Digitization as one of the methods of assessing the number and distribution of small water bodies
DOI:
https://doi.org/10.26881/oahs-2025.1.10Keywords:
kettle holes, lake abundance, ponds, post-glacial landscapeAbstract
Small water bodies (ponds) are a widespread component of the landscape; however, their exact number is often estimated by their small size, temporal variability, or being invisible due to dense vegetation cover. Their distribution is typically assessed through the analysis of aerial and satellite imagery. Nevertheless, a more traditional but labor-intensive approach—manual digitization from topographic maps—has been considered highly precise. In an area of 12 400 km2 in northern Poland, nearly 32 000 ponds were digitized, with their occurrence strongly linked to geomorphological units. While they are most abundant in moraine plateaus, ponds are present across all post-glacial landscapes. Additionally, the authors observed that although pond distribution appears largely random, some exhibit distinct spatial patterns, forming linear chains or clustered groups.
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Altenfelder, S., Raabe, U., & Albrecht, A. (2014). Effects of water regime and agricultural use on diversity and species composition of vascular plants inhabiting temporary ponds in northeastern Germany. Tuexenia, 34(1), 193–210. https://doi.org/10.14471/2014.34.013.
Bajkiewicz-Grabowska, E., Golus, W., Markowski, M., & Kwidzińska, M. (2020). Characteristics of the water network in postglacial areas of Northern Poland. In K. Korzeniewska & M. Harnisz (Eds.), Polish river basins and lakes: Part 1, Hydrology and hydrochemistry (pp. 159–174), Springer Nature Switzerland AG. https://doi.org/10.1007/978-3- 030-12123-5_8.
Bartout, P., Touchart, L., Terasmaa, J., Choffel, Q., Marzecova, A., Koff, T., Kapanen, G., Qsair, Z., Maleval, V., Millot, C., Saudubray, J., & Al Domany, M. (2015). A new approach to inventorying bodies of water from local to a global scale. Die Erde; Zeitschrift der Gesellschaft für Erdkunde zu Berlin, 146(4), 245–258. https:// doi.org/10.12854/erde-146-20.
Basińska, A., Kuczyńska-Kippen, N., & Świdnicki, K. (2010). The body size distribution of Filinia longiseta (Ehrenberg) in different types of small water bodies in the Wielkopolska region. Limnetica, 29(1), 171–182. https://doi. org/10.23818/limn.29.14.
Batzer, D. P., & Wissinger, S. A. (1996). Ecology of insect communities in nontidal wetlands. Annual Review of Entomology(1), 41, 75–100. https://doi.org/10.1146/ annurev.en.41.010196.000451.
Bilton, D., McAbendroth, L., Nicolet, P., Bedford, A., Rundle, S., Foggo, A., & Ramsay, P. (2009). Ecology and conservation status of temporary and fluctuating ponds in two areas of southern England. Aquatic Conservation, 19(2), 134–146. https://doi.org/10.1002/aqc.973.
Boix, D., Biggs, J., Céréghino, R., Hull, A., Kalettka, T., & Oertli, B. (2012). Pond research and management in Europe: “Small is Beautiful.”. Hydrobiologia, 689(1), 1–9. https://doi.org/10.1007/ s10750-012-1015-2.
Bosiacka, B., & Pieńkowski, P. (2012). Do biogeographic parameters matter? Plant species richness and distribution of macrophytes in relation to area and isolation of ponds in NW Polish agricultural landscape. Hydrobiologia, 689(1), 79–90. https://doi.org/10.1007/s10750-011-0850-x.
Brysiewicz, A., Sługocki, Ł, Wesołowski, P., & Czerniawski, R. (2017). Zooplankton community structure in small ponds in relation to fish community and the environmental factors. Applied Ecology and Environmental Research, 15(4), 929–949. https://doi.org/10.15666/aeer/1504_929941.
Cael, B. B., & Seekell, D. A. (2016). The size-distribution of Earth’s lakes. Scientific Reports, 6(1), 1–8. https://doi.org/10.1038/ srep29633.
