The Sustainable Development of Forest Food
Abstract
:1. Introduction
2. The Literature Review and Hypotheses of Forest Food Value Chain
- structural effect (), and the measurement of is , which is the multiple of forestry enterprises’ output value of forest food in the base period (t = b) and region i (). The increment in the equation is generated by the difference between the average growth rate of the forest food output value in all regions from the base period to time t () and the average growth rate of the output value of non-wood products, which is classified as the upper-level food of forest food, in all regions from the base period to time t (); where () is the forestry enterprises’ output values of forest food in all regions and time t (base period), and () is the forestry enterprises’ output values of non-wood products in all regions and time t (base period). is an indicator of the contribution from the growth of the FFVC output value. The more the is, the more the contribution of the forestry enterprises’ output value of forest food in region i and time t will be.
- Labor deviation (), , and the measurement of is , which is the difference between the labor productivity of forest food in region i and time t () and the labor productivity of forest food in all regions and time t (); where () is the labor of forest food in region i (all regions) and time t.
- Output value deviation (), , and the measurement of is , which represent the asymmetry generated by the difference between the labor productivity of non-wood products () and the labor productivity of forest food () in region I and time t, where is the labor of non-wood products in region i and time t. The more the is, the more the integrity of FFSI in region i and time t will be. The less the is, the more possibility of labor regarding FFSI in region i and time t.
3. The Structural Equations of Forest Food Value Chain
- (1)
- For FCI, in three regions in 2011~2018, the Chinese government’s investment in ecological construction and protection was CNY 3476.93 million on average; Chinese forestry enterprises’ investment was CNY 77.31 million on average; the average number of Chinese forestry enterprises’ employees was 145,861.75; Chinese forestry enterprises’ total wages, on average, was CNY 25,156.55 million. From the literature review and experts’ survey, the meanings of FCI’s values are as follows: A. the average value of Chinese ecological construction and protection investment accounts for 23.18% of the average investment of the forestry industry, which is the highest proportion of investment, except for forest plantation investment. It means that the development purpose of Chinese forestry should be in line with the forest food industry, which promotes forest protection, conservation, and ecological balance. B. The forestry enterprises’ investment in non-wood products occupies 1.23% (the lowest proportion) of the forestry industry investment due to the government budget constraints. The Chinese FFVC could be viewed as a startup industry, which is full of prospects. C. The average employee number of non-wood forest products accounts for 28.15% of the forestry industry, and it has been increasing year by year, which means that the transformation of Chinese FFVC has allowed more and more workers to switch from logging to FFVC. D. Since logging has been stopped in China, the total wages of employees in the forestry industry have decreased.
- (2)
- For FCO, in three regions in 2011~2018, the average weight of Chinese forestry enterprises’ output of forest food was 551.22 million tons; Chinese forestry enterprises’ output value of forest food, on average, was CNY 1402.61 million; Chinese forestry enterprises’ output value of the economic forest was CNY 2768.98 million on average; the average weight of Chinese forestry enterprises’ output of non-wood products was 1381.84 million tons. Based on the above results, the average output of forest food accounts for 39.87% of the average output of non-wood forest products, and it is the highest proportion of non-wood forest products other than fruits in China, which has increased year by year. The average output value of forest food accounts for 50.67% of the average output value of economic forests. The output value of forest food accounts for more than half of the output value of economic forests and has become a pillar industry in economic forests.
- (3)
- For FSI, in three regions in 2011~2018, the average value on the structure effect of Chinese FFVC was 2.68; the average amount of labor deviation of Chinese FFVC was CNY 275.62 million; the output value deviation of Chinese FFVC was CNY 3.89 million on average. From the results, the imbalance in Chinese FFVC’s structure was caused by insufficient investment in the forestry industry. The higher index of Chinese FFVC’s structure effect was because the forest food output value accounts for more than half of the economic forest output value. The higher labor deviation thereby could promote the balance of FFVC’s structural benefits.
- (4)
- For FSA, in three regions in 2011~2018, the average value of location entropy of Chinese FFVC’s output value was 0.90; the average value of location entropy of Chinese FFVC’s employment was 2.30; the average amount of spatial concentration of Chinese FFVC’s marketing was 0.05; the average amount of spatial concentration of Chinese FFVC’s enterprises was 0.19; the average amount of internal spatial correlation of Chinese FFVC was 0.76. From the results, FFVC had no comparative advantage in terms of its output value and employment and had a poor spatial concentration of its enterprises and a strong internal correlation. This could be due to the broader space distribution of Chinese FFVC areas and no regional cooperation mechanism.
