Volume 25, Issue 15
Research Article
Free Access

Very high resolution interpolated climate surfaces for global land areas

Robert J. Hijmans

Corresponding Author

E-mail address: rhijmans@berkeley.edu

Museum of Vertebrate Zoology, University of California, 3101 Valley Life Sciences Building, Berkeley, CA, USA

Museum of Vertebrate Zoology, University of California, 3101 Valley Life Sciences Building, Berkeley, CA, USASearch for more papers by this author
Susan E. Cameron

Museum of Vertebrate Zoology, University of California, 3101 Valley Life Sciences Building, Berkeley, CA, USA

Department of Environmental Science and Policy, University of California, Davis, CA, USA; and Rainforest Cooperative Research Centre, University of Queensland, Australia

Search for more papers by this author
Juan L. Parra

Museum of Vertebrate Zoology, University of California, 3101 Valley Life Sciences Building, Berkeley, CA, USA

Search for more papers by this author
Peter G. Jones

International Center for Tropical Agriculture, Cali, Colombia

Search for more papers by this author
Andy Jarvis

International Center for Tropical Agriculture, Cali, Colombia

International Plant Genetic Resources Institute, Cali, Colombia

Search for more papers by this author
First published: 30 November 2005
Citations: 10,635

Abstract

We developed interpolated climate surfaces for global land areas (excluding Antarctica) at a spatial resolution of 30 arc s (often referred to as 1‐km spatial resolution). The climate elements considered were monthly precipitation and mean, minimum, and maximum temperature. Input data were gathered from a variety of sources and, where possible, were restricted to records from the 1950–2000 period. We used the thin‐plate smoothing spline algorithm implemented in the ANUSPLIN package for interpolation, using latitude, longitude, and elevation as independent variables. We quantified uncertainty arising from the input data and the interpolation by mapping weather station density, elevation bias in the weather stations, and elevation variation within grid cells and through data partitioning and cross validation. Elevation bias tended to be negative (stations lower than expected) at high latitudes but positive in the tropics. Uncertainty is highest in mountainous and in poorly sampled areas. Data partitioning showed high uncertainty of the surfaces on isolated islands, e.g. in the Pacific. Aggregating the elevation and climate data to 10 arc min resolution showed an enormous variation within grid cells, illustrating the value of high‐resolution surfaces. A comparison with an existing data set at 10 arc min resolution showed overall agreement, but with significant variation in some regions. A comparison with two high‐resolution data sets for the United States also identified areas with large local differences, particularly in mountainous areas. Compared to previous global climatologies, ours has the following advantages: the data are at a higher spatial resolution (400 times greater or more); more weather station records were used; improved elevation data were used; and more information about spatial patterns of uncertainty in the data is available. Owing to the overall low density of available climate stations, our surfaces do not capture of all variation that may occur at a resolution of 1 km, particularly of precipitation in mountainous areas. In future work, such variation might be captured through knowledge‐based methods and inclusion of additional co‐variates, particularly layers obtained through remote sensing. Copyright © 2005 Royal Meteorological Society.

