Economic Analysis of Global Catastrophic Risks Under Uncertainty
Abstract
1. Introduction
1.1. GCR/ER Benefit–Cost Analysis Has Increasingly Attracted Attention
1.2. Literature Gaps and Contributions of This Article
2. Conceptual–Ethical Framework
2.1. Postulate 1: Ethical Obligations to Future Generations
2.2. Alternative: Future-Oriented Choices
2.3. Postulate 2: Zero Weight Assigned to the Post-Human Species
2.4. Postulate 3: A Total Utilitarian Life Years Framework
2.5. Postulate 4: Unknown GCRs Included
2.6. Categorizing Global Catastrophic Risks (GCRs)
2.7. Probability of Global Catastrophic Risks (GCRs)
2.8. Postulate 5. The Loose-Approximation Assumption
2.9. Other Related Articles
2.10. Space Colonization
2.11. The Model Reduces Only PGCRs (Categories C and D)
3. Model
Increase in Expected Human Survival Years with a 50% Reduction in GCRs Between 2026 and 2125
4. Numerical Results
4.1. Life Years Saved and the Corresponding Monetary Benefits
4.2. Subjective Estimates of Probabilities of Global Catastrophic Risks (GCRs)
5. Sensitivity Analysis
5.1. Sensitivity Analysis of Horizon Length
5.2. Sensitivity Analysis of Effort Magnitude
5.3. Sensitivity Analysis of Population Growth
5.4. Sensitivity Analysis of Global Real GDP per Capita Growth Rate
5.5. Sensitivity Analysis of Discounting
5.6. Sensitivity Analysis of Mitigation Period
5.7. Sensitivity Analysis of Natural GCRs
6. Discussion and Conclusions
Limitations and Future Research Directions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations and Definitions
| Abbreviation | Terminology | Definition |
| GCRs | Global catastrophic risks | The most significant risks that threaten the survival of the human species. |
| NGCRs | Natural GCRs | GCRs that are broadly unrelated to human activity; they are also known as exogenous risks. * |
| AGCRs | Anthropogenic GCRs | GCRs that are caused or closely linked to human activity; they are also known as endogenous risks. It is a sub-set of PGCR. ** |
| PGCRs | Partial AGCRs | GCRs caused by anthropogenic factors or partially anthropogenic factors; they are a larger set than AGCRs. |
| LAA | Loose-approximation assumption | A heuristic for reconciling disparate probability estimates. *** |
| MG | Magnitude gap | One risk is 10−5 per year, the second risk is 10−10. Then, there is an MG, and the second risk is minor. |
| ERs | Existential risks | Also refer to the largest risks to the survival of the human species. |
| GWP | Gross world product | Similar to the GDP but at the global level. |
| EGCRs | Extreme global climate risks | Extreme climate risk scenarios, often caused by climate change, which could cause the extinction of the human species. |
| APRs | Anthropogenic pandemic risks | Extreme pandemic risk scenarios caused by anthropogenic pathogens that could cause the extinction of the human species. |
| *, ** ÓhÉigeartaigh (2025). *** Details can be found in the text. | ||
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| Yearly Probability | Subtotal Probability | |
|---|---|---|
| Category A. Single natural GCR: | ||
| 1. Initiation of a transition to a lower-vacuum state (Hut and Rees 1983; Posner 2004; Tegmark and Bostrom 2005) | Not available | (A+B)~ a |
