A Cybernetics Approach and Autoregressive Distributed Lag Econometric Exploration of Romania’s Circular Economy
Abstract
:1. Introduction
- Resources are used in a closed-loop system, where they undergo reuse and recycling, reducing the need for new resources and mitigating environmental consequences;
- Products are designed to have longer lifespans through maintenance, repair, and reuse;
- Materials from used products are extracted and reprocessed to create new products, reducing the demand for raw material.
- i.
- Integration of CE and Cybernetic Systems: The study effectively integrates CE principles into a cybernetics system, improving strategic decision making through the use of the ARDL technique;
- ii.
- Analysis of Dynamic Interdependence: The study explores the dynamic interdependence between emissions and CE factors, highlighting feedback loops and control mechanisms within CE strategies;
- iii.
- Decoupling Economic Growth from COE: The study identifies a long-term negative relationship between economic growth and COE, indicating a decoupling process with significant implications for sustainable development;
- iv.
- Focus on the Romanian Context: Our research provides an innovative contribution to Romanian CE literature, providing valuable insights for public policy and sustainable practices.
2. Theoretical Background
2.1. The Stage of Knowledge in the Field
2.1.1. The Relationship between CE and COE
2.1.2. Literature Review on CE in Romania
2.1.3. The Use of the ARDL Model in CE Analysis
2.2. A Cybernetics Approach to the CE System
3. ARDL Econometric Methodology
4. Data Collection and Results
5. Discussion
6. Conclusions and Policy Recommendations
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
Acronym | Definition |
CE | Circular Economy |
COE | CO2 emissions |
GHGs | Greenhouse gases |
MSW | Municipal solid waste |
GDP | Gross Domestic Product |
GMW | Generation of municipal waste per capita |
RMW | Recycling rate of municipal waste |
CAS | Complex Adaptive Systems |
ECM | Error Correction Model |
CUSUM | Cumulative sum |
IFRs | Impulse response functions |
EKC | Environmental Kuznets Curve |
VD | Variance Decomposition |
AIC | Akaike Information Criterion |
ADF | Augmented Dickey–Fuller |
FPE | Final prediction error |
SC | Schwarz information criterion |
HQ | Hannan–Quinn information criterion |
SCR | Serial Correlation |
HE | Heteroscedasticity |
NO | Normal distribution |
RR | Ramsey RESET test |
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Variable | Acronym | Measurement Unit | Source |
---|---|---|---|
Annual CO2 emissions (per capita) | COE | Metric tons per capita | World Bank |
Real GDP per capita | GDP | Constant 2015 USD | World Bank |
Generation of municipal waste per capita | GMW | Kilograms per capita | Eurostat |
Recycling rate of municipal waste | RMW | % | Eurostat |
COE | GDP | GMW | RMW | |
---|---|---|---|---|
Mean | 1.389858 | 8195.056 | 314.8521 | 7.543478 |
Median | 1.376789 | 8234.305 | 302 | 11.3 |
Maximum | 1.543978 | 11,670.14 | 411 | 14.8 |
Minimum | 1.269127 | 4567.24 | 246.5974 | 0 |
Std. Dev. | 0.096388 | 2178.584 | 57.82317 | 5.971510 |
Skewness | 0.267241 | 0.022256 | 0.251110 | −0.127223 |
Kurtosis | 1.625616 | 2.010925 | 1.499370 | 1.152229 |
Jarque–Bera | 2.083994 | 0.939408 | 2.399779 | 3.492877 |
Probability | 0.352750 | 0.625187 | 0.301227 | 0.177917 |
Variables | Level | First Difference | Order of Integration |
---|---|---|---|
T-Statistics | T-Statistics | ||
COE | 1.07 (0.705) | 4.39 *** (0.002) | I (1) |
