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The Sharon coastal ridge consists of alternating layers of kurkar (local term for aeolian carbonate-cemented, quartz sandstone) and poorly consolidated palaeosol deposits. The ridge was formed during the Late Pleistocene (about 70,000 to 10,000 yr. BP). At about 7,500 yr. BP, sea level reached the western edge of the present coastal ridge, currently located about 8 m below the present sea level, and a coastal cliff developed. Since then the cliff has continuously been eroded and retreated eastward by natural processes, as well as by anthropogenic impact. This article is an interdisciplinary geo-archaeological study of the extent and rates of retreat of the coastal cliff over the last 7,500 years. The findings suggest that overall the cliff has retreated about 730 m in this period, at an average rate of 9.7 cm\u002Fyr. However, the study shows that a considerably higher rate of cliff retreat occurred between about 7,500 and 3,900 yr. BP (about 650 m in about 3,600 years, at about 18 cm\u002Fyr). Sea level reached its present level at about 4,000 yr. BP (Middle Bronze Age) and has not changed significantly since. Since the Middle Bronze Age, the cliff has retreated about 80 m in 3,900 years (at about 2 cm\u002Fyr). Human activity and sea level rise during the last 100 years have significantly accelerated coastal erosion and cliff retreat.",{"EN":196},"Geo-archaeological markers reveal magnitude and rates of Israeli coastal cliff erosion and retreat",{"VOID":198},"[\"13300835576482022399\"]",{"VOID":200},"10.1007\u002Fs11852-018-0644-7","PUBLICATION","VERIFIED","2024-04-29T16:04:49.205+00:00","Auto Verify","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs11852-018-0644-7",[207,223],{"id":208,"sortIndex":19,"researcher":18,"roles":209,"affiliations":211,"properties":220,"displayName":222,"givenName":18,"familyName":18},"7f5bb7c1-c7b6-4235-8af2-9490d20d3c50",[210],"AUTHOR",[212],{"id":213,"sortIndex":19,"affiliation":214,"properties":18},"adf42010-e497-4e16-9f05-04662c9cbff0",{"id":213,"createTime":18,"updateTime":18,"relativeEntities":215,"slug":18,"properties":216,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":219,"statistic":18},[],{"title":217},{"VI":218},"Zinman Institute of Archaeology, University of Haifa, Atlit, Israel",[],{"title":221},{"VI":222},"E. 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Nature 382:241–244",{"doi":322},{"id":18,"text":333,"url":18,"identifiers":334},"Barkai O, Katz O, Mushkin A, Goodman-Tchernov BN (2017) Erosion of archaeological sites along the Israeli Mediterranean coastline and its application for assessing long-term retreat rates of the sea cliff. Geoarchaeology 2017:1–14",{},{"id":318,"text":336,"url":320,"identifiers":337},"Ben-Avraham Z, Hall JK (1977) Geophysical survey of Mount Carmel and its extension into the eastern Mediterranean. J Geophys Res 82(5):793–802",{"doi":322},{"id":318,"text":339,"url":320,"identifiers":340},"Bruun P (1962) Sea-level rise as a cause of shore erosion. J Waterw Harbours Div 88(1–3):117–130",{"doi":322},{"id":318,"text":342,"url":320,"identifiers":343},"Church J, White N (2011) Sea-level rise from the late 19th to the early 21st century. Surv Geophys 32:585–602",{"doi":322},{"id":318,"text":345,"url":320,"identifiers":346},"De Conto RM, Pollard D (2016) Contribution of Antarctica to past and future sea-level rise. Nature 531:591–597",{"doi":322},{"id":348,"text":349,"url":350,"identifiers":351},"b6aebb47-8473-415c-ab22-3d89898bd65e","Engelmann A, Neber A, Frenchen M, Boenigk W, Ronen A (2001) Luminescence chronology of Upper Pleistocene and Holocene aeolianites from Netanya South Sharon coastal plain, Israel. Quat Sci Rev 20:799–804","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0277379100000354",{"doi":352},"10.1016\u002Fs0277-3791(00)00035-4",{"id":318,"text":354,"url":320,"identifiers":355},"Fairbanks RG (1989) A 17,000-year Glacio-Eustatic Sea-level record: influence of glacial melting rates on the younger Dryas event and deep-ocean circulation. Nature 342:637–642",{"doi":322},{"id":18,"text":357,"url":18,"identifiers":358},"Flemming NA, Raban A, Goetschel C (1978) Tectonic and eustatic changes on the Mediterranean coast of Israel in the last 9,000 years. In: Gamble JC, Yorke RA (eds), progress in underwater science, Vol. 3 (new series) of the report of the underwater association, proceedings of the 11th symposium at the British museum (natural history), 33–93",{},{"id":318,"text":360,"url":320,"identifiers":361},"Frenchen M, Dermann B, Boenigk W, Ronen A (2001) Luminescence chronology of aeolianites from the section at Givat Olga coastal plain of Israel. Quat Sci Rev 20:805–809",{"doi":322},{"id":363,"text":364,"url":365,"identifiers":366},"3074687c-2a42-4e64-9886-3f1d8b87f12e","Frenchen M, Neber A, Dermann B, Tsatskin A, Boenigk W, Ronen A (2002) Chronostratigraphy of aeolianites from the Sharon coastal plain of Israel. Quat Int 89:31–44","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS1040618201000799",{"doi":367},"10.1016\u002FS1040-6182(01)00079-9",{"id":18,"text":369,"url":18,"identifiers":370},"Frost H (1970) Bronze-age stone anchors from the eastern Mediterranean. Dating and identification. Mariners Mirror 56:381–385",{},{"id":18,"text":372,"url":18,"identifiers":373},"Frost H (1973) Anchors, the potsherds of marine archaeology: on the recording of pierced stones from the Mediterranean. In: Blackman D, (ed), Marine Archaeology, London, 397–409",{},{"id":18,"text":375,"url":18,"identifiers":376},"Fugro Engineers BV (1998) Geotechnical survey, offshore sand resources, Israel. Report N-3607\u002F01F: 4 pans appendices 1, 4, 5.",{},{"id":318,"text":378,"url":320,"identifiers":379},"Galili E (1985a) A group of stone anchors from Newe-yam. Int J Naut Archaeol 14.2:143–153",{"doi":322},{"id":18,"text":381,"url":18,"identifiers":382},"Galili E (1985b) Clay exposures and archaeological finds on the sea bottom, between Haifa and Atlit. Unpublished MA Thesis, Dept. of Maritime Civilizations, University of Haifa, Israel (in Hebrew)",{},{"id":18,"text":384,"url":18,"identifiers":385},"Galili E (2004) PhD Dissertation, Faculty of Humanities, Department of Archaeology and Near- Eastern cultures, Tel Aviv University, Submerged settlements of the ninth-seventh mill. BP off the Carmel coast (in Hebrew)",{},{"id":18,"text":387,"url":388,"identifiers":389},"Galili E, Arenson S (2014) Ancient coastal and underwater sites on the Mediterranean coast of Israel: risk assessment, protection, salvage excavations and conservation of endangered maritime cultural resources: Part I - Riparia 0:151–177 http:\u002F\u002Fhdl.handle.net\u002F10498\u002F17040","http:\u002F\u002Fhdl.handle.net\u002F10498\u002F17040",{},{"id":18,"text":391,"url":392,"identifiers":393},"Galili E, Arenson S (2015) Ancient coastal and underwater sites on the Mediterranean coast of Israel: risk assessment, protection, salvage excavations and conservation of endangered maritime cultural resources: Part II - Riparia 1:55–96 http:\u002F\u002Fhdl.handle.net\u002F10498\u002F17335","http:\u002F\u002Fhdl.handle.net\u002F10498\u002F17335",{},{"id":318,"text":395,"url":320,"identifiers":396},"Galili E, Nir Y (1993) The submerged pre-pottery Neolithic water well of Atlit-yam, northern Israel, and its palaeoenvironmental implications. 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Int J Naut Archaeol 22:61–77",{"doi":322},{"id":318,"text":410,"url":320,"identifiers":411},"Galili E, Weinstein-Evron M, Hershkovitz I, Gopher A, Kislev M, Lernau O, Kolska Horowitz L, Lernau H (1993b) Atlit-yam: a prehistoric site on the sea floor off the Israeli coast. J Field Archaeol 20:133–156",{"doi":322},{"id":318,"text":413,"url":320,"identifiers":414},"Galili E, Sharvit J, Artzy M (1994) Reconsidering Byblian and Egyptian stone anchors using numeral methods: new finds from the Israeli coast. Int J Naut Archaeol 23.2:93–107",{"doi":322},{"id":18,"text":416,"url":18,"identifiers":417},"Galili E, Raban A, Sharvit J (2002) Forty years of marine archaeology in Israel. In: Tzalas H (ed) Tropis VII, Proceedings of 7th international symposium on ship construction in antiquity. Pylos 1999, 927–961",{},{"id":318,"text":419,"url":320,"identifiers":420},"Galili E, Zviely D, Weinstein-Evron M (2005) Holocene Sea-level changes and landscape evolution on the northern Carmel coast (Israel). 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Earth Surf Process Landf 29:175–184",{"doi":322},{"id":18,"text":536,"url":18,"identifiers":537},"Zviely D, Klein M, Rosen DS (2000) The impact of the Herzliya marina, Israel, on the width of its neighbouring beaches. 27th international conference on coastal engineering (ICCE), book of abstracts, Vol. 2, poster no. 62, Sydney (16-21.7.2000)",{},{"id":318,"text":539,"url":320,"identifiers":540},"Zviely D, Sivan D, Ecker A, Bakler N, Rohrlich V, Galili E, Boaretto E, Klein M, Kit E (2006) The Holocene evolution of Haifa Bay area, Israel, and its influence on the ancient human settlements. The Holocene 16(6):849–861",{"doi":322},{"id":318,"text":542,"url":320,"identifiers":543},"Zviely D, Kit E, Klein M (2007) Longshore sand transport estimates along the Mediterranean coast of Israel in the Holocene. Mar Geol 238:61–73",{"doi":322},false,{"id":546,"createTime":547,"updateTime":548,"relativeEntities":549,"slug":550,"properties":551,"entityType":201,"verifyStatus":202,"verifyTime":564,"verifyNote":204,"languages":18,"translateLanguages":565,"viewCount":19,"primaryUrl":567,"fullTextUrl":18,"authors":568,"publicationType":241,"publisherRelationship":610,"citationCount":19,"citationInfo":665,"publishDate":668,"publishYear":666,"citationAnalyzeStatus":669,"lastCitationAnalyze":670,"indexDatabases":671,"openAccess":18,"references":672,"isForceReanalyzing":544},"eb0b4f74-f7c1-468f-805a-59697f4980c3","2024-01-15T13:12:33.434+00:00","2026-07-29T01:46:40.847+00:00",[],"Evaluating-the-effects-of-foraging-habitat-restoration-on-shorebird-reproduction-the-importance-of-performance-criteria-and-comparative-design",{"abstract":552,"title":555,"gsPaper":558,"keywords":560,"doi":562},{"VI":553,"EN":554},"Phát triển và các dự án kỹ thuật ven biển gây trở ngại cho các quá trình sinh thái cung cấp môi trường sống cho các loài chim làm tổ trên bãi biển. Quản lý cho các loài ven biển có thể phụ thuộc vào các hành động nhằm phục hồi các đặc điểm môi trường sống quan trọng và giảm thiểu các tác động gây rối. Tuy nhiên, phản ứng của các loài đối với việc phục hồi hoặc các hành động quản lý khác có thể khó đo lường hoặc dự đoán. Tại Công viên Bang Jones Beach, trên Đảo Long, New York, một dự án phục hồi diện tích 0.49 ha đã cung cấp môi trường sống tìm kiếm thức ăn ẩm ướt cho chim Piping Plovers (Charadrius melodus) trong thời gian từ năm 2002 đến 2005. Chúng tôi đã xem xét việc phục hồi môi trường sống tìm kiếm thức ăn có ảnh hưởng đến kích thước quần thể sinh sản, năng suất và sản xuất chim non của Piping Plover trong phạm vi 300 m từ địa điểm phục hồi. Chúng tôi phát hiện mối quan hệ tích cực giữa việc phục hồi môi trường sống và số lượng chim non được sinh ra hàng năm. Tuy nhiên, việc phục hồi môi trường sống tìm kiếm thức ăn không làm tăng đáng kể số cặp Plover sinh sản tại Jones Beach. Khả năng đánh giá tác động của sự phục hồi đối với các con Plover phụ thuộc vào: 1) việc sử dụng nhiều tiêu chí đánh giá hiệu suất; 2) một thiết kế cho phép so sánh dữ liệu trước và sau phục hồi; và 3) một kiểm soát không gian cho phép so sánh các khu vực tương tự gần và xa với địa điểm phục hồi. Mặc dù kích thước của dự án phục hồi nhỏ, nhưng có những lợi ích có thể đo lường được cho những con Plover, cho thấy việc phục hồi môi trường sống tìm kiếm thức ăn có thể là một công cụ hiệu quả cho việc phục hồi các loài.","Coastal development and engineering projects preclude ecosystem processes that provide habitat for beach nesting birds. Management for coastal species may depend on actions that attempt