Addressing the Phenomenon of Overtourism in Budapest from Multiple Angles Using Unconventional Methodologies and Data
Abstract
:1. Introduction
2. Literature Review
2.1. Definition of Overtourism
2.2. The Measurement of Overtourism
2.3. Tourism Carriying Capacity
3. Materials and Methods
3.1. Methodological Triangulation
3.2. Tourism Carrying Capacity Model: Fuzzy Linear Programming
4. Results
4.1. Appearance of Overtourism in Budapest
4.2. Indicators of Overtourism
4.2.1. Tourism Density and Intensity
4.2.2. Sharing Economy: Airbnb
4.2.3. Total Occupation in Hotels
4.3. Estimation of Tourist Carrying Capacity
5. Discussion and Conclusions
Supplementary Materials
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Indicator | Definition | Description |
---|---|---|
Tourism density | Bed-nights/km2 | Annual number of bed-nights per km2 |
Tourism intensity | Bed-nights/resident | Annual number of bed-nights per resident in the destination |
Sharing economy: Airbnb | Number of Airbnb offers | Number of Airbnb offers in a destination |
Share of tourism contribution to GDP | ||
Air transport intensity | Air passengers/Bed-nights | Ratio of the number of air passengers to the number of bed-nights |
Closeness to airports Closeness to cruise ports World Heritage Sites closeness | Arrivals within 50 km Number within 10 km Number within 30 km |
Region | Bed-Nights (Annual Number) | Estimated Area (km2) | Estimated Number of Residents * | Tourism Density | Tourism Intensity |
---|---|---|---|---|---|
(Bed-Nights/km2) | (Bed-Nights/Resident) | ||||
Budapest | 1,405,548 | 525.14 | 1,751,251 | 26,765.20 | 8 |
District I | 837,986 | 3.41 | 25,181 | 245,743.70 | 33.3 |
District V | 2,688,192 | 2.59 | 25,975 | 1,037,912.00 | 103.5 |
District VI | 2,050,451 | 2.38 | 38,670 | 861,534.00 | 53 |
District VII | 2,758,598 | 2.09 | 51,896 | 1,319,903.30 | 53.2 |
District VIII | 1,240,092 | 6.85 | 76,784 | 181,035.30 | 16.2 |
Percentile | Tourism Density (Bed-Nights/km2) | Districts | Tourism Intensity (Bed Nights/Resident) | Districts |
---|---|---|---|---|
1st | 65.3–709.4 | XVI, XVII, XVIII, XXI, XXII | 0–0.2 | XVI, XVII, XVIII, XXI, XXII |
2nd | 709.4–6292.3 | XV, XIX, XX, XXIII | 0.2–2.3 | XV, XIX, XX, XXIII |
3rd | 6292.3–13,855.3 | II, III, IV, X, XII | 2.3–4.0 | III, IV, X, XII, XIV |
4th | 13,855.3–138,265.1 | IX, XI, XIII, XIV | 4.0–15.9 | II, IX, XI, XIII |
5th | 138,265.1–1,319,903.3 | I, V, VI, VII, VIII | 15.9–103.5 | I, V, VI, VII, VIII |
Tourism System | Description | Source | Utilization Rates | Maximum Daily Capacity | |||
---|---|---|---|---|---|---|---|
TH | TO | TP | |||||
1 | Commercial accommodation: Hotels | Number of bed places in hotels (from 1 to 5 stars) | HCSO | 1 | 0 | 0 | |
2 | Commercial accommodation: Excluding hotels | Number of bed places excluding hotels | HCSO | 0 | 1 | 0 | |
3 | Private accommodation | Number of bed places in private accommodation (e.g., Airbnb platform, etc.) | HCSO | 0 | 0 | 1 | |
4 | Public transportation (Buses, Trams, Trolleybuses and Subway) | Daily maximum capacity for tourists (persons) | BKK Zrt. and authors’ calculations | 1 | 1 | 1 | |
5 | Tourist attractions (The Hungarian Parliament Building) | Maximum capacity (persons) | Tourism Departments, Office of the Hungarian National Assembly | ||||
6 | Tourist attractions: (Széchenyi thermal bath) | Maximum capacity (persons) | Budapest Spas cPlc. | ||||
7 | Tourist attractions (Gellért thermal bath) | Maximum capacity (persons) | Budapest Spas cPlc. | ||||
8 | Environment | Waste production per person (in kilograms) | HCSO and authors’ calculations |
Tourism System | Utilization Rates: Estimated and via Simulations | Optimal Number of Tourists | |||||
---|---|---|---|---|---|---|---|
TH | TO | TP | TH | TO | TP | ||
Tourist attractions (The Hungarian Parliament Building) | From experts | (0.31; 0.40; 0.50) | (0.28; 0.39; 0.50) | (0.30; 0.42; 0.55) | 7560 | 0 | 0 |
Simulation 1 | (0.24; 0.28; 0.32) | (0.16; 0.20; 0.24) | (0.17; 0.24; 0.32) | 9026 | 2643 | 0 | |
Simulation 2 | (0.16; 0.23; 0.30) | (0.13; 0.17; 0.20) | (0.15; 0.20; 0.25) | 8103 | 5923 | 991 | |
Tourist attractions (Services of baths: Széchenyi and Gellért) | From experts | (0.20; 0.30; 0.40) | (0.16; 0.27; 0.39) | (0.20; 0.31; 0.42) | |||
Simulation 1 | (0.16; 0.23; 0.30) | (0.38; 0.40; 0.41) | (0.16; 0.23; 0.30) | ||||
Simulation 2 | (0.13; 0.17; 0.20) | (0.18; 0.26; 0.35) | (0.16; 0.23; 0.30) |
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Pérez Garrido, B.; Sebrek, S.S.; Semenova, V.; Bal, D.; Michalkó, G. Addressing the Phenomenon of Overtourism in Budapest from Multiple Angles Using Unconventional Methodologies and Data. Sustainability 2022, 14, 2268. https://doi.org/10.3390/su14042268
Pérez Garrido B, Sebrek SS, Semenova V, Bal D, Michalkó G. Addressing the Phenomenon of Overtourism in Budapest from Multiple Angles Using Unconventional Methodologies and Data. Sustainability. 2022; 14(4):2268. https://doi.org/10.3390/su14042268
Chicago/Turabian StylePérez Garrido, Betsabé, Szabolcs Szilárd Sebrek, Viktoriia Semenova, Damla Bal, and Gábor Michalkó. 2022. "Addressing the Phenomenon of Overtourism in Budapest from Multiple Angles Using Unconventional Methodologies and Data" Sustainability 14, no. 4: 2268. https://doi.org/10.3390/su14042268
APA StylePérez Garrido, B., Sebrek, S. S., Semenova, V., Bal, D., & Michalkó, G. (2022). Addressing the Phenomenon of Overtourism in Budapest from Multiple Angles Using Unconventional Methodologies and Data. Sustainability, 14(4), 2268. https://doi.org/10.3390/su14042268