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18 results for “rights of nature”

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zenodo40/100

Text-fig. 7. Cornacaeae (a–j), Icacinaceae (k–o). a–e: Mastixia. USNM PAL 772364. Scale bar = 1 cm. a: Lateral view of eroded endocarp – the opposite side being missing and the endocarp broken near its mid point, reflected light, palladium coated. b–e: Micro-CT scan surface renderings. b: Rotated 90° from the view in (a). c: Rotated 90° from the view in (b). d: Rotated 90° from (c), exhibiting the damaged "back" face of the endocarp. e: Axillary view of the endocarp; the opposite end missing as apparent in (d). f–j: Cf. Nyssa. DMNH EPI.47808. Scale bar = 1 cm. Micro-CT scan surface renderings. f: Intact face of the endocarp; note ridges and "apical" point. g: Eroded (?gnawed; note horizontal grooving) opposite face of the endocarp. h: Lateral view of the endocarp, eroded/gnawed face to left. i: Apical view, eroded/gnawn portion below. j: Basal view of endocarp. k–o: Iodes DMNH-EPI.47807. Micro-CT scan surface renderings. Scale bar = 1 cm. k: Face view of endocarp. l: Opposite face of endocarp. m: Lateral view demonstrating the compressed nature of the endocarp, note thickened suture marking the probable track of the primary bundle. n: Apical view, primary bundle trace to right. o: Basal view, primary bundle trace to right. in The Early Middle Eocene Wagon Bed Carpoflora Of Central Wyoming, U.S.A.

Text-fig. 7. Cornacaeae (a–j), Icacinaceae (k–o). a–e: Mastixia. USNM PAL 772364. Scale bar = 1 cm. a: Lateral view of eroded endocarp – the opposite side being missing and the endocarp broken near its mid point, reflected light, palladium coated. b–e: Micro-CT scan surface renderings. b: Rotated 90° from the view in (a). c: Rotated 90° from the view in (b). d: Rotated 90° from (c), exhibiting the damaged "back" face of the endocarp. e: Axillary view of the endocarp; the opposite end missing as apparent in (d). f–j: Cf. Nyssa. DMNH EPI.47808. Scale bar = 1 cm. Micro-CT scan surface renderings. f: Intact face of the endocarp; note ridges and "apical" point. g: Eroded (?gnawed; note horizontal grooving) opposite face of the endocarp. h: Lateral view of the endocarp, eroded/gnawed face to left. i: Apical view, eroded/gnawn portion below. j: Basal view of endocarp. k–o: Iodes DMNH-EPI.47807. Micro-CT scan surface renderings. Scale bar = 1 cm. k: Face view of endocarp. l: Opposite face of endocarp. m: Lateral view demonstrating the compressed nature of the endocarp, note thickened suture marking the probable track of the primary bundle. n: Apical view, primary bundle trace to right. o: Basal view, primary bundle trace to right.

opencc-by-4.0Aug 2022View details →
zenodo40/100

Рис. 3. Àневные чешуекрыΛые Ботчинского заповеΑника в прироΑе. Фото И. В. Костомаровой: 1 — Vanessa cardui; 2 — Euphydryas intermedia, самец; 3 — Melitaea arcesia, самка; 4 — Mellicta ambigua, самец; 5 — Nephargynnis anadyomene ella, самка; 6 — Damora sagana, самец; 7 — Erebia ligea eumonia (сΛева) и Erebia ajanensis (справа), самцы; 8 — Erebia wanga, самец Fig. 3. Diurnal butterflies of the Botchinsky reserve in nature. Photos by I. V. Kostomarova: 1 — Vanessa cardui; 2 — Euphydryas intermedia, males; 3 — Melitaea arcesia, female; 4 — Mellicta ambigua, male; 5 — Nephargynnis anadyomene ella, female; 6 — Damora sagana, male; 7 — Erebia ligea eumonia (left) and Erebia ajanensis (right), males; 8 — Erebia wanga, male in Hesperioidea And Papilionoidea (Lepidoptera) Of Coniferous Forests From The Nature Reserve Botchinskii