to restore important habitat features and mitigate disturbance effects. However, species response to restoration or other management actions may be difficult to predict or measure. At Jones Beach State Park, on Long Island, New York, a 0.49 ha restoration project provided moist substrate foraging habitat for breeding Piping Plovers (Charadrius melodus) from 2002 to 2005. We examined whether foraging habitat restoration affected Piping Plover breeding population size, productivity, and fledgling production within 300 m of the restoration site. We found a positive relationship between habitat restoration and the number of fledglings produced per year. However, foraging habitat restoration did not significantly increase the number of Plover pairs breeding at Jones Beach. Our ability to evaluate restoration effects on Plovers depended on: 1) use of multiple performance criteria; 2) a design that allowed comparison of pre- and post-restoration data; and 3) a spatial control that allowed comparison of similar areas that were near and far from the restoration site. Despite the small size of the restoration project, there were measurable benefits to Plovers, indicating that foraging habitat restoration may be an effective tool for species recovery.",{"EN":556,"VI":557},"Evaluating the effects of foraging habitat restoration on shorebird reproduction: the importance of performance criteria and comparative design","Đánh giá tác động của việc phục hồi môi trường sống tìm kiếm thức ăn đến sinh sản của các loài chim bãi biển: tầm quan trọng của các tiêu chí đánh giá hiệu suất và thiết kế so sánh",{"VOID":559},"[\"596867761389489422\"]",{"VI":561},"phục hồi môi trường sống, sinh sản, chim bãi biển, Piping Plover, đánh giá hiệu suất, thiết kế so sánh",{"VOID":563},"10.1007\u002Fs11852-010-0128-x","2024-05-02T20:59:56.157+00:00",[566],"VI","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs11852-010-0128-x",[569,593],{"id":570,"sortIndex":19,"researcher":18,"roles":571,"affiliations":572,"properties":590,"displayName":592,"givenName":18,"familyName":18},"84d327d6-65f0-4a46-ab76-5315ca52fbee",[210],[573,581],{"id":574,"sortIndex":19,"affiliation":575,"properties":18},"10dff9bd-3c24-4c94-8308-b82455d71644",{"id":574,"createTime":18,"updateTime":18,"relativeEntities":576,"slug":18,"properties":577,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":580,"statistic":18},[],{"title":578},{"VI":579},"New York State Parks, Babylon, USA",[],{"id":582,"sortIndex":225,"affiliation":583,"properties":589},"24a24aa7-dda4-4daa-a76f-e8230d7887af",{"id":582,"createTime":18,"updateTime":18,"relativeEntities":584,"slug":18,"properties":585,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":588,"statistic":18},[],{"title":586},{"VI":587},"Department of Biology, Hofstra University, Hempstead, USA",[],{},{"title":591},{"VI":592},"Annie F. McIntyre",{"id":594,"sortIndex":225,"researcher":18,"roles":595,"affiliations":596,"properties":605,"displayName":607,"givenName":18,"familyName":18},"f85d9ed0-e4e1-4716-9245-ad3b5a59210e",[210],[597],{"id":598,"sortIndex":19,"affiliation":599,"properties":18},"b429484e-38dd-42a6-a1fb-5f98aeb79cfa",{"id":598,"createTime":18,"updateTime":18,"relativeEntities":600,"slug":18,"properties":601,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":604,"statistic":18},[],{"title":602},{"VI":603},"Department of Biological Sciences, Boise State University, Boise, USA",[],{"title":606,"gsAuthor":608},{"VI":607},"Julie A. 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Wilson J Orn 120:404–407",{"doi":322},{"id":692,"text":693,"url":694,"identifiers":695},"4f0e3689-0b75-4b05-a5b5-49b1dee52fa7","Dean RD, Dalrymple RA (2002) Coastal processes with engineering applications. Cambridge University Press","https:\u002F\u002Fwww.goodreads.com\u002Fbook\u002Fshow\u002F647136.Coastal_Processes_with_Engineering_Applications",{"isbn":696,"isbn13":697},"0521602750","9780521602754",{"id":318,"text":699,"url":320,"identifiers":700},"Defeo O, McLachlan A, Schoeman DS, Schlacher TA, Dugan J, Jones A, Lastra M, Scapini F (2009) Threats to sandy beach ecosystems: a review. Estuar Coast Shelf Sci 81:1–12",{"doi":322},{"id":318,"text":702,"url":320,"identifiers":703},"Elias SP, Fraser JD, Buckley PA (2000) Piping Plover brood foraging ecology on New York barrier islands. J Wildl Manag 64:346–354",{"doi":322},{"id":318,"text":705,"url":320,"identifiers":706},"Erwin RM, Allen DH, Jenkins D (2003) Created versus natural coastal islands: Atlantic waterbird populations, habitat choices, and management implications. Estuaries 26:949–955",{"doi":322},{"id":18,"text":708,"url":18,"identifiers":709},"Fraser JD, Keane SE, Buckley PA (2005) Prenesting use of intertidal habitats by Piping Plovers on South Monomoy Island, Massachusetts. J Wildl Manag 69:1731–1736",{},{"id":18,"text":711,"url":18,"identifiers":712},"Fretwell SD, Lucas HL Jr (1970) On territorial behaviour and other factors influencing habitat distribution in birds. I. Theoretical development. Acta Biotheor 19:16–36",{},{"id":18,"text":714,"url":18,"identifiers":715},"Goldin MR, Regosin J (1998) Chick behavior, habitat use, and reproductive success of Piping Plovers at Goosewing Beach, Rhode Island. J Field Orn 69:228–234",{},{"id":18,"text":717,"url":18,"identifiers":718},"Guilfoyle MP, Fischer RA, Pashley DN, Lott CA (2006) Summary of First Regional Workshop on Dredging, Beach Nourishment, and Birds on the South Atlantic Coast. US Army Corps of Engineers, Dredging Operations and Environmental Research Program, Engineer Research and Development Center, Technical Report-06-10; Vicksburg, MS",{},{"id":18,"text":720,"url":18,"identifiers":721},"Haig SM, Oring LW (1988) Mate, site, and territory fidelity in Piping Plovers. Auk 105:268–277",{},{"id":18,"text":723,"url":18,"identifiers":724},"Klein LR, Clayton SR, Alldredge JR, Goodwin P (2007) Long-term monitoring and evaluation of the Lower Red River Meadow Restoration Project, Idaho, USA. Restor Ecol 15:223–239",{},{"id":18,"text":726,"url":18,"identifiers":727},"Leatherman SP (1988) Barrier island handbook. Coastal Publication Series, Laboratory for Coastal Research, University of Maryland",{},{"id":318,"text":729,"url":320,"identifiers":730},"Le Fer D, Fraser JD, Kruse CD (2008) Piping Plover foraging-site selection on the Missouri River. Waterbirds 31:587–592",{"doi":322},{"id":318,"text":732,"url":320,"identifiers":733},"Loegering JP, Fraser JD (1995) Factors affecting Piping Plover chick survival in different brood-rearing habitats. J Wildl Manag 59:646–655",{"doi":322},{"id":18,"text":735,"url":18,"identifiers":736},"McIntyre, AF, Heath JA, Jannsen J (2010) Trends in piping plover reproduction at Jones Beach State Park, NY, 1995–2007. North East Nat",{},{"id":318,"text":738,"url":320,"identifiers":739},"Nordstrom KF, Lampe R, Vandermark LM (2000) Reestablishing naturally functioning dunes on developed coasts. Environ Manag 25:37–51",{"doi":322},{"id":318,"text":741,"url":320,"identifiers":742},"Patterson ME, Fraser JD, Roggenbuck JW (1991) Factors affecting Piping Plover productivity on Assateague Island. J Wildl Manag 55:525–531",{"doi":322},{"id":318,"text":744,"url":320,"identifiers":745},"Pauliny A, Larsson M, Blomqvist D (2008) Nest predation management: effects on reproductive success in endangered shorebirds. J Wildl Manag 72:1579–1583",{"doi":322},{"id":318,"text":747,"url":320,"identifiers":748},"Peterson CH, Bishop MJ (2005) Assessing the environmental impacts of beach nourishment. Bioscience 55:887–896",{"doi":322},{"id":18,"text":750,"url":18,"identifiers":751},"Shaffer F, Laporte P (1994) Diet of Piping Plover on the Magdalen Islands, Quebec. Wilson Bull 106:531–536",{},{"id":18,"text":753,"url":18,"identifiers":754},"Thompson BC, Knadle GE, Brubaker DL, Brubaker KS (2001) Nest success is not an adequate comparative estimate of avian reproduction. J Field Orn 72:527–536",{},{"id":318,"text":756,"url":320,"identifiers":757},"Trembanis AC, Pilkey OH, Valverde HR (1999) Comparison of beach nourishment along the US. Atlantic, Great Lakes, Gulf of Mexico, and New England shorelines. Coast Manag 27:329–340",{"doi":322},{"id":18,"text":759,"url":18,"identifiers":760},"United States Fish and Wildlife Service (1996) Piping Plover (Charadrius melodus) Atlantic coast revised recovery plan. Hadley, MA, 258 pp",{},{"id":318,"text":762,"url":320,"identifiers":763},"Wilcox LR (1959) A twenty year banding study of the Piping Plover. Quart J Orn 76:129–152",{"doi":322},{"id":765,"createTime":766,"updateTime":767,"relativeEntities":768,"slug":769,"properties":770,"entityType":201,"verifyStatus":202,"verifyTime":779,"verifyNote":204,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":780,"fullTextUrl":18,"authors":781,"publicationType":241,"publisherRelationship":814,"citationCount":19,"citationInfo":869,"publishDate":872,"publishYear":870,"citationAnalyzeStatus":17,"lastCitationAnalyze":767,"indexDatabases":873,"openAccess":18,"references":874,"isForceReanalyzing":544},"5634e715-1ce0-484f-8075-c908b3bfc5be","2024-01-26T09:10:48.775+00:00","2026-07-22T17:05:58.889+00:00",[],"Rates-of-shoreline-change-along-the-coast-of-Bangladesh",{"abstract":771,"title":773,"gsPaper":775,"doi":777},{"EN":772},"Bangladesh, at the confluence of the sediment-laden Ganges and Brahmaputra Rivers, supports an enormous and rapidly growing population (>140 million in 2011), across low-lying alluvial and delta plains that have accumulated over the past few thousand years. It has been identified as one of the most vulnerable places in the world to the impacts of climate change and sea-level rise. Although abundant sediment supply has resulted in accretion on some parts of the coast of Bangladesh, others are experiencing rapid erosion. We report a systematic assessment of rates of shoreline change over a 20-year period from 1989 to 2009, using Landsat satellite images with pixel resolution of 30 m on the ground. A Band ratio approach, using Band-5 divided by Band-2, discriminated the water line on images that were largely cloud-free, adequately registered, and at comparable tidal stages. Rates of shoreline change were calculated for >16,000 transects generated at 50 m intervals along the entire mainland coastline (>1,100 km) and major islands, using the End Point Rate (EPR) method in the Digital Shoreline Analysis System (DSAS) extension in ArcGIS®. Erosion characterises most of the seaward margin of the Sundarbans in western Bangladesh. Retreat rates of up to 20 m\u002Fyr are typical, with little evidence that local devastation of the mangrove fringe by Cyclone Sidr in November 2007 had resulted in uncharacteristic long-term rates of retreat where it made landfall. Erosion exceeded accretion in the Barguna Patuakhali coastal zone, most of which eroded at up to 20 m\u002Fyr, but with truncation of the southern tip of the Patharghata Upazila at up to 100 m\u002Fyr. In Bhola, erosion at rates of up to 120 m\u002Fyr were observed along much of the coast, but in the Noakhali Feni coastal zone, similar rates of erosion were balanced by rapid accretion of the main promontory by more than 600 m\u002Fyr. Rates of change were more subdued in the Chittagong and Cox’s Bazar coastal zones of southeast Bangladesh. Islands in the Meghna estuary were especially dynamic; Hatiya Island accreted along some of its shoreline by 50 km2 between 1989 and 2009, but lost 65 km2 through erosion elsewhere, resulting in the island moving south. Similar trends were observed on adjacent islands. The overall area changed relatively little across the entire coastline over the 20-year period with accretion of up to 315 km2, countered by erosion of about 307 km2.",{"EN":774},"Rates of shoreline change along the coast of Bangladesh",{"VOID":776},"[\"5078272615475343015\"]",{"VOID":778},"10.1007\u002Fs11852-013-0251-6","2024-05-03T13:11:09.056+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs11852-013-0251-6",[782,799],{"id":783,"sortIndex":19,"researcher":18,"roles":784,"affiliations":785,"properties":794,"displayName":796,"givenName":18,"familyName":18},"0fa5cfd7-8b51-47d9-ad5f-65a394708842",[210],[786],{"id":787,"sortIndex":19,"affiliation":788,"properties":18},"d47970cd-f315-41e6-a0d0-c67c23aeae27",{"id":787,"createTime":18,"updateTime":18,"relativeEntities":789,"slug":18,"properties":790,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":793,"statistic":18},[],{"title":791},{"VI":792},"School of Earth and Environmental Sciences, University of Wollongong, Wollongong, Australia",[],{"title":795,"gsAuthor":797},{"VI":796},"Md. Golam Mahabub Sarwar",{"VOID":798},"[\"cfUHgy4AAAAJ\"]",{"id":800,"sortIndex":225,"researcher":18,"roles":801,"affiliations":802,"properties":809,"displayName":811,"givenName":18,"familyName":18},"f99cd4ab-9f8f-4021-bda1-8abf0966bac6",[210],[803],{"id":787,"sortIndex":19,"affiliation":804,"properties":18},{"id":787,"createTime":18,"updateTime":18,"relativeEntities":805,"slug":18,"properties":806,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":808,"statistic":18},[],{"title":807},{"VI":792},[],{"title":810,"gsAuthor":812},{"VI":811},"Colin D. 