Adhikary SK, Muttil N, Yilmaz AG (2017) Cokriging for enhanced spatial interpolation of rainfall in two Australian catchments. Hydrol Process 31:2143–2161. https://doi.org/10.1002/hyp.1116310.1002/hyp.11163
Article
Google Scholar
Alessio S, Anfossi D, Longhetto A, Wang BK (1989) Principal components and spatial patterns of rain over Northern Italy, in relation to wind and geopotential fields. Il Nuovo Cimento C 12:663–672. https://doi.org/10.1007/BF02508023
Article
Google Scholar
Aliabadi AA, Moradi M, Clement D, Lubitz WD, Gharabaghi B (2019) Flow and temperature dynamics in an urban canyon under a comprehensive set of wind directions, wind speeds, and thermal stability conditions. Environ Fluid Mech 19:81–109. https://doi.org/10.1007/s10652-018-9606-8
Article
Google Scholar
Anniballe R, Bonafoni S, Pichierri M (2014) Spatial and temporal trends of the surface and air heat island over Milan using MODIS data. Remote Sens Environ 150:163–171. https://doi.org/10.1016/j.rse.2014.05.005
Article
Google Scholar
Bacci P, Maugeri M (1992) The urban heat island of Milan. Nuovo Cimento - Soc Ital Fis C 15(4):417–424. https://doi.org/10.1007/BF02511742
Article
Google Scholar
Barnhill RE, Dube RP, Little FF (1980) Shepard’s surface interpolation formula: properties and extensions. CAGD report, University of Utah
Bartier PM, Keller CP (1996) Multivariate interpolation to incorporate thematic surface data using inverse distance weighting (IDW). Comput Geosci 22(7):195–799. https://doi.org/10.1016/0098-3004(96)00021-0
Article
Google Scholar
Borghi S, Favaron M, Frustaci G (2014) Climate network: a climatological network for energy applications in urban areas. IEEE Instrumentation & Measurement Magazine 17. https://doi.org/10.1109/MIM.2014.6912196
Borghi S, Giuliacci M (1979) Circolazione atmosferica nella Val Padana centro-occidentale e suo impatto sul trasporto delle particelle. Osservatorio di Brera - Milano
Bourgault G, Marcotte D (1991) Multivariable variogram and its application to the linear model of coregionalization. Math Geol 23(7):899–928. https://doi.org/10.1007/BF02066732
Article
Google Scholar
Chapman L, Muller CL, Young DT, Warren EL, Grimmond CSB, Cai X, Ferranti EJS (2015) The Birmingham urban climate laboratory: an open meteorological test bed and challenges of the smart city. Bull Am Meteor Soc 96(9):1545–1560. https://doi.org/10.1175/BAMS-D-13-00193.1
Article
Google Scholar
Ching J, Mills G, Bechtel B, See L, Feddema J, Wang X, Ren C, Brousse O, Martilli A, Neophytou M, Mouzourides P, Stewart I, Hanna A, Ng E, Foley M, Alexander P, Aliaga D, Niyogi D, Shreevastava A, Bhalachandran P, Masson V, Hidalgo J, Fung J, Andrade M, Baklanov A, Dai W, Milcinski G, Demuzere M, Brunsell N, Pesaresi M, Miao S, Mu Q, Chen F, Theeuwes N (2018) WUDAPT an urban weather, climate, and environmental modeling infrastructure for the Anthropocene. BAMS 99 (9). https://doi.org/10.1175/BAMS-D-16-0236.1
Chung J, Lee Y, Jang W, Lee S, Kim S (2020) Correlation analysis between air temperature and MODIS land surface temperature and prediction of air temperature using tensorflow long short-term memory for the period of occurrence of cold and heat waves. Remote Sens 12:3231. https://doi.org/10.3390/rs12193231
Article
Google Scholar