Рис. 3. Àневные чешуекрыΛые Ботчинского заповеΑника в прироΑе. Фото И. В. Костомаровой: 1 — Vanessa cardui; 2 — Euphydryas intermedia, самец; 3 — Melitaea arcesia, самка; 4 — Mellicta ambigua, самец; 5 — Nephargynnis anadyomene ella, самка; 6 — Damora sagana, самец; 7 — Erebia ligea eumonia (сΛева) и Erebia ajanensis (справа), самцы; 8 — Erebia wanga, самец Fig. 3. Diurnal butterflies of the Botchinsky reserve in nature. Photos by I. V. Kostomarova: 1 — Vanessa cardui; 2 — Euphydryas intermedia, males; 3 — Melitaea arcesia, female; 4 — Mellicta ambigua, male; 5 — Nephargynnis anadyomene ella, female; 6 — Damora sagana, male; 7 — Erebia ligea eumonia (left) and Erebia ajanensis (right), males; 8 — Erebia wanga, male

opencc-by-4.0Jul 2019View details →
zenodo40/100

DT A 'rw YTTT Unix... Au .. Ornithomimus nazis, Lainbe, phalanges of right pes, external view; natural size. Page 50. in New genera and species from the Belly River Series (mid-Cretaceous)

DT A 'rw YTTT Unix... Au .. Ornithomimus nazis, Lainbe, phalanges of right pes, external view; natural size. Page 50.

opencc-by-4.0Dec 1902View details →
zenodo40/100

Reconstruction of the skeletons of Struthiomimus altus (left) and Ornitholestes hermanni (right). Struthiomimus 1/10, Ornitholestes 1/6 natural size, The Ornitholestes restoration replaces the original restoration by Osborn in 1903 which is very faulty. The Struthiomimus, Amer. Mus. 5339, mount has the distal end of the tail restored from Amer. Mus. 5355; dotted vertebra from Amer. Mus. 5262, In both restorations the pollex is too closely appressed to the other digits, see Fig. 3. in Skeletal Adaptations of Ornitholestes, Struthiomimus, Tyrannosaurus

Reconstruction of the skeletons of Struthiomimus altus (left) and Ornitholestes hermanni (right). Struthiomimus 1/10, Ornitholestes 1/6 natural size, The Ornitholestes restoration replaces the original restoration by Osborn in 1903 which is very faulty. The Struthiomimus, Amer. Mus. 5339, mount has the distal end of the tail restored from Amer. Mus. 5355; dotted vertebra from Amer. Mus. 5262, In both restorations the pollex is too closely appressed to the other digits, see Fig. 3.

opencc-by-4.0Dec 1917View details →
zenodo36/100

Rights of Nature Database - June 2021

<p>Three Versions of a Rights of Nature Database (updated for June 2021). The work developed into the Eco-Jurisprudence Monitor (ecojurisprudence.org)</p>

opencc-by-4.0Jan 2022View details →
zenodo36/100

Plate XIII Ornithomimus altus, Lambe, phalanges of right pes, external view; natural size. Page 50. in New genera and species from the Belly River Series (mid-Cretaceous)

Plate XIII Ornithomimus altus, Lambe, phalanges of right pes, external view; natural size. Page 50.

opencc-by-4.0Dec 1902View details →
zenodo36/100

Rights of Nature Database - May 2024

<p>Updated Version of a Rights of Nature Database (May 2024). The data was taken and adapted from the Eco-Jurisprudence Monitor (ecojurisprudence.org)</p>

opencc-by-4.0Oct 2024View details →
dryad32/100

Data from: Rapid categorization of natural face images in the infant right hemisphere