GDP | 1.91 (0.320) | 3.82 *** (0.009) | I (1) |
GMW | 1.05 (0.713) | 2.88 * (0.063) | I (1) |
RMW | 1.44 (0.539) | 5.46 *** (0.000) | I (1) |
Lag | LogL | LR | FPE | AIC | SC | HQ |
---|---|---|---|---|---|---|
0 | 39.91 | NA | 3.78 | 3.58 | 3.74 | |
1 | 105.12 | 96.09 | 8.96 | 7.96 | 8.79 | |
2 | 144.06 | 40.99 * | 11.37 | 9.58 | 11.07 | |
3 | 170.97 | 16.99 | 12.52 * | 9.93 * | 12.08 * |
Test Statistic | Value | K (Number of Regressors) |
---|---|---|
F-statistic | 17.88 | 3 |
Critical value bounds (Finite sample n = 30) | ||
Significance | I (0) | I (1) |
10% | 2.67 | 3.59 |
5% | 3.27 | 4.30 |
1% | 4.61 | 5.96 |
Variables | Coefficient | T-Statistics | Prob. |
---|---|---|---|
GDP | 0.18 | 5.14 | 0.000 *** |
GMW | 0.57 | 5.72 | 0.000 *** |
RMW | 0.06 | 3.50 | 0.008 *** |
C | 1.45 | 4.06 | 0.003 *** |
Variable | Coefficient | T-Statistics | Prob. |
---|---|---|---|
D (GDP) | 0.57 | 13.25 | 0.000 *** |
D (GDP (−1)) | 0.78 | 7.25 | 0.000 *** |
D (GDP (−2)) | 0.24 | 3.58 | 0.007 *** |
D (GMW) | 0.22 | 6.57 | 0.000 *** |
D (GMW (−1)) | 0.49 | 7.39 | 0.000 *** |
D (RMW) | 0.01 | 3.48 | 0.008 *** |
D (RMW (−1)) | 0.02 | -0.55 | 0.000 *** |
CointEq (−1) | 1.21 | 11.58 | 0.000 *** |
R-squared | 0.97 | ||
Adjusted R-squared | 0.95 |
Test | H0 | Decision Statistics [p-Value] |
---|---|---|
SC * | There is no serial correlation in the residuals | Accept H0 2.00 [0.214] |
HE ** | There is no autoregressive conditional heteroscedasticity | Accept H0 0.25 [0.622] |
NO *** | Normal distribution | Accept H0 0.05 [0.971] |
RR **** | Absence of model misspecification | Accept H0 3.14 [0.116] |
Variable | Period | COE | GDP | GMW | RMW |
---|---|---|---|---|---|
COE | 1 | 100.00 | 0.00 | 0.00 | 0.00 |
5 | 70.03 | 5.14 | 4.37 | 20.44 | |
10 | 71.47 | 6.62 | 5.56 | 16.32 | |
15 | 68.57 | 8.29 | 5.33 | 17.78 | |
20 | 66.74 | 9.89 | 5.96 | 17.38 | |
GDP | 1 | 79.55 | 20.44 | 0.00 | 0.00 |
5 | 81.87 | 13.43 | 0.55 | 4.13 | |
10 | 73.34 | 18.12 | 2.89 | 5.63 | |
15 | 72.48 | 18.99 | 2.92 | 5.59 | |
20 | 69.53 | 20.89 | 3.50 | 6.06 | |
GMW | 1 | 74.51 | 1.66 | 23.82 | 0.00 |
5 | 80.62 | 11.90 | 5.17 | 2.29 | |
10 | 79.65 | 10.96 | 4.42 | 4.95 | |
15 | 78.80 | 11.47 | 4.60 | 5.10 | |
20 | 76.46 | 13.47 | 4.60 | 5.45 | |
RMW | 1 | 47.66 | 4.04 | 8.10 | 40.18 |
5 | 67.97 | 18.37 | 9.55 | 4.09 | |
10 | 58.89 | 23.30 | 8.84 | 7.95 | |
15 | 56.73 | 25.96 | 9.72 | 7.56 | |
20 | 52.80 | 28.14 | 10.12 | 8.92 |
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Georgescu, I.; Nica, I.; Delcea, C.; Ciurea, C.; Chiriță, N. A Cybernetics Approach and Autoregressive Distributed Lag Econometric Exploration of Romania’s Circular Economy. Sustainability 2024, 16, 8248. https://doi.org/10.3390/su16188248
Georgescu I, Nica I, Delcea C, Ciurea C, Chiriță N. A Cybernetics Approach and Autoregressive Distributed Lag Econometric Exploration of Romania’s Circular Economy. Sustainability. 2024; 16(18):8248. https://doi.org/10.3390/su16188248
Chicago/Turabian StyleGeorgescu, Irina, Ionuț Nica, Camelia Delcea, Cristian Ciurea, and Nora Chiriță. 2024. "A Cybernetics Approach and Autoregressive Distributed Lag Econometric Exploration of Romania’s Circular Economy" Sustainability 16, no. 18: 8248. https://doi.org/10.3390/su16188248
APA StyleGeorgescu, I., Nica, I., Delcea, C., Ciurea, C., & Chiriță, N. (2024). A Cybernetics Approach and Autoregressive Distributed Lag Econometric Exploration of Romania’s Circular Economy. Sustainability, 16(18), 8248. https://doi.org/10.3390/su16188248