Calhoun, A. J. K., Walls, T. E., Stockwell, S. S., & McCollough, M. (2003). Evaluating vernal pools as a basis for conservation strategies: A Maine case study. Wetlands, 23(1), 70–81. https://doi.org/10.1672/0277- 5212(2003)023[0070:EVPAAB]2.0.CO;2.
Cardoso, C., Ripol, A., Afonso, C., Freire, M., Varela, J., Quental Ferreira, H., Pousão-Ferreira, P., & Bandarra, N. (2017). Fatty acid profiles of the main lipid classes of green seaweeds from fish pond aquaculture. Food Science & Nutrition, 5(6), 1186–1194. https://doi.org/10.1002/fsn3.511.
Catalán, N., von Schiller, D., Marcé, R., Koschorreck, M., GomezGener, L., & Biel Obrador, J. (2014). Carbon dioxide efflux during the flooding phase of temporary ponds. Limnetica, 33(2), 349–360. https://doi.org/10.23818/limn.33.27.
Céréghino, R., Biggs, J., Oertli, B., & Declerck, S. (2008). The ecology of European ponds: Defining the characteristics of neglected freshwater habitat. Hydrobiologia, 597(1), 1–6. https://doi.org/10.1007/s10750-007-9225-8.
Choiński, A. (1999). Oczka wodne w Polsce w strefie zasięgu zlodowacenia bałtyckiego. Acta Universitatis Nicolai Copernici, Geografia, 29(103), 317–326. UMK, Toruń.
Chumchal, M. M., Drenner, R. W., & Adams, K. J. (2016). Abundance and size distribution of permanent and temporary farm ponds in the southeastern Great Plains. Inland Waters, 6(2), 258–264. https://doi.org/10.5268/IW6.2.954.
Coccia, C., Almeida, B. A., Badosa, A., Diniz, L. P., Brendonck, L., Frisch, D., & Green, A. J. (2024). Hydroperiod length, not pond age, determines zooplankton taxonomic and functional diversity in temporary ponds. Ecological Indicators, 159, 111632. https://doi.org/10.1016/j. ecolind.2024.111632.
Collinson, N. H., Biggs, J., Corfield, A., Hodson, M. J., Walker, D., Whitfield, M., & Williams, P. J. (1995). Temporary and permanent ponds: An assessment of the effects of drying out on the conservation value of aquatic invertebrate communities. Biological Conservation, 74(2), 125–134. https://doi.org/10.1016/0006-3207(95)00021-U.
Cottenie, K., Michels, E., Nuytten, N., & De Meester, L. (2003). Zooplankton metacommunity structure: Regional vs. local processes in highly interconnected ponds. Ecology, 84(4), 991–1000. https://doi.org/10.1890/0012- 9658(2003)084[0991:ZMSRVL]2.0.CO;2.
Cuenca-Cambronero, M., Blicharska, M., Perrin, J. A., Davidson, T. A., Oertli, B., Lago, M., Beklioglu, M., Meerhoff, M., Arim, M., Teixeira, J., De Meester, L., Biggs, J., Robin, J., Martin, B., Greaves, H. M., Sayer, C. D., Lemmens, P., Boix, D., Mehner, T., … Brucet, S. (2023). Challenges and opportunities in the use of ponds and pondscapes as nature-based solutions. Hydrobiologia, 850(12), 3257–3271. https://doi. org/10.1007/s10750-023-05149-y.
Davies, B., Biggs, B., Williams, P., & Maund, S. (2008). Comparative biodiversity of aquatic habitats in the European agricultural landscape. Agriculture. Ecosystems & Environment, 125(1–4), 1–8. https://doi.org/10.1016/j.agee.2007.10.006.
Downing, J. A. (2010). The emerging global role of small lakes and ponds: Little things mean a lot. Limnetica, 29(1), 9–24. https://doi.org/10.23818/limn.29.02.
Downing, J. A., & Duarte, C. M. (2009). Abundance and size distribution of lakes, ponds, and impoundments. In G. E. Likens (Ed.), Encyclopedia of inland waters (pp. 469–478). Elsevier.