Human performance at categorizing natural visual images surpasses automatic algorithms, but how and when this function arises and develops remain unanswered. We recorded scalp electrical brain activity in 4–6 months infants viewing images of objects in their natural background at a rapid rate of 6 images/second (6 Hz). Widely variable face images appearing every 5 stimuli generate an electrophysiological response over the right hemisphere exactly at 1.2 Hz (6 Hz/5). This face-selective response is absent for phase-scrambled images and therefore not due to low-level information. These findings indicate that right lateralized face-selective processes emerge well before reading acquisition in the infant brain, which can perform figure-ground segregation and generalize face-selective responses across changes in size, viewpoint, illumination as well as expression, age and gender. These observations made with a highly sensitive and objective approach open an avenue for clarifying the developmental course of natural image categorization in the human brain.

opencc-zeroDec 2014View details →
zenodo32/100

FIGURE 11. Larval maxilla, right side FIGURE 12 in The Neotropical species Askalaphium depressum (Bates): Larval description, first diagnosis and illustrations of immature Ctenodactylini, with natural history notes on the genus and tribe (Coleoptera: Carabidae)

FIGURE 11. Larval maxilla, right side FIGURE 12. Larval prontoum (PR), dorsal aspect, ventral aspect, third instar. Primary set­ third instar. Primary setae: PR, 1­14. Primary pores: ae: MX, 1­12. Primary pores: MX, a ­ g. PR, a ­ l.

opennotspecifiedDec 2003View details →
zenodo32/100

FIGURE. Natural hybrids of Drosera sect. Drosera in Brazil. Drosera cayennensis × D. hirtella: a, rosette with emerging inflorescence (Cristalina, GO). Drosera communis × D. hirtella: b, rosette with emerging inflorescence (Parque Nacional da Chapada dos Veadeiros, GO). Drosera communis × D. lutescens: c, rosette with emerging inflorescence (Parque Nacional da Chapada dos Guimarães, MT). Drosera hirtella × D. lutescens (d, e): comparison between the hybrid (center) and the two parental species, D. hirtella (left) and D. lutescens (right); d, rosettes; e, scapes (Serra dos Pirineus, GO). Photo credits: a, b by PMG; c by Marcos Cardoso; d by FR. in A synopsis of the genus Drosera (Droseraceae) in Brazil

FIGURE. Natural hybrids of Drosera sect. Drosera in Brazil. Drosera cayennensis × D. hirtella: a, rosette with emerging inflorescence (Cristalina, GO). Drosera communis × D. hirtella: b, rosette with emerging inflorescence (Parque Nacional da Chapada dos Veadeiros, GO). Drosera communis × D. lutescens: c, rosette with emerging inflorescence (Parque Nacional da Chapada dos Guimarães, MT). Drosera hirtella × D. lutescens (d, e): comparison between the hybrid (center) and the two parental species, D. hirtella (left) and D. lutescens (right); d, rosettes; e, scapes (Serra dos Pirineus, GO). Photo credits: a, b by PMG; c by Marcos Cardoso; d by FR.

opennotspecifiedJul 2022View details →
zenodo32/100

FIGURES 27–30. 27–28. Cladochaeta atlantica Pirani & Amorim. 27. Male terminalia, posterolateral view. The right surstylus was omitted. 28. Female terminalia, ventral view. 29–30 in A new species and notes on unusual natural history of Cladochaeta Coquillett, 1900 (Diptera: Drosophilidae)

FIGURES 27–30. 27–28. Cladochaeta atlantica Pirani &amp; Amorim. 27. Male terminalia, posterolateral view. The right surstylus was omitted. 28. Female terminalia, ventral view. 29–30. Spider Cryptachaea migrans (Keyserling). 29. Adult female with egg sac. 30. Web and retreat in a bamboo leaf. (Abbreviations: as = apical sternite; hy = hypoproct; ps = penultimate sternite). Scale bars = 100 µm.

opennotspecifiedApr 2018View details →
zenodo32/100

Transverse section of a whale earplug showing the alternating light and dark laminae. Stephen Trumble, left, and Sascha Usenko, right, with a jar containing whale earplugs in 10 percent formalin at the Natural History Museum in London. Photographs: Sascha Usenko. in The Evolution of Natural History Collections