| 2. A black hole or gravitational singularity (Hut and Rees 1983; Tegmark and Bostrom 2005; Posner 2004) | Not available | |
| 3. A stable strangelet (Dar et al. 1999; Posner 2004) | Not available | |
| 4. Massive asteroid or comet impacts (Bostrom 2002; Posner 2004; Leggett 2006; Coates 2009; Ng 2011; Jehn et al. 2025) | ||
| 5. Supernova explosions (Tegmark and Bostrom 2005; Beech 2011) | ||
| 6. Gamma-ray bursts (GRBs) (Tegmark and Bostrom 2005; Beech 2011) | ||
| 7. Hostile extraterrestrial civilization (Tegmark and Bostrom 2005) | Not available | |
| 8. Supervolcanoes (Beech 2011) | Not available | |
| 9. Natural pandemic risks (Bostrom 2002; Jehn et al. 2025) | Not available | |
| 10. Other and currently unknown single natural extinction risks | Not available | |
| Category B. Several natural semiextinction GCRs together become one extinction risk: | ||
| 11. For example, supervolcano eruption plus asteroid impacts kill the world’s population, except for a small number of persons, but a tsunami later eliminates them. | Not available | |
| 12. Other and currently unknown natural semiextinction catastrophes together become an extinction risk | Not available | |
| Category C. Single GCR caused by anthropogenic or partially anthropogenic factors (PGCRs): | ||
| 13. Artificial general intelligence (AGI) (Jehn et al. 2025) | c | (C+D)> b |
| 14. High-energy physics experiments, such as Relativistic Heavy Ion Collider (RHIC) (Tegmark and Bostrom 2005; Posner 2004), LHC (Leggett 2006) | for RHIC | |
| 15. Nuclear annihilation (Bostrom 2002; Tegmark and Bostrom 2005; Parson 2007; Leggett 2006) (Jehn et al. 2025) | Not available | |
| 16. Extreme scenario of climate change risk (also known as GCR) (Tegmark and Bostrom 2005; Posner 2004; Jehn et al. 2025) | Not available | |
| 17. Genetically modified pandemic risks (also known as APRs) (Tegmark and Bostrom 2005; Posner 2004; Tegmark and Bostrom 2005; Jehn et al. 2025) | c | |
| 18. Eco-system collapses (Jehn et al. 2025) | Not available | |
| 19. Other and currently unknown single PGCRs | Not available | |
| Category D. Several semiextinction GCRs with at least one PGCR together become an extinction risk: | ||
| 20. Several semiextinction catastrophes with at least one manmade component (Carpenter and Bishop 2009; Tonn and MacGregor 2009; Lopes et al. 2009) | Not available | |
| 21. Several semiextinction catastrophes with at least one manmade component and at least one currently unknown component together become an extinction risk. | Not available |
| Total PGCR (Pper Year) | Increase in Expected Human Survival Years Due to Reducing Total GCR by 50% from 2026 to 2125 |
|---|---|
| 39.23 | |
| 48.75 | |
| 49.87 | |
| 49.98 | |
| 37.28 | |
| 26.33 | |
| 25.13 | |
| 25.01 |
| PGCR (per Year) | Expected Human Life Years Saved by Reducing GCR by 50% from 2026 to 2125 (Billion Life Years) | Expected Monetary Benefit of Reducing GCR by 50% from 2026 to 2125 (USD Trillion) |
|---|---|---|
| 10−2 | 324.24 | 4259.96 |
| 10−3 | 400.21 | 5258.04 |
| 10−4 | 409.01 | 5373.67 |
| 10−5 | 409.90 | 5385.40 |
| 10−6 | 305.78 | 4017.38 |
| 10−7 | 215.92 | 2836.79 |
| 10−8 | 206.09 | 2707.64 |
| 10−9 | 205.10 | 2694.71 |
| Persons or Studies | Timeframe | Probability of Extinction | Corresponding Total GCR in Current Model * |
|---|---|---|---|