Downing, J. A., Prairie, Y. T., Cole, J. J., Duarte, C. M., Tranvik, L. J., Striegl, R. G., McDowell, W. H., Kortelainen, P., Caraco, N. F., Melack, J. M., & Middelburg, J. J. (2006). The global abundance and size distribution of lakes, ponds, and impoundments. Limnology and Oceanography, 51(5), 2388–2397. https://doi. org/10.4319/lo.2006.51.5.2388.
Drwal, J., & Lange, W. (1985). Niektóre limnologiczne odrębności oczek. Geneza i rozmieszczenie oczek. Zeszyty Naukowe WBiNoZ Uniwersytetu Gdańskiego, Geografia, 14, 69–83.
Ewald, N., Williams, P., Williamson, B., Dunn, F., & Biggs, J. (2014). Year 3 report DRAFT (p. 19).
Golus, W. (2007). Rozmieszczenie oczek wodnych w zlewni górnej Raduni. Obieg wody w naturalnym i przekształconym środowisku. In R. Bogdanowicz & J. Fac-Beneda (Eds.), Badania hydrograficzne w poznawaniu środowiska (Vol. 8, pp. 19–23). Wydawnictwo UMCS.
Golus, W., & Bajkiewicz-Grabowska, E. (2017). Water circulation in the moraine ponds of northern Poland. Hydrobiologia, 793(1), 55–65. https://doi.org/10.1007/ s10750-016-2830-7.
Hanson, P. C., Carpenter, S. R., Cardille, J. A., Coe, M. T., & Winslow, L. A. (2007). Small lakes dominate a random sample of regional lake characteristics. Freshwater Biology, 52, 814– 822. https://doi.org/10.1111/j.1365-2427.2007.01730.x.
Hassall, C. (2014). The ecology and biodiversity of urban ponds. Wiley Interdisciplinary Reviews: Water, 1(3), 187–206. https://doi.org/10.1002/wat2.1014.
Hill, M. J., Biggs, J., Thornhill, I., Briers, R. A., Gledhill, D. G., White, J. C., Wood, P. J., & Hassall, C. (2017). Urban ponds as an aquatic biodiversity resource in modified landscapes. Global Change Biology, 23(3), 986–999. https://doi. org/10.1111/gcb.13401.
Hill, M. J., Greaves, H. M., Sayer, C. D., Hassall, C., Milin, M., Milner, V. S., Marazzi, L., Hall, R., Harper, L. R., Thornhill, I., Walton, R., Biggs, J., Ewald, N., Law, A., Willby, N., White, J. C., Briers, R. A., Mathers, K. L., Jeffries, M. J., & Wood, P. J. (2021). Pond ecology and conservation: Research priorities and knowledge gaps. Ecosphere, 12(12), e03853. https://doi. org/10.1002/ecs2.3853.
Huang, C., Chen, Y., Zhang, S., & Wu, J. (2018). Detecting, extracting, and monitoring surface water from space using optical sensors: A review. Reviews of Geophysics, 56, 333–360. https://doi.org/10.1029/2018RG000598.
Jeffries, M. J. (2016). Flood, drought, and the inter-annual variation to the number and size of ponds and small wetlands in an English lowland landscape over three years of weather extremes. Hydrobiologia, 768(1), 255–272. https://doi.org/10.1007/s10750-015-2554-0.
Kalettka, T., & Rudat, C. (2006). Hydrogeomorphic types of glacially created kettle holes in North-East Germany. Limnologica, 36(1), 54–64. https://doi.org/10.1016/j. limno.2005.11.001.
Kalettka, T., Rudat, C., & Quast, J. (2001). “Potholes” in Northeast German agro-landscapes: Functions, land-use impacts, and protection strategies. In J. D. Tenhunen, R. Lenz, & R. Hantschel (Eds.), Ecosystem approaches to landscape management in Central Europe (Vol. 147, pp. 291–298). Springer.
Kalniet, A. (1952). Zagadnienie genezy i wieku tzw. Oczek lodowcowych. Wiadomości Muzeum Ziemi, 6(2), 339–355.
