.00% | 42.86% | 28.57% | 42.86% |
| Spain | 18.52% | 18.52% | 15.38% | 0.12% | 0.00% | 0.00% | 60.00% | 20.00% | 66.67% |
| Denmark | 22.22% | 30.00% | 40.00% | 0.00% | 0.00% | 0.00% | 20.00% | 10.00% | 30.00% |
| China | 11.70% | 13.43% | 2.23% | 10.30% | 12.41% | 2.21% | 14.65% | 18.25% | 3.59% |
| India | 25.00% | 25.00% | 0.00% | 81.82% | 90.91% | 11.82% | 60.00% | 50.00% | 9.41% |
| Russia | 5.71% | 40.00% | 4.55% | 0.00% | 0.00% | 0.00% | 42.86% | 38.10% | 7.23% |
| Brazil | 40.00% | 30.00% | 2.05% | 100.00% | 100.00% | 2.25% | 0.25% | 0.00% | 0.00% |
Data compiled by authors for this study.
Fig 1The network relationship of 3D printing technology (drawn by netdraw software).
Fig 3The network relationship of carbon nanotubes and graphene technology (drawn by netdraw software).
Fig 2The network relationship of big data technology (drawn by netdraw software).
Variables description.
| Variables | Source | |
|---|---|---|
| Acronym | Full name | |
| SHII | International collaboration level | SHII |
| GPC | GDP per capita | OECD Statistic Database |
| RDE | R&D Expenditure | MSTI Database |
| FTE | Full-time equivalent | MSTI Database |
| GEO | The average space distance between one country and other countries | C language programming |
| FDI | Flows of foreign direct investment | OECD Statistic Database |
| ETV | The export of global trade value | OECD Statistic Database |
| DEG | Degree centrality | Compiled by Unicet software |
| BET | Betweenness centrality | Compiled by Unicet software |
| CLO | Closeness centrality | Compiled by Unicet software |
Analysis result in 3D printing technology field, 2008–2015.
| Baseline Model | Model 1 | Model 2 | Model 3 | Model 4 | Model 5 | Model 6 | Model 7 | |
|---|---|---|---|---|---|---|---|---|
| Log(DEG) | 0.1849 | 0.2027 | 0.2296 | 0.1678 | 0.1412 | 0.1870 | 0.2129 | 0.2093 |
| Log(BET) | 0.0359 | 0.0082 | 0.0194 | 0.0131 | 0.0542 | 0.0135 | 0.0071 | 0.0193 |
| Log(CLO) | -0.1839 | -0.0444 | -0.0531 | -0.0219 | -0.0593 | -0.0344 | -0.0452 | -0.0525 |
| Log(GPC) | -0.6741 | 0.4379 | ||||||
| Log(RDE) | -0.3730 | 0.5532 | ||||||
| Log(FTE) | 0.0153 | 0.0048 | ||||||
| Log(GEO) | 0.0102 | 0.0458 | ||||||
| Log(FDI) | 0.0078 | 0.0146 | ||||||
| Log(ETV) | -0.2402 | 0.0736 | ||||||
| Constant | 0.9146 | -2.5987 | -0.4647 | 0.3364 | 0.2256 | 0.5322 | -0.2677 | 0.8588 |
| Log Likelihood | 192.8580 | 222.2928 | 198.6446 | 232.5478 | 200.7458 | 216.8651 | 223.8207 | 232.96 |
| No. Observations | 160 | 160 | 160 | 160 | 160 | 160 | 160 | 160 |
a OLS-fixed-effect model estimates compiled by stata 12.0 software.
