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Reconstruction of flood probabilities in France, 1705-2015
<p>As part of the <a href="https://globxblog.inrae.fr/hegs/">HEGS project</a>, an attempt was made at reconstructing flood probabilities for 207 stations in France during the period 1705-2015. This reconstruction is based on the historical flood marks database <a href="https://www.reperesdecrues.developpement-durable.gouv.fr/">Repères De Crues</a>. Details can be found in <a href="https://doi.org/10.1080/02626667.2023.2212165">this publication</a>.</p> <p>This repository contains the data underlying this reconstruction (historical flood marks at sites and flood peaks at hydrometric stations), and the reconstruction itself. A sonified animation of these data is available at <a href="https://vimeo.com/815008124">https://vimeo.com/815008124</a>.</p> <p><strong>data/sites.txt</strong></p> <p>Description of 327 flood mark sites, with the following columns:</p> <ol> <li>"index": site index.</li> <li>"ID": site ID.</li> <li>"lon": longitude.</li> <li>"lat": latitude.</li> <li>"town": town (in French: commune).</li> <li>"INSEEcode": <a href="https://en.wikipedia.org/wiki/INSEE_code">INSEE code</a>, an ID for the town.</li> <li>"river": name of the river whose floods created the marks.</li> <li>"zone": geographical area.</li> <li>"description": site description (in French).</li> <li>"firstMark": year of the first available flood mark.</li> <li>"lastMark": year of the last available flood mark.</li> <li>"nMark": number of available flood marks during the period 1705-2015.</li> </ol> <p><strong>data/marksAtSites.txt</strong></p> <p>Flood marks recorded at sites during the period 1705-2015, with the following columns:</p> <ol> <li>"ID": site ID.</li> <li>"year": year of the mark.</li> <li>"month": month of the mark.</li> <li>"day": day of the mark.</li> <li>"hydroYear": hydrological year of the mark (hydroYear e.g. 1998 goes from September 1998 to August 1999).</li> <li>"isFloodPeak": does the mark correspond to the flood peak?</li> <li>"elevation": elevation of the mark (in m).</li> </ol> <p><strong>data/stations.txt</strong></p> <p>Description of 207 hydrometric stations, with the following columns:</p> <ol> <li>"index": station index.</li> <li>"ID": station ID.</li> <li>"lon": longitude.</li> <li>"lat": latitude.</li> <li>"area": area of the catchment monitored by the station.</li> <li>"description": station description (in French).</li> <li>"nMonth": number of months with available data.</li> </ol> <p><strong>data/peaksAtStations.txt</strong></p> <p>Flood peaks recorded at stations, with the following columns:</p> <ol> <li>"ID": site ID.</li> <li>"hydroYear": hydrological year.</li> <li>"amax": annual maximum value of daily discharge (in m<sup>3</sup>.s<sup>-1</sup>).</li> <li>"mm": same as above but converted in mm.</li> </ol> <p><strong>reconstructions.txt</strong></p> <p>Reconstructed distribution of annual maxima, estimated at all stations and for the period 1705-2015, with the following columns:</p> <ol> <li>"year": hydrological year.</li> <li>"stationID": ID of the station.</li> <li>"lon": longitude.</li> <li>"lat": latitude.</li> <li>"median": median of the estimated GEV distribution for this year and this station (in mm).</li> <li>"low": 0.05-quantile of the estimated GEV distribution for this year and this station (in mm).</li> <li>"high": 0.95-quantile of the estimated GEV distribution for this year and this station (in mm).</li> <li>"prob": Estimated probability of exceeding a 10-year event for this year and this station.</li> </ol>
FIG. 2 in Piscicola pojmanskae Bielecki, 1994 (Hirudinida, Piscicolidae), une nouvelle espèce de sangsue pour la faune de France
FIG. 2. — Localisation des stations de Piscicola pojmanskae Bielecki, 1994 (fond de carte: Open Street Map).
ANNEXE 2 in Piscicola pojmanskae Bielecki, 1994 (Hirudinida, Piscicolidae), une nouvelle espèce de sangsue pour la faune de France
ANNEXE 2. — Détails des données obtenues par l'analyse des lots. Abréviations: AB, Aleksander Bielecki; BL, Benoît Lecaplain; CL, Clemens Grosser.
FIG. 4 in Piscicola pojmanskae Bielecki, 1994 (Hirudinida, Piscicolidae), une nouvelle espèce de sangsue pour la faune de France
FIG. 4. — Piscicola pojmanskae Bielecki, 1994: A, diverticule; B: caecum posterieur; C, partie postérieure de l'intestin; appareil reproducteur de Piscicola pojmanskae Bielecki, 1994; D, spécimen français; E, spécimen polonais (clichés: A. Bielecki). Échelles: A, 0,8 mm; B, 1,8; C, 1,8 mm; D, 1,4 mm; E, 1 mm.