Transverse section of a whale earplug showing the alternating light and dark laminae. Stephen Trumble, left, and Sascha Usenko, right, with a jar containing whale earplugs in 10 percent formalin at the Natural History Museum in London. Photographs: Sascha Usenko.

opennotspecifiedMar 2019View details →
zenodo32/100

Dinosaur egg with bumpy shell, on right, with a collection of colorful bird eggs. The dark area on the left side of the dinosaur egg was likely blue in color. Photograph: Jasmina Wiemann. in The Evolution of Natural History Collections

Dinosaur egg with bumpy shell, on right, with a collection of colorful bird eggs. The dark area on the left side of the dinosaur egg was likely blue in color. Photograph: Jasmina Wiemann.

opennotspecifiedMar 2019View details →
ClinicalTrials.gov32/100

The Role of Natural Orifice Specimen Extraction Surgery (NOSES) in Treating Right-sided Colon Cancer

ClinicalTrials.gov study NCT06753968. IPD Sharing: NO. Countries: 1. Publications: 1.

closedIPD-NOFeb 2026View details →
dryad32/100

Data from: Rapid categorization of natural face images in the infant right hemisphere

Open the record for dataset details and reuse information.

publicMay 2016View details →
zenodo28/100

Text-fig. 5. Anacardiaceae (a–m), Burseraceae (n–q). Scale bars = 1 cm. a–f: Pentoperculum sp. a–c: USNM PAL 772360. a: Lateral view of endocarp, apex up; three germination valves visible, the central clearly displaying the bipartite nature of the valve, reflected light, palladium coated. b: Apical view displaying six locules, with two preserved germination valves at the lower left, reflected light, palladium coated. c: Basal view of the endocarp, the locules suggested by swellings; note point of attachment, micro-CT scan surface rendering. d–f: Pentoperculum sp. USNM PAL 772359, reflected light, palladium coated. d: Lateral view of a probable 6-loculed endocarp, apex up; a single intact germination valve in the center, displaying the central lineation that divides it in two. e: Apical view; two bi-partite germination valves are visible, indicated by arrows to the middle cleavage line of two of the valves. f: Basal view, the locules suggested by the undulations in the margin. g–i: Indet. Spondioideae. USNM PAL 772358, reflected light, palladium coated. g: Lateral view of multi-locular endocarp, apex up. h: Apical view showing finely punctuate surface and peripheral locule cavities. i: Basal view. j–m: Cf. Pleiogynium USNM PAL 772357. j: Lateral view of the multi-locular endocarp, apex up; note intact germination valve on left and exposed locule facing the viewer, micro-CT scan surface rendering. k: Lateral view, rotated about 30° from (j), showing three exposed locules, reflected light, palladium coated; note bipartite locule lining at center. l: Apical view of the multilocular endocarp; the locule with intact germination valve at the upper right, reflected light, palladium coated. Arrows to each locule. m: Basal view showing central point of attachment and prominent radiating ridges aligned with the locules, micro-CT scan surface rendering. n–q: Canarium, USNM PAL 772361. Scale bar = 1 cm. n: Lateral view of endocarp directly facing one germination valve flanked by two strong ridges; apex up; specimen coated in sodium nitrate and photographed by R. A. Scott. o: Lateral view facing one of the three pronounced ridges, flanked to the left and right by two germination valves; apex up. p: Apical view displaying the three strong ridges, arching over the apex and flanking three deep embayments, covered with germination valves. q: Basal view, the three ridges being less pronounced. o–q: Reflected light, palladium coated. in The Early Middle Eocene Wagon Bed Carpoflora Of Central Wyoming, U.S.A.