Curci S, Lavecchia C, Frustaci G, Paolini R, Pilati S, Paganelli C (2017) Assessing measurement uncertainty in meteorology in urban environments. Meas Sci Technol 28 (10) Special Feature on Measurements of the Urban Environment. https://doi.org/10.1088/1361-6501/aa7ec1
Curci S, Lavecchia C, Pilati S, Paganelli C (2018) High quality sustainable monitoring in cities for climatological services. The 2018 WMO/CIMO Technical Conference on Meteorological and Environmental Instruments and Methods of Observation (CIMO-TECO 2018) “Towards fit-for-purpose environmental measurements” Amsterdam WMO-IOM Report-No 132. https://library.wmo.int/index.php?lvl=notice_display&id=20734#.XAejlq5KuUl. Accessed 22 Apr 2021
Dubrule O (1983) Cross validation of kriging in a unique neighborhood. J Int Assoc Math Geol 15(6):687–699
Article
Google Scholar
Elmes A, Healy M, Geron N, Andrews MM, Rogan J, Martin DG, Sangermano F, Williams CA, Weil B (2020) Mapping spatiotemporal variability of the urban heat island across an urban gradient in Worcester, Massachusetts using in-situ Thermochrons and Landsat-8 Thermal Infrared Sensor (TIRS) data. Gisci Remote Sens 57(7):845–864. https://doi.org/10.1080/15481603.2020.1818950
Article
Google Scholar
Ermida SL, Soares P, Mantas V, Göttsche F-M, Trigo IF (2020) Google Earth Engine open-source code for Land Surface Temperature estimation from the Landsat series. Remote Sens 12(9):1471. https://doi.org/10.3390/rs12091471
Article
Google Scholar
Falasca S, Curci G (2018) Impact of highly reflective materials on meteorology, PM10 and ozone in urban areas: modeling study with WRF-CHIMERE at high resolution over Milan (Italy). Urban Sci 2:18. https://doi.org/10.3390/urbansci2010018
Article
Google Scholar
Frustaci G, Curci S, Pilati S, Lavecchia C, Paganelli C (2017) The AWS based operational urban network in Milano: achievements and open questions. WMO International Conference on Automatic Weather Stations (ICAWS-2017) O1_8 WMO-IOM Report No. 127
Frustaci G, Pilati S, Lavecchia C (2019a) Canopy Urban Heat Island observations in Milano: methodological aspects and recent climatology. Presentation at European Geosciences Union General Assembly 2019–6052. https://meetingorganizer.copernicus.org/EGU2019/orals/31288. Accessed 22 April 2021
Frustaci G, Pilati S, Lavecchia C (2019b) Climatology of the Milano Canopy Urban Heat Island by means of an operational urban meteorological network. AISAM 2° National Congress ID: 154 available at https://www.fondazioneomd.it/pubblicazioni. Accessed 22 April 2021
Gallo K, Hale R, Tarpley D, Yu Y (2011) Evaluation of the relationship between air and land surface temperature under clear- and cloudy-sky conditions. J Appl Meteorol Climatol 50(3):767–775. https://doi.org/10.1175/2010JAMC2460.1
Article
Google Scholar
Gilbert RO (1987) Statistical methods for environmental pollution monitoring. Van Nostrand Reinhold, New York
Google Scholar
Good EJ, Ghent DJ, Bulgin CE, Remedios JJ (2017) A spatiotemporal analysis of the relationship between near-surface air temperature and satellite land surface temperatures using 17 years of data from the ATSR series. J Geophys Res Atmos 122:9185–9210. https://doi.org/10.1002/2017JD026880
Article
Google Scholar
Goovaerts P (1997) Geostatistics for natural resources evaluation. Oxford University Press, New York
Google Scholar
Goovaerts P (1999) Geostatistics in soil science: state-of-the-art and perspectives. Geoderma 89(1–2):1–45. https://doi.org/10.1016/S0016-7061(98)00078-0