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Int J Environ Sci Technol 4:61–66",{"doi":322},{"id":318,"text":879,"url":320,"identifiers":880},"Allison MA (1998a) Geologic framework and environmental status of the Ganges-Brahmaputra delta. J Coastal Res 14:826–836",{"doi":322},{"id":318,"text":882,"url":320,"identifiers":883},"Allison MA (1998b) Historical changes in the Ganges-Brahmaputra delta front. J Coastal Res 14:1269–1275",{"doi":322},{"id":885,"text":886,"url":887,"identifiers":888},"7831b708-835f-4448-b4dd-4961f8f4bf16","Allison MA, Kepple EB (2001) Modern sediment supply to the lower delta plain of the Ganges-Brahmaputra River in Bangladesh. Geo-Mar Lett 21:66–74","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs003670100069",{"doi":889},"10.1007\u002Fs003670100069",{"id":318,"text":891,"url":320,"identifiers":892},"Bala B, Hossain M (2010) Modeling of food security and ecological footprint of coastal zone of Bangladesh. Environ Dev Sustain 12:511–529",{"doi":322},{"id":318,"text":894,"url":320,"identifiers":895},"Barua DK (1997) The active delta of the Ganges-Brahmaputra rivers: dynamics of its present formations. Mar Geod 20:1–12",{"doi":322},{"id":18,"text":897,"url":18,"identifiers":898},"BBS (2011) Population and housing census 2011: preliminary results. Bangladesh Bureau of Statistics (BBS), Ministry of Planning, Government of the People’s Republic of Bangladesh, Dhaka",{},{"id":318,"text":900,"url":320,"identifiers":901},"Begum S, Fleming G (1997) Climate change and sea level rise in Bangladesh, part II: effects. Mar Geod 20:55–68",{"doi":322},{"id":318,"text":903,"url":320,"identifiers":904},"Benny AH (1980) Coastal definition using Landsat data. Int J Remote Sens 1:255–260",{"doi":322},{"id":318,"text":906,"url":320,"identifiers":907},"Cruz RV, Harasawa H, Lal M, Wu S, Anokhin Y, Punsalmaa B, Honda Y, Jafari M, Li C, Ninh NH (2007) Asia. In: Parry ML, Canziani OF, Palutikof JP, Linden PJ, Hanson CE (eds) Climate change 2007: impacts, adaptation and vulnerability. Contribution of working group II to the fourth assessment report of the intergovernmental panel on climate change. Cambridge University Press, Cambridge, pp 469–506",{"doi":322},{"id":318,"text":909,"url":320,"identifiers":910},"Frazier PS, Page KJ (2000) Water body detection and delineation with Landsat TM data. Photogramm Eng Remote Sens 66:1461–1467",{"doi":322},{"id":318,"text":912,"url":320,"identifiers":913},"Giri C, Pengra B, Zhu Z, Singh A, Tieszen LL (2007) Monitoring mangrove forest dynamics of the Sundarbans in Bangladesh and India using multi-temporal satellite data from 1973 to 2000. Estuar Coast Shelf Sci 73:91–100",{"doi":322},{"id":915,"text":916,"url":917,"identifiers":918},"2b548efe-0ad5-4169-9ecf-80d39ba7d0f3","Goodbred SL (2003) Response of the Ganges dispersal system to climate change: a source-to-sink view since the last interstade. Sediment Geol 162:83–104","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0037073803002173",{"doi":919},"10.1016\u002Fs0037-0738(03)00217-3",{"id":921,"text":922,"url":923,"identifiers":924},"d09343de-b438-4821-bb01-d7bf22535636","Goodbred SL, Kuehl SA (1998) Floodplain processes in the Bengal Basin and the storage of Ganges-Brahmaputra river sediment: an accretion study using 137Cs and 210Pb geochronology. Sediment Geol 121:239–258","https:\u002F\u002Flinkinghub.elsevier.com\u002Fretrieve\u002Fpii\u002FS0037073898000827",{"doi":925},"10.1016\u002Fs0037-0738(98)00082-7",{"id":318,"text":927,"url":320,"identifiers":928},"Goodbred SL, Kuehl SA (1999) Holocene and modern sediment budgets for the Ganges-Brahmaputra river system: evidence for highstand dispersal to flood-plain, shelf, and deep-sea depocenters. Geol 27:559–562",{"doi":322},{"id":318,"text":930,"url":320,"identifiers":931},"Goodbred SL, Kuehl SA (2000a) Enormous Ganges-Brahmaputra sediment discharge during strengthened early Holocene monsoon. Geol 28:1083–1086",{"doi":322},{"id":318,"text":933,"url":320,"identifiers":934},"Goodbred SL, Kuehl SA (2000b) The significance of large sediment supply, active tectonism, and eustasy on margin sequence development: late quaternary stratigraphy and evolution of the Ganges-Brahmaputra delta. Sediment Geol 133:227–248",{"doi":322},{"id":318,"text":936,"url":320,"identifiers":937},"Himmelstoss EA (2009) DSAS 4.0 installation instructions and user guide. In: Thieler ER, Himmelstoss EA, Zichichi JL, Ergul A (eds) Digital shoreline analysis system (DSAS) version 4.0 — an ArcGIS extension for calculating shoreline change. U.S. Geological Survey (USGS)",{"doi":322},{"id":318,"text":939,"url":320,"identifiers":940},"Hoque M, Alam M (1997) Subsidence in the lower deltaic areas of Bangladesh. Mar Geod 20:105–120",{"doi":322},{"id":318,"text":942,"url":320,"identifiers":943},"Islam MR, Begum SF, Yamaguchi Y, Ogawa K (1999) The Ganges and Brahmaputra rivers in Bangladesh: basin denudation and sedimentation. Hydrol Process 13:2907–2923",{"doi":322},{"id":318,"text":945,"url":320,"identifiers":946},"Jimenez JA, Sanchez-Arcilla A, Bou J, Ortiz MA (1997) Analysing short-term shoreline changes along the Ebro delta (Spain) using aerial photographs. J Coast Res 13:1256–1266",{"doi":322},{"id":318,"text":948,"url":320,"identifiers":949},"Karim MF, Mimura N (2008) Impacts of climate change and sea-level rise on cyclonic storm surge floods in Bangladesh. Glob Environ Chang 18:490–500",{"doi":322},{"id":951,"text":952,"url":953,"identifiers":954},"d4865c65-41ae-48f5-b08d-12102c807000","Marfai M, Almohammad H, Dey S, Susanto B, King L (2008) Coastal dynamic and shoreline mapping: multi-sources spatial data analysis in Semarang Indonesia. Environ Monit Assess 142:297–308","http:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs10661-007-9929-2",{"doi":955},"10.1007\u002Fs10661-007-9929-2",{"id":957,"text":958,"url":959,"identifiers":960},"42f56b32-47fd-43b1-a15b-997b1bed00e8","Michels KH, Kudrass HR, Hübscher C, Suckow A, Wiedicke M (1998) The submarine delta of the Ganges-Brahmaputra: cyclone-dominated sedimentation patterns. Mar Geol 149:133–154","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0025322798000218",{"doi":961},"10.1016\u002Fs0025-3227(98)00021-8",{"id":963,"text":964,"url":965,"identifiers":966},"a268a87a-5094-4f56-ae58-e69cd6c061e7","Mikhailov VN, Dotsenko MA (2007) Processes of delta formation in the mouth area of the Ganges and Brahmaputra rivers. Water Resour 34:385–400","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1134\u002FS0097807807040033",{"doi":967},"10.1134\u002FS0097807807040033",{"id":318,"text":969,"url":320,"identifiers":970},"Nicholls RJ, Wong PP, Burkett VR, Codignotto JO, Hay JE, McLean RF, Ragoonaden S, Woodroffe CD (2007) Coastal systems and low-lying areas. In: Parry ML, Canziani OF, Palutikof JP, Linden PJ, Hanson CE (eds) Climate change 2007: impacts, adaptation and vulnerability, contribution of working group II to the fourth assessment report of the intergovernmental panel on climate change. Cambridge University Press, Cambridge, pp 315–356",{"doi":322},{"id":972,"text":973,"url":974,"identifiers":975},"3fe74bbe-bbd5-4f6a-b085-726e3c070a79","O’Connor MC, Cooper JAG, McKenna J, Jackson DWT (2010) Shoreline management in a policy vacuum: a local authority perspective. Ocean Coast Manag 53:769–778","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0964569110001663",{"doi":976},"10.1016\u002Fj.ocecoaman.2010.10.016",{"id":318,"text":978,"url":320,"identifiers":979},"Rahman AF, Dragoni D, El-Masri B (2011) Response of the Sundarbans coastline to sea level rise and decreased sediment flow: a remote sensing assessment. Remote Sens Environ 115:3121–3128",{"doi":322},{"id":318,"text":981,"url":320,"identifiers":982},"Rashid T, Suzuki S, Sato H, Monsur MH, Saha SK (2013) Relative sea-level changes during the Holocene in Bangladesh. J Asian Earth Sci 64:136–150",{"doi":322},{"id":18,"text":984,"url":18,"identifiers":985},"Sarwar GM, Khan MH (2007) Sea level rise: a threat to the coast of Bangladesh. Internationales Asien forum. Int Q Asian Stud 38:375–397",{},{"id":18,"text":987,"url":988,"identifiers":989},"UNFPA (2011) Population projection 2021. United Nations Population Fund Association (UNFPA). http:\u002F\u002Fwww.unfpa-bangladesh.org\u002Fcharts\u002FPopulationProjection2021.htm. Accessed on 12 October 2011","http:\u002F\u002Fwww.unfpa-bangladesh.org\u002Fcharts\u002FPopulationProjection2021.htm",{},{"id":18,"text":991,"url":18,"identifiers":992},"WARPO (2006) Coastal development strategy. Water Resources Planning Organization (WARPO), Ministry of Water Resources, Government of the People’s Republic of Bangladesh, Dhaka",{},{"id":318,"text":994,"url":320,"identifiers":995},"Warrick RA, Ahmad QK (eds) (1996) The implications of climate and sea level change for Bangladesh. Kluwer Academic Publishers, Dordrecht",{"doi":322},{"id":318,"text":997,"url":320,"identifiers":998},"White K, Asmar E, Hesham M (1999) Monitoring changing position of coastlines using Thematic Mapper imagery, an example from the Nile delta. Geomorphology 29:93–105",{"doi":322},{"id":18,"text":1000,"url":18,"identifiers":1001},"Woodroffe CD, Nicholls RJ, Saito Y, Chen Z, Goodbred SL (2006) Landscape variability and the response of Asian megadeltas to environmental change: the Asia-Pacific Region. In: Harvey N (ed) Global change and integrated coastal management. Springer, The Netherlands, pp 277–314",{},{"id":18,"text":1003,"url":18,"identifiers":1004},"World Bank (1990) Bangladesh-Muhuri Irrigation Project, ID- P009380, Project completion Report, No-8555, Washington DC",{},{"id":1006,"createTime":1007,"updateTime":1008,"relativeEntities":1009,"slug":1010,"properties":1011,"entityType":201,"verifyStatus":202,"verifyTime":1022,"verifyNote":204,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":1023,"fullTextUrl":18,"authors":1024,"publicationType":241,"publisherRelationship":1070,"citationCount":19,"citationInfo":1125,"publishDate":1128,"publishYear":1126,"citationAnalyzeStatus":669,"lastCitationAnalyze":1129,"indexDatabases":1130,"openAccess":18,"references":18,"isForceReanalyzing":544},"92eafa4b-8c9c-450f-811f-d94a70494d45","2024-01-15T06:15:51.829+00:00","2026-07-22T15:56:28.140+00:00",[],"Coastal-erosion-management-and-the-European-principles-of-ICZM-local-versus-strategic-perspectives",{"abstract":1012,"title":1014,"gsPaper":1016,"references":1018,"doi":1020},{"EN":1013},"The European Recommendation on Integrated Coastal Zone Management has six core principles. These form two groups, one concerned with strategic goals and one that has a local focus. The principles are presented as a menu of free-standing options, with no prioritization either within or between groups. In the case of coastal erosion management these characteristics result in irreconcilable conflicts, and actively