4. Conclusions
- (1)
- Chinese FFVC is in its infancy. As for forest conservation and industrial development, the government is encouraged to employ policies, subsidies, and investment to help FFVC by extending the length of the industrial chain. The governments should firstly maximize the proportion of deep processing of forest food and increase its added value. Secondly, the governments should widen the width of the industrial chain, which could maximize the comprehensive utilization level of forest food and improve the various sub-industrial links and functions. Thirdly, the government is advised to increase the scale of the industrial chain and enlarge the scale of FFVC and enhance market competitiveness. This could be embodied in the resource allocation of forest food production, which would shift from low-efficiency (productivity) sub-industries to high-efficiency (productivity) sub-industries.
- (2)
- Governments may enhance the rationalization and upgrading of Chinese FFVC. Strengthening the coordination ability of FFVC’s sub-industries may help to increase their correlation and actively promote technological progress to improve the overall quality and efficiency of FFVC. Possible methods may include the following: A. the government relaxes the FFVC’s constraints on institutions, resource market access, and infrastructures; B. the government may strengthen FFVC’s correlations, such as the horizontal and vertical chain-network structure and governance mechanisms; C. the government may upgrade FFVC’s enterprises in their interaction with processors, exporters and international retailers, and it is necessary to acquire new technologies, skills, and knowledge [54].
- (3)
- Increased spatial coupling of Chinese FFVC’s integrity and agglomeration would be beneficial. The government may, therefore, help FFVC to set up a forest food processing park so as to link FFVC’s supply chain and share the information of production, inventory management, logistics, and distribution, which will cut costs and improve productivity. On the other side, the government is advised to establish an e-commerce platform to connect the demand chain of FFVC, and implement forest food marketing strategies according to the consumption levels in different regions, and scientifically plan FFVC’s spatial layout.
- (4)
- FFVC’s related activities and industries should be developed for the sustainability of forests and forestry and these include the activities and industries of forest-based health preservation, forest-based carbon sinks, featured economic forests, bamboo and rattan, seedlings and flowers, wild animals and plant breeding and utilization, and forest-based Internet of Things. Ma and Zheng [96] thought the developments of the under-forest economy are important in the sustainability of forestry. Chu and Zhang [4] used the theory of ecology-industry symbiosis to analyze the inner and outer interaction mechanism between forest ecological security and forest food security. Its results show that there is a mutually reinforcing relationship between forest ecological security and forest food security.
Author Contributions
Funding
Informed Consent Statement
Conflicts of Interest
References
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Variables | Measurements | Mean | S.E. | Loading |
---|---|---|---|---|
FCI | 3476.93 | 2208.57 | 0.86 | |
77.31 | 158.37 | 0.91 | ||
145,861.75 | 112,855.53 | 0.34 | ||
25,156.55 | 14,860.01 | 0.98 | ||
FCO | 551.22 | 594.76 | 0.96 | |
1402.61 | 1512.82 | 0.96 | ||
2768.98 | 2482.90 | 0.98 | ||
1381.84 | 1579.40 | 0.85 | ||
FSI | 2.68 | 3.69 | −0.80 | |
275.62 | 233.66 | 0.82 | ||
3.89 | 5.76 | 0.92 | ||
FSA | 0.90 | 0.28 | 0.60 | |
2.30 | 2.10 | −0.74 | ||
0.05 | 0.04 | 0.96 | ||
0.19 | 0.12 | 0.92 | ||
0.76 | 0.15 | 0.54 |
Variables | Measurements | α | rho_A | CR | AVE | ||
---|---|---|---|---|---|---|---|
FCI | 0.81 | 0.95 | 0.87 | 0.66 | - | - | |
FCO | 0.96 | 0.96 | 0.97 | 0.88 | 0.91 | 0.90 | |
FSI | 0.50 | 0.88 | 0.72 | 0.59 | 0.68 | 0.66 | |
FSA | −0.48 | 0.82 | 0.51 | 0.72 | 0.88 | 0.88 | |
Mean (S.D.) | Mean (S.D.) | ||
---|---|---|---|
0.91 *** (0.03) | 0.67 *** (0.10) | ||
0.84 *** (0.05) | 0.24 (0.10) | ||
0.94 *** (0.02) | |||
0.72 *** (0.11) | |||
0.68 (0.11) |
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Huang, W.; Chen, S.; Zhang, X.; Zhao, X. The Sustainable Development of Forest Food. Sustainability 2022, 14, 13092. https://doi.org/10.3390/su142013092
Huang W, Chen S, Zhang X, Zhao X. The Sustainable Development of Forest Food. Sustainability. 2022; 14(20):13092. https://doi.org/10.3390/su142013092
Chicago/Turabian StyleHuang, Weilung, Si Chen, Xiaomei Zhang, and Xuemeng Zhao. 2022. "The Sustainable Development of Forest Food" Sustainability 14, no. 20: 13092. https://doi.org/10.3390/su142013092
APA StyleHuang, W., Chen, S., Zhang, X., & Zhao, X. (2022). The Sustainable Development of Forest Food. Sustainability, 14(20), 13092. https://doi.org/10.3390/su142013092