Number of times cited according to CrossRef: 10635

  • Fungal assemblages in predictive stream bioassessment: A cross-taxon comparison along multiple stressor gradients, Ecological Indicators, 10.1016/j.ecolind.2020.106986, 121, (106986), (2021).
  • Legacy data-based national-scale digital mapping of key soil properties in India, Geoderma, 10.1016/j.geoderma.2020.114684, 381, (114684), (2021).
  • Is there always space at the top? Ensemble modeling reveals climate-driven high-altitude squeeze for the vulnerable snow trout Schizothorax richardsonii in Himalaya, Ecological Indicators, 10.1016/j.ecolind.2020.106900, 120, (106900), (2021).
  • Spatiotemporal tradeoffs and synergies in vegetation vitality and poverty transition in rocky desertification area, Science of The Total Environment, 10.1016/j.scitotenv.2020.141770, 752, (141770), (2021).
  • Prediction of soil organic carbon and the C:N ratio on a national scale using machine learning and satellite data: A comparison between Sentinel-2, Sentinel-3 and Landsat-8 images, Science of The Total Environment, 10.1016/j.scitotenv.2020.142661, 755, (142661), (2021).
  • Whether land greening in different geomorphic units are beneficial to water yield in the Yellow River Basin?, Ecological Indicators, 10.1016/j.ecolind.2020.106926, 120, (106926), (2021).
  • Climate Change and Variability in the Mixed Crop/Livestock Production Systems of Central Ethiopian Highland, Handbook of Climate Change Resilience, 10.1007/978-3-319-93336-8, (1169-1192), (2020).
  • Evaluate Turkey’s Climate Classification by Clustering Analysis Method, Smart Geography, 10.1007/978-3-030-28191-5_4, (41-53), (2020).
  • Deterministic processes dominate soil methanotrophic community assembly in grassland soils, Geoderma, 10.1016/j.geoderma.2019.114004, 359, (114004), (2020).
  • Identifying the drivers and predicting the outcome of conservation agriculture globally, Agricultural Systems, 10.1016/j.agsy.2019.102692, 177, (102692), (2020).
  • Maize yield in Mexico under climate change, Agricultural Systems, 10.1016/j.agsy.2019.102697, 177, (102697), (2020).
  • Expanding ensembles of species present-day and future climatic suitability to consider the limitations of species occurrence data, Ecological Indicators, 10.1016/j.ecolind.2019.105891, 110, (105891), (2020).
  • Assessment of the sustainability of different cropping systems under three irrigation strategies in the North China Plain under climate change, Agricultural Systems, 10.1016/j.agsy.2019.102745, 178, (102745), (2020).
  • The Kulunda Steppe as Part of the Eurasian Steppe Belt, KULUNDA: Climate Smart Agriculture, 10.1007/978-3-030-15927-6_2, (7-18), (2020).
  • Vegetation Patterns and Ecological Gradients: From Forest to Dry Steppes, KULUNDA: Climate Smart Agriculture, 10.1007/978-3-030-15927-6_4, (33-48), (2020).
  • Stories from common gardens: Water shortage differentially affects Nothofagus pumilio from contrasting precipitation regimes, Forest Ecology and Management, 10.1016/j.foreco.2019.117796, 458, (117796), (2020).
  • Anthropogenic activity expressed as ‘artificial light at night’ improves predictive density distribution in bird populations, Ecological Complexity, 10.1016/j.ecocom.2019.100809, 41, (100809), (2020).
  • Rabbit bone stable isotope values distinguish desert ecoregions of North America: Data from the archaeological sites of Pueblo Grande, La Ferreria, and La Quemada, Journal of Archaeological Science, 10.1016/j.jas.2019.105063, 113, (105063), (2020).
  • Annually modelling built-settlements between remotely-sensed observations using relative changes in subnational populations and lights at night, Computers, Environment and Urban Systems, 10.1016/j.compenvurbsys.2019.101444, 80, (101444), (2020).
