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271 results for “ecological research”
Supplementary material 1 from: Janovsky RM, Larson ER (2019) Does invasive species research use more militaristic language than other ecology and conservation biology literature? NeoBiota 44: 27-38. https://doi.org/10.3897/neobiota.44.32925
: Data type: statistical data
Figures 38-43 from: Sarzetti L, Genise J, Sanchez M, Farina J, Molina A (2013) Nesting behavior and ecological preferences of five Diphaglossinae species (Hymenoptera, Apoidea, Colletidae) from Argentina and Chile. Journal of Hymenoptera Research 33: 63-82. https://doi.org/10.3897/jhr.33.5061
Figures 38-43 - Diphaglossa gayi Spinola, 1851. 38 General view of the nesting site beside the Río Negro Bridge, Chile 39 general view of nesting site at Lonconao, Chile 40 tumulus of soil pellets and open entrance 41 main tunnel 42 nest architecture 43 cell, neck with lining, and egg laying on provisions.
Figures 30-37 from: Sarzetti L, Genise J, Sanchez M, Farina J, Molina A (2013) Nesting behavior and ecological preferences of five Diphaglossinae species (Hymenoptera, Apoidea, Colletidae) from Argentina and Chile. Journal of Hymenoptera Research 33: 63-82. https://doi.org/10.3897/jhr.33.5061
Figures 30-37 - Cadeguala albopilosa (Spinola, 1851). 30 General view of the nest site at Bahia Mansa, Parque Nacional Los Alerces (Chubut province) 31 tumulusof unconsolidated soil32 two main tunnels and longitudinal view of the soil containing a thin ash layer 33 a pair of cells with provisions, necks and lateral tunnels, scale line: 1 cm 34 remains of cells of other nest, scale line: 1 cm 35–36 tomography images of one block of soil containing Cadeguala albopilosa nests, arrows indicate cells 37 3D-reconstruction of one nest and isolate cells.
Figures 8-18 from: Sarzetti L, Genise J, Sanchez M, Farina J, Molina A (2013) Nesting behavior and ecological preferences of five Diphaglossinae species (Hymenoptera, Apoidea, Colletidae) from Argentina and Chile. Journal of Hymenoptera Research 33: 63-82. https://doi.org/10.3897/jhr.33.5061
Figures 8-18 - Ptiloglossa tarsata (Friese, 1900). 8 General view of the nesting site at "La Florida" (Salta province), the arrow indicates the location of the nest; 9 Female of Ptiloglossa tarsata foraging in a flower of Solanum sp. 10 Tumulus of unconsolidated soil, scale line: 1 cm 11 General view showing the nest architecture with a cell at the end of the main tunnel 12 Group of scratches probably produced by female´s mandibles. The arrow indicates their location in the main tunne; 13(a) cell with cellophane-like lining and provisions, (b) neck and (c) entrance tunnel, scale line: 1 cm 14 One cell showing the cellophane-like lining on the wall, scale line: 1 cm 15 Spiral closure of one cell, scale line: 0.5 cm 16 Cocoon operculum with holes, scale line: 0.5 cm 17 Scanning electron micrograph of the cocoon operculum showing the fabric of silk threads with small circular holes, scale: 500 µm 18 Onecircular hole surrounded by silk threads, scale: 50 µm.
Figures 24-29 from: Sarzetti L, Genise J, Sanchez M, Farina J, Molina A (2013) Nesting behavior and ecological preferences of five Diphaglossinae species (Hymenoptera, Apoidea, Colletidae) from Argentina and Chile. Journal of Hymenoptera Research 33: 63-82. https://doi.org/10.3897/jhr.33.5061
Figures 24-29 - Ptiloglossa matutina (Schrottky, 1904). 24 General view of the nesting site at Reserva Karadya, Andresito (Misiones province) 25 Nest entrance closed by a plug of soil(arrow), scale line:1 cm 26 Soil with roots, litter, some rocks, and remains of the main tunnel (arrow) 27 Cell showing the larva partially submerged in provisions, cellophane lining, and the wad cotton-like material attached the cell closure, scale line: 0.5 cm 28 Detail of the cell closure with the cotton-like material 29 Cell and neck wall with the lining removed. Note the high curvature.
Figures 19-23 from: Sarzetti L, Genise J, Sanchez M, Farina J, Molina A (2013) Nesting behavior and ecological preferences of five Diphaglossinae species (Hymenoptera, Apoidea, Colletidae) from Argentina and Chile. Journal of Hymenoptera Research 33: 63-82. https://doi.org/10.3897/jhr.33.5061
Figures 19-23 - 19 Nest architecture of Ptiloglossa tarsata (Friese, 1900). 20 Cell with provisions and egg, cell neck, spiral closure, and entrance tunnel of Ptiloglossa tarsata 21 Nest architecture of Ptiloglossa matutina (Schrottky, 1904) 22 Nest architecture of Cadeguala albopilosa (Spinola, 1851) 23 Cell with provisions and egg, cell neck, location of the cell closure and entrance tunnel of Cadeguala albopilosa.