Article
Google Scholar
Gonçalves A, Ornellas G, Castro Ribeiro A, Maia F, Rocha A, Feliciano M (2018) Urban cold and heat island in the city of Bragança (Portugal). Climate 6 (3). https://doi.org/10.3390/cli6030070
Gorelick N, Hancher M, Dixon M, Ilyushchenko S, Thau D, Moore R (2017) Google Earth Engine: planetary-scale geospatial analysis for everyone. Remote Sens Environ 202:18–27. https://doi.org/10.1016/j.rse.2017.06.031
Article
Google Scholar
Huang F, Dingsheng L, Xicheng T, Jian W, Yunping C, Binbin H (2011) Explorations of the implementation of a parallel IDW interpolation algorithm in a Linux cluster-based parallel GIS. Comput Geosci 37:426–434. https://doi.org/10.1016/j.cageo.2010.05.024
Article
Google Scholar
Hulley GC, Ghent D, Göttsche FM, Guillevic PC, Mildrexler DJ, Coll C (2019) Land surface temperature. In: Taking the Temperature of the Earth Elsevier 57–127. https://doi.org/10.1016/B978-0-12-814458-9.00003-4
Isaaks EH, Srivastava RM (1989) An introduction to applied geostatistics. Oxford University Press - New York. https://doi.org/10.1016/0098-3004(91)90055-I
Ishida T, Kawashima S (1993) Use of cokriging to estimate surface air temperature from elevation. Theor Appl Climatol 47(3):147–157. https://doi.org/10.1007/BF00867447
Article
Google Scholar
Journel AG (1986) Geostatistics: models and tools for the earth sciences. Math Geol 18(1):119–140. https://doi.org/10.1007/BF00897658
Article
Google Scholar
Kilibarda M, Hengl T, Heuvelink GBM, Gräler B, Pebesma E, Tadić MT, Bajat B (2014) Spatio-temporal interpolation of daily temperatures for global land areas at 1 km resolution. J Geophys Res Atmos 119:2294–2313. https://doi.org/10.1002/2013JD020803
Article
Google Scholar
Lavecchia C, Pilati S, Turchiarulo P, Ferrari C, Mancini L (2018) Climate and Health in large urban areas of Italy: following the change through a dedicated meteorological network. First Scientific Symposium “Health and Climate Change 2018” - Rome (Italy). https://www.fondazioneomd.it/pubblicazioni. Accessed 22 April 2021
Lopardo G, Bertiglia F, Curci S, Roggero G, Merlone A (2014) Comparative analysis of the influence of solar radiation screen ageing on temperature measurements by means of weather stations. Int J Climatol 34:1297–1310. https://doi.org/10.1002/joc.3765
Article
Google Scholar
Mariani L, Parisi S, Cola G, Lafortezza R, Colangelo G, Sanesi G (2016) Climatological analysis of the mitigating effect of vegetation on the urban heat island of Milan (Italy). Sci Total Environ 569–570:762–773. https://doi.org/10.1016/j.scitotenv.2016.06.111
Article
Google Scholar
Masson V, Lemonsu A, Hidalgo J, Voogt J (2020) Urban climates and climate change. Ann Rev Environ Resour 45(1):411–444. https://doi.org/10.1146/annurev-environ-012320-083623
Article
Google Scholar
Matheron G (1971) The theory of regionalized variables and its applications. Cah Centre Morphol Math 5(212):211p
Google Scholar
Meier F, Fenner D, Grassmann T, Otto M, Scherer D (2017) Crowdsourcing air temperature from citizen weather stations for urban climate research. Urban Clim 19:170–191. https://doi.org/10.1016/j.uclim.2017.01.006
Merlone A et al (2017) The MeteoMet2 project – highlights and results. Meas Sci Technol 29(2). https://doi.org/10.1088/1361-6501/aa99fc
Milesi C, Churkina G (2020) Measuring and monitoring urban impacts on climate. Remote Sens 12:3494. https://doi.org/10.3390/rs12213494
