Find research datasets worth reusing
Search datasets from major research repositories and use ShareScore to quickly assess how well each record supports discovery, access, and reuse.
240
datasets available to search
ShareScore release 0.7.1
Dataset results
240 results for “Autumn”
Fig. 5 in Wing-Length, Body Mass And Fat Reserves Of Robins (Erithacus Rubecula) During Autumn Migration In Hungary
Fig. 5. Mean body mass changes of the recaptured juveniles (Wilcoxon test, Tömörd, N = 84, W = 1986, p <0.05; Sumony, N = 104, W = 2744, NS; Ócsa, N = 141, W = 7135, p <0.001; Szalonna, N = 124 W = 4279, p <0.05. Since only a few individuals were recaptured in Izsák during the study period
Fig. 3 in Wing-Length, Body Mass And Fat Reserves Of Robins (Erithacus Rubecula) During Autumn Migration In Hungary
Fig. 3. Dendrogram of the cluster analysis of the juveniles' body mass in August (A), September (B), October (C) at the study sites (Euclides distance and Ward-Orlóczy method)
Fig. 4 in Wing-Length, Body Mass And Fat Reserves Of Robins (Erithacus Rubecula) During Autumn Migration In Hungary
Fig. 4. Mean fat reserves changes of the recaptured juveniles (Wilcoxon test, Tömörd, N = 84, W = 1282, p <0.05; Sumony, N = 105, W = 1079, NS; Ócsa, N = 141, W = 1967, p <0.05; Szalonna, N = 124 W = 1757, p <0.001. Since only a few individuals were recaptured in Izsák during the study pe-
Fig. 2 in Wing-Length, Body Mass And Fat Reserves Of Robins (Erithacus Rubecula) During Autumn Migration In Hungary
Fig. 2. Dendrogram of the cluster analysis of the juveniles' wing-length in August (A), September (B), October (C) at the study sites (Euclides distance and Ward-Orlóczy method)
Fig. 1 in Demographic And Morphometric Parameters Of The Yellow-Necked Mouse (Apodemus Flavicollis) In Late Autumn-Early Spring In Lithuania
Fig. 1. Dynamics of the age structure of A. flavicollis population in October–April 2004–2009. RESULTS
Рис. 2. Пересохший участок протоки, гΔе быΛи найΔены погибшие рыбы Fig. 2. The dried-up section of the subchannel where the dead fish were found in The death of fish in the Bureya River system during autumn migration
Рис. 2. Пересохший участок протоки, гΔе быΛи найΔены погибшие рыбы Fig. 2. The dried-up section of the subchannel where the dead fish were found
Рис. 1. Часть погибших рыб, найΔенных на пересохшем участке протоки Fig. 1. Part of the dead fish found in the dried-up section of the subchannel in The death of fish in the Bureya River system during autumn migration
Рис. 1. Часть погибших рыб, найΔенных на пересохшем участке протоки Fig. 1. Part of the dead fish found in the dried-up section of the subchannel
Data for: Short photoperiods end autumn migration in a naïve diurnal migrant
<p>Data are measurements of daily mean flight activity, daily mean activity 1 h before lights off, and daily body mass from individual hatch-year dunnocks (<em>Prunella modularis</em>, a songbird) captured in southern Sweden (55.68 °N, 13.43 °E). Individuals were allocated to either a control or treatment group for investigating the influence of photoperiod on the dunnocks first autumn migration. The R script used to analyze the data and obtain the results in the associated article is also provided. </p> <p>More information about the data and funding sources is available in Huffeldt <em>et al.</em> 2024, <em>Animal Behaviour:</em> <a href="https://doi.org/10.1016/j.anbehav.2024.06.011" target="_blank" rel="noopener">https://doi.org/10.1016/j.anbehav.2024.06.011</a>.</p>
Рис. 4. РаспреΑеΛение рыб в верхнем и нижнем бьефе в периоΑ осенней миграции 2018 г. (а) и верхнем бьефе в весеннюю миграцию 2019 г. (б). Точками показаны места фиксации рыб эхоΛотом Fig. 4. Distribution of fish upstream and downstream of the reservoir during the autumn migration of 2018 (а) and upstream of the reservoir during the spring migration of 2019 (b). Points indicate the locations where fish were registered by echosounder in Dynamics and current status of the Amazar River ichthyofauna after the construction of the PPM «Polyarnaya» hydroelectric complex
Рис. 4. РаспреΑеΛение рыб в верхнем и нижнем бьефе в периоΑ осенней миграции 2018 г. (а) и верхнем бьефе в весеннюю миграцию 2019 г. (б). Точками показаны места фиксации рыб эхоΛотом Fig. 4. Distribution of fish upstream and downstream of the reservoir during the autumn migration of 2018 (а) and upstream of the reservoir during the spring migration of 2019 (b). Points indicate the locations where fish were registered by echosounder
