Human Capital Spending and Its Impact on Economic Growth in Saudi Arabia: An NARDL Approach
Abstract
:1. Introduction
2. Literature Review
2.1. Theoretical Underpinning
2.2. Empirical Evidence
3. Materials and Methods
- Government education spending per capita has a long-run positive and asymmetric impact on GDP per capita.
- Government healthcare spending per capita has a long-run positive and asymmetric impact on GDP per capita.
4. Results
4.1. Stationarity Test
4.2. NARDL Model and Its Results
4.3. The Toda–Yamamoto Test of Causality
5. Discussion
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Variables | Intercept | Trend and Intercept | ||||||
---|---|---|---|---|---|---|---|---|
Level | First Difference | Level | First Difference | |||||
t-Statistics | p-Values | t-Statistics | p-Values | t-Statistics | p-Values | t-Statistics | p-Values | |
GDP | −2.65352 | 0.0921 | −7.64465 * | 0.0000 | −2.92130 | 0.1681 | −7.56274 * | 0.0000 |
EXPO | −1.25587 | 0.6391 | −5.71567 * | 0.0000 | −1.93858 | 0.6139 | −5.72550 * | 0.0002 |
EEXP | −3.16025 ** | 0.0309 | −10.6950 * | 0.0000 | −4.75476 * | 0.0027 | −10.5329 * | 0.0000 |
HEXP | −3.62274 * | 0.0101 | −9.73190 * | 0.0000 | −5.77717 * | 0.0002 | −9.58400 * | 0.0000 |
Variable | Intercept | Trend and Intercept | ||||||
---|---|---|---|---|---|---|---|---|
Level | First Difference | Level | First Difference | |||||
Adj. t-Statistics | p-Values | Adj. t-Statistics | p-Values | Adj. t-Statistics | p-Values | Adj. t-Statistics | p-Values | |
GDP | −2.64033 | 0.0945 | −7.47886 * | 0.0000 | −2.92108 | 0.1681 | −7.45611 * | 0.0000 |
EXPO | −1.14644 | 0.6865 | −5.80780 * | 0.0000 | −2.08569 | 0.5360 | −6.05644 * | 0.0001 |
EEXP | −3.16377 ** | 0.0307 | −11.6723 * | 0.0000 | −4.88670 * | 0.0019 | −11.50984 * | 0.0000 |
HEXP | −3.65783 * | 0.0092 | −24.2035 * | 0.0001 | −5.77300 * | 0.0002 | −23.66124 * | 0.0000 |
Variables | Intercept Only | Trend and Intercept | ||
---|---|---|---|---|
Level | First Difference | Level | First Difference | |
LM Statistics | LM Statistics | LM Statistics | LM Statistics | |
GDP | 0.57836 ** | 0.17230 | 0.06681 | 0.09519 |
EXPO | 0.62322 ** | 0.13045 | 0.11338 | 0.11027 |
EEXP | 0.61527 ** | 0.06709 | 0.08061 | 0.06629 |
HEXP | 0.67767 ** | 0.22289 | 0.05816 | 0.22266 * |
Type of Break | Type of Break | ||||
---|---|---|---|---|---|
Variable | Intercept | Intercept and Trend | First Diff. | Intercept | Intercept and Trend |
GDP | −3.873 [2] | −3.802 [2] | Δ(GDP) | −8.640 * [0] | −9.949 * [0] |
EXPO | −4.052 [0] | −3.838 [0] | Δ(EXPO) | −5.613 * [1] | −5.727 * [1] |
EEXP | −5.980 * [0] | −5.861 * [0] | Δ(EEXP) | −10.889 * [0] | −11.262 * [0] |
HEXP | −6.182 * [0] | −7.065 * [0] | Δ(HEXP) | −6.235 * [1] | −7.357 * [1] |