  • Epidemiology and spatiotemporal analysis of visceral leishmaniasis in Palestine from 1990 to 2017, International Journal of Infectious Diseases, 10.1016/j.ijid.2019.10.044, 90, (206-212), (2020).
  • Insights into distyly and seed morphology of the aquatic plant Nymphoides fallax Ornduff (Menyanthaceae), Flora, 10.1016/j.flora.2019.151526, 262, (151526), (2020).
  • Vulnerability of baobab (Adansonia digitata L.) to human disturbances and climate change in western Tigray, Ethiopia: Conservation concerns and priorities, Global Ecology and Conservation, 10.1016/j.gecco.2020.e00943, (e00943), (2020).
  • Spatial prediction and mapping of soil pH across a tropical afro-montane landscape, Applied Geography, 10.1016/j.apgeog.2019.102129, 114, (102129), (2020).
  • Land-use change drives present and future distributions of Fall armyworm, Spodoptera frugiperda (J.E. Smith) (Lepidoptera: Noctuidae), Science of The Total Environment, 10.1016/j.scitotenv.2019.135872, 706, (135872), (2020).
  • Heading for the hills? A multi-isotope study of sheep management in first-millennium BC Italy, Journal of Archaeological Science: Reports, 10.1016/j.jasrep.2019.102036, 29, (102036), (2020).
  • Nonlinear relationship of vegetation greening with nature and human factors and its forecast – A case study of Southwest China, Ecological Indicators, 10.1016/j.ecolind.2019.106009, 111, (106009), (2020).
  • Defining priorities for global snow leopard conservation landscapes, Biological Conservation, 10.1016/j.biocon.2019.108387, 241, (108387), (2020).
  • Fantastic beasts and what they ate: Revealing feeding habits and ecological niche of late Quaternary Macraucheniidae from South America, Quaternary Science Reviews, 10.1016/j.quascirev.2020.106178, 231, (106178), (2020).
  • Investigating spatial non-stationary environmental effects on the distribution of giant pandas in the Qinling Mountains, China, Global Ecology and Conservation, 10.1016/j.gecco.2019.e00894, 21, (e00894), (2020).
  • The paleoclimatic message from the polymodal grain-size distribution of late Pleistocene-early Holocene Pampean loess (Argentina), Aeolian Research, 10.1016/j.aeolia.2019.100563, 42, (100563), (2020).
  • Assessment of yield gaps on global grazed‐only permanent pasture using climate binning, Global Change Biology, 10.1111/gcb.14925, 26, 3, (1820-1832), (2020).
  • Latest Neogene monsoon of the Chotanagpur Plateau, eastern India, as revealed by fossil leaf architectural signatures, Palaeogeography, Palaeoclimatology, Palaeoecology, 10.1016/j.palaeo.2020.109641, (109641), (2020).
  • Decision-making and integrated assessment models of the water-energy-food nexus, Water Security, 10.1016/j.wasec.2019.100056, 9, (100056), (2020).
  • Spatial Surveillance of Invasion by Alien Species in a Heterogeneous Ecological Landscape, International Journal of Applied Geospatial Research, 10.4018/IJAGR.2020040101, 11, 2, (1-17), (2020).
  • Geographic shifts in the bioclimatic suitability for Aedes aegypti under climate change scenarios in Colombia, Heliyon, 10.1016/j.heliyon.2019.e03101, 6, 1, (e03101), (2020).
  • Revisiting the North-South genetic discontinuity in Central African tree populations: the case of the low-density tree species Baillonella toxisperma, Tree Genetics & Genomes, 10.1007/s11295-019-1408-8, 16, 1, (2020).
  • Phylogeny and trait variation of Japanese Rubus subgenus Ideaobatus, Scientia Horticulturae, 10.1016/j.scienta.2019.109150, 264, (109150), (2020).
  • Climate Change Effects on the Development of Six Pristimantis Frog Species in Ecuador, Technology, Sustainability and Educational Innovation (TSIE), 10.1007/978-3-030-37221-7_3, (23-35), (2020).
  • Ebola spillover correlates with bat diversity, European Journal of Wildlife Research, 10.1007/s10344-019-1346-7, 66, 1, (2020).
  • Mixotrophic uptake of organic compounds by coccolithophores, Limnology and Oceanography, 10.1002/lno.11396, 65, 6, (1410-1421), (2020).
