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| "author": null, | | "author": null, |
| "author_email": null, | | "author_email": null, |
| "code": "7b.b.tb", | | "code": "7b.b.tb", |
| "contributor": "NIOZ Royal Netherlands Institute for Sea Research", | | "contributor": "NIOZ Royal Netherlands Institute for Sea Research", |
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| "creators": "[{\"firstname\":\"Roeland C.\",\"lastname\":\"van de | | "creators": "[{\"firstname\":\"Roeland C.\",\"lastname\":\"van de |
| Vijsel\",\"affiliation\":\"Royal Netherlands Institute for Sea | | Vijsel\",\"affiliation\":\"Royal Netherlands Institute for Sea |
| scorrespondingauthor\":true},{\"firstname\":\"Jim\",\"lastname\":\"van | | scorrespondingauthor\":true},{\"firstname\":\"Jim\",\"lastname\":\"van |
| Belzen\",\"affiliation\":\"Royal Netherlands Institute for Sea | | Belzen\",\"affiliation\":\"Royal Netherlands Institute for Sea |
| ddress\":\"\",\"iscorrespondingauthor\":false},{\"firstname\":\"Tjeerd | | ddress\":\"\",\"iscorrespondingauthor\":false},{\"firstname\":\"Tjeerd |
| J.\",\"lastname\":\"Bouma\",\"affiliation\":\"Royal Netherlands | | J.\",\"lastname\":\"Bouma\",\"affiliation\":\"Royal Netherlands |
| Institute for Sea | | Institute for Sea |
| respondingauthor\":false},{\"firstname\":\"Daphne\",\"lastname\":\"van | | respondingauthor\":false},{\"firstname\":\"Daphne\",\"lastname\":\"van |
| der Wal\",\"affiliation\":\"Royal Netherlands Institute for Sea | | der Wal\",\"affiliation\":\"Royal Netherlands Institute for Sea |
| iladdress\":\"\",\"iscorrespondingauthor\":false},{\"firstname\":\"Bas | | iladdress\":\"\",\"iscorrespondingauthor\":false},{\"firstname\":\"Bas |
| W.\",\"lastname\":\"Borsje\",\"affiliation\":\"University of | | W.\",\"lastname\":\"Borsje\",\"affiliation\":\"University of |
| me\":\"Stijn\",\"lastname\":\"Temmerman\",\"affiliation\":\"University | | me\":\"Stijn\",\"lastname\":\"Temmerman\",\"affiliation\":\"University |
| of | | of |
| tname\":\"Loreta\",\"lastname\":\"Cornacchia\",\"affiliation\":\"Royal | | tname\":\"Loreta\",\"lastname\":\"Cornacchia\",\"affiliation\":\"Royal |
| Netherlands Institute for Sea | | Netherlands Institute for Sea |
| rrespondingauthor\":false},{\"firstname\":\"Johan\",\"lastname\":\"van | | rrespondingauthor\":false},{\"firstname\":\"Johan\",\"lastname\":\"van |
| de Koppel\",\"affiliation\":\"Royal Netherlands Institute for Sea | | de Koppel\",\"affiliation\":\"Royal Netherlands Institute for Sea |
| 275\",\"contactemailaddress\":\"\",\"iscorrespondingauthor\":false}]", | | 275\",\"contactemailaddress\":\"\",\"iscorrespondingauthor\":false}]", |
| "dataset_persistent_id": "DOI:10.33591/nioz/7b.b.tb", | | "dataset_persistent_id": "DOI:10.33591/nioz/7b.b.tb", |
| "dates": | | "dates": |
| 21-04-15T22:00:00.000Z\",\"type\":\"collected\",\"information\":\"This | | 21-04-15T22:00:00.000Z\",\"type\":\"collected\",\"information\":\"This |
| is the entire dataset belonging to Chapter 3 of the PhD Thesis of | | is the entire dataset belonging to Chapter 3 of the PhD Thesis of |
| Roeland C. van de Vijsel | | Roeland C. van de Vijsel |
| (https://doi.org/10.33612/diss.160081233).\"}]", | | (https://doi.org/10.33612/diss.160081233).\"}]", |
| "deposit_date": "2021-03-18", | | "deposit_date": "2021-03-18", |
| "depositor": "Roeland van de Vijsel", | | "depositor": "Roeland van de Vijsel", |
| "distribution_date": "2021-03-18", | | "distribution_date": "2021-03-18", |
| "distributor": "Research Data Management(NIOZ Royal Netherlands | | "distributor": "Research Data Management(NIOZ Royal Netherlands |
| Institute for Sea Research)", | | Institute for Sea Research)", |
| "doi_date_published": "2023-11-22", | | "doi_date_published": "2023-11-22", |