Text-fig. 5. Anacardiaceae (a–m), Burseraceae (n–q). Scale bars = 1 cm. a–f: Pentoperculum sp. a–c: USNM PAL 772360. a: Lateral view of endocarp, apex up; three germination valves visible, the central clearly displaying the bipartite nature of the valve, reflected light, palladium coated. b: Apical view displaying six locules, with two preserved germination valves at the lower left, reflected light, palladium coated. c: Basal view of the endocarp, the locules suggested by swellings; note point of attachment, micro-CT scan surface rendering. d–f: Pentoperculum sp. USNM PAL 772359, reflected light, palladium coated. d: Lateral view of a probable 6-loculed endocarp, apex up; a single intact germination valve in the center, displaying the central lineation that divides it in two. e: Apical view; two bi-partite germination valves are visible, indicated by arrows to the middle cleavage line of two of the valves. f: Basal view, the locules suggested by the undulations in the margin. g–i: Indet. Spondioideae. USNM PAL 772358, reflected light, palladium coated. g: Lateral view of multi-locular endocarp, apex up. h: Apical view showing finely punctuate surface and peripheral locule cavities. i: Basal view. j–m: Cf. Pleiogynium USNM PAL 772357. j: Lateral view of the multi-locular endocarp, apex up; note intact germination valve on left and exposed locule facing the viewer, micro-CT scan surface rendering. k: Lateral view, rotated about 30° from (j), showing three exposed locules, reflected light, palladium coated; note bipartite locule lining at center. l: Apical view of the multilocular endocarp; the locule with intact germination valve at the upper right, reflected light, palladium coated. Arrows to each locule. m: Basal view showing central point of attachment and prominent radiating ridges aligned with the locules, micro-CT scan surface rendering. n–q: Canarium, USNM PAL 772361. Scale bar = 1 cm. n: Lateral view of endocarp directly facing one germination valve flanked by two strong ridges; apex up; specimen coated in sodium nitrate and photographed by R. A. Scott. o: Lateral view facing one of the three pronounced ridges, flanked to the left and right by two germination valves; apex up. p: Apical view displaying the three strong ridges, arching over the apex and flanking three deep embayments, covered with germination valves. q: Basal view, the three ridges being less pronounced. o–q: Reflected light, palladium coated.

opencc-by-4.0Aug 2022View details →
zenodo24/100

Data for "The Nature of Right-handed Polarized Ion-scale Waves In the Near-Sun Solar Wind and Extended Solar Corona: the Antisunward Fast-Magnetosonic Whistler Wave or the Sunward Ion Cyclotron Wave?" by Shi et al.