| Carpenter and Bishop (2009) | Extinct-by-2080 scenario | Not available | 10−1.832 |
| Stated by virologist Frank Fenner ** | Extinct within the next 100 years | 100% will become extinct, perhaps within 100 years | ≤10−1.944 |
| Stated by cosmologist and astrophysicist Sir Martin Rees | 21st century | 1/2 | 10−2.105 |
| Stated by Nick Bostrom | 21st century | ≥1/4 | ≥10−2.486 |
| The “Stern Review” for the U.K. Treasury (Stern 2006) | 21st century | Almost 10% | 10−2.922 |
| Tonn and MacGregor (2009) | Extinct-by-3000 scenario | Not available | 10−2.948 |
| John Leslie (Leslie 1996) | The next five centuries | 30% | 10−3.136 |
| Total Anthropogenic GCR (per Year) | Increase in Expected Human Survival Years Due to Reducing Total Anthropogenic GCR by 50% from 2026 to 2125 |
|---|---|
| 35.24 | |
| 38.01 | |
| 39.54 | |
| 46.09 | |
| 48.51 | |
| 48.60 | |
| 49.08 |
| PGCR (per Year) | Expected Human Life Years Saved by Reducing GCR by 50% from 2026 to 2125 (Billion Life Years) | Expected Monetary Benefit of Reducing Total Anthropogenic GCR by 50% from 2026 to 2125 (USD Trillion) |
|---|---|---|
| 296.08 | 3582.36 | |
| 319.30 | 3863.28 | |
| 332.20 | 4019.38 | |
| 387.15 | 4684.27 | |
| 407.55 | 4931.03 | |
| 408.26 | 4939.67 | |
| 412.33 | 4988.86 |
| Total PGCR (per Year) | Horizon Length | |||
|---|---|---|---|---|
| 10 Thousand | 50 Thousand | 0.37 Million | 1.6 Million | |
| 100.00 | 100.00 | 100.00 | 100.00 | |
| 999.55 | 1000.00 | 1000.00 | 1000.00 | |
| 4180.69 | 9,660.90 | 10,000.00 | 10,000.00 | |
| 4917.18 | 22,925.79 | 90,620.58 | 99,999.82 | |
| 4992.17 | 24,792.18 | 173,618.11 | 595,247.84 | |
| 4999.67 | 24,979.67 | 183,859.69 | 778,676.26 | |
| 5000.42 | 24,998.42 | 184,886.42 | 797,867.18 | |
| 5000.49 | 25,000.29 | 184,989.09 | 799,787.17 | |
| Total PGCR (per Year) | Horizon Length | |||
|---|---|---|---|---|
| 10 Thousand | 50 Thousand | 0.37 Million | 1.6 Million | |
| 139.24 | 139.24 | 139.24 | 139.24 | |
| 1048.29 | 1048.76 | 1048.76 | 1048.76 | |
| 4213.54 | 9709.41 | 10,049.87 | 10,049.87 | |
| 4942.88 | 22,954.88 | 90,667.02 | 100,049.81 | |
| 5017.12 | 24,817.57 | 173,646.17 | 595,285.13 | |
| 5024.55 | 25,004.68 | 183,885.00 | 778,702.59 | |
| 5025.29 | 25,023.40 | 184,911.44 | 797,892.31 | |
| 5025.37 | 25,025.27 | 185,014.09 | 799,812.18 | |
| Total GCR (per Year) | Horizon Length | |||
|---|---|---|---|---|
| 10 Thousand | 50 Thousand | 0.37 Million | 1.6 Million | |
| 39.24 | 39.24 | 39.24 | 39.24 | |
| 48.74 | 48.76 | 48.76 | 48.76 | |
| 32.85 | 48.50 | 49.87 | 49.87 | |
| 25.70 | 29.10 | 46.45 | 49.99 | |
| 24.96 | 25.39 | 28.07 | 37.29 | |
| 24.88 | 25.02 | 25.30 | 26.33 | |
| 24.88 | 24.98 | 25.03 | 25.13 | |
| 24.87 | 24.98 | 25.00 | 25.01 | |
| Total PGCR (per Year) | 75% PGCR Reduction | 50% PGCR Reduction | 25% PGCR Reduction |
|---|---|---|---|
| (Baseline) | |||
| 66.24 | 39.24 | 17.53 | |
| 74.06 | 48.76 | 24.08 | |
| 74.91 | 49.87 | 24.91 | |
| 74.99 | 49.99 | 24.99 | |
| 55.94 | 37.29 | 18.64 | |
| 39.50 | 26.33 | 13.17 | |
| 37.70 | 25.13 | 12.57 | |
| 37.52 | 25.01 | 12.51 | |
| PGCR (per Year) | Yearly Population Growth Rate | |||||
|---|---|---|---|---|---|---|
| 0 | ||||||
| 325.18 | 324.33 | 324.25 | 324.24 | 324.24 | 324.24 | |
| 408.73 | 401.05 | 400.29 | 400.21 | 400.21 | 400.21 | |