| "funding_references": "[{\"name\":\"Netherlands Organisation for | | "funding_references": "[{\"name\":\"Netherlands Organisation for |
| Scientific Research | | Scientific Research |
| (NWO)\",\"awardnumber\":\"869.15.003\",\"awardtitle\":\"The New | | (NWO)\",\"awardnumber\":\"869.15.003\",\"awardtitle\":\"The New |
| Delta\"},{\"name\":\"Vlaams-Nederlandse Scheldecommissie | | Delta\"},{\"name\":\"Vlaams-Nederlandse Scheldecommissie |
| (VNSC)\",\"awardnumber\":\"3109 1805\",\"awardtitle\":\"Vegetation | | (VNSC)\",\"awardnumber\":\"3109 1805\",\"awardtitle\":\"Vegetation |
| modelling HPP\"}]", | | modelling HPP\"}]", |
| "groups": [], | | "groups": [], |
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| "metadata_created": "2024-10-22T09:47:05.840171", | | "metadata_created": "2024-10-22T09:47:05.840171", |
| n | "metadata_modified": "2024-10-22T09:47:07.738881", | n | "metadata_modified": "2024-10-22T09:47:08.176837", |
| "name": "7bbtb", | | "name": "7bbtb", |
| "notes": "Spatial patterns are omnipresent in nature | | "notes": "Spatial patterns are omnipresent in nature |
| (Rodriguez-Iturbe and Rinaldo, 1997; Kondo, 2002; Meinhardt, 2003; | | (Rodriguez-Iturbe and Rinaldo, 1997; Kondo, 2002; Meinhardt, 2003; |
| Rietkerk and van de Koppel, 2008; Petit and Anfodillo, 2009) and | | Rietkerk and van de Koppel, 2008; Petit and Anfodillo, 2009) and |
| directly affect the functioning and resilience of the (eco)systems in | | directly affect the functioning and resilience of the (eco)systems in |
| which they manifest themselves (Rietkerk et al., 2004; van de Koppel | | which they manifest themselves (Rietkerk et al., 2004; van de Koppel |
| et al., 2005; Weerman et al., 2010; Liu et al., 2014b). | | et al., 2005; Weerman et al., 2010; Liu et al., 2014b). |
| Scale-dependent feedback, which typically is positive nearby and | | Scale-dependent feedback, which typically is positive nearby and |
| negative further away, provides a widely accepted explanation for the | | negative further away, provides a widely accepted explanation for the |
| formation of simple, single-scale patterns (Meinhardt, 2003; Rietkerk | | formation of simple, single-scale patterns (Meinhardt, 2003; Rietkerk |
| and van de Koppel, 2008; Petit and Anfodillo, 2009). However, it is | | and van de Koppel, 2008; Petit and Anfodillo, 2009). However, it is |
| unclear whether the more complex, multi-scale patterns that | | unclear whether the more complex, multi-scale patterns that |
| characterize many natural systems can be explained by equally generic | | characterize many natural systems can be explained by equally generic |
| mechanisms. As a model system, we here study the tidal channels that | | mechanisms. As a model system, we here study the tidal channels that |
| characterize coastal wetlands (Hughes, 2012), as these channels | | characterize coastal wetlands (Hughes, 2012), as these channels |
| constitute patterns that vary greatly in geometry, ranging from simple | | constitute patterns that vary greatly in geometry, ranging from simple |
| parallel channels (Temmerman et al., 2007; Weerman et al., 2010; van | | parallel channels (Temmerman et al., 2007; Weerman et al., 2010; van |
| de Vijsel et al., 2020) to complexly branching networks | | de Vijsel et al., 2020) to complexly branching networks |
| (Rodriguez-Iturbe and Rinaldo, 1997; Rinaldo et al., 1999), with | | (Rodriguez-Iturbe and Rinaldo, 1997; Rinaldo et al., 1999), with |
| direct consequences for the functioning and resilience of valuable | | direct consequences for the functioning and resilience of valuable |
| wetland ecosystems. We reveal that the broad spectrum of geometries | | wetland ecosystems. We reveal that the broad spectrum of geometries |
| typical for tidal channel patterns can be explained by one | | typical for tidal channel patterns can be explained by one |