F-Bound Test | Null: There is No Level Relationship | |||
---|---|---|---|---|
Test Statistics | Values | Level of Significance | I(0) | I(1) |
Asymptotic: n = 1000 | ||||
F-statistics | 5.260 | 5% | 2.390 | 3.380 |
k | 5 | 1% | 3.060 | 4.150 |
Actual Sample Size | 33 | |||
Finite Sample: n = 35 | ||||
5% | 2.804 | 4.013 | ||
1% | 3.900 | 5.419 | ||
Finite Sample: n = 30 | ||||
5% | 2.910 | 4.193 | ||
1% | 4.134 | 5.761 |
NARDL Error Correction Regression | ||||
---|---|---|---|---|
Dependent Variable: D(GDP) | ||||
Included Observations: 33 | ||||
Variable | Coefficient | Std. Error | t-Statistic | Prob. |
D(EXPO) | 0.0715 * | 0.0176 | 4.0541 | 0.0010 |
D(EEXP_POS) | 0.3648 * | 0.0828 | 4.4065 | 0.0005 |
D(EEXP_POS(−1)) | 0.3382 * | 0.0703 | 4.8113 | 0.0002 |
D(EEXP_NEG) | 0.4847 * | 0.1052 | 4.6086 | 0.0003 |
D(EEXP_NEG(−1)) | −0.0925 | 0.0942 | −0.9821 | 0.3416 |
D(EEXP_NEG(−2)) | 0.2616 * | 0.0583 | 4.4898 | 0.0004 |
D(HEXP_POS) | −0.3821 * | 0.0638 | −5.9900 | 0.0000 |
D(HEXP_POS(−1)) | −0.0438 | 0.0270 | −1.6181 | 0.1265 |
D(HEXP_POS(−2)) | −0.0224 | 0.0134 | −1.6774 | 0.1142 |
D(HEXP_NEG) | −0.1590 * | 0.0301 | −5.2766 | 0.0001 |
D(HEXP_NEG(−1)) | −0.1083 ** | 0.0471 | −2.2984 | 0.0363 |
CointEq(−1) | −0.4697 * | 0.0654 | −7.1794 | 0.0000 |
R-squared 0.8878 | ||||
Adjusted R-squared 0.8290 | ||||
Durbin-Watson Statistic 2.0339 |
Null Hypothesis: Coefficient is Symmetric. | |||
---|---|---|---|
Variable | Statistic | Value | Probability |
Long Run | |||
EEXP | F-statistic | 9.882076 * | 0.0067 |
Chi-square | 9.882076 * | 0.0017 | |
HEXP | F-statistic | 11.70779 * | 0.0038 |
Chi-square | 11.70779 * | 0.0006 | |
Short Run | |||
EEXP | F-statistic | 0.021455 | 0.8855 |
Chi-square | 0.021455 | 0.8835 | |
HEXP | F-statistic | 1.542935 | 0.2333 |
Chi-square | 1.542935 | 0.2142 | |
Joint (Long Run and Short Run) | |||
EEXP | F-statistic | 4.954710 ** | 0.0223 |
Chi-square | 9.909420 * | 0.0071 | |
HEXP | F-statistic | 6.377160 * | 0.0099 |
Chi-square | 12.75432 * | 0.0017 |
Variable | Coefficient | Std. Error | t-Statistic | Prob. |
---|---|---|---|---|
EXPO | 0.3084 * | 0.0835 | 3.6956 | 0.0022 |
EEXP_POS | 0.7578 * | 0.2202 | 3.4420 | 0.0036 |
EEXP_NEG | 1.2118 * | 0.3720 | 3.2573 | 0.0053 |
HEXP_POS | −0.5358 * | 0.1470 | −3.6436 | 0.0024 |
HEXP_NEG | −0.7472 * | 0.1943 | −3.8449 | 0.0016 |
C | −1.3411 * | 0.3956 | −3.3898 | 0.0040 |
Test Type | Null Hypothesis | Test Statistic | Values | Probabilities |
---|---|---|---|---|
Ramsey RESET (2) Test | The model is appropriately specified | F-statistic | 0.9908 | 0.3977 |
Likelihood ratio | 4.6818 | 0.0962 | ||
Test of Normality | Errors follow a normal distribution | Jarque–Bera | 0.4889 | 0.7831 |
