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.
2,288
datasets available to search
ShareScore release 0.7.1
Dataset results
2