| 505.42 | 417.35 | 409.83 | 409.09 | 409.02 | 409.01 | |
| 52,488.02 | 506.09 | 418.23 | 410.72 | 409.98 | 409.90 | |
| 191,032,762.53 | 823.91 | 335.25 | 308.58 | 306.05 | 305.78 | |
| 215,016,470.75 | 661.53 | 240.05 | 218.20 | 216.14 | 215.92 | |
| 213,659,379.13 | 638.71 | 229.42 | 208.30 | 206.31 | 206.09 | |
| 213,484,396.06 | 636.38 | 228.35 | 207.30 | 205.32 | 205.10 | |
| PGCR (per Year) | Expected Monetary Benefit of Reducing GCR by 50% from 2026 to 2125 (USD Trillion) | |||||
|---|---|---|---|---|---|---|
| 0 | ||||||
| 4272.38 | 4261.20 | 4260.08 | 4259.96 | 4259.96 | 4259.96 | |
| 5370.05 | 5269.09 | 5259.15 | 5258.06 | 5258.04 | 5258.03 | |
| 6640.38 | 5483.32 | 5384.49 | 5373.78 | 5373.67 | 5373.56 | |
| 689,604.89 | 6649.22 | 5494.80 | 5386.48 | 5385.40 | 5384.32 | |
| 509,851,474.48 | 10,824.76 | 4404.63 | 4021.04 | 4017.38 | 4013.71 | |
| 2,824,957,350.17 | 8691.41 | 3153.87 | 2839.77 | 2836.79 | 2833.80 | |
| 2,807,127,431.59 | 8391.53 | 3014.14 | 2710.52 | 2707.64 | 2704.75 | |
| 2,804,828,440.27 | 8360.94 | 3000.13 | 2697.59 | 2694.71 | 2691.84 | |
| PGCR (per Year) | Discounting Rate | |||||
|---|---|---|---|---|---|---|
| 0 | ||||||
| 4247.57 | 4258.72 | 4259.83 | 4259.96 | 4259.96 | 4259.96 | |
| 5149.35 | 5247.03 | 5256.94 | 5258.03 | 5258.04 | 5258.06 | |
| 4436.44 | 5267.27 | 5362.89 | 5373.56 | 5373.67 | 5373.78 | |
| 1344.34 | 4450.29 | 5279.24 | 5384.32 | 5385.40 | 5386.48 | |
| 69.55 | 1751.97 | 3670.16 | 4013.71 | 4017.38 | 4021.04 | |
| 23.97 | 1069.27 | 2555.29 | 2833.80 | 2836.79 | 2839.77 | |
| 21.17 | 1006.38 | 2435.77 | 2704.75 | 2707.64 | 2710.52 | |
| 20.90 | 1000.18 | 2423.83 | 2691.84 | 2694.71 | 2697.59 | |
| PGCR (per Year) | 50 Years | 100 Years | 200 Years | 400 Years |
|---|---|---|---|---|
| 2397.59 | 4259.96 | 6832.29 | 9328.54 | |
| 2661.92 | 5258.04 | 10,259.35 | 19,541.32 | |
| 2690.20 | 5373.67 | 10,720.54 | 21,334.40 | |
| 2693.04 | 5385.40 | 10,768.11 | 21,525.45 | |
| 2008.74 | 4017.38 | 8034.38 | 16,067.27 | |
| 1418.42 | 2836.79 | 5673.39 | 11,346.03 | |
| 1353.84 | 2707.64 | 5415.10 | 10,829.53 | |
| 1347.38 | 2694.71 | 5389.25 | 10,777.83 |
| PGCR (per Year) | Natural GCR Level (per Year) | ||
|---|---|---|---|
| 4259.86 | 4259.95 | 4259.96 | |
| 5257.92 | 5258.03 | 5258.04 | |
| 5373.54 | 5373.66 | 5373.67 | |
| 5385.28 | 5385.39 | 5385.40 | |
| 4851.71 | 4126.47 | 4028.54 | |
| 4126.47 | 2979.57 | 2851.11 | |
| 4028.54 | 2851.11 | 2722.00 | |
| 4018.50 | 2838.22 | 2709.07 | |
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Tseng, W.-C.; Chen, C.-C.; Hwang, T.-L. Economic Analysis of Global Catastrophic Risks Under Uncertainty. Risks 2025, 13, 241. https://doi.org/10.3390/risks13120241
Tseng W-C, Chen C-C, Hwang T-L. Economic Analysis of Global Catastrophic Risks Under Uncertainty. Risks. 2025; 13(12):241. https://doi.org/10.3390/risks13120241
Chicago/Turabian StyleTseng, Wei-Chun, Chi-Chung Chen, and Tsung-Ling Hwang. 2025. "Economic Analysis of Global Catastrophic Risks Under Uncertainty" Risks 13, no. 12: 241. https://doi.org/10.3390/risks13120241
APA StyleTseng, W.-C., Chen, C.-C., & Hwang, T.-L. (2025). Economic Analysis of Global Catastrophic Risks Under Uncertainty. Risks, 13(12), 241. https://doi.org/10.3390/risks13120241