| scale-dependent feedback. This is a biogeomorphic feedback that | | scale-dependent feedback. This is a biogeomorphic feedback that |
| n | roughly follows Turing???s activator-inhibitor principle (Rietkerk and | n | roughly follows Turing's activator-inhibitor principle (Rietkerk and |
| van de Koppel, 2008) and results from flow deflection and channel | | van de Koppel, 2008) and results from flow deflection and channel |
| incision around biotically (biofilms, algae, plants) stabilized | | incision around biotically (biofilms, algae, plants) stabilized |
| sediment (Temmerman et al., 2007; Weerman et al., 2010; van de Vijsel | | sediment (Temmerman et al., 2007; Weerman et al., 2010; van de Vijsel |
| et al., 2020). Using a mathematical model, we now show that as the | | et al., 2020). Using a mathematical model, we now show that as the |
| biogeomorphic feedback gets stronger, complex multi-scale patterns | | biogeomorphic feedback gets stronger, complex multi-scale patterns |
| emerge due to self-induced recursion of the scale-dependent feedback, | | emerge due to self-induced recursion of the scale-dependent feedback, |
| which results in nesting of regular channel patterns at successively | | which results in nesting of regular channel patterns at successively |
| finer scales. This recursive mechanism provides an explanation for | | finer scales. This recursive mechanism provides an explanation for |
| poorly understood geometric properties of real-world tidal networks | | poorly understood geometric properties of real-world tidal networks |
| (Rinaldo et al., 1999). We further find that increased network | | (Rinaldo et al., 1999). We further find that increased network |
| complexity directly translates to enhanced drainage efficiency, | | complexity directly translates to enhanced drainage efficiency, |
| sediment accretion rates and ecosystem productivity. These results | | sediment accretion rates and ecosystem productivity. These results |
| highlight the vital importance of network complexity for the | | highlight the vital importance of network complexity for the |
| functioning of coastal wetlands, ultimately determining their | | functioning of coastal wetlands, ultimately determining their |
| resilience to sea level rise (Kirwan and Megonigal, 2013) and storm | | resilience to sea level rise (Kirwan and Megonigal, 2013) and storm |
| surge buffering capacity (Temmerman et al., 2013), and with that their | | surge buffering capacity (Temmerman et al., 2013), and with that their |
| potential to mitigate the effects of global change that threaten | | potential to mitigate the effects of global change that threaten |
| densely populated coastal lowlands worldwide.", | | densely populated coastal lowlands worldwide.", |
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| "tags": [ | | "tags": [ |
| { | | { |
| "display_name": "Coastal wetlands tidal channel networks | | "display_name": "Coastal wetlands tidal channel networks |
| self-organization complexity multi-scale patterns mathemati", | | self-organization complexity multi-scale patterns mathemati", |
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| self-organization complexity multi-scale patterns mathemati", | | self-organization complexity multi-scale patterns mathemati", |
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| n | "title": "Simple feedback explains complex channel patterns in | n | "title": "Chapter 3 - Simple feedback explains complex channel |
| coastal wetlands", | | patterns in coastal wetlands", |
| "type": "dataset", | | "type": "dataset", |
| "url": "https://dataportal.nioz.nl/doi/10.33591/nioz/7b.b.tb", | | "url": "https://dataportal.nioz.nl/doi/10.33591/nioz/7b.b.tb", |
| t | "version": "4" | t | "version": "5" |
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