A Study of the Efficiency of Mediterranean Container Ports: A Data Envelopment Analysis Approach
Abstract
:1. Introduction
2. Literature Review
2.1. Ports, Economic Development and Privatization
2.2. Port Efficiency with DEA Models
3. Materials and Methods
3.1. CCR—Constant Return to Scale Model
3.2. DEA-BCC—Variable Return to Scale Model
3.3. Scale Efficiency
4. Selection of Variables, DMUs Used and Data Collection
4.1. Input and Output Variables
- y1:
- Container throughput in TEUs. The total container traffic measured in 20-foot equivalent units.
- y2:
- Container volume in tons. Total weight of goods handled by the port within a period of one year.
- y3:
- Revenue in millions of euros. It plays an important role, since it provides information related to the economic efficiency of the port.
- x1:
- Length of berth (in m).
- x2:
- Terminal area (in hectares, ha). The area of the quay and land yard.
- x3:
- Number of quay cranes (quay cranes, ship to shore cranes, mobile cranes).
- x4:
- Number of gantry cranes in the stacking area (RTGs, RMGs).
4.2. DMUs Used and Data Collection
4.3. Data Collection
- To handle sufficiently large volumes of containers. A measure of the container traffic of each port was the total incoming/outgoing containers in TEUs (20-foot equivalent units)
- To handle a minimum of 1 million TEUs in the year 2021 (year of the most recent available data).
- To be located in the wider Mediterranean area.
- Large ports: more than 4 million TEUs.
- Medium-sized ports: between 1 and 4 million TEUs.
5. Results
6. Discussion and Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Inputs | Outputs | ||||||
---|---|---|---|---|---|---|---|
Berth Length | Terminal Area | Quay-Side Cranes | Yard Gantry Cranes | Throughput | Volume | Revenue | |
(m) | (ha) | (Number) | (Number) | (TEUs) | (Tons) | (Million Euros) | |
Mean | 2873 | 120 | 23 | 51 | 3,176,871 | 47,825,000 | 687 |
Standard Deviation | 1291 | 72 | 10 | 39 | 1,806,000 | 28,231,000 | 824 |
Minimum | 695 | 27 | 11 | 0 | 1,000,000 | 1,906,000 | 123 |
Maximum | 4812 | 231 | 43 | 113 | 7,173,000 | 101,055,000 | 2766 |
Port | Container Throughput | Container Volume | Revenue | DEA-CCR | DEA-BCC | Scale Efficiency | Returns to Scale |
---|---|---|---|---|---|---|---|
(TEUs) | (Thousand Tons) | (Thousand Euros) | (CRS) | (VRS) | (CRS/VRS) | ||
Tanger Med | 7,173,870 | 101,055 | 2,175,460 | 1.000 | 1.000 | 1.000 | con |
Valencia | 5,588,000 | 69,131 | 1,346,890 | 0.764 | 0.791 | 0.966 | drs |
Algeciras | 4,797,497 | 83,051 | 309,500 | 1.000 | 1.000 | 1.000 | con |
Piraeus | 4,731,000 | 46,951 | 391,830 | 1.000 | 1.000 | 1.000 | con |
Barcelona | 3,531,324 | 53,642 | 151,400 | 0.776 | 0.793 | 0.979 | drs |
Gioia Tauro | 3,140,000 | 25,721 | 123,100 | 0.898 | 1.000 | 0.898 | drs |
Marsaxlokk | 2,970,000 | 1906 | 500,800 | 0.977 | 1.000 | 0.977 | drs |
Genoa | 2,781,112 | 48,212 | 409,000 | 0.650 | 0.650 | 1.000 | con |
Mersin | 2,097,000 | 38,579 | 316,480 | 0.729 | 0.750 | 0.973 | irs |
Alexandria | 1,967,000 | 64,500 | 2,766,000 | 1.000 | 1.000 | 1.000 | con |
Marseilles | 1,500,000 | 71,590 | 162,000 | 1.000 | 1.000 | 1.000 | con |
Sines | 1,823,767 | 32,904 | 575,040 | 1.000 | 1.000 | 1.000 | con |
La Spezia | 1,375,626 | 11,486 | 161,900 | 0.580 | 0.589 | 0.985 | irs |
Koper | 1,000,000 | 20,821 | 228,400 | 0.946 | 1.000 | 0.946 | irs |
Average | 3,176,871 | 47,825 | 686,985 | 0.880 | 0.898 | 0.980 |
Port | Container Volume (Thousand Tons) | Container Throughput (TEU) | Market Share % | Total Percentage |
---|---|---|---|---|
Tanger Med | 101,055 | 7,173,000 | 15.92% | 50.76% |
Valencia | 69,131 | 5,588,000 | 12.40% | |
Piraeus | 46,951 | 4,731,000 | 11.79% | |
Algeciras | 83,051 | 4,797,497 | 10.65% | |
Barcelona | 53,642 | 3,531,324 | 7.84% | 49.24% |
Gioia Tauro | 25,721 | 3,140,000 | 6.97% | |
Marsaxlokk | 1906 | 2,970,000 | 6.59% | |
Genoa | 48,212 | 2,781,112 | 6.17% | |
Mersin | 38,579 | 2,097,000 | 4.65% | |
Alexandria | 64,500 | 1,967,000 | 4.37% | |
Marseilles | 71,590 | 1,500,000 | 4.05% | |
Sines | 32,904 | 1,823,767 | 3.33% | |
La Spezia | 11,486 | 1,376,626 | 3.05% | |
Koper | 20,821 | 1,000,000 | 2.22% | |
Total | 44,476,196 | 100.00% | 100.00% |
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Moschovou, T.P.; Kapetanakis, D. A Study of the Efficiency of Mediterranean Container Ports: A Data Envelopment Analysis Approach. CivilEng 2023, 4, 726-739. https://doi.org/10.3390/civileng4030041
Moschovou TP, Kapetanakis D. A Study of the Efficiency of Mediterranean Container Ports: A Data Envelopment Analysis Approach. CivilEng. 2023; 4(3):726-739. https://doi.org/10.3390/civileng4030041
Chicago/Turabian StyleMoschovou, Tatiana P., and Dimitrios Kapetanakis. 2023. "A Study of the Efficiency of Mediterranean Container Ports: A Data Envelopment Analysis Approach" CivilEng 4, no. 3: 726-739. https://doi.org/10.3390/civileng4030041
APA StyleMoschovou, T. P., & Kapetanakis, D. (2023). A Study of the Efficiency of Mediterranean Container Ports: A Data Envelopment Analysis Approach. CivilEng, 4(3), 726-739. https://doi.org/10.3390/civileng4030041