hinder sustainable management of eroding coasts. The principles require clarification, and recognition that they are an indivisible integrated set which should not be used to select principles to advance a particular agenda. It is essential that the strategic principles are given priority, because only they can underpin a sustainable approach to the issue of coastal erosion.",{"EN":1015},"Coastal erosion management and the European principles of ICZM: local versus strategic perspectives",{"VOID":1017},"[\"11952340758090498453\"]",{"VOID":1019},"Carter RWG, Johnston TW, McKenna J, Orford JD (1987) Sea-level, sediment supply and coastal changes: examples from the coast of Ireland. Prog Oceanogr 18(1–4):79–101, doi:10.1016\u002F0079-6611(87)90027-9\nClayton KM (1993) Coastal Processes and Coastal Management. Countryside Commission, Cheltenham\nCooper JAG, McKenna J (2008a) Social Justice in coastal erosion management: the temporal and spatial dimensions. Geoforum 39(1):294–306, doi:10.1016\u002Fj.geoforum.2007.06.007\nCooper JAG, McKenna J (2008b) Working with natural processes: the challenge for coastal protection strategies. Geogr J 174(4):315–331\nCooper JAG, McKenna J, Jackson DWT, O’Connor M (2007) Mesoscale coastal behaviour related to morphological self-adjustment. Geology 35(1):187–190, doi:10.1130\u002FG23016A.1\nDoherty A (1997) Clifftop temple lifeline. Belfast Telegraph 18 Sept. 1997\nDutch Government Ministry of Transport, Public Works and Water Management, the Ministry of Housing, Spatial Planning and the Environment, the Ministry of Agriculture, Nature and Food Quality and the Ministry of Economic Affairs (2005) EU Recommendation concerning the implementation of ICZM in Europe: report on implementation in the Netherlands. RWS RIKZ, The Hague\nEEA (European Environment Agency) (2006) The Changing Face of Europe’s Coastal Areas. EEA Report 6\u002F2006, Copenhagen\nETCTE (European Topic Centre on Terrestrial Environment) (2005) Measuring sustainable development at the coast. Report to the EU ICZM Expert Group by the Working Group on Indicators and Data led by the ETCTE\nEuropean Commission (1999) Lessons from the European Commission’s Demonstration Programme on Integrated Coastal Zone Management (ICZM). Office for Official Publications of the European Communities, Luxembourg\nEuropean Commission (2004) Eurosion: Living with Coastal Erosion in Europe – Sediment and Space for Sustainability. Part 1—Major findings and Policy Recommendations of the EUROSION project. Office for Official Publications of the European Communities, Luxembourg\nEuropean Commission (2007) Communication from the Commission to the European Parliament, the Council, the European Economic and Social Committee and the Committee of the Regions: An Integrated Maritime Policy for the European Union – “the Blue Book”. COM (2007) 575 final, October 2007. Commission of the European Communities, Brussels\nEuropean Commission (2008) Communication from the Commission: Roadmap for Maritime Spatial Planning: Achieving Common Principles in the EU. COM (2008) 791, November 2008. Commission of the European Communities, Brussels\nEuropean Parliament and Council (2002) Recommendation of the European Parliament and of the Council of 30 May 2002 concerning the implementation of Integrated Coastal Zone Management in Europe (2002\u002F413\u002FEC). OJ L148 06.06.2002 p.24. Official Journal of the European Communities, 24–27\nField BC, Field MK (2002) Environmental Economics. McGraw-Hill, Boston\nKerby M (2005) Adaptive management and local specificity within ICZM: A genuine stakeholder’s perspective. Coastal Concern Action Group (CCAG), Paper presented at CoastNet Conference, Adaptive Management and Local Specificity in ICZM, Edinburgh, Scotland, 22 September 2005. Available at www.happisburgh.org.uk. Accessed 11 Dec 2006\nMarinet (2005) Shoreline Management Plans. Available at: http:\u002F\u002Fwww.marinet.org.uk\u002Fcoastaldefences\u002Fsmp.html. Accessed 15 Jan 2007\nMcKenna J, Cooper JAG (2006) Sacred cows in coastal management: The need for a ‘cheap and transitory’ model. Area 38(4):421–431, doi:10.1111\u002Fj.1475-4762.2006.00708.x\nMcKenna J, Cooper JAG, O’Hagan AM (2008) Managing by principle: A critical analysis of the European principles of Integrated Coastal Zone Management (ICZM). Mar Policy 32:941–955, doi:10.1016\u002Fj.marpol.2008.02.005\nNicolson A (2006) Living on the Edge. The Guardian 9 October 2006\nNorth Norfolk District Council (2005) Shoreline Management Plan Position Statement. Available at http:\u002F\u002Fwww.marinet.org.uk\u002Fcoastaldefences\u002Fsmp.html#nnd. Accessed 15 Jan 2007\nO’Connor M, Lymbery G, Cooper JAG, Gault J, McKenna J (2009) Practice versus policy-led coastal defence management. Mar Policy (in press)\nOrford J, Jennings S (1998) The importance of different time-scale controls on coastal management strategy: the problem of Porlock gravel barrier, Somerset, UK. In: Hooke J (ed) Coastal Defence and Earth Science Conservation. Geological Society, London, pp 87–102\nRupprecht Consult – Forschung & Beratung GmbH (2006) Evaluation of Integrated Coastal Zone Management (ICZM) in Europe: Final Report—revised version 1\u002F12\u002F2006. Cologne, Germany. Available at: http:\u002F\u002Fwww.rupprecht-consult.eu\u002Ficzm\u002F. Accessed 1 Sept 2007\nScottish Executive (2002) Assessment of the effectiveness of local coastal management partnerships as a delivery mechanism for Integrated Coastal Zone Management. The Stationery Office, Edinburgh, Report to Scottish Executive\nTaussik J, Ballinger R, Ball I, Carter D, Wilson R (2006) Adapting to Changing Coastlines and Rivers. Making Space for Water: Strand SD2 Taking forward a new Government strategy for flood and coastal erosion risk management. Developing a Broader Portfolio of Options to Deliver Flooding and Coastal Solutions. Preliminary Report to Defra, July 2006. Available at: http:\u002F\u002Fwww.defra.gov.uk\u002Fenviron\u002Ffcd\u002Fpolicy\u002Fstrategy\u002Fsd2\u002Fsd2rp1ex.pdf. Accessed 15 Jan 2007\nThe National Trust (2006) The National Trust Coastal Policy. Available at http:\u002F\u002Fwww.nationaltrust.org.uk\u002F. Accessed 13 Dec 2006",{"VOID":1021},"10.1007\u002Fs11852-008-0040-9","2024-06-23T02:49:20.639+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs11852-008-0040-9",[1025,1040,1055],{"id":1026,"sortIndex":19,"researcher":18,"roles":1027,"affiliations":1028,"properties":1037,"displayName":1039,"givenName":18,"familyName":18},"b1f80182-b550-4005-8fef-72a802923aac",[210],[1029],{"id":1030,"sortIndex":19,"affiliation":1031,"properties":18},"04169f43-eb66-4627-9e4b-d83d98dc447c",{"id":1030,"createTime":18,"updateTime":18,"relativeEntities":1032,"slug":18,"properties":1033,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1036,"statistic":18},[],{"title":1034},{"VI":1035},"Centre for Coastal and Marine Research, School of Environmental Sciences, University of Ulster, Coleraine, Northern Ireland",[],{"title":1038},{"VI":1039},"John McKenna",{"id":1041,"sortIndex":225,"researcher":18,"roles":1042,"affiliations":1043,"properties":1050,"displayName":1052,"givenName":18,"familyName":18},"175b0d76-a545-4cc7-83ae-b528c4ae26c4",[210],[1044],{"id":1030,"sortIndex":19,"affiliation":1045,"properties":18},{"id":1030,"createTime":18,"updateTime":18,"relativeEntities":1046,"slug":18,"properties":1047,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1049,"statistic":18},[],{"title":1048},{"VI":1035},[],{"title":1051,"gsAuthor":1053},{"VI":1052},"J. Andrew G. Cooper",{"VOID":1054},"[\"wck4s-UAAAAJ\"]",{"id":1056,"sortIndex":300,"researcher":18,"roles":1057,"affiliations":1058,"properties":1067,"displayName":1069,"givenName":18,"familyName":18},"ef8f3bc5-1327-4428-8aa7-349004a656a0",[210],[1059],{"id":1060,"sortIndex":19,"affiliation":1061,"properties":18},"15f5cfa4-ec6a-453e-9187-d91fe4508d86",{"id":1060,"createTime":18,"updateTime":18,"relativeEntities":1062,"slug":18,"properties":1063,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1066,"statistic":18},[],{"title":1064},{"VI":1065},"Coastal and Marine Resources Centre, University College Cork, Naval Base, Haulbowline, Cobh, County Cork, Ireland",[],{"title":1068},{"VI":1069},"Anne Marie O’Hagan",{"url":1023,"publisher":1071,"properties":1120},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1072,"slug":10,"properties":1073,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":1076,"manageAffiliations":1089,"indexDatabases":1100,"url":18,"thumbnailPath":18,"statistic":1115,"gsStatistic":18,"type":18,"analyzePriority":18},[],{"issn":1074,"title":1075},{"VOID":13},{"EN":15},[1077,1081,1085],{"id":22,"createTime":18,"updateTime":18,"relativeEntities":1078,"label":1079,"description":1080,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":25},{},{"id":28,"createTime":18,"updateTime":18,"relativeEntities":1082,"label":1083,"description":1084,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":31},{},{"id":34,"createTime":18,"updateTime":18,"relativeEntities":1086,"label":1087,"description":1088,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":37},{},[1090,1095],{"id":41,"createTime":18,"updateTime":18,"relativeEntities":1091,"slug":18,"properties":1092,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1094,"statistic":18},[],{"title":1093},{"EN":45},[],{"id":48,"createTime":18,"updateTime":18,"relativeEntities":1096,"slug":18,"properties":1097,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1099,"statistic":18},[],{"title":1098},{"EN":52},[54],[1101,1108],{"id":57,"indexDatabase":1102,"url":70,"indexYears":18,"academicFieldIds":1107,"indexDatabaseRanking":18},{"id":59,"createTime":18,"updateTime":18,"relativeEntities":1103,"label":1104,"description":1105,"key":66,"publicationTags":1106,"standard":18},[],{"EN":62,"VI":62},{"EN":64,"VI":65},[68,69],[72,73],{"id":75,"indexDatabase":1109,"url":86,"indexYears":87,"academicFieldIds":1114,"indexDatabaseRanking":92},{"id":77,"createTime":18,"updateTime":18,"relativeEntities":1110,"label":1111,"description":1112,"key":83,"publicationTags":1113,"standard":18},[],{"EN":80,"VI":80},{"EN":80,"VI":82},[85],[89,90,91],{"impactFactor":19,"impactFactorByYear":1116,"i10Index":106,"i10IndexLast5Year":107,"totalPublication":108,"totalPublicationByYear":1117,"totalCitation":132,"totalCitationByYear":1118,"totalCitationPerPublication":154,"totalCitationPerPublicationByYear":1119,"hindexLast5Year":181,"hindex":181},{"2012":95,"2013":96,"2014":97,"2015":98,"2016":99,"2017":100,"2018":101,"2019":101,"2020":102,"2021":103,"2022":104,"2023":105},{"1995":107,"1996":107,"1997":110,"1998":107,"1999":111,"2000":112,"2001":111,"2002":113,"2003":114,"2004":115,"2007":116,"2008":117,"2009":118,"2010":119,"2011":120,"2012":121,"2013":122,"2014":123,"2015":124,"2016":125,"2017":126,"2018":127,"2019":119,"2020":128,"2021":124,"2022":129,"2023":130,"2024":131},{"1996":134,"1997":107,"1998":135,"1999":136,"2000":137,"2001":138,"2002":139,"2003":140,"2004":141,"2007":131,"2008":142,"2010":143,"2011":144,"2012":145,"2013":146,"2014":147,"2015":148,"2016":149,"2017":150,"2018":151,"2019":152,"2020":143,"2021":126,"2022":153,"2023":107},{"1996":156,"1997":157,"1998":158,"1999":159,"2000":160,"2001":161,"2002":162,"2003":163,"2004":164,"2007":165,"2008":166,"2010":167,"2011":168,"2012":169,"2013":170,"2014":171,"2015":172,"2016":173,"2017":174,"2018":175,"2019":176,"2020":177,"2021":178,"2022":179,"2023":180},{"pages":1121,"volume":1123},{"VOID":1122},"165-173",{"VOID":1124},"13",{"total":19,"publishYear":1126,"statisticByYear":1127},2009,{},"2009-01-20","2026-07-22T15:56:28.139+00:00",[92,68],{"id":1132,"createTime":1133,"updateTime":1134,"relativeEntities":1135,"slug":1136,"properties":1137,"entityType":201,"verifyStatus":202,"verifyTime":1148,"verifyNote":204,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":1149,"fullTextUrl":18,"authors":1150,"publicationType":241,"publisherRelationship":1185,"citationCount":19,"citationInfo":1240,"publishDate":1243,"publishYear":1241,"citationAnalyzeStatus":669,"lastCitationAnalyze":1244,"indexDatabases":1245,"openAccess":18,"references":18,"isForceReanalyzing":544},"3f53dfe0-1e74-431b-80a3-c85fdfcad871","2023-12-29T21:07:49.826+00:00","2026-07-22T11:47:23.012+00:00",[],"Optimizing-investment-strategies-for-mangrove-plantations-by-considering-biological-and-economic-parameters",{"abstract":1138,"title":1140,"gsPaper":1142,"references":1144,"doi":1146},{"EN":1139},"Coastal