FIG. 3. — A, B, E, G in Piscicola pojmanskae Bielecki, 1994 (Hirudinida, Piscicolidae), une nouvelle espèce de sangsue pour la faune de France
FIG. 3. — A, B, E, G, Piscicola pojmanskae Bielecki, 1994, Machecoul/44, France: A, vue générale; B, vue ventrale de la partie antérieure; E, appareil reproducteur; G, détails de l'appareil reproducteur femelle et du tissu vecteur; C, D, F, H, Piscicola geometra (Linnaeus, 1760), Pologne: C, vue générale; D, détail de l'aire copulatrice; F, appareil reproducteur; H, détails de l'appareil reproducteur femelle et du tissu vecteur. Photographies: A. Bielecki, dessins: Bielecki 1997). Abréviations: voir Matériel et méthodes. Échelles: A, 2,3 mm; B, 1,7 mm; C, 5,9 mm; D, 2,4 mm.
FIG. 1 in Piscicola pojmanskae Bielecki, 1994 (Hirudinida, Piscicolidae), une nouvelle espèce de sangsue pour la faune de France
FIG. 1. — Dendrogramme de 23 espèces de Piscicolidae Johnston, 1865 basé sur la valeur moyenne de 19 mesures morphologiques.
Data for Daudin, Frank & Rapoport « Can internal migration foster the convergence in regional fertility rates? Evidence from 19th century France », Economic Journal (2019), n°620, May, p.1618-1692.
<p>Data for Guillaume Daudin, Raphaël Franck and Hillel Rapoport « Can internal migration foster the convergence in regional fertility rates? Evidence from 19th century France » avec Raphaël Franck et Hillel Rapoport, Economic Journal (2019), n°620, May, p.1618-1692.</p> <p>Downloading the data will provide you with a .zip file.</p> <p>To understand what is going on, please refer to the paper, its git depository and especially this file : https://github.com/gdaudin/migrations/blob/master/R%C3%A9capitulatif%20des%20do%20-%20Migration.pdf</p> <p>All the migration "matrices" are in Stata format (.dta). They are presented as a list of directed pairs of departments (x gender (variable sexe) and x year (variable annee)).</p> <p>"Matrice_complete_1901+1911.dta" are the migration matrices in the source.<br>"Matrices_TRA_Recens.dta" are the main estimated migration matrices.</p>
Photographic coverage of the Trou de la Féclaz site (Saint-Jean-d'Arvey, Savoie, France)_datasets
<p>The dataset described in this paper consists of 557 photographs composing the 2D photographic coverage of the rock paintings from the Trou de la Féclaz alpine site (Saint-Jean-d’Arvey, Savoie, France) with 14 pictures of the environment of the site and 21 pictures composing the general views of the rockshelter. This dataset is described in the datapaper published in <em>Préhistoires méditerranéennes</em> (Defrasne 2022). It was carrying out as part of a post-doctoral research at Aix-Marseille Université on the structure and chronology of the prehistoric schematic rock paintings from southern France and western Alps, a corpus today composed of 146 sites. This was administratively authorized both by the municipality that is the owner of the site, and the Service Régional de l’Archéologie Auvergne-Rhône-Alpes that also financially supported the fieldwork.</p> <p>Defrasne 2022, « Photographic coverage of the Trou de la Féclaz site (Saint-Jean-d’Arvey, Savoy, France) — <em>data paper</em> », <em>Préhistoires Méditerranéennes</em> [En ligne], 9.1 | 2021, mis en ligne le 12 juillet 2022, consulté le 27 juillet 2022. URL : http://journals.openedition.org/pm/3429 ; DOI : https://doi.org/10.4000/pm.3429</p>
FIG. 35. — A in Vertebrate paleobiodiversity of the Early Cretaceous (Berriasian) Angeac-Charente Lagerstätte (southwestern France): implications for continental faunal turnover at the J/K boundary
FIG. 35. — A, Relative abundance of Angeac-Charente large vertebrate taxa based on identified macroremains collected from 2010 to 2017. White numbers indicate the Minimum Number of Individuals (MNI) (after Rozada et al. 2021); B, Relative abundance of Angeac-Charente taxa, based on microremains collected in 2017, by water screen-washing (diameter of mesh = 0.8 mm), at the base of the unit 3, of the R3 plot.