<h2>The database includes all theoretical analysis results based on the linear model.</h2> <h2>Captions:</h2> <p><strong>data_fig1.mat</strong> file is used to plot Figure 1, which is the data of the instabilities driven by the interplay of the temperature anisotropy and relative streaming speed of the proton beam component.</p> <div>x_axis: X axis data, relative streaming speed</div> <div>y_axis: Y axis data, temperature anisotropy</div> <div>gamma_max: normalized growth rate \gamma, used in figure 1a</div> <div>frequency_max: normalized frequency f in the plasma frame, used in figure 1b</div> <div>theta_max: wave propagating angle \theta in the plasma frame , used in figure 1c</div> <div>ellip_max: ellipticity \epsilon in the plasma frame, used in figure 1d</div> <div>theta_max_sc: wave propagating angle \theta in the spacecraft frame , used in figure 1e</div> <div>ellip_max_sc: ellipticity \epsilon in the spacecraft frame, used in figure 1f</div> <div>&nbsp;</div> <div>&nbsp;</div> <p><strong>data_fig2.mat </strong>file is used to plot Figure 2, which is the data of the dependence of the instability in regime I on the relative steaming speed of the proton beam component.</p> <div>&nbsp;sICW_x_axis1: X axis data of figure 2a, normalized k&nbsp;</div> <div>&nbsp;sICW_y_axis1: Y axis data of figure 2a, relative streaming speed</div> <div>&nbsp;sICW_gamma_all: normalized growth rate \gamma of sunward ICW in k and relative steaming speed space, used in figure 2a</div> <div>&nbsp;sICW_x_axis2: X axis data of figure 2b-2e, normalized k</div> <div>&nbsp;sICW_frequency: normalized frequency f of sunward ICW, used in figure 2b</div> <div>&nbsp;sICW_gamma: normalized growth rate \gamma of sunward ICW, used in figure 2c</div> <div>&nbsp;sICW_etr_b: the energy transfer rate of proton beam, used in figure 2d</div> <div>&nbsp;sICW_etr_c: the energy transfer rate of proton core, used in figure 2e</div> <div>&nbsp;</div> <div>&nbsp;asICW_x_axis1: X axis data of figure 2f, normalized k&nbsp;</div> <div>&nbsp;asICW_y_axis1: Y axis data of figure 2f, relative streaming speed</div> <div>&nbsp;asICW_gamma_all: normalized growth rate \gamma of antisunward ICW in k and relative steaming speed space, used in figure 2f</div> <div>&nbsp;asICW_x_axis2: X axis data of figure 2g-2j, normalized k</div> <div>&nbsp;asICW_frequency: normalized frequency f of antisunward ICW, used in figure 2g</div> <div>&nbsp;asICW_gamma: normalized growth rate \gamma of antisunward ICW, used in figure 2h</div> <div>&nbsp;asICW_etr_b: the energy transfer rate of proton beam, used in figure 2i</div> <div>&nbsp;asICW_etr_c: the energy transfer rate of proton core, used in figure 2j</div> <div>&nbsp;</div> <div>&nbsp;</div> <p><strong>data_fig3.mat</strong> file is used to plot Figure 3, which is the data of the dependence of the instability in regime I on the temperature anisotropy of the proton core component.</p> <div>&nbsp;sICW_x_axis1: X axis data of figure 3a, normalized k&nbsp;</div> <div>&nbsp;sICW_y_axis1: Y axis data of figure 3a, temperature anisotropy of the proton core</div> <div>&nbsp;sICW_gamma_all: normalized growth rate \gamma of sunward ICW in k and temperature anisotropy of the proton core space, used in figure 3a</div> <div>&nbsp;sICW_x_axis2: X axis data of figure 3b-3e, normalized k</div> <div>&nbsp;sICW_frequency: normalized frequency f of sunward ICW, used in figure 3b</div> <div>&nbsp;sICW_gamma: normalized growth rate \gamma of sunward ICW, used in figure 3c</div> <div>&nbsp;sICW_etr_b: the energy transfer rate of proton beam, used in figure 3d</div> <div>&nbsp;sICW_etr_c: the energy transfer rate of proton core, used in figure 3e</div> <div>&nbsp;</div> <div>&nbsp;asICW_x_axis1: X axis data of figure 3f, normalized k&nbsp;</div> <div>&nbsp;asICW_y_axis1: Y axis data of figure 3f, temperature anisotropy of the proton core</div> <div>&nbsp;asICW_gamma_all: normalized growth rate \gamma of antisunward ICW in k and temperature anisotropy of the proton core space, used in figure 3f</div> <div>&nbsp;asICW_x_axis2: X axis data of figure 3g-3j, normalized k</div> <div>&nbsp;asICW_frequency: normalized frequency f of antisunward ICW, used in figure 3g</div> <div>&nbsp;asICW_gamma: normalized growth rate \gamma of antisunward ICW, used in figure 3h</div> <div>&nbsp;asICW_etr_b: the energy transfer rate of proton beam, used in figure 3i</div> <div>&nbsp;asICW_etr_c: the energy transfer rate of proton core, used in figure 3j</div> <div>&nbsp;</div> <div>&nbsp;</div> <p><strong>data_fig4</strong>.mat file is used to plot Figure 4, which is the data of the dependence of the wave frequency on the bulk flow speed.</p> <div>&nbsp;x_axis: X axis of figure 4, bulk flow speed.</div> <div>&nbsp;y_axis1: Y axis of figure 4a, normalized relative streaming speed of regime III and V</div> <div>&nbsp;y_axis2: Y axis of figure 4b, normalized relative streaming speed of regime I</div> <div>&nbsp;fVsw_fmw: the normalized frequency distributions in spacecraft frame of antisunward fast-magnetosonic whistler waves in regimes III and V, used in figure 4a</div> <div>&nbsp;fVsw_sic: the normalized frequency distributions in spacecraft frame of sunward ion cyclotron waves in regimes I, used in figure 4b</div> <div>&nbsp;fVsw_fmw_n1: spacecraft frequency of antisunward fast-magnetosonic whistler waves on the 1.5VA bulk flow speed, used in figure 4c</div> <div>&nbsp;fVsw_fmw_n2: spacecraft frequency of antisunward fast-magnetosonic whistler waves on the 2.5VA bulk flow speed, used in figure 4c</div> <div>&nbsp;fVsw_sic_n1: spacecraft frequency of sunward ion cyclotron waves on the 0.25VA bulk flow speed, used in figure 4c</div> <div>&nbsp;fVsw_sic_n2: spacecraft frequency of sunward ion cyclotron waves on the 0.5VA bulk flow speed, used in figure 4c</div> <div>&nbsp;fVsw_sic_n3: spacecraft frequency of sunward ion cyclotron waves on the 0.75VA bulk flow speed, used in figure 4c</div>