deforestation in the Ayeyarwady Delta, Myanmar (formerly Burma) is addressed through the promotion of native-species mangrove plantations on cleared land formerly sustaining natural mangrove forests. To date there are no attempts to determine the optimal mangrove plantation strategy to maximize economic returns for private or communal plantation owners. We integrated empirical biological and economic data to suggest optimal mangrove plantation strategies in the region. We censused 4-yr oldAvicennia officinalis mangrove plantations in two townships to calculate survival and growth rates of mangroves planted using different techniques across an inundation gradient. We used the calculated rates to forecast the production of fuelwood, poles and posts at 10, 13 and 15 yr after establishment. We calculated the compound rate of growth for the three commodities over a 7-yr period, and then forecast commodity price for the same harvest intervals. Integration of those parameters in our model led us to conclude that both profit and the internal rate of return would be greatest for plantations of seedlings raised in polyethylene bags as opposed to bare-root or direct propagule planting. Therefore, the use of potted seedlings should be promoted, despite higher initial costs. The optimal rotation period varies according to ground level and planting technique. Optimizing economic returns for coastal plantations does not necessarily require a sacrifice of ecological benefits.",{"EN":1141},"Optimizing investment strategies for mangrove plantations by considering biological and economic parameters",{"VOID":1143},"[\"12780074979660266884\"]",{"VOID":1145},"Anon. 1994.Mangrove forest management guidelines. Food and Agriculture Organization of the United Nations, Rome.\nAksornkoae, S. 1993.Ecology and management of mangroves. IUCN, Bangkok.\nAugsburger, C.K. 1984a. Light requirements of neotropical tree seedlings: a comparative study of growth and survival.J. Ecol. 72: 777–795.\nAugsburger, C.K. 1984b. Seedling survival of tropical tree species: interactions of dispersal distance, light-gaps, and pathogens.Ecology 65: 1705–1712.\nAugsburger, C.K. & Kelly, C.K. 1984. Pathogen mortality of tropical tree seedlings: experimental studies of the effects of dispersal distance, seedling density, and light conditions.Oecologia (Berl.) 61: 211–217.\nCintrón-Molero, G. & Schaeffer-Novelli, Y. 1991. Ecology and management of New World mangroves. In: Seelinger, E. (ed.)Coastal plant communities of Latin America, pp. 233–258. Academic Press.\nCohen, J.E. 1997. Estimates of coastal populations.Science 278: 1211–1212.\nde la Cruz, A.A. 1984. A realistic approach to the use and management of mangrove areas in Southeast Asia. In: Teas, H.J. (ed.)Physiology and management of mangroves, pp. 65–68. Dr. W. Junk Publishers, The Hague.\nDe Steven, D. 1988. Light gaps and long-term seedling performance of a Neotropical canopy tree (Dipteryx panamensis, Leguminosae).J. Trop. Ecol. 4: 407–411.\nDenslow, J.S., Schultz, J.C., Vitousek, P.M. & Strain, B.R. 1990. Growth responses of tropical shrubs to treefall gap environments.Ecology 71: 155–179.\nEllison, A.M. & Farnsworth, E.J. 1997. Simulated sea level change alters anatomy, physiology, growth, and reproduction of red mangrove (Rhizophora mangle L.).Oecologia (Berl.) 112: 435–446.\nHardwick, K., Healey, J., Elliott, S., Garwood, N. & Anusarnsunthorn, V., 1997. Understanding and assisting natural regeneration processes in degraded seasonal evergreen forests in northern Thailand.For. Ecol. Manage. 99: 203–214.\nHong, P.N. & San, H.T. 1993.Mangroves of Vietnam. IUCN, Bangkok.\nHoward, A.F. 1993. A linear programming model for predicting the sustainable yield of timber from a community forest on the Osa Peninsula of Costa Rica.For. Ecol. Manage. 61: 29–43.\nHoward, A.F. & Valerio, J. 1992. A diameter class growth model for assessing the sustainability of silvicultural prescriptions in natural tropical forests.Commonw. For. Rev. 71: 171–177.\nHoward, A.F., Rice, R.E. & Gullison, R.E. 1996. Simulated financial returns and selected environmental impacts from four alternative silvicultural prescriptions applied in the neotropics: a case study of the Chiamanes Forest, Bolivia.For. Ecol. Manage. 89: 43–57.\nImbert, D. & Ménard, S. 1997. Structure de la végétation et production primaire dans la managrove de la baie de Fortde-France, Martinique (F.W.I.).Biotropica 29: 413–426.\nJackson, J.K. 1994.Manual of afforestation in Nepal. 2nd ed. Forest Research and Survey Centre, Kathmandu.\nJanzen, D.H. 1974. Tropical blackwater rivers, animals, and mast fruiting by Dipterocarpaceae.Biotropica 6: 69–103.\nLibrero, A.R. 1984. Mangrove management in the Philippines. In: Teas, H.J. (ed.)Physiology and management of mangroves, pp. 79–87. Dr. W. Junk Publishers, The Hague.\nLugo, A.E. & Snedaker, S.C. 1974. The ecology of mangroves.Annu. Rev. Ecol. Syst. 5: 39–64.\nNuttonson, M.Y. 1963. Thephysical environment and agriculture of Burma. American Institute of Crop Ecology, Washington D.C.\nOlmsted, I. & Alvarez-Buylla, E.R. 1995. Sustainable harvesting of tropical trees: demography and matrix models of two palm species in Mexico.Ecol. Appl. 5: 484–500.\nPancel, L. 1993. Nursery management. In: Pancel, L. (ed.)Tropical forestry handbook, pp. 463–514. Springer-Verlag, Berlin.\nPutz, F.E. & Chan, H.T. 1986. Tree growth, dynamics, and productivity in a mature mangrove forest in Malaysia.For. Ecol. Manage. 17: 211–230.\nRico-Gray, V. & Palacios-Rios, M. 1996. Salinidad y el nivel del agua como factores en la distribucion de la vegetacion en la cienaga del NW de Campeche, Mexico.Acta Bot. Mex. 34: 53–61.\nSiddiqi, N.A. & Khan, M.A.S. 1991.Growth performance of mangrove trees along the coastal belt of Bangladesh. UNDP\u002FUNESCO Mangrove Ecosystems Occasional Paper.\nThan, M.M. 1999.Establishment of mangrove plantations in the Ayeyarwady delta, Myanmar. M. Sc. Thesis, Asian Institute of Technology, Bangkok.\nVanclay, J.K. 1994. Sustainable timber harvesting: simulation studies in the tropical rainforests of north Queensland.For. Ecol. Manage. 69: 299–320.\nWatson, J.G. 1928.Mangrove forests of the Malay peninsula. Malayan Forest Rec. No. 6. Fraser and Newe, Ltd., Singapore.\nWeechakit, D. 1987.Growth and survival of private mangrove plantations (Rhizophora apiculata) at Amphoe Bay, Samut Province. M. Sc. 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along the coastal zone are mostly associated with coastal infrastructures. Establishment of coastal structures induce dual effects a) rendering coastal protection to its host coast b) imparts coastal instability to the adjacent coasts. This characteristic is common for most of the engineered hard structures. Radhapuram taluk is one such coastal stretch located in Tirunelveli district of Tamil Nadu. There are about 11 coastal hamlets in the taluk within 100 m to 200 m from the shore of which most of them are fishing hamlets. There are about 28 coastal structures predominantly developed between 2000 and 2020 to protect the coast.As stated, these structures provide expected coastal zone protection for their associated coast but imparts imbalance in the adjacent areas. The present study was attempted to assess the necessity and impacts of the coastal structures along the coast between 2000 and 2020 using hybrid approach. The hybrid approach involves application of Remote sensing, Geographic Information System (GIS), Digital Shoreline Analysis System (DSAS) and numerical model. The study indicated extents of erosion:accretion:stable coast in percentage ‘before’ and ‘after’ the development of coastal structures as 64:23:13 and 49:31:20 respectively. However the study also indicated the challenges to certain hamlets a) not protected with structures and b) continuing controlled erosion of certain hamlets with structures. It is noted from the study that existing and new coastal structures along the coast may not provide a permanent solution for the coastal stability of the Radhapuram taluk unless the appropriate locations close to the hamlets are further strengthened by coastal green shields to combat erosion.",{"EN":1256},"Assessment of challenges to Radhapuram due to temporal coastal infrastructures using hybrid approach",{"VOID":1258},"[\"710764609446049087\"]",{"VOID":1260},"10.1007\u002Fs11852-022-00892-1","2024-05-07T19:43:11.068+00:00","https:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs11852-022-00892-1",[1264,1279,1292,1305],{"id":1265,"sortIndex":19,"researcher":18,"roles":1266,"affiliations":1267,"properties":1276,"displayName":1278,"givenName":18,"familyName":18},"89893e2a-af56-4d56-a6b2-4cb0d3cf8fc6",[210],[1268],{"id":1269,"sortIndex":19,"affiliation":1270,"properties":18},"881524dc-b5b6-4522-b5ed-df871afce378",{"id":1269,"createTime":18,"updateTime":18,"relativeEntities":1271,"slug":18,"properties":1272,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1275,"statistic":18},[],{"title":1273},{"VI":1274},"National Centre for Sustainable Coastal Management (NCSCM), MoEF& CC, Anna University Campus, Chennai, India",[],{"title":1277},{"VI":1278},"S. 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ISSN 1110-9823.https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.ejrs.2021.09.004","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS1110982321000715",{"doi":1408},"10.1016\u002Fj.ejrs.2021.09.004",{"id":18,"text":1410,"url":1411,"identifiers":1412},"Details about Radhapurm taluk http:\u002F\u002Fwww.onefivenine.com\u002Findia\u002Fvillages\u002FTirunelveli\u002FRadhapuram. Accessed 20 May 2021","http:\u002F\u002Fwww.onefivenine.com\u002Findia\u002Fvillages\u002FTirunelveli\u002FRadhapuram",{},{"id":18,"text":1414,"url":1415,"identifiers":1416},"Mike DHI (2021) & Mike 3 Flow Model FM. Hydrodynamic Module Scientific Documentation. http:\u002F\u002Fcwc.gov.in\u002Fsites\u002Fdefault\u002Ffiles\u002Fguidelines-%E2%80%9Cprotection-and-control-coastal-erosion-india%E2%80%9D.pdf. Accessed 1 September 2022","http:\u002F\u002Fcwc.gov.in\u002Fsites\u002Fdefault\u002Ffiles\u002Fguidelines-%E2%80%9Cprotection-and-control-coastal-erosion-india%E2%80%9D.pdf",{},{"id":18,"text":1418,"url":18,"identifiers":1419},"Guidelines for “Protection and Control of Coastal Erosion in India”, Central Water Commission (CWC) Coastal Management Directorate, Dec 2020",{},{"id":18,"text":1421,"url":1422,"identifiers":1423},"Habiba U, Shaw R (2018) 24 - Improvement of responses and recovery approaches for cyclone hazards in coastal Bangladesh, Science and Technology in Disaster Risk Reduction in Asia, Academic Press, Pages 409–430, ISBN 9780128127117. https:\u002F\u002Fdoi.org\u002F10.1016\u002FB978-0-12-812711-7.00024-9","https:\u002F\u002Fdoi.org\u002F10.1016\u002FB978-0-12-812711-7.00024-9",{"doi":1424},"10.1016\u002FB978-0-12-812711-7.00024-9",{"id":18,"text":1426,"url":1427,"identifiers":1428},"Human modifications of coastal processes. https:\u002F\u002Fcourses.lumenlearning.com\u002Fgeo\u002Fchapter\u002Freading-human-modifications-of-coastal-processes\u002F. Assessed 22 Nov 2021","https:\u002F\u002Fcourses.lumenlearning.com\u002Fgeo\u002Fchapter\u002Freading-human-modifications-of-coastal-processes\u002F",{},{"id":318,"text":1430,"url":320,"identifiers":1431},"Kavikumar KS, Tholkappian S (2006) Relative vulnerability of Indian coastal districts to Sea level rise and Climate extremes. Int Rev Environ Strateg 6(1):3–22",{"doi":322},{"id":318,"text":1433,"url":320,"identifiers":1434},"Mafalda Marques Carapuco A, RuiTarborda MCF, Pinto CA (2012) The effects of urban and Economic Development on Coastal Zone Management, Conference: European Geosciences Union General Assembly",{"doi":322},{"id":318,"text":1436,"url":320,"identifiers":1437},"Nayak S (2017) Coastal zone management in India − present status and future needs. 