  • Improving models of fine root carbon stocks and fluxes in European forests, Journal of Ecology, 10.1111/1365-2745.13328, 108, 2, (496-514), (2020).
  • Land Conversion for Solar Facilities and Urban Sprawl in Southwest Deserts Causes Different Amounts of Habitat Loss for Ashmeadiella Bees, Journal of the Kansas Entomological Society, 10.2317/0022-8567-92.2.468, 92, 2, (468), (2020).
  • Brain expansion in early hominins predicts carnivore extinctions in East Africa, Ecology Letters, 10.1111/ele.13451, 23, 3, (537-544), (2020).
  • Individual behavior, behavioral stability, and pace of life within and among five shrew species, Behavioral Ecology and Sociobiology, 10.1007/s00265-019-2793-6, 74, 2, (2020).
  • Biogeographic historical legacies in the net primary productivity of Northern Hemisphere forests, Ecology Letters, 10.1111/ele.13481, 23, 5, (800-810), (2020).
  • Modeling arsenic content in Brazilian soils: What is relevant?, Science of The Total Environment, 10.1016/j.scitotenv.2020.136511, 712, (136511), (2020).
  • Predictive Middle Palaeolithic climatic conditions from Eastern Iberia: a methodological approach based on charcoal analysis and modelling, Archaeological and Anthropological Sciences, 10.1007/s12520-019-00993-3, 12, 1, (2020).
  • Bias Correction of Global High-Resolution Precipitation Climatologies Using Streamflow Observations from 9372 Catchments, Journal of Climate, 10.1175/JCLI-D-19-0332.1, 33, 4, (1299-1315), (2020).
  • Substantial genetic divergence and lack of recent gene flow support cryptic speciation in a colour polymorphic bumble bee (Bombus bifarius) species complex, Systematic Entomology, 10.1111/syen.12419, 45, 3, (635-652), (2020).
  • Relationships between population densities and niche‐centroid distances in North American birds, Ecology Letters, 10.1111/ele.13453, 23, 3, (555-564), (2020).
  • Disentangling drivers of small mammal diversity in a highly fragmented forest system, Biotropica, 10.1111/btp.12745, 52, 1, (182-195), (2020).
  • Climate change challenges IUCN conservation priorities: a test with western Mediterranean amphibians, SN Applied Sciences, 10.1007/s42452-020-2002-2, 2, 2, (2020).
  • An evaluation of central Iran’s protected areas under different climate change scenarios (A Case on Markazi and Hamedan provinces), Journal of Mountain Science, 10.1007/s11629-019-5418-7, 17, 1, (68-82), (2020).
  • Past, Present and Future: Combining habitat suitability and future landcover simulation for long-term conservation management of Indian rhino, Scientific Reports, 10.1038/s41598-020-57547-0, 10, 1, (2020).
  • Modelling and evaluating the risk of zoonotic cutaneous leishmaniasis in selected areas of Kerman Province, south of Iran, Transboundary and Emerging Diseases, 10.1111/tbed.13465, 67, 3, (1271-1283), (2020).
  • The influence of biocrusts on the spatial pattern of soil bacterial communities: A case study at landscape and slope scales, Soil Biology and Biochemistry, 10.1016/j.soilbio.2020.107721, (107721), (2020).
  • Climate migrants’ survival threatened by “C” shaped anthropic barriers, Integrative Zoology, 10.1111/1749-4877.12391, 15, 1, (32-39), (2020).
  • Geographical clines in the size of the herb field mouse (Apodemus uralensis), Integrative Zoology, 10.1111/1749-4877.12407, 15, 1, (55-68), (2020).
  • Effect of distance, area, and climate on the frequency of introduction and extinction events on islands and archipelagos, Ecosphere, 10.1002/ecs2.3008, 11, 1, (2020).
  • West to east shift in range predicted for Himalayan Langur in climate change scenario, Global Ecology and Conservation, 10.1016/j.gecco.2020.e00926, (e00926), (2020).
  • Spatiotemporal heterogeneity decouples infection parameters of amphibian chytridiomycosis, Journal of Animal Ecology, 10.1111/1365-2656.13170, 89, 4, (1109-1121), (2020).