*the parameters that are significantly different from zero at a 10% probability threshold,
**the parameters that are significantly different from zero at a 5% probability threshold,
***the parameters that are significantly different from zero at a 1% probability threshold.
Analysis result in carbon nanotubes and graphene technology field, 2008–2015.
| Baseline Model | Model 15 | Model 16 | Model 17 | Model 18 | Model 19 | Model 20 | Model 21 | |
|---|---|---|---|---|---|---|---|---|
| Log(DEG) | 0.0313 | 0.0833 | 0.0756 | 0.0194 | 0.0103 | 0.0328 | 0.0453 | 0.0728 |
| Log(BET) | 0.0374 | 0.0212 | 0.0214 | 0.0258 | 0.0536 | 0.0165 | 0.0207 | 0.0217 |
| Log(CLO) | -0.0711 | -0.0529 | -0.0782 | -0.0507 | -0.059 | -0.0319 | -0.0696 | -0.0595 |
| Log(GPC) | -0.9420 | -0.9865 | ||||||
| Log(RDE) | -0.6590 | -0.4622 | ||||||
| Log(FTE) | 0.0148 | 0.0087 | ||||||
| Log(GEO) | 0.0078 | 0.0029 | ||||||
| Log(FDI0 | 0.0088 | 0.0306 | ||||||
| Log(ETV) | -0.0758 | 0.4012 | ||||||
| Constant | 0.3628 | 0.7073 | 1.0601 | 0.2141 | 1.0635 | 0.1339 | 0.2012 | 5.6734 |
| Log Likelihood | 242.1368 | 263.13 | 257.0432 | 223.3211 | 210.3352 | 214.0577 | 248.0877 | 266.2321 |
| No. Observations | 160 | 160 | 160 | 160 | 160 | 160 | 160 | 160 |
a OLS-fixed-effect model estimates compiled by stata 12.0 software.
*the parameters that are significantly different from zero at a 10% probability threshold,
**the parameters that are significantly different from zero at a 5% probability threshold,
***the parameters that are significantly different from zero at a 1% probability threshold.
Analysis result in big data technology field, 2008–2015.
| Baseline Model | Model 8 | Model 9 | Model 10 | Model 11 | Model 12 | Model 13 | Model 14 | |
|---|---|---|---|---|---|---|---|---|
| Log(DEG) | 0.3521 | 0.4459 | 0.4428 | 0.4353 | 0.2671 | 0.4854 | 0.4017 | 0.4838 |
| Log(BET) | 0.0563 | 0.0241 | -0.0371 | 0.0358 | 0.0677 | 0.0349 | 0.0287 | 0.01791 |
| Log(CLO) | -0.0432 | 0.0119 | 0.0577 | -0.1575 | -0.0569 | -0.2101 | -0.0052 | 0.06778 |
| Log(GPC) | -1.0824 | -1.7619 | ||||||
| Log(RDE) | -1.0568 | -0.2584 | ||||||
| Log(FTE) | 0.0015 | -0.0085 | ||||||
| Log(GEO) | 0.0064 | 0.0072 | ||||||
| Log(FDI) | 0.0744 | 0.0967 | ||||||
| Log(ETV) | -1.0167 | -0.0712 | ||||||
| Constant | 0.4855 | 5.3836 | 1.6651 | 0.3998 | 0.9586 | 0.8269 | 2.5580 | 7.2827 |
| Log Likelihood | 196.2679 | 182.2023 | 197.8779 | 197.5234 | 198.2254 | 180.1938 | 188.5064 | 207.1326 |
| No. Observations | 160 | 160 | 160 | 160 | 160 | 160 | 160 | 160 |
a OLS-fixed-effect model estimates compiled by stata 12.0 software.
*the parameters that are significantly different from zero at a 10% probability threshold,
**the parameters that are significantly different from zero at a 5% probability threshold,
***the parameters that are significantly different from zero at a 1% probability threshold.
Effecting factors of SHII.
| 3D printing | Big data | Carbon nanotubes and graphene technology (SHII) | |
|---|---|---|---|
| DEG | +++ | +++ | +++ |
| BET | ++ | + | + |
| CLO | - | - | - |
| GPC | - | --- | - |
| RDE | --- | -- | -- |
| FTE | none | none | none |
| GEO | none | none | none |
| FDI | none | none | none |
| ETV | -- | -- | none |
+: small influence, ++: general influence, +++: great influence
-: small negative influence, --: general negative influence, ---: great negative influence