1. Ayçam, İ., S. Akalp, and L.S. Görgülü, The Application of Courtyard and Settlement Layouts of the Traditional Diyarbakır Houses to Contemporary Houses: A Case Study on the Analysis of Energy Performance. Energies, 2020. 13(3): p. 587.
2.Nasrollahi, N., Z. Hatami, and M. Taleghani, Development of outdoor thermal comfort model for tourists in urban historical areas; A case study in Isfahan. Building and environment, 2017. 125: p. 356-372.
3. Fatahi k, Mohammadi E. Identification of tourist attraction obstacles in the tourism destination of Heydarabad Siwan. Journal Geography and development. 2020 ; 18(59):211‐226. [Persian]
4. Farajzadeh H, saligheh M, Alijani B. Application of Universal Thermal Climate Index in Iran from tourism perspective. Journal of natural environmental hazards. 2016; 5(7):117‐137. [Persian]
5. Evola, G., et al., A novel comprehensive workflow for modelling outdoor thermal comfort and energy demand in urban canyons: results and critical issues. Energy and Buildings, 2020: p. 109946.
6. Entezari A, Mayvaneh F , Rezaie Kh, Rahimi F. An adaptive estimation method to predict thermal comfort indices man using car classification neural deep belief. Scientific journals management system. 2018; 18(51):23‐40. [Persian]
7. Huang, Y., et al. Impact of climate change on outdoor thermal comfort in cities in united states. in E3S Web of Conferences. 2020. EDP Sciences.
8. Ahmadpour kalhroudi N, Pourjafar M.R, Mahdavinejad M.J, Yousefian S. The Role and Impact of Design Elements on the Quality of Thermal Comfort in Urban Open Spaces Case Study: Design of Pedestrian Way in Tamghachiha Pathway in the City of Kashan. Architecture and Urban Plannig Journal. 2017 ; (18):59‐79. [Persian]
9. Majidi F, Heidari SH, Ghalehnoee M, Ghasemi Sichani M. Assessment and Analysis of the Thermal Comfort Conditions in Open Spaces of Residential Neighborhoods Using Thermal Indicators (Case Study: Neighborhoods of Isfahan City). Scientific Journal of Architecture. 2020 ; 10(18):113‐126. [Persian]
10. Talhi, A., et al., Towards a prediction of outdoor human thermal comfort adapted for designers of urban spaces: examining UTCI and APCI in the context of Algiers (Algeria). International Journal of Biometeorology, 2020: p. 1-12.
11. Majidi F, Heidari SH, Ghalehnoee M, Ghasemi Sichani M. Evaluation of Thermal Comfort Comparisons in Residential Neighborhoods ( Case study: Ali Gholi Agha and Dashtestan neighborhoods inIsfahan). Journal of Iranian Architectural Studies. 2020 ; (15):47‐64. [Persian]
12. Shoja S, Pourjafar M, Tabibian M. Meta-Analysis of the Relationship between Urban Form and Energy: A Review of Approaches, Methods, Scales and Variables. Journal Urban planning knowledge. 2019 ; 3(1):85‐107. [Persian]
13. Arnfield, A.J., Two decades of urban climate research: a review of turbulence, exchanges of energy and water, and the urban heat island. International Journal of Climatology: a Journal of the Royal Meteorological Society, 2003. 23(1): p. 1-26.
14. Li, J., et al., Exploration of applicability of UTCI and thermally comfortable sun and wind conditions outdoors in a subtropical city of Hong Kong. Sustainable Cities and Society, 2020. 52: p. 101793.
15. Taqvaee A, Bemanian M, Poor Jafar M, Bahram Poor M. Assessment of spatial justice theory of justice; Case: 22 districts of Tehran. Urban management. 2015 ; (38):391‐423. [Persian]
16. Sharifi, E. and J. Boland, Passive activity observation (PAO) method to estimate outdoor thermal adaptation in public space: Case studies in Australian cities. International journal of biometeorology, 2020. 64(2): p. 231-242.
17. Baruti, M.M., E. Johansson, and M.W. Yahia, Urbanites’ outdoor thermal comfort in the informal urban fabric of warm-humid Dar es Salaam, Tanzania. Sustainable Cities and Society, 2020: p. 102380.
18. Cheung, P.K. and C.Y. Jim, Improved assessment of outdoor thermal comfort: 1-hour acceptable temperature range. Building and Environment, 2019. 151: p. 303-317.
19. Aghamolaei, R., et al., A tempo-spatial modelling framework to assess outdoor thermal comfort of complex urban neighbourhoods. Urban Climate, 2020. 33: p. 100665.