  • Synthetic resampling strategies and machine learning for digital soil mapping in Iran, European Journal of Soil Science, 10.1111/ejss.12893, 71, 3, (352-368), (2020).
  • Modelling the climate suitability of green carpenter bee (Xylocopa aerata) and its nesting hosts under current and future scenarios to guide conservation efforts, Austral Ecology, 10.1111/aec.12853, 45, 3, (271-282), (2020).
  • Unveiling geographical gradients of species richness from scant occurrence data, Global Ecology and Biogeography, 10.1111/geb.13055, 29, 4, (748-759), (2020).
  • Founder takes more: Interspecific competition affects range expansion of North American mammals into deglaciated areas, Journal of Biogeography, 10.1111/jbi.13777, 47, 3, (712-720), (2020).
  • CGIAR modeling approaches for resource‐constrained scenarios: I. Accelerating crop breeding for a changing climate, Crop Science, 10.1002/csc2.20048, 60, 2, (547-567), (2020).
  • Compensatory Microhabitat Selection by Northern Pacific Rattlesnakes (Crotalus oreganus oreganus) in a Cool and Wet Macroclimate, Journal of Herpetology, 10.1670/17-153, 54, 1, (39), (2020).
  • Long-term spatio-temporal precipitation variations in China with precipitation surface interpolated by ANUSPLIN, Scientific Reports, 10.1038/s41598-019-57078-3, 10, 1, (2020).
  • Early Pleistocene conifer macrofossils from Happisburgh, Norfolk, UK, and their environmental implications for early hominin occupation, Quaternary Science Reviews, 10.1016/j.quascirev.2019.106115, 232, (106115), (2020).
  • The Role of Ecological Factors in Distribution and Abundance of Terrestrial Orchids, Orchids Phytochemistry, Biology and Horticulture, 10.1007/978-3-030-11257-8_4-1, (1-71), (2020).
  • Climate change projections for Carpathian soda pans on the basis of photosynthesis evidence from typical diatom species, Science of The Total Environment, 10.1016/j.scitotenv.2019.136241, 710, (136241), (2020).
  • Species geographical co‐occurrence and the effect of Grinnellian and Eltonian niche partitioning: The case of a Neotropical felid assemblage, Ecological Research, 10.1111/1440-1703.12070, 35, 2, (382-393), (2020).
  • Lineage‐specific adaptation to climate involves flowering time in North American Arabidopsis lyrata, Molecular Ecology, 10.1111/mec.15338, 29, 8, (1436-1451), (2020).
  • Projected distribution and climate refugia of endangered Kashmir musk deer Moschus cupreus in greater Himalaya, South Asia, Scientific Reports, 10.1038/s41598-020-58111-6, 10, 1, (2020).
  • Global meta-analysis shows pervasive phosphorus limitation of aboveground plant production in natural terrestrial ecosystems, Nature Communications, 10.1038/s41467-020-14492-w, 11, 1, (2020).
  • Different but valuable: Anthropogenic habitats as genetic diversity reservoirs for endangered dry grassland species – A case study of Stipa pennata, Ecological Indicators, 10.1016/j.ecolind.2019.105998, 111, (105998), (2020).
  • Colonization history of the Canary Islands endemic Lavatera acerifolia, (Malvaceae) unveiled with genotyping‐by‐sequencing data and niche modelling, Journal of Biogeography, 10.1111/jbi.13808, 47, 4, (993-1005), (2020).
  • Impacts of future climate and land use change on water yield in a semiarid basin in Iran, Land Degradation & Development, 10.1002/ldr.3554, 31, 10, (1252-1264), (2020).
  • Genetic diversity of the rain tree (Albizia saman) in Colombian seasonally dry tropical forest for informing conservation and restoration interventions, Ecology and Evolution, 10.1002/ece3.6005, 10, 4, (1905-1916), (2020).
  • Steep topography buffers threatened gymnosperm species against anthropogenic pressures in China, Ecology and Evolution, 10.1002/ece3.5983, 10, 4, (1838-1855), (2020).