Lehner, B., & Döll, P. (2004). Development and validation of a global database of lakes, water bodies, and wetlands. Journal of Hydrology, 296, 1–22. https://doi.org/10.1016/j. jhydrol.2004.03.028.
Lewis-Phillips, J., Brooks, S. J., Sayer, C. D., Patmore, I. R., Hilton, G. M., Harrison, A., Robson, H., & Axmacher, J. C. (2020). Ponds as insect chimneys: Restoring overgrown farmland ponds benefits birds through elevated productivity of emerging aquatic insects. Biological Conservation, 241, 108253. https://doi.org/10.1016/j.biocon.2019.108253.
Mai, A., & Bill, R. (2011). Analysing kettle holes in Mecklenburg in the last 225 years using an interdisciplinary virtual research laboratory. EnviroInfo 2011: Innovations in Sharing Environmental Observations and Information.
Marcé, R., Obrador, B., Gómez-Gener, L., Catalán, N., Koschorreck, M., Arce, M. I., Singer, G., & von Schiller, D. (2019). Emissions from dry inland waters are a blind spot in the global carbon cycle. Earth-Science Reviews, 188, 240–248. https://doi.org/10.1016/j.earscirev.2018.11.012.
Marszelewski, W., & Podgórski, P. (2004). Zmiany ilościowe oczek i jezior na Pojezierzu Chełmińskim w świetle materiałów kartograficznych z XIX i XX wieku. Przegląd Geograficzny, 76, 33–50.
Mętrak, M., Pawlikowski, P., & Suska-Malawska, M. (2014). Age and land use as factors differentiating hydrochemistry and plant cover of astatic ponds in the post-agricultural landscape. Journal of Water and Land Development, 21(IV–VI), 29–37. https://doi.org/10.2478/jwld-2014-0011.
Meybeck, M. (1995). Global lake distribution. In A. Lerman, D. M. Imboden, & J. R. Gat (Eds.), Physics and chemistry of lakes (pp. 1–35).
Minns, C. K., Moore, J. E., Shuter, B. J., & Mandrak, N. E. (2008). A preliminary national analysis of some key characteristics of Canadian lakes. Canadian Journal of Fisheries and Aquatic Sciences, 65(8), 1763–1778. https:// doi.org/10.1139/F08-110.
Nagengast, B., & Kuczyńska-Kippen, N. (2014). The effect of human impact on the vegetation of small water bodies in an agricultural landscape. Teka Kom. Ochr. Kszt. Rod. Przyr. – OL PAN, 10, 274–283.
Obrador, B., von Schiller, D., Marcé, R., Gómez-Gener, L., Koschorreck, M., Borrego, C., & Catalán, N. (2018). Dry habitats sustain high CO2 emissions from temporary ponds across seasons. Scientific Reports, 8(1), 3015. https:// doi.org/10.1038/s41598-018-20969-y.
Oertli, B., Joye, D. A., Castella, E., Juge, D., Cambin, D., & Lachavanne, J. B. (2002). Does size matter? The relationship between pond area and biodiversity. Biological Conservation, 104, 59–70. https://doi.org/10.1016/S0006- 3207(01)00154-9.
Onandia, G., Lischeid, G., Kalettka, T., Kleeberg, A., Omari, M., Premke, K., & Arhonditsis, G. B. (2018). Biogeochemistry of natural ponds in agricultural landscape: Lessons learned from modeling a kettle hole in Northeast Germany. Science of the Total Environment, 634, 1615–1630. https:// doi.org/10.1016/j.scitotenv.2018.04.014.
Pätzig, M., & Düker, E. (2021). Dynamics of dominant plant communities in Kettle Holes (Northeast Germany) during a five-year period of extreme weather conditions. Water, 13(5), 688. https://doi.org/10.3390/w13050688.
Pieńkowski, P. (2003). Disappearance of the mid-field ponds as a result of agriculture intensification. Electronic Journal of Polish Agricultural Universities, 6(2) [online].
Pieńkowski, P. (2004). The disappearance of ponds in the landscape of Northern Europe as an effect of anthropogenic influence and global climate change. Polish Journal of Environmental Studies, 13, 192–196.