Breusch–Godfrey LM Test of Serial Correlation | There is no serial correlation in errors for up to ten lags | F-statistic | 0.9624 | 0.4657 |
Obs*R-squared | 8.5546 | 0.0732 | ||
Breusch–Pagan–Godfrey Heteroskedasticity Test | Errors are homoscedastic | F-statistic | 1.5703 | 0.1925 |
Obs*R-squared | 21.1283 | 0.2206 | ||
Scaled explained SS | 5.3747 | 0.9965 |
FMOLS | DOLS | CCR | ||||
---|---|---|---|---|---|---|
Variable | Coefficient | t-Statistic | Coefficient | t-Statistic | Coefficient | t-Statistic |
EXPO | 0.0843 | 4.8963 * (0.0000) | 0.1180 | 6.1353 * (0.0000) | 0.0899 | 4.7697 * (0.0000) |
EEXP | 0.2957 | 3.1476 * (0.0036) | 0.4115 | 4.3356 * (0.0003) | 0.3090 | 3.2160 * (0.0030) |
HEXP | −0.1165 | −2.6448 ** (0.0126) | −0.2249 | −4.0808 * (0.0005) | −0.1336 | −2.6511 ** (0.0124) |
C | −1.4314 | −4.6517 * (0.0001) | −1.3566 | −4.6359 * (0.0001) | −1.4455 | −4.5585 * (0.0001) |
Adjusted R-squared | 0.6106 | 0.7748 | 0.5928 | |||
Jarque-Bera | 0.1917 (0.9085) | 1.5669 (0.4568) | 0.1999 (0.9048) |
Null Hypothesis | Chi-Sq. Value | df | Prob. | Inference |
---|---|---|---|---|
There is no causality from EXPO to GDP | 25.1386 * | 2 | 0.0000 | Causality from EXPO to GDP |
There is no causality from GDP to EXPO | 2.6444 | 2 | 0.2665 | No causality from GDP to EXPO |
There is no causality from EEXP to GDP | 10.2856 * | 2 | 0.0058 | Causality from EEXP to GDP |
There is no causality from GDP to EEXP | 2.1495 | 2 | 0.3414 | No causality from GDP to EEXP |
There is no causality from HEXP to GDP | 17.1729 * | 3 | 0.0002 | Causality from HEXP to GDP |
There is no causality from GDP to HEXP | 2.1049 | 3 | 0.3491 | No causality from GDP to HEXP |
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Alam, F.; Singh, H.P.; Singh, A.; Al-Mamary, Y.H.; Abubakar, A.A.; Agrawal, V. Human Capital Spending and Its Impact on Economic Growth in Saudi Arabia: An NARDL Approach. Sustainability 2025, 17, 4639. https://doi.org/10.3390/su17104639
Alam F, Singh HP, Singh A, Al-Mamary YH, Abubakar AA, Agrawal V. Human Capital Spending and Its Impact on Economic Growth in Saudi Arabia: An NARDL Approach. Sustainability. 2025; 17(10):4639. https://doi.org/10.3390/su17104639
Chicago/Turabian StyleAlam, Fakhre, Harman Preet Singh, Ajay Singh, Yaser Hasan Al-Mamary, Aliyu Alhaji Abubakar, and Vikas Agrawal. 2025. "Human Capital Spending and Its Impact on Economic Growth in Saudi Arabia: An NARDL Approach" Sustainability 17, no. 10: 4639. https://doi.org/10.3390/su17104639
APA StyleAlam, F., Singh, H. P., Singh, A., Al-Mamary, Y. H., Abubakar, A. A., & Agrawal, V. (2025). Human Capital Spending and Its Impact on Economic Growth in Saudi Arabia: An NARDL Approach. Sustainability, 17(10), 4639. https://doi.org/10.3390/su17104639