  • Current and future predicting potential areas of Oxytenanthera abyssinica (A. Richard) using MaxEnt model under climate change in Northern Ethiopia, Ecological Processes, 10.1186/s13717-019-0210-8, 9, 1, (2020).
  • A winner in the Anthropocene: changing host plant distribution explains geographical range expansion in the gulf fritillary butterfly, Ecological Entomology, 10.1111/een.12845, 45, 3, (652-662), (2020).
  • Genetic, morphological and ecological variation across a sharp hybrid zone between two alpine butterfly species, Evolutionary Applications, 10.1111/eva.12925, 13, 6, (1435-1450), (2020).
  • Cultivar coefficient stability and effects on yield projections in the SPUDSIM model, Agronomy Journal, 10.1002/agj2.20070, 112, 2, (828-843), (2020).
  • Genetic differentiation among Psittacanthus rhynchanthus (Loranthaceae) populations: novel phylogeographic patterns in the Mesoamerican tropical lowlands, Plant Systematics and Evolution, 10.1007/s00606-020-01638-y, 306, 1, (2020).
  • Bioclimatic variables from precipitation and temperature records vs. remote sensing-based bioclimatic variables: Which side can perform better in species distribution modeling?, Ecological Informatics, 10.1016/j.ecoinf.2020.101060, (101060), (2020).
  • Soil loss estimation using the revised universal soil loss equation and a GIS-based model: a case study of Jijel Wilaya, Algeria, Arabian Journal of Geosciences, 10.1007/s12517-020-5160-z, 13, 4, (2020).
  • Variations in yield gaps of smallholder cocoa systems and the main determining factors along a climate gradient in Ghana, Agricultural Systems, 10.1016/j.agsy.2020.102812, 181, (102812), (2020).
  • Future climate change will severely reduce habitat suitability of the Critically Endangered Chinese giant salamander, Freshwater Biology, 10.1111/fwb.13483, 65, 5, (971-980), (2020).
  • Predicting the Geographic Distribution of the Bacillus anthracis A1.a/Western North American Sub-Lineage for the Continental United States: New Outbreaks, New Genotypes, and New Climate Data, The American Journal of Tropical Medicine and Hygiene, 10.4269/ajtmh.19-0191, 102, 2, (392-402), (2020).
  • Structural diversity underpins carbon storage in Australian temperate forests, Global Ecology and Biogeography, 10.1111/geb.13038, 29, 5, (789-802), (2020).
  • Macroecology and macroevolution of body size in Anolis lizards, Ecography, 10.1111/ecog.04583, 43, 6, (812-822), (2020).
  • Depth distribution of soil water sourced by plants at the global scale: A new direct inference approach, Ecohydrology, 10.1002/eco.2177, 13, 2, (2020).
  • Climate and geographic adaptation drive latitudinal clines in biomass of a widespread saltmarsh plant in its native and introduced ranges, Limnology and Oceanography, 10.1002/lno.11395, 65, 6, (1399-1409), (2020).
  • Cryptic diversity in ant‐mimic Micaria spiders (Araneae, Gnaphosidae) and a tribute to early naturalists, Zoologica Scripta, 10.1111/zsc.12404, 49, 2, (197-209), (2020).
  • High-resolution and bias-corrected CMIP5 projections for climate change impact assessments, Scientific Data, 10.1038/s41597-019-0343-8, 7, 1, (2020).
  • Ectomycorrhizal fungal diversity predicted to substantially decline due to climate changes in North American Pinaceae forests, Journal of Biogeography, 10.1111/jbi.13802, 47, 3, (772-782), (2020).
  • The global distribution of grass functional traits within grassy biomes, Journal of Biogeography, 10.1111/jbi.13764, 47, 3, (553-565), (2020).
  • Ecological drivers of Mycobacterium avium subsp. paratuberculosis detection in mongoose (Herpestes ichneumon) using IS900 as proxy, Scientific Reports, 10.1038/s41598-020-57679-3, 10, 1, (2020).
  • Vegetation productivity summarized by the Dynamic Habitat Indices explains broad-scale patterns of moose abundance across Russia, Scientific Reports, 10.1038/s41598-019-57308-8, 10, 1, (2020).
  • See more