Pi, X., Luo, Q., Feng, L., Xu, Y., Tang, J., Liang, X., Ma, E., Cheng, R., Fensholt, R., Brandt, M., Cai, X., Gibson, L., Liu, J., Zheng, C., Li, W., & Bryan, B. A. (2022). Mapping global lake dynamics reveals the emerging roles of small lakes. Nature Communications, 13(1), 6337. https://doi. org/10.1038/s41467-022-34140-9.
PPWK – Polish State Enterprise for Cartographic Publishing (1965–1980). Topographic maps of Poland, scale 1:25,000, 1965 coordinate system, various sheets. Warsaw.
Premke, K., Attermeyer, K., & Augustin, J., et al. (2016). The importance of landscape complexity for carbon fluxes on the landscape level: Small-scale heterogeneity matters. Wiley Interdisciplinary Reviews: Water, 3(4), 601–617. https://doi.org/10.1002/wat2.1147.
Riley, W. D., Potter, E. C. E., Biggs, J., Collins, A. L., Jarvie, H. P., Jones, J. I., Kelly-Quinn, M., Ormerod, S. J., Sear, D. A., Wilby, R. L., Broadmeadow, S., Brown, C. D., Chanin, P., Copp, G. H., Cowx, I. G., Grogan, A., Hornby, D. D., Huggett, D., Kelly, M. G., … Newman, J. R. (2018). Small water bodies in Great Britain and Ireland: Ecosystem function, humangenerated degradation, and options for restorative action. Science of the Total Environment, 645, 1598–1616. https:// doi.org/10.1016/j.scitotenv.2018.07.243.
Robotham, J., Old, G., Rameshwaran, P., Sear, D., Gasca-Tucker, D., Bishop, J., Old, J., & McKnight, D. (2021). Sediment and nutrient retention in ponds on an agricultural stream: Evaluating effectiveness for diffuse pollution mitigation. Water, 13(12), 1640. https://doi.org/10.3390/w13121640.
Sebastián-González, E., Sánchez-Zapata, J. A., & Botella, F. (2010). Agricultural ponds as alternative habitat for waterbirds: Spatial and temporal patterns of abundance and management strategies. European Journal of Wildlife Resources, 56(1), 11–20. http://dx.doi.org/10.1007/s10344- 009-0288-x.
Seekel, D. A., Pace, M. L., Tranvik, L. J., & Verpoorter, C. (2013). A fractal-based approach to lake size distribution. Geophysical Research Letters, 40, 517–521. https://doi. org/10.1002/grl.50139.
Shiklomanov, I. (1993). World water resources. In P. Gleick (Ed.), Water in crisis (pp. 13–24). Oxford University Press.
Solon, J. (Ed.). (2018). Geografia Polski. Mezoregiony fizycznogeograficzne [Geography of Poland. Physical-geographical mesoregions]. Wydawnictwo Naukowe PWN.
Thiere, G., Milenkovski, S., Lindgren, P. E., Sahlén, G., Berglund, O., & Weisner, S. E. (2009). Wetland creation in agricultural landscapes: Biodiversity benefits on local and regional scales. Biological Conservation, 142(5), 964–973. https:// doi.org/10.1016/j.biocon.2009.01.006.
Thornhill, I., Batty, L., Death, R. G., Friberg, N. R., & Ledger, M. E. (2017). Local and landscape scale determinants of macroinvertebrate assemblages and their conservation value in ponds across an urban land-use gradient. Biodiversity and Conservation, 26(6), 1065–1086. https:// doi.org/10.1007/s10531-016-1286-4.
Verpoorter, C., Kutser, T., Seekel, D. A., & Tranvik, L. J. (2014). A global inventory of lakes based on high-resolution satellite imagery. Geophysical Research Letters, 41, 6396–6402. https://doi.org/10.1002/2014GL060641.
Ziernicka-Wojtaszek, A., & Kopcińska, J. (2020). Variation in atmospheric precipitation in Poland in the years 2001– 2018. Atmosphere, 11(8), 794. https://doi.org/10.3390/ atmos11080794.
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