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Sustainability 13:6071. https:\u002F\u002Fdoi.org\u002F10.3390\u002Fsu13116071","https:\u002F\u002Fwww.mdpi.com\u002F2071-1050\u002F13\u002F11\u002F6071",{"doi":1449},"10.3390\u002Fsu13116071",{"id":318,"text":1451,"url":320,"identifiers":1452},"Raj N, Gurugnanam B, Sudhakar V, Francis PG (2019) Estuarine shoreline change analysis along the Ennore river mouth, south east coast of India, using Digital Shoreline Analysis System. Geodesy Geodyn 10:205–212",{"doi":322},{"id":1454,"text":1455,"url":1456,"identifiers":1457},"698c1d47-00ae-4453-8218-69d1a36dbc72","Ramesh R, Purvaja R, Rajakumari S, DivyaSuganyaG M, Sarunjith KJ, SenthilVel A (2021) Sediment cells and their dynamics along the coasts of India – A review. J Coast Conserv 25(31):1–14","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs11852-021-00799-3",{"doi":1458},"10.1007\u002Fs11852-021-00799-3",{"id":1460,"text":1461,"url":1462,"identifiers":1463},"211aaff8-b713-4a5c-835c-5d6ce37db727","Ruckelshaus MH, Guannel G, Arkema K, Verutes G, Griffin R, Guerr A (2016) Evaluating the Benefits of Green Infrastructure for Coastal Areas: Location, Location, Location. Coastal Manag 44(5):504–516. https:\u002F\u002Fdoi.org\u002F10.1080\u002F08920753.2016.1208882","https:\u002F\u002Fwww.tandfonline.com\u002Fdoi\u002Ffull\u002F10.1080\u002F08920753.2016.1208882",{"doi":1464},"10.1080\u002F08920753.2016.1208882",{"id":318,"text":1466,"url":320,"identifiers":1467},"Saravanan S, Chandrasekar N (2010) Potential littoral sediment transport along the coast of South Eastern coast of India. Earth Sci Res J 14(2):153–160",{"doi":322},{"id":18,"text":1469,"url":18,"identifiers":1470},"Sathiya G, Lakshumanan C, Muthukumar S (2010) Mapping of land use\u002Fland cover changes of Chennai coast & issues related to coastal environment using Remote Sensing & GIS. Int J Geomatics Geosci 1(3):563–576",{},{"id":18,"text":1472,"url":1473,"identifiers":1474},"Sevilla NPM, Adeath IA, Le Bail M, Ruiz AC (2019) Coastal Development: Construction of a Public Policy for the Shores and Seas of Mexico. Coast Manag 21–38.https:\u002F\u002Fdoi.org\u002F10.1016\u002FB978-0-12-810473-6.00003-0","https:\u002F\u002Fdoi.org\u002F10.1016\u002Fb978-0-12-810473-6.00003-0",{"mag":1475,"openalex":1476,"doi":1477},"2901480996","W2901480996","10.1016\u002Fb978-0-12-810473-6.00003-0",{"id":1479,"text":1480,"url":1481,"identifiers":1482},"451984dd-d508-4947-8d2a-c14cbc5e6006","Sravanthi N, Ramakrishnan R, Rajawat AS, Narayana AC (2015) Application of Numerical Model in Suspended Sediment Transport Studies along the Central Kerala, West-coast of India. Aquat Proc 4:109–116","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS2214241X15000176",{"doi":1483},"10.1016\u002Fj.aqpro.2015.02.016",{"id":318,"text":1485,"url":320,"identifiers":1486},"Temitope D, Oyedotun T (2014) Shoreline Geometry: DSAS as a Tool for Historical Trend Analysis, British Society for Geomorphology, ISSN 2047–0371",{"doi":322},{"id":318,"text":1488,"url":320,"identifiers":1489},"Toure S, Diop O, Kpalma K, Maiga AS (2019) Shoreline Detection using Optical Remote Sensing: A Review. IJGI 8(2):75",{"doi":322},{"id":1491,"text":1492,"url":1493,"identifiers":1494},"d862ca88-8026-4f5e-824d-e5fe52fd1a1b","Tsoukala VK, Katsardi V, Ηadjibiros K, Moutzouris CI (2015) Beach Erosion and Consequential Impacts Due to the Presence of Harbours in Sandy Beaches in Greece and Cyprus. Environ Process 2:55–71","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs40710-015-0096-0",{"doi":1495},"10.1007\u002Fs40710-015-0096-0",{"id":318,"text":1497,"url":320,"identifiers":1498},"Tyagi S, Rai SC (2020) Monitoring shoreline changes along Andhra coast of India using Remote Sensing and Geographic Information System. Indian J Geo Mar Sci 49(02):218–224",{"doi":322},{"id":1500,"text":1501,"url":1502,"identifiers":1503},"0dd34c3c-d6fa-4cf9-82f3-2ca4ef0efff0","Vittal Hedge A, Akshaya BJ (2015) Shoreline Transformation Study of Karnataka Coast: Geospatial Approach. Aquat Proc 4:151–156","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS2214241X1500022X",{"doi":1504},"10.1016\u002Fj.aqpro.2015.02.021",{"id":1506,"text":1507,"url":1508,"identifiers":1509},"c9c6ac6c-e8ef-4571-bba8-d700c4627053","Wibowo M, Hendriyono W, Rahman RA, Susatijo G, Kongko W, Istiyanto DC, Widagdo AB, Nugroho S, Khoirunnisa H, Wiguna E, Aziz H, Santoso B (2020) Sediment Transport Modeling at Jelitik Estuary, Sungailiat - Bangka Regency for the Design of Sediment Control Structures, 2nd International Conference on Sustainable Infrastructure. J Phys: Conf Ser 1625. https:\u002F\u002Fdoi.org\u002F10.1088\u002F1742-6596\u002F1625\u002F1\u002F012042","https:\u002F\u002Fiopscience.iop.org\u002Farticle\u002F10.1088\u002F1742-6596\u002F1625\u002F1\u002F012042",{"doi":1510},"10.1088\u002F1742-6596\u002F1625\u002F1\u002F012042",{"id":1512,"createTime":1513,"updateTime":1514,"relativeEntities":1515,"slug":1516,"properties":1517,"entityType":201,"verifyStatus":202,"verifyTime":1528,"verifyNote":204,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":1529,"fullTextUrl":18,"authors":1530,"publicationType":241,"publisherRelationship":1601,"citationCount":1656,"citationInfo":1657,"publishDate":1660,"publishYear":1658,"citationAnalyzeStatus":17,"lastCitationAnalyze":1661,"indexDatabases":1662,"openAccess":18,"references":18,"isForceReanalyzing":544},"e136fe9d-59c2-4502-8126-5f3a1c309700","2024-02-12T14:58:56.515+00:00","2026-07-15T17:59:01.106+00:00",[],"Usability-of-the-climate-resilient-nature-based-sand-motor-pilot-The-Netherlands",{"abstract":1518,"title":1520,"gsPaper":1522,"references":1524,"doi":1526},{"EN":1519},"Coastline maintenance in the Netherlands, formally in place since 1990, aims at a sustainable preservation of coastal flood protection. Over 25 years annual assessments, comparing the actual coastline positions with the 1990 reference position of the coastline, have governed the execution of sand nourishments following an adaptive management method. This method involves yearly assessment of the coastline based on measurements, design and adoption of nourishment strategies and measures and execution of the nourishments. This management approach has enabled learning and introduction of innovations in coastline maintenance. For instance, in comparison to the early nineties, nourishments are now placed more on the foreshore and the yearly nourishment budget has doubled. The most recent innovation in coastline maintenance is the ‘Sand Motor’, a nature-based nourishment approach, which concentrates the regular nourishments in space and time, given that natural processes should redistribute the sediment over the wider coastal system. In contrast to regular nourishments, the Sand Motor combines flood protection with nature and recreational objectives and is much larger in dimensions. Five years after the construction of the Sand Motor we investigate its usability in this article. We present the results of first Sand Motor evaluation and draw conclusion on the adoption and usefulness of it for coastline management from the perspective of the adaptive management method used in coastline maintenance. Recent evaluation of the monitoring data shows that the large amount of sand used for the Sand Motor has a positive impact on coastal protection. Bridging between the Sand Motor pilot and daily nourishement practice is however not yet achieved.",{"EN":1521},"Usability of the climate-resilient nature-based sand motor pilot, The Netherlands",{"VOID":1523},"[\"8707527836636603164\"]",{"VOID":1525},"Berendsen E, Cleveringa J, de Grave J, de Kok J, Mählman E, Mulder J (2005) Rappor-tage verkenningsfase Project Zand en Ze(e)ker (de “zandmotor” bij Ter Heijde) Interne verken-ning in opdracht van: Rijkswaterstaat [WaterINNovatiebron], pp 67\nBruens A (2007) WL | Delft Hydraulics, IMARES en VBKO; Globaal Voorontwerp Zandmotor, innovatieve kustontwikkeling Delfland. Rapport Z4459, november 2007\nDe Boer WP, Fiselier J, Ruijgrok ECM, Huisman BJA (2015) A framework for sandy strategy development - with a quick scan for (co-)financing potential. 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Proc. of the 2nd Int. symposium on ocean wave measurement and analysis, New Orleans, pp 630–641\nIsrael CG, Oost AP (2001) Strandhaak ontwikkeling op de koppen van de Waddeneilanden RIKZ\u002FOS\u002F2001.116X, pp 27\nJanssen SKH, van Tatenhove JPM, Otter HS, Mol APJ (2014) Greening flood protection—an interactive knowledge arrangement perspective. J Environ Policy Plan:1–23. doi:10.1080\u002F1523908X.2014.947921\nKeijsers JGS, Poortinga A, Riksen MJPM, Maroulis J (2014) Spatio-temporal variability in accretion and erosion of coastal foredunes in the Netherlands: regional climate and local topography. PLoS One 9(3):e91115. doi:10.1371\u002Fjournal.pone.0091115\nLatteux B (1995) Techniques for long-term morphological simulation under tidal action. Mar Geol 126:129–141\nLesser G, Roelvink JA, Van Kester JATM, Stelling GS (2004) Development and validation of a three-dimensional morphological model. Journal of Coastal Engineering 51:883–915\nMinisterie van V&W (1990) Eerste kustnota: kustverdediging na 1990. Den Haag, the Netherlands\nMulder JPM, Tonnon PK (2010) “Sand engine” background and design of a mega nourishment pilot in the Netherlands. Proceedings of international coastal engineering conference, 32, Shanghai, China\nMulder JPM, Hommes S, Horstman EM (2011) Implementation of coastal erosion management in the Netherlands. Ocean Coast Manag 54(12):888–897\nNicholls RJ, Hanson S, Lowe J, Warrick R, Lu X, Long A, Carter T (2011) Constructing sea-level scenarios for impact and adaptation assessment of coastal areas: a guidance document. Supporting material, intergovernmental panel on climate change task group on data and scenario support for impact and climate analysis (TGICA), Geneva, Switzerland, p 47\nOost AP, van der Lelij AC, de Bel M, Essink GU, Löffler M (2016) The usability of the sand motor concept. Deltares reference 1221025–000-ZKS-0009, p 49\nPZH (2010) Projectnota\u002F MER Zandmotor Delflandse kust: Provincie Zuid-Holland, Ministerie van Verkeer en Waterstaat, Rijkswaterstaat, Gemeente Den Haag, Gemeente Westland, Gemeente Rotterdam, Hoogheemraadschap van Delfland, Milieufederatie Zuid-Holland\nRoelvink D (2006) Coastal morphodynamic evolution techniques. Journal of Coastal Engineering 53(2006):277–287\nRoelvink JA, Walstra DJR (2004) Keeping it simple by using complex models, 6th Int. Conf. on Hydroscience and Engineering (ICHE-2004), May 30-June 3, Brisbane, Australia\nRoelvink JA, Van der Kaaij T, Ruessink BG (2001) Calibration and verification of large-scale 2D\u002F3D flow models. Phase 1, Parcel 2, Subproduct 2, ONL FLYLAND report. WL | Delft Hydraulics report Z3029.11, Delft, The Netherlands.\nSantinelli G, Brière C, Elshoff I (2013) Argus video-based monitoring at the sand motor, The Netherlands. Station description and analysis of coastal changes in 2013. 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Deltares\nTonnon PK (ed.), van der Valk L, Holzhauer H, Baptist MJ, Wijsman JWM, Vertegaal CTM, Arens SM (2011) Uitvoeringsprogramma Monitoring en Evaluatie Pilot Zandmotor, 1203519–000, pp 154\nUSAID (2009) Adapting to coastal climate change: a guidebook for development planners. Rhode Island: USAID. Available from http:\u002F\u002Fwww.crc.uri.edu\u002Fdownload\u002FCoastalAdaptationGuide.pdf\nVan Koningsveld M, Mulder JPM (2004) Sustainable coastal policy developments in the Netherlands. A systematic approach revealed. J Coast Res 20(2):375–385\nVan Rijn LC (1997) Sediment transport and budget of the central coastal zone of Holland. Coastal Engineering No 32(p):61–90\nVan Rijn LC (2007a) United view of sediment transport by currents and waves I: initiation of motion, bed roughness and bed load transport. J Hydraul Eng ASCE 133(6):649–667\nVan Rijn LC (2007b) United view of sediment transport by currents and waves II: suspended transport Journal of hydraulic engineering. 