Muller CL, Chapman L, Grimmond CSB, Young DT, Cai X-M (2013) Sensors and the city: a review of urban meteorological networks. Int J Climatol 33:1585–1600. https://doi.org/10.1002/joc.3678
Article
Google Scholar
Muller CL, Chapman L, Johnston S, Kidd C, Illingworth S, Foody G, Overeem A, Leigh R (2015) Crowdsourcing for climate and atmospheric sciences: current status and future potential. Int J Climatol 35(3185–3203). https://doi.org/10.1002/joc.4210
Oke TR (2004) Initial Guidance to obtain representative meteorological observations at urban sites. WMO IOM Report No. 81. https://library.wmo.int/doc_num.php?explnum_id=9286. Accessed 22 Apr 2021
Oke TR (2007) Siting and exposure of meteorological instruments at urban sites. In: Air pollution modelling and its application XVII Springer 615–632. https://doi.org/10.1007/978-0-387-68854-1_66
Oke TR, Mills G, Christen A, Voogt JA (2017) Urban climates. Cambridge University Press
Book
Google Scholar
Rotach MW, Vogt R, Bernhofer C, Batchvarova E, Christen A, Clappier A, Feddersen B, Gryning SE, Martucci G, Mayer H, Mitev VC, Oke TR, Parlow E, Richner H, Roth M, Roulet Y-A, Ruffieux D, Salmond JA, Schatzmann M, Voogt JA (2005) BUBBLE - an urban boundary layer meteorology project. Theoret Appl Climatol 81(3–4):231–261. https://doi.org/10.1007/s00704-004-0117-9
Article
Google Scholar
Shepard D (1968) A two-dimensional interpolation function for computer mapping of irregularly spaced data. Laboratory for Computer Graphics Harvard University. https://doi.org/10.1145/800186.810616
Sobrino JA, Jiménez-Muñoz JC, Sòria G, Ruescas AB, Danne O, Brockmann C, Ghent D, Remedios J, North P, Merchant C, Berger M, Mathieu PP, Göttsche F-M (2016) Synergistic use of MERIS and AATSR as a proxy for estimating Land Surface Temperature from Sentinel-3 data. Remote Sens Environ 179:149–161. https://doi.org/10.1016/j.rse.2016.03.035
Article
Google Scholar
Sun T, Sun R, Chen L (2020) The trend inconsistency between land surface temperature and near surface air temperature. In: Assessing Urban Heat Island Effects. Remote Sens 12:1271. https://doi.org/10.3390/rs12081271
Article
Google Scholar
Tomlinson CJ, Chapman L, Thornes J, Baker CJ (2011) Remote sensing land surface temperature for meteorology and climatology: a review. Meteorol Appl 18(3):296–306. https://doi.org/10.1002/met.287
Article
Google Scholar
WMO (2015) Heat waves and health: guidance on warning-system development. WMO No. 1142. https://library.wmo.int/doc_num.php?explnum_id=3371. Accessed 22 Apr 2021
WMO (2018) Guide to Instruments and Methods of Observation. WMO Nr.8 - 2018 Edition. https://library.wmo.int/doc_num.php?explnum_id=10179. Accessed 22 Apr 2021
Xiong Y, Chen F (2017) Correlation analysis between temperatures from Landsat thermal infrared retrievals and synchronous weather observations in Shenzhen, China. Remote Sens Appl Soc Environ 7:40–48. https://doi.org/10.1016/j.rsase.2017.06.002. ISSN 2352–9385
Article
Google Scholar
Yang X, Li Y, Luo Z, Chan PW (2017) The urban cool island phenomenon in a high-rise high-density city and its mechanisms. Int J Climatol 37(2):890–904. https://doi.org/10.1002/joc.474
Article
Google Scholar
Zhou B, Rybski D, Kropp JP (2017) The role of city size and urban form in the surface urban heat island. Sci Rep 7:4791. https://doi.org/10.1038/s41598-017-04242-2
Article
Google Scholar