Figures 1-7 from: Sarzetti L, Genise J, Sanchez M, Farina J, Molina A (2013) Nesting behavior and ecological preferences of five Diphaglossinae species (Hymenoptera, Apoidea, Colletidae) from Argentina and Chile. Journal of Hymenoptera Research 33: 63-82. https://doi.org/10.3897/jhr.33.5061
Figures 1-7 - Zikanapis tucumana (Moure, 1945). 1 General view of the nesting site at Vinchina (La Rioja province) before sunrise 2 Female of Zikanapis tucumana during foraging activity 3 Tumulus, turret andopennest entrance 4 Main and lateral tunnel showing one cell at the end (arrow) 5 General view of nest architecture, scale line: 1 cm 6 Remains of a cell with part of the provisions. Note the curvature of neck 7 Nestarchitecture.
Figure 1b from: Kotze D, Brandmayr P, Casale A, Dauffy-Richard E, Dekoninck W, Koivula M, Lovei G, Mossakowski D, Noordijk J, Paarmann W, Pizzoloto R, Saska P, Schwerk A, Serrano J, Szyszko J, Taboada Palomares A, Turin H, Venn S, Vermeulen R, Zetto Brandmayr T (2011) Forty years of carabid beetle research in Europe – from taxonomy, biology, ecology and population studies to bioindication, habitat assessment and conservation. ZooKeys 100: 55-148. https://doi.org/10.3897/zookeys.100.1523
Figure 1b - Front covers of the first European meetings, ECM 1–8 and that of Hamburg 1984 (centre cover) (see also Table 2).
Figure 2 from: Kotze D, Brandmayr P, Casale A, Dauffy-Richard E, Dekoninck W, Koivula M, Lovei G, Mossakowski D, Noordijk J, Paarmann W, Pizzoloto R, Saska P, Schwerk A, Serrano J, Szyszko J, Taboada Palomares A, Turin H, Venn S, Vermeulen R, Zetto Brandmayr T (2011) Forty years of carabid beetle research in Europe – from taxonomy, biology, ecology and population studies to bioindication, habitat assessment and conservation. ZooKeys 100: 55-148. https://doi.org/10.3897/zookeys.100.1523
Figure 2 - Different pitfall types. A = Jar or yoghurt can. B and C = traps with an outer can to make collecting of the sample easier. B = funnel trap with small jar. C = trap for moist biotopes (the outer can contains gravel or stones to prevent the can from being pushed up by groundwater). V = preservative (usually formaldehyde 3–4% or propylene glycol), S = stones or gravel.
Figure 1a from: Kotze D, Brandmayr P, Casale A, Dauffy-Richard E, Dekoninck W, Koivula M, Lovei G, Mossakowski D, Noordijk J, Paarmann W, Pizzoloto R, Saska P, Schwerk A, Serrano J, Szyszko J, Taboada Palomares A, Turin H, Venn S, Vermeulen R, Zetto Brandmayr T (2011) Forty years of carabid beetle research in Europe – from taxonomy, biology, ecology and population studies to bioindication, habitat assessment and conservation. ZooKeys 100: 55-148. https://doi.org/10.3897/zookeys.100.1523
Figure 1a - Participants of the first European Carabidologist Meeting in Wijster, 1969. From left to right: Vlijm, Van der Aart, Lindroth, Stein, Wijmans, Hengeveld, Palmén, Van Dijk, Richter, Venema, Mook, Thiele, Tjallingii, Den Boer, Haeck, Neumann, Meijer.
Figure 1c from: Kotze D, Brandmayr P, Casale A, Dauffy-Richard E, Dekoninck W, Koivula M, Lovei G, Mossakowski D, Noordijk J, Paarmann W, Pizzoloto R, Saska P, Schwerk A, Serrano J, Szyszko J, Taboada Palomares A, Turin H, Venn S, Vermeulen R, Zetto Brandmayr T (2011) Forty years of carabid beetle research in Europe – from taxonomy, biology, ecology and population studies to bioindication, habitat assessment and conservation. ZooKeys 100: 55-148. https://doi.org/10.3897/zookeys.100.1523
Figure 1c - Front covers of the last five ECMs and of a few major carabidology publications (Thiele 1977; Ball et al. 1998; Erwin et al. 1979; Noonan et al. 1992) (see also Table 2).
Figure 6 from: Kozyra KB, Baraniak E, Kasprowicz M (2016) Nesting ecology of Polistes nimpha (Hymenoptera, Vespidae): a preliminary study in western Poland. Journal of Hymenoptera Research 51: 187-201. https://doi.org/10.3897/jhr.51.7508
Figure 6 - Comparison of the height above ground of all nests founded by Polistes nimpha in the study area with that of the colonies that survived the preemergence phase in 2014.