20. De Luca, F., et al., Building Cluster Optimization to Integrate Energy Performance and Outdoor Thermal Comfort.
21. Pantavou, K., et al., Outdoor thermal sensation of pedestrians in a Mediterranean climate and a comparison with UTCI. Building and Environment, 2013. 66: p. 82-95.
22. Bröde, P., et al., Predicting urban outdoor thermal comfort by the Universal Thermal Climate Index UTCI—a case study in Southern Brazil. International Journal of Biometeorology, 2012. 56(3): p. 471-480.
23. Taghvaei S, Tahbaz M, Mottaghi Pishe S. The Role of Shade in Persian Garden, The Study of Thermal Comfort Conditions in Jahannama and Delgosha gardens. Journal of Iranian Architectural Studies. 2015 ; 1(7):35‐56. [Persian]
24. Alijani B, Sadat Razavi Z. Comparing the different climatic indices in assessing the comfort condition of Tehran urban area. Journal of geographical notion. 2017 ; 9(16):145‐169. [Persian]
25. Eslami M, Nozari Ferdosieh A, Tahbaz M. Solutions of Climate Design for Outdoor Pathways (Case Study: Pedestrians of University of Kashan). Hoviatshahr. 2016 ; 10(26):33‐46. [Persian]
26. Alizadeh M, Rahimi M, Nickbakht R, Sedigh bazkia M. Evaluation of tourism climate conditions of selected cities of Isfahan province based on tourism climate indices. Journal Quarterly of geography(regional planning). 2019 ; 9(1):43‐55. [Persian]
27. Fallah Ghalhari G , Mayvaneh F, Shakeri F. Evaluation of thermal comfort and human health using Universal Thermal Climate Index (UTCI) Case Study: Kurdistan province. Iranian journal of health and environment. 2015 ; 8(3):367‐378. [Persian]
28. Lai, D., et al., Studies of outdoor thermal comfort in northern China. Building and Environment, 2014. 77: p. 110-118.
29. Watanabe, S., et al., Evaluation of outdoor thermal comfort in sunlight, building shade, and pergola shade during summer in a humid subtropical region. Building and environment, 2014. 82: p. 556-565.
30. Yang, B., et al., Outdoor thermal comfort under subarctic climate of north Sweden–A pilot study in Umeå. Sustainable cities and society, 2017. 28: p. 387-397.
31. Hadianpour, M., et al., Seasonal differences of subjective thermal sensation and neutral temperature in an outdoor shaded space in Tehran, Iran. Sustainable cities and society, 2018. 39: p. 751-764.
32. ASHRAE, thermal environmental conditions for human occupancy, ashrae, atlanta, ga,2013. ANSI/ASHRAE Standard ashrae 55, 2013.
33. Höppe, P., Different aspects of assessing indoor and outdoor thermal comfort. Energy and buildings, 2002. 34(6): p. 661-665.
34. Jendritzky, G., R. de Dear, and G. Havenith, UTCI—why another thermal index? International journal of biometeorology, 2012. 56(3): p. 421-428.
35. Fiala, D., et al., UTCI-Fiala multi-node model of human heat transfer and temperature regulation. International journal of biometeorology, 2012. 56(3): p. 429-441.
36. Holmr, I., et al., The UTCI-clothing model. Int J Biometeorol, 2012. 56(3): p. 461470.
37. Chen, Y.-C. and A. Matzarakis, Modification of physiologically equivalent temperature. Journal of Heat Island Institute International Vol, 2014. 9(2).
38. Matzarakis, A., C.R. De Freitas, and D. Scott, Advances in tourism climatology. 2004: Meteorologisches Institut der Universität.
39. Matzarakis, A., F. Rutz, and H. Mayer, Modelling radiation fluxes in simple and complex environments: basics of the RayMan model. International journal of biometeorology, 2010. 54(2): p. 131-139.
40. Fröhlich, D. and A. Matzarakis, Thermal bioclimate and urban planning in Freiburg–Examples based on urban spaces. Theoretical and Applied Climatology, 2013. 111: p. 547-558.
41. Jin, H., S. Liu, and J. Kang, Gender differences in thermal comfort on pedestrian streets in cold and transitional seasons in severe cold regions in China. Building and Environment, 2020. 168: p. 106488.
42. Binarti, F., et al., A review of outdoor thermal comfort indices and neutral ranges for hot-humid regions. Urban Climate, 2020. 31: p. 100531.