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Ministerie van Verkeer en Waterstaat, Rijkswaterstaat, Rijksinstituut voor Kust en Zee (RWS, RIKZ)",{"VOID":1527},"10.1007\u002Fs11852-017-0527-3","2024-05-17T13:31:47.693+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs11852-017-0527-3",[1531,1546,1559,1574,1587],{"id":1532,"sortIndex":19,"researcher":18,"roles":1533,"affiliations":1534,"properties":1543,"displayName":1545,"givenName":18,"familyName":18},"dea64e9b-dd4f-4bb1-952e-9bc7eb43ce8d",[210],[1535],{"id":1536,"sortIndex":19,"affiliation":1537,"properties":18},"0e089edc-7ea0-4f57-96df-256e6db9ac51",{"id":1536,"createTime":18,"updateTime":18,"relativeEntities":1538,"slug":18,"properties":1539,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1542,"statistic":18},[],{"title":1540},{"VI":1541},"Deltares, Delft, The Netherlands",[],{"title":1544},{"VI":1545},"Christophe Brière",{"id":1547,"sortIndex":225,"researcher":18,"roles":1548,"affiliations":1549,"properties":1556,"displayName":1558,"givenName":18,"familyName":18},"8b1d5d77-f782-42f3-8de4-7d975ac2a62f",[210],[1550],{"id":1536,"sortIndex":19,"affiliation":1551,"properties":18},{"id":1536,"createTime":18,"updateTime":18,"relativeEntities":1552,"slug":18,"properties":1553,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1555,"statistic":18},[],{"title":1554},{"VI":1541},[],{"title":1557},{"VI":1558},"Stephanie K. H. Janssen",{"id":1560,"sortIndex":300,"researcher":18,"roles":1561,"affiliations":1562,"properties":1569,"displayName":1571,"givenName":18,"familyName":18},"c35b8a5d-a216-4378-b6dd-abfc95095fa5",[210],[1563],{"id":1536,"sortIndex":19,"affiliation":1564,"properties":18},{"id":1536,"createTime":18,"updateTime":18,"relativeEntities":1565,"slug":18,"properties":1566,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1568,"statistic":18},[],{"title":1567},{"VI":1541},[],{"title":1570,"gsAuthor":1572},{"VI":1571},"Albert P. Oost",{"VOID":1573},"[\"LieNlbAAAAAJ\"]",{"id":1575,"sortIndex":1307,"researcher":18,"roles":1576,"affiliations":1577,"properties":1584,"displayName":1586,"givenName":18,"familyName":18},"7845b657-d8a3-4c7b-bac5-9502da60abf6",[210],[1578],{"id":1536,"sortIndex":19,"affiliation":1579,"properties":18},{"id":1536,"createTime":18,"updateTime":18,"relativeEntities":1580,"slug":18,"properties":1581,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1583,"statistic":18},[],{"title":1582},{"VI":1541},[],{"title":1585},{"VI":1586},"Marcel Taal",{"id":1588,"sortIndex":1589,"researcher":18,"roles":1590,"affiliations":1591,"properties":1598,"displayName":1600,"givenName":18,"familyName":18},"1e431323-d540-4134-af3a-bd8e340fbbc2",4,[210],[1592],{"id":1536,"sortIndex":19,"affiliation":1593,"properties":18},{"id":1536,"createTime":18,"updateTime":18,"relativeEntities":1594,"slug":18,"properties":1595,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1597,"statistic":18},[],{"title":1596},{"VI":1541},[],{"title":1599},{"VI":1600},"Pieter Koen Tonnon",{"url":1529,"publisher":1602,"properties":1651},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1603,"slug":10,"properties":1604,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":1607,"manageAffiliations":1620,"indexDatabases":1631,"url":18,"thumbnailPath":18,"statistic":1646,"gsStatistic":18,"type":18,"analyzePriority":18},[],{"issn":1605,"title":1606},{"VOID":13},{"EN":15},[1608,1612,1616],{"id":22,"createTime":18,"updateTime":18,"relativeEntities":1609,"label":1610,"description":1611,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":25},{},{"id":28,"createTime":18,"updateTime":18,"relativeEntities":1613,"label":1614,"description":1615,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":31},{},{"id":34,"createTime":18,"updateTime":18,"relativeEntities":1617,"label":1618,"description":1619,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":37},{},[1621,1626],{"id":41,"createTime":18,"updateTime":18,"relativeEntities":1622,"slug":18,"properties":1623,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1625,"statistic":18},[],{"title":1624},{"EN":45},[],{"id":48,"createTime":18,"updateTime":18,"relativeEntities":1627,"slug":18,"properties":1628,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1630,"statistic":18},[],{"title":1629},{"EN":52},[54],[1632,1639],{"id":57,"indexDatabase":1633,"url":70,"indexYears":18,"academicFieldIds":1638,"indexDatabaseRanking":18},{"id":59,"createTime":18,"updateTime":18,"relativeEntities":1634,"label":1635,"description":1636,"key":66,"publicationTags":1637,"standard":18},[],{"EN":62,"VI":62},{"EN":64,"VI":65},[68,69],[72,73],{"id":75,"indexDatabase":1640,"url":86,"indexYears":87,"academicFieldIds":1645,"indexDatabaseRanking":92},{"id":77,"createTime":18,"updateTime":18,"relativeEntities":1641,"label":1642,"description":1643,"key":83,"publicationTags":1644,"standard":18},[],{"EN":80,"VI":80},{"EN":80,"VI":82},[85],[89,90,91],{"impactFactor":19,"impactFactorByYear":1647,"i10Index":106,"i10IndexLast5Year":107,"totalPublication":108,"totalPublicationByYear":1648,"totalCitation":132,"totalCitationByYear":1649,"totalCitationPerPublication":154,"totalCitationPerPublicationByYear":1650,"hindexLast5Year":181,"hindex":181},{"2012":95,"2013":96,"2014":97,"2015":98,"2016":99,"2017":100,"2018":101,"2019":101,"2020":102,"2021":103,"2022":104,"2023":105},{"1995":107,"1996":107,"1997":110,"1998":107,"1999":111,"2000":112,"2001":111,"2002":113,"2003":114,"2004":115,"2007":116,"2008":117,"2009":118,"2010":119,"2011":120,"2012":121,"2013":122,"2014":123,"2015":124,"2016":125,"2017":126,"2018":127,"2019":119,"2020":128,"2021":124,"2022":129,"2023":130,"2024":131},{"1996":134,"1997":107,"1998":135,"1999":136,"2000":137,"2001":138,"2002":139,"2003":140,"2004":141,"2007":131,"2008":142,"2010":143,"2011":144,"2012":145,"2013":146,"2014":147,"2015":148,"2016":149,"2017":150,"2018":151,"2019":152,"2020":143,"2021":126,"2022":153,"2023":107},{"1996":156,"1997":157,"1998":158,"1999":159,"2000":160,"2001":161,"2002":162,"2003":163,"2004":164,"2007":165,"2008":166,"2010":167,"2011":168,"2012":169,"2013":170,"2014":171,"2015":172,"2016":173,"2017":174,"2018":175,"2019":176,"2020":177,"2021":178,"2022":179,"2023":180},{"pages":1652,"volume":1654},{"VOID":1653},"491-502",{"VOID":1655},"22",37,{"total":1656,"publishYear":1658,"statisticByYear":1659},2017,{"2018":300,"2020":110,"2021":225,"2022":169,"2023":110,"2024":1307,"2025":136,"2026":225},"2017-06-29","2026-07-15T17:59:01.105+00:00",[92,68],{"id":1664,"createTime":1665,"updateTime":1666,"relativeEntities":1667,"slug":1668,"properties":1669,"entityType":201,"verifyStatus":202,"verifyTime":1680,"verifyNote":204,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":1681,"fullTextUrl":18,"authors":1682,"publicationType":241,"publisherRelationship":1698,"citationCount":18,"citationInfo":18,"publishDate":1753,"publishYear":1754,"citationAnalyzeStatus":1755,"lastCitationAnalyze":18,"indexDatabases":1756,"openAccess":18,"references":18,"isForceReanalyzing":544},"114b1d82-1f1c-4e90-8153-63fd915a7f2a","2023-12-10T14:05:28.533+00:00","2026-07-15T04:01:12.733+00:00",[],"Transport-rates-and-volume-changes-in-a-coastal-foredune-on-a-Dutch-Wadden-island",{"abstract":1670,"title":1672,"gsPaper":1674,"references":1676,"doi":1678},{"EN":1671},"Sediment dynamics on a coastal foredune on the Dutch Wadden island of Schiermonnikoog were studied from November 1990 to May 1991 to get an insight into rates and frequencies of aeolian processes. Digital Terrain Models were constructed to describe volume changes and zonation of deposition. Recording of heights were related to important events. Three periods are distinguished: (1) a period with storm surges resulting in dune erosion, (2) a winter period with mainly offshore winds; (3) a period with several days with strong onshore winds, resulting in dune building. In these periods detailed meteorological measurements and observations of aeolian sediment transport rates were performed. This paper presents comparisons between volumetric changes as derived from DTM calculations and calculated aeolian transport based on meteorological observations and current transport equations. The main conclusion is that only during a part of the year the observed changes in volume correspond reasonably well to the predicted transport, using standard transport equations and meteorological measurements.",{"EN":1673},"Transport rates and volume changes in a coastal foredune on a Dutch Wadden island",{"VOID":1675},"[\"8367772195589387058\"]",{"VOID":1677},"Anthonsen, K.L., Clemmensen, L.B. & Jensen, J.H. 1996. Evolution of a dune from crescentic to parabolic form in response to short-term climatic changes: Råberg Mile, Skagen Odde, Denmark. Geomorphology 17: 63–77.\nArens, S.M. 1994. Aeolian processes in the Dutch foredunes. Doctoral Thesis, University of Amsterdam.\nArens, S.M. 1996. Rates of aeolian transport on a beach in a temperate humid climate. Geomorphology 17: 3–18.\nArens, S.M. & van der Lee, G.E.M. 1995. Saltation sand traps for the measurement of aeolian transport into the foredunes. Soil Technol. 8: 61–74.\nArens, S.M., van Kaam-Peters, H.M.E. & van Boxel, J.H. 1995. Air flow over foredunes and implications for sand transport. Earth Surface Process. Landforms 20: 315–332.\nBauer, B.O., Sherman, D.J., Nordstrom, K.F. & Gares, P.A. 1990. Aeolian transport measurement and prediction across a beach and dune at Castrovill, California. In: Nordstrom, K.F., Psuty, N.P. & Carter, B. (eds.) Coastal dunes; form and process, pp. 39–55. John Wiley, Chichester.\nBlumberg, D.G. & Greeley, R. 1993. Field studies of aerodynamic roughness length. J. Arid Environ. 25: 39–48.\nDavidson-Arnott, R.G.D. & Law, M.N. 1990. Seasonal patterns and controls on sediment supply to coastal foredunes, Long Point, Lake Erie. In: Nordstrom, K.F., Psuty, N.P. & Carter, B. (eds.) Coastal dunes; form and process, pp. 177–200. John Wiley, Chichester.\nDavidson-Arnott, R.G.D. & Law, M.N. 1996. Measurement and prediction of long-term sediment supply to coastal foredunes. J. Coast. Res. 12: 654–663.\nDingler, J.R., Hsu, S.A. & Reiss, T.E. 1992. Theoretical and measured aeolian sand transport on a barrier island, Louisiana, USA. Sedimentology 39: 1031–1043.\nKawamura, R. 1951. Study of sand movement by wind. Reports of Physical Sciences Research Institute of Tokyo University 5 (3–4): 95–112 (in Japanese). Translated in 1964 as University of California Hydraulics Engineering Laboratory Report HEL2-8, Berkely, CA, pp. 1–38.\nNickling, W.G. & Davidson-Arnott, R.G.D. 1990. Aeolian sediment transport on beaches and coastal sand dunes. In: Davidson-Arnott, R.G.D. (ed.) Proceedings Symposium Coastal Sand Dunes, pp. 1–35. NRC, Ottawa.\nNordstrom, K.F. & Jackson, N.L. 1992. Effect of source width and tidal elevation changes on eolian transport on an estuarine beach. Sedimentology 40: 769–778.\nNordstrom, K.F., Bauer, B.O., Davidson-Arnott, R.G.D., Gares, P.A., Carter, R.W.G., Jackson, D.W.T. & Sherman, D.J. 1996. Offshore aeolian transport across a beach: Carrick Finn Strand, Ireland. J. Coast. Res. 12: 664–672.\nObukhov, A.M. 1946. Turbulence in an atmosphere with a non-uniform temperature. Tr. Akad. Nauk SSSR Inst. Teoret. Geofis. No 1 (translated in Boundary Layer Meteorol. 2: 7–29).\nPaulson, C.A. 1970. The mathematical representation of wind speed and temperature profiles in the unstable atmospheric surface layer. J. Appl. Meteorol. 9: 857–861.\nRasmussen, K.R. 1989. Some aspects of flow over coastal dunes. In: Gimingham, C.H., Ritchie, W., Willetts, B.B. & Willis, A.J. (eds.) Coastal sand dunes. Proc. R. Soc. Edinb. 