FIG. 31 in Vertebrate paleobiodiversity of the Early Cretaceous (Berriasian) Angeac-Charente Lagerstätte (southwestern France): implications for continental faunal turnover at the J/K boundary
FIG. 31. — Reconstruction of the Angeac Ornithomimosaur, based on 3D surface scans of 232 bones. All the bones of the 3D reconstruction were scaled on the basis of a 40 cm long femur.
FIG. 34 in Vertebrate paleobiodiversity of the Early Cretaceous (Berriasian) Angeac-Charente Lagerstätte (southwestern France): implications for continental faunal turnover at the J/K boundary
FIG. 34. — Trechnotherian mammal teeth from the Berriasian of Angeac-Charente: A, B, left lower molar of Spalacotherium evansae Ensom & Sigogneau-Russell, 2000 (ANG M-26) in occlusal (A) and lingual (B) views; C, D, left lower molar (m1 or?m2) of Dryolestidae indet. (ANG M-05) in occlusal (C) and linguodistal (D) views; E, F, left lower molar (m6 or?m7) of Dryolestidae indet. (ANG M-01) in occlusal (E) and mesial (F) views; G-I, left lower molar (m3?) of Peramus sp. (ANG M-25) in occlusal (G) labial (H) and lingual (I) views. Scale bars: 400 µm.
FIG. 33 in Vertebrate paleobiodiversity of the Early Cretaceous (Berriasian) Angeac-Charente Lagerstätte (southwestern France): implications for continental faunal turnover at the J/K boundary
FIG. 33. — Multituberculate mammal teeth from Angeac-Charente: A, B, left p4 of Pinheirodontidae indet. (ANG M-72) in lingual (A) and labial (B) views; C, D, left P1 of Pinheirodontidae indet. (ANG M-03) in occlusal (C) and distolingual (D) views; E, F, right P2 of Pinheirodontidae indet. (ANG M-06) in occlusal (E) and lingual (F) views; G, H, left P3 of Pinheirodontidae indet. (ANG M-22) in occlusal (G) and lingual (H) views; I, J, left?P4 of Sunnyodon sp. (ANG M-04) in occlusal (I) and labial (J) views; K, L, left?P5 of Multituberculata indet. (ANG M-106) in mesio-occlusal (K) and occluso-labial (L) views; M, N, left?m2 of Pinheirodontidae indet. (ANG M- 105) in occlusal (M) and labial (N) views; O, P, right M2 of Pinheirodontidae indet. (ANG M-32) in occlusal (O) and lingual (P) views. Scale bar: A, B, 1 mm; C, D, 750 µm; E-P, 500 µm.
FIG. 28 in Vertebrate paleobiodiversity of the Early Cretaceous (Berriasian) Angeac-Charente Lagerstätte (southwestern France): implications for continental faunal turnover at the J/K boundary
FIG. 28. — Theropod teeth from Angeac-Charente: A-C, Archaeopterygid tooth (ANG M-09) in lingual (A) and labial (B, C) views; D, Archaeopterygid tooth (ANG M-08) in lingual view; E, F, cf. Nuthetes sp. (ANG M-45) in lingual (E) and distal (F) views; G, cf. Nuthetes sp. (ANG M-61) in lingual view; H, tooth of Tyrannosauroidea indet. (ANG17-5342) in lingual view; I, J, tooth of Tyrannosauroidea indet. (ANG M-73) in lingual (I) and distal (J) views; K, Megalosauridae? indet. (ANG17 R-1748) in lingual view (J); L, M, Megalosauridae? indet. (ANG17-5650) in labial (L) and (M) lingual views; N, Megalosauridae? indet. (ANG M-121) in lingual view. Scale bar: A, B, 1 mm; C-F, 400 µm; G, 5 mm; H-N, 1 cm.
FIG. 23 in Vertebrate paleobiodiversity of the Early Cretaceous (Berriasian) Angeac-Charente Lagerstätte (southwestern France): implications for continental faunal turnover at the J/K boundary
FIG. 23. — Thyreophoran remains from Angeac-Charente: A, B, ankylosaur maxillary tooth (ANG15-3980) in lingual (A) and labial (B) views; C, ankylosaur osteoderm (ANG18-6585) in dorsal view; D, E, dentary tooth of Dacentrurus sp. (ANG M-14) in labial (D) and lingual (E) views; F, axis of Dacentrurus sp. (ANG18-6203) in ventral view; G, anterior cervical vertebra of Dacentrurus sp. (ANG12-1878) in ventral view; H, reconstructed cervical series of Dacentrurus sp. (ANG16-6748, ANG16-4660, ANG12-1749, ANG14-3202, ANG14-2912, ANG14-3094) in ventral view; I, J, dorsal vertebra of Dacentrurus sp. (ANG18-6548) in anterior (I) and right lateral (J) views. Scale bars: A, B, 5 mm; C, D, 2.5 mm; E, 2.5 cm; F-J, 5 cm.