Figure 7 from: Kozyra KB, Baraniak E, Kasprowicz M (2016) Nesting ecology of Polistes nimpha (Hymenoptera, Vespidae): a preliminary study in western Poland. Journal of Hymenoptera Research 51: 187-201. https://doi.org/10.3897/jhr.51.7508
Figure 7 - Number of nests of Polistes nimpha built on several most frequent plant species in 2014–2015. Abbreviations: Hp—Hypericum perforatum; Tv—Tanacetum vulgare; Am—Achillea millefolium; Je—Juncus effusus; Dc—Daucus carota; Dg—Dactylis glomerata; Hl—Holcus lanatus; Rc—Rosa canina; Gv—Galium verum.
Figure 5 from: Kozyra KB, Baraniak E, Kasprowicz M (2016) Nesting ecology of Polistes nimpha (Hymenoptera, Vespidae): a preliminary study in western Poland. Journal of Hymenoptera Research 51: 187-201. https://doi.org/10.3897/jhr.51.7508
Figure 5 - Height at which the nests of Polistes nimpha were built in 2014–2015, depending on plant species. *Dunn's post hoc test, p < 0.05. Abbreviations: Hp—Hypericum perforatum; Tv—Tanacetum vulgare; Am—Achillea millefolium; Je—Juncus effusus; Dc—Daucus carota; Dg—Dactylis glomerata; Hl—Holcus lanatus; Rc—Rosa canina; Gv—Galium verum.
Figure 4 from: Kozyra KB, Baraniak E, Kasprowicz M (2016) Nesting ecology of Polistes nimpha (Hymenoptera, Vespidae): a preliminary study in western Poland. Journal of Hymenoptera Research 51: 187-201. https://doi.org/10.3897/jhr.51.7508
Figure 4 - Values of the azimuth of nests of Polistes nimpha, depending on the plant species on which they were built in 2014–2015. Abbreviations: Hp—Hypericum perforatum; Tv—Tanacetum vulgare; Am—Achillea millefolium; Je—Juncus effusus; Dc—Daucus carota; Dg—Dactylis glomerata; Hl—Holcus lanatus; Rc—Rosa canina; Gv—Galium verum.
Figure 2 from: Gherghel I, Papeş M, Brischoux F, Sahlean T, Strugariu A (2016) A revision of the distribution of sea kraits (Reptilia, Laticauda) with an updated occurrence dataset for ecological and conservation research. ZooKeys 569: 135-148. https://doi.org/10.3897/zookeys.569.6975
Figure 2 - Shannon-Wiener diversity index for the Laticauda group (green: H' = 0.000001–0.56; orange: H' = 0.57–0.82; red: H' = 0.82–1.08).
Figure 1 from: Gherghel I, Papeş M, Brischoux F, Sahlean T, Strugariu A (2016) A revision of the distribution of sea kraits (Reptilia, Laticauda) with an updated occurrence dataset for ecological and conservation research. ZooKeys 569: 135-148. https://doi.org/10.3897/zookeys.569.6975
Figure 1 - Distribution of hot spots for the Laticauda group (color codes reflect statistical confidence; red for 99% confidence level, orange for 95% confidence level, and green for 90% confidence level).
Supplementary material 4 from: Azzaro M, Packard TT, Monticelli LS, Maimone G, Rappazzo AC, Azzaro F, Grilli F, Crisafi E, La Ferla R (2019) Microbial metabolic rates in the Ross Sea: the ABIOCLEAR Project. In: Mazzocchi MG, Capotondi L, Freppaz M, Lugliè A, Campanaro A (Eds) Italian Long-Term Ecological Research for understanding ecosystem diversity and functioning. Case studies from aquatic, terrestrial and transitional domains. Nature Conservation 34: 441-475. https://doi.org/10.3897/natureconservation.34.30631
: Data type: statistical data
Supplementary material 5 from: Azzaro M, Packard TT, Monticelli LS, Maimone G, Rappazzo AC, Azzaro F, Grilli F, Crisafi E, La Ferla R (2019) Microbial metabolic rates in the Ross Sea: the ABIOCLEAR Project. In: Mazzocchi MG, Capotondi L, Freppaz M, Lugliè A, Campanaro A (Eds) Italian Long-Term Ecological Research for understanding ecosystem diversity and functioning. Case studies from aquatic, terrestrial and transitional domains. Nature Conservation 34: 441-475. https://doi.org/10.3897/natureconservation.34.30631
: Data type: measurement
Supplementary material 3 from: Azzaro M, Packard TT, Monticelli LS, Maimone G, Rappazzo AC, Azzaro F, Grilli F, Crisafi E, La Ferla R (2019) Microbial metabolic rates in the Ross Sea: the ABIOCLEAR Project. In: Mazzocchi MG, Capotondi L, Freppaz M, Lugliè A, Campanaro A (Eds) Italian Long-Term Ecological Research for understanding ecosystem diversity and functioning. Case studies from aquatic, terrestrial and transitional domains. Nature Conservation 34: 441-475. https://doi.org/10.3897/natureconservation.34.30631
: Data type: measurements
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
Allen Brain Atlas
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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.