96B: 129–147.\nSarre, R. 1989a. Aeolian sand drift from the intertidal zone on a temperate beach: potential and actual rates. Earth Surface Process. Landforms 14: 247–258.\nSarre, R. 1989b. The morphological significance of vegetation and relief on coastal foredune processes. Z. Geomorph. N.F. Suppl. 73: 17–31.\nSherman, D.J. 1995. Problems of scale in the modeling and interpretation of coastal dunes. Marine Geol. 124: 339–349.\nSherman, D.J. & Hotta, S. 1990. Aeolian sediment transport: theory and measurement. In: Nordstrom, K.F., Psuty, N.P. & Carter, B. (eds.) Coastal dunes; form and process, pp. 17–37. John Wiley, Chichester.\nSpaan, W.P. & van den Abeele, G.D. 1991. Wind borne particle measurements with acoustic sensors. Soil Technol. 4: 51–63.\nvan Boxel, J.H. 1986. Heat balance investigations in tidal areas. Doctoral Thesis, Free University, Amsterdam.\nvan Boxel, J.H., Vugts, H.F. & Cannemeyer, F. 1989. Effect of the water vapour gradient on the Obukhov length and the profile derived fluxes. Z. Meteorol. 39: 351–353.\nWal, A. & McManus, J. 1993. Wind regime and sand transport on a coastal beach-dune complex, Tentsmuir, eastern Scotland. In: Pye, K. (ed.) The dynamics and environmental context of aeolian sedimentary systems. Geol. Soc. Spec. Publ. 72: 159–171.\nWebb, E.K. 1970. Profile relationships: the log-linear range and extension to strong stability. Q. J. R. Meteorol. Soc. 96: 67–90.\nWhite, B.R. 1979. Soil transport by winds on Mars. J. Geophys. Res. 84 B8: 4643–4651.\nWieringa, J. 1980. A revaluation of the Kansas mast influence on measurements of stress and cup-anemometer overspeeding. Bound. Layer. Meteorol. 18: 411–430.",{"VOID":1679},"10.1007\u002FBF03341352","2024-06-25T08:17:00.072+00:00","http:\u002F\u002Flink.springer.com\u002F10.1007\u002FBF03341352",[1683],{"id":1684,"sortIndex":19,"researcher":18,"roles":1685,"affiliations":1686,"properties":1695,"displayName":1697,"givenName":18,"familyName":18},"2e76feda-7c38-4eff-bf5f-a78d62b640e8",[210],[1687],{"id":1688,"sortIndex":19,"affiliation":1689,"properties":18},"8aac1e32-065a-4875-810e-3ca70a8cf215",{"id":1688,"createTime":18,"updateTime":18,"relativeEntities":1690,"slug":18,"properties":1691,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1694,"statistic":18},[],{"title":1692},{"VI":1693},"Netherlands Centre for Geo-Ecological Research ICG Landscape and Environmental Research Group, University of Amsterdam, Amsterdam, The Netherlands",[],{"title":1696},{"VI":1697},"S.M. Arens",{"url":1681,"publisher":1699,"properties":1748},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1700,"slug":10,"properties":1701,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":1704,"manageAffiliations":1717,"indexDatabases":1728,"url":18,"thumbnailPath":18,"statistic":1743,"gsStatistic":18,"type":18,"analyzePriority":18},[],{"issn":1702,"title":1703},{"VOID":13},{"EN":15},[1705,1709,1713],{"id":22,"createTime":18,"updateTime":18,"relativeEntities":1706,"label":1707,"description":1708,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":25},{},{"id":28,"createTime":18,"updateTime":18,"relativeEntities":1710,"label":1711,"description":1712,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":31},{},{"id":34,"createTime":18,"updateTime":18,"relativeEntities":1714,"label":1715,"description":1716,"parentId":18,"standard":18,"scholarHubFieldId":18},[],{"EN":37},{},[1718,1723],{"id":41,"createTime":18,"updateTime":18,"relativeEntities":1719,"slug":18,"properties":1720,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1722,"statistic":18},[],{"title":1721},{"EN":45},[],{"id":48,"createTime":18,"updateTime":18,"relativeEntities":1724,"slug":18,"properties":1725,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":1727,"statistic":18},[],{"title":1726},{"EN":52},[54],[1729,1736],{"id":57,"indexDatabase":1730,"url":70,"indexYears":18,"academicFieldIds":1735,"indexDatabaseRanking":18},{"id":59,"createTime":18,"updateTime":18,"relativeEntities":1731,"label":1732,"description":1733,"key":66,"publicationTags":1734,"standard":18},[],{"EN":62,"VI":62},{"EN":64,"VI":65},[68,69],[72,73],{"id":75,"indexDatabase":1737,"url":86,"indexYears":87,"academicFieldIds":1742,"indexDatabaseRanking":92},{"id":77,"createTime":18,"updateTime":18,"relativeEntities":1738,"label":1739,"description":1740,"key":83,"publicationTags":1741,"standard":18},[],{"EN":80,"VI":80},{"EN":80,"VI":82},[85],[89,90,91],{"impactFactor":19,"impactFactorByYear":1744,"i10Index":106,"i10IndexLast5Year":107,"totalPublication":108,"totalPublicationByYear":1745,"totalCitation":132,"totalCitationByYear":1746,"totalCitationPerPublication":154,"totalCitationPerPublicationByYear":1747,"hindexLast5Year":181,"hindex":181},{"2012":95,"2013":96,"2014":97,"2015":98,"2016":99,"2017":100,"2018":101,"2019":101,"2020":102,"2021":103,"2022":104,"2023":105},{"1995":107,"1996":107,"1997":110,"1998":107,"1999":111,"2000":112,"2001":111,"2002":113,"2003":114,"2004":115,"2007":116,"2008":117,"2009":118,"2010":119,"2011":120,"2012":121,"2013":122,"2014":123,"2015":124,"2016":125,"2017":126,"2018":127,"2019":119,"2020":128,"2021":124,"2022":129,"2023":130,"2024":131},{"1996":134,"1997":107,"1998":135,"1999":136,"2000":137,"2001":138,"2002":139,"2003":140,"2004":141,"2007":131,"2008":142,"2010":143,"2011":144,"2012":145,"2013":146,"2014":147,"2015":148,"2016":149,"2017":150,"2018":151,"2019":152,"2020":143,"2021":126,"2022":153,"2023":107},{"1996":156,"1997":157,"1998":158,"1999":159,"2000":160,"2001":161,"2002":162,"2003":163,"2004":164,"2007":165,"2008":166,"2010":167,"2011":168,"2012":169,"2013":170,"2014":171,"2015":172,"2016":173,"2017":174,"2018":175,"2019":176,"2020":177,"2021":178,"2022":179,"2023":180},{"pages":1749,"volume":1751},{"VOID":1750},"49-56",{"VOID":1752},"3","2014-01-15",2014,"DONE_GET_PLATFORM_ID",[92,68],{"id":1758,"createTime":1759,"updateTime":1760,"relativeEntities":1761,"slug":1762,"properties":1763,"entityType":201,"verifyStatus":202,"verifyTime":1776,"verifyNote":204,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":1777,"fullTextUrl":18,"authors":1778,"publicationType":241,"publisherRelationship":1835,"citationCount":111,"citationInfo":1885,"publishDate":1887,"publishYear":1754,"citationAnalyzeStatus":17,"lastCitationAnalyze":1888,"indexDatabases":1889,"openAccess":18,"references":18,"isForceReanalyzing":544},"20c68174-386a-4d65-80b5-67584ca46410","2024-04-09T02:10:42.114+00:00","2026-07-12T04:49:50.928+00:00",[],"Reconstruction-of-an-interrupted-primary-beach-plain-succession-using-a-Geographical-Information-System",{"abstract":1764,"title":1766,"gsPaper":1768,"keywords":1770,"references":1772,"doi":1774},{"EN":1765},"This study reports on a primary succession on a beach plain on the Dutch Wadden island of Schiermonnikoog. Vegetation succession started in 1959 when a sand dike was constructed to prevent structural erosion of the area by storm floods. Since then the sandy beach behind the dike has been protected from the direct influence of the North Sea. Heavy storms in 1972, however, created a large gap in the dike which has remained open since. Occasional storm floods during winter penetrate deeply into the area and salt water can cover parts of the beach plain for several months. This had a pronounced impact on the vegetation. Vegetation maps for six different years and data from a permanent plot have been used to reconstruct vegetation succession over a 42-yr period. Certain parts of the area seem to have changed little, while others have developed a grassland or scrub cover. The heavy storms and associated processes such as sand blowing, intensive flooding and increased salinity have created a disturbance\u002Fstress gradient of progressive and regressive succession across the beach plain. In certain places the vegetation cover has repeatedly been destroyed and succession re-initiated. It is concluded that the different stages of succession and associated diversity of plant species only can persist through the maintenance of the natural dynamics of the area.",{"EN":1767},"Reconstruction of an interrupted primary beach plain succession using a Geographical Information System",{"VOID":1769},"[\"11074878917290708807\"]",{"EN":1771},"",{"VOID":1773},"Bertness, M.D. 1991. Interspecific interactions among high marsh perennials in a New England salt marsh.Ecology 72: 125–137.\nBertness, M.D., Gough, L. & Shumway, S.W. 1992. Salt tolerances and the distribution of fugitive salt marsh plants.Ecology 73: 1842–1851.\nBeukeboom, Th.J. 1976.The hydrology of the Frisian islands. Doctoral Thesis, Free University Amsterdam.\nConnell, J.H. & Slatyer, R.O. 1977. Mechanisms of succession in natural communities and their role in community stability and organization.Am. Nat. 111: 1119–1144.\nDobson, A. & Crawley, M. 1994. Pathogens and the structure of plant communities.Trends Ecol. Evol. 9: 393–398.\nHillen, R. & Roelse, P. 1995. Dynamic preservation of the coastline in The Netherlands.J. Coastal Conserv. 1: 17–28.\nIacobelli, A. & Jefferies, R.L. 1991. Inverse salinity gradients in coastal marshes and the death of stands ofSalix: the effects of grubbing by geese.J. Ecol. 79: 61–73.\nJansen, M.P. 1995. Coastal management: restoration of natural processes in foredunes. In: Healy, M.G. & Doody, J.P. (eds.)Directions in European coastal management, pp. 195–198. Samara Publishing Limited, Cardigan.\nOlff, H., Huisman, J. & van Tooren, B.F. 1993. Species dynamics and nutrient accumulation during early primary succession in coastal sand dunes.J. Ecol. 81: 693–706.\nPetraitis, P.S., Latham, R.E. & Niesenbaum, R.A. 1989. The maintenance of species diversity by disturbance.Q. Rev. Biol. 64: 393–418.\nRanwell, D.S. 1960. Newborough Warren, Anglesey. III. Changes in the vegetation on parts of the dune system after the loss of rabbits by myxomatosis.J. Ecol. 48: 385–395.\nRozema, J. 1978.On the ecology of some halophytes from a beach plain in The Netherlands. Doctoral Thesis, Free University Amsterdam.\nSchat, H. 1982.On the ecology of some dune slack plants. Doctoral Thesis, Free University Amsterdam.\nSrivastava, D.S. & Jefferies, R.L. 1995a. A positive feedback: herbivory, plant growth, salinity, and the desertification of an Arctic salt marsh.J. Ecol. 83: 1–12.\nSrivastava, D.S. & Jefferies, R.L. 1995b. Mosaics of vegetation and soil salinity: a consequence of goose foraging in an arctic salt marsh.Can. J. Bot. 73: 75–83.\nten Harkel, M.J. & van der Meulen, F. 1995. Impact of grazing and atmospheric nitrogen deposition on the vegetation of dry coastal dune grasslands.J. Veg. Sci. 6: 445–452.\nValenzuela, C.R. 1988. ILWIS overview.ITC Journal 1: 4–14.\nvan der Laan, F. 1980.Synthese van het vegetatie onderzoek in de strandvlakte op Schiermonnikoog van 1952 t\u002Fm 1979. Uitgaande van luchtfotointerpretatie en van veldonderzoek in 1979. Report, Free University Amsterdam.\nvan der Meijden, R., Weeda, E.J., Holverda, W.J. & Hovenkamp, P.H. 1990.Neukel’s flora van Nederland. 21st ed. Wolters-Noordhoff, Groningen.\nvan Dijk, H.W.J. & Grootjans, A.P. 1993. Wet dune slacks: decline and new opportunities.Hydrobiologia 265: 281–304.\nvan Tooren, B.F., Schat, H. & ter Borg, S.J. 1983. Succession and fluctuation in vegetation of a Dutch beach plain.Vegetatio 53: 139–151.\nvan Tooren, B.F., Zonneveld, T., Keizer, P.J. & Huisman, J. 1993. Ontwikkeling en beheer van de vegetatie op de Strandvlakte op Schiermonnikoog.Levende Nat. 3: 112–117.\nWapenaar, P. 1980.Vegetatie beschrijving en-kartering van de strandvlakte van Schiermonnikoog in 1979. Een vegetatiekundig onderzoek uitgevoerd aan de hand van luchtfoto’s. Report, Free University Amsterdam.\nWesthoff, V. 1989. Dunes and dune management along the North Sea coast. In: van der Meulen, F. et al. (eds.)Perspective in coastal dune management, pp. 41–51. SPB Academic Publishing, The Hague.\nWilson, S.D. & Tilman, D. 1993. 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