FIG. 32 in Vertebrate paleobiodiversity of the Early Cretaceous (Berriasian) Angeac-Charente Lagerstätte (southwestern France): implications for continental faunal turnover at the J/K boundary
FIG. 32. — Mammal teeth from Angeac-Charente: A, B, premolariform or molariform tooth of Gobiconodon? sp. (ANG M-21) in occlusal (A) and labial (B) views; C, D, premolariform tooth of Mammalia indet. (ANG M-34) in lingual (C) and labial (D) views; E, F, left lower molar of Triconodon sp. (ANG M-02) in lingual (E) and occlusal (F) views; G-I, left upper molar of Thereuodon cf. taraktes (ANG M-23) in labial (G), lingual (H) and occlusal (I) views. Scale bar: 500 µm.
FIG. 19 in Vertebrate paleobiodiversity of the Early Cretaceous (Berriasian) Angeac-Charente Lagerstätte (southwestern France): implications for continental faunal turnover at the J/K boundary
FIG. 19. — Crocodyliform remains from Angeac-Charente: A, B, tooth of Bernissartiidae indet. (ANG10-268) in lingual/labial (A) and occlusal (B) views; C, tooth of Bernissartiidae indet. (ANG10-76) in lingual/labial view; D, osteoderm of Atoposauridae? (ANG 10-167) in dorsal view; E, F, tooth of Pholidosaurus sp. (ANG11- 960) in labial (E) and mesial/distal (F) views; G, H, tooth of Pholidosaurus sp. (ANG11-883) in labial (G) and mesial/distal (H) views I, J, tooth of Pholidosaurus sp. (ANG10-369) in labial (I) and mesial/distal (J) views. Scale bar represents: A-C, 2 mm; D-J, 8 mm.
FIG. 18 in Vertebrate paleobiodiversity of the Early Cretaceous (Berriasian) Angeac-Charente Lagerstätte (southwestern France): implications for continental faunal turnover at the J/K boundary
FIG. 18. — Goniopholidid crocodyliform Angeac-Charente: A, D, left dentary of Goniopholis sp. (ANG18-5925) in dorsal (A) and ventral (D) views; B, C, skull of Goniopholis sp. (ANG18-5914, ANG18-5920, ANG18-5921) in dorsal (B) and ventral (C) views. Scale bar: 10 cm.
FIG. 15 in Vertebrate paleobiodiversity of the Early Cretaceous (Berriasian) Angeac-Charente Lagerstätte (southwestern France): implications for continental faunal turnover at the J/K boundary
FIG. 15. — Scincomorph lizard remains from Angeac-Charente: A-C, fragment of left dentary of cf. Paramacellodus sp. (ANG M-20) in lingual (A), labial (B) and distal (C) views; D-F, osteoderms of Scincomorpha indet., ANG M-46 (D), ANG M-49 (E), ANG M-58 (F) in dorsal view. Scale bar: 500 µm.
FIG. 27 in Vertebrate paleobiodiversity of the Early Cretaceous (Berriasian) Angeac-Charente Lagerstätte (southwestern France): implications for continental faunal turnover at the J/K boundary
FIG. 27. — Femur of Turiasauria indet. (ANG19-7000) from the Berriasian of Angeac-Charente discovered during the 2019 campaign. The length of the femur is 2 m. © L. Bocat.
FIG. 22 in Vertebrate paleobiodiversity of the Early Cretaceous (Berriasian) Angeac-Charente Lagerstätte (southwestern France): implications for continental faunal turnover at the J/K boundary
FIG. 22. — Camptosaur remains from Angeac-Charente: A, dentary tooth of Camptosauridae indet. (ANG11-1120) in lingual view; B-E, left femur of Camptosau- ridae indet. (ANG14-R563) in anterior (B), medial (C), posterior (D) and lateral (E) views. Scale bar: A-D, 5 cm; E, 1 cm.
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Allen Brain Atlas
Allen Brain Atlas is an Allen Institute collection of brain map atlases, datasets, APIs, and analysis tools covering mouse, human, and non-human primate brain resources.
Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
DANDI is a BRAIN Initiative archive for publishing and sharing neurophysiology data, including electrophysiology, optophysiology, and behavioral data packaged as NWB and related standards.
International Brain Laboratory public data
The International Brain Laboratory public data releases expose standardized mouse decision-making experiments, including Neuropixels recordings, widefield calcium imaging, behavior, and session metadata accessed through the ONE API.
OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.