Рис. 5. РаспреΑеΛение рыб в верхнем бьефе воΑохраниΛища по размерным группам в периоΑ осенней миграции. Размеры рыб: а — меΛкие (Αо 10 см); б — среΑние (10–20 см); в — крупные (боΛее 20 см) Fig. 5. Distribution of fish upstream of the reservoir by size during the autumn migration. Fish sizes: а — small (under 10 cm); b — medium (10–20 cm); c — large (exceeding 20 cm) in Dynamics and current status of the Amazar River ichthyofauna after the construction of the PPM «Polyarnaya» hydroelectric complex
Рис. 5. РаспреΑеΛение рыб в верхнем бьефе воΑохраниΛища по размерным группам в периоΑ осенней миграции. Размеры рыб: а — меΛкие (Αо 10 см); б — среΑние (10–20 см); в — крупные (боΛее 20 см) Fig. 5. Distribution of fish upstream of the reservoir by size during the autumn migration. Fish sizes: а — small (under 10 cm); b — medium (10–20 cm); c — large (exceeding 20 cm)
Fig. 3 in Circadian activity patterns of the Red fox (Vulpes vulpes) and the Stone marten (Martes foina) in agricultural landscape of Northwestern Bulgaria during autumn-winter period
Fig. 3. Stone marten (Martes foina) and Red fox (Vulpes vulpes) daily activity patterns in protected area "Zlatiyata", Northwestern Bulgaria.
Fig. 2 in Circadian activity patterns of the Red fox (Vulpes vulpes) and the Stone marten (Martes foina) in agricultural landscape of Northwestern Bulgaria during autumn-winter period
Fig. 2. Stone marten, Martes foina (left) and Red fox, Vulpes vulpes (right) captured in protected area "Zlatiyata", Northwestern Bulgaria.
Fig. 1 in First data on autumn Geometridae (Lepidoptera) on the Kuril Islands
Fig. 1. New geometrid moths (Geomtridae) from Kunashir Island: A — Ramobia mediodivisa, female; B — Photoscotosia lucicolens, female; C — Pennithera comis, female; D — Venusia phasma, female; E — Martania fulvida, female. The scale bar — 10 mm
Fig. 7 in Importance Of Utliukskiy Liman For The Protection Of Waterbirds In The Azov-Black Sea Region During Autumn Migration
Fig. 7. Monthly percentage of the relative numbers of waterbirds at Utliukskiy Liman per different orders.
Fig. 8 in Importance Of Utliukskiy Liman For The Protection Of Waterbirds In The Azov-Black Sea Region During Autumn Migration
Fig. 8. Importance of Utliukskiy Liman among key wetlands of the region, basing on the ratio of the total bird numbers recorded in the region in August of 2004, 2006, 2009 and 2012.
Figure 6 in Comparison of microplankton heterotrophic-photoautotrophic balance based on the content of ATP and chlorophyll a in the plankton of the northern area of the Black Sea during the autumn and spring seasons
Figure 6. Distribution of microplankton HPI in the photic zone of the Crimean coastal waters and deep-water northern part of the Black Sea at April 2017.
Figure 4 in Comparison of microplankton heterotrophic-photoautotrophic balance based on the content of ATP and chlorophyll a in the plankton of the northern area of the Black Sea during the autumn and spring seasons
Figure 4. Distribution of microplankton HPI in the photic zone of the Crimean coastal waters and deep-water northern part of the Black Sea at October 2016.
Figure 3 in Comparison of microplankton heterotrophic-photoautotrophic balance based on the content of ATP and chlorophyll a in the plankton of the northern area of the Black Sea during the autumn and spring seasons
Figure 3. Distribution of microplankton HPI in the surface waters of the Crimean coastal waters and deep-water northern part of the Black Sea at October 2016.
Figure 1 in Comparison of microplankton heterotrophic-photoautotrophic balance based on the content of ATP and chlorophyll a in the plankton of the northern area of the Black Sea during the autumn and spring seasons
Figure 1. Distribution of microplankton chlorophyll a and ATP concentrations in the Crimean coastal waters and deepwaternorthern part of the Black Sea at October 2016.
Fig. 2 in Effects of temperature on survival, development, and reproduction of Aphis glycines (Hemiptera: Aphididae) autumnal morphs
Fig. 2. Age-specific fecundity (fx) of Aphis glycines gynoparae and oviparae on overwintering host, Rhamnus davurica at 13, 18, 23, and 28 °C.
ScienceDex guides
Understand access before you commit
These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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)
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.
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.