opencc-by-4.0Oct 2024View details →
zenodo8/100

"Standing Up for Earth rights": Awe-Inspiring Virtual Nature for Promoting Pro-Environmental Behaviors

<p>Dataset of the article</p> <p>&nbsp;&quot;Standing Up for Earth rights&rdquo;: Awe-Inspiring Virtual Nature for Promoting Pro-Environmental Behaviors</p> <p>Abstract: Virtual nature exposure has emerged as an effective method for promoting pro-environmental attitudes and behaviors, also due to the increased emotional connection with nature itself. However, the role played by complex emotions elicited by virtual nature, such as awe, needs to be fully elucidated. Awe is an emotion stemming from vast stimuli, including nature, and virtual reality (VR) emerged as an effective medium to elicit it. One hundred nineteen participants were exposed to either one of four VR environments: (a) an awe-inspiring virtual nature, (b) a non-natural awe-inspiring virtual scenario, (c) a non-awe-inspiring virtual nature, (d) a non-natural non-awe-inspiring scenario. Pro-environmental attitudes, intentions, discrete emotions, and affect were measured and compared across the different conditions. Two ad hoc tasks were developed to measure two pro-environmental behaviors after each VR exposure. Participants were invited to sign a real petition against plastic production, consumption, and in favor of plastic recycling (a personally engaging behavior), and to take flyers to spread the word on the petition to friends and acquaintances (a socially engaging behavior). Aweinspiring virtual nature resulted in a significantly increased number of flyers taken by participants (vs. control). Disposition toward the protection of the environment, positive emotional affect, and condition significantly correlated with the number of flyers taken. These results indicated that awe-inspiring virtual nature can influence socially engaging pro-environmental attitudes and behaviors but not personally engaging ones.</p>

restrictedJun 2023View details →

ScienceDex guides

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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.

allen-brain-atlas
neuroscienceopenDocumentation, web resources, and API references are available online.
Last verified 2026-04-30Open record

Annotated Behaviour and Observability Dataset (ABODe)

ABODe is a University of Edinburgh DataShare dataset for behavior classification in group-housed mice using home-cage video, identities, bounding boxes, ground-plate positions, and annotator labels.

abode-home-cage
behavioral-neuroscienceopenThe DataShare record exposes download links for annotations, documentation, license text, and the zipped per-snippet data directory.
Last verified 2026-04-30Open record

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.

dandi-nwb
electrophysiologyopenPublished Dandiset metadata and archive endpoints are available through the production DANDI API.
Last verified 2026-04-30Open record

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.

ibl
behavioral-neuroscienceopenPublic sessions can be searched and loaded from the IBL public data server through ONE.
Last verified 2026-04-29Open record

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.

openneuro
neuroscienceopenPublished datasets are available on demand over the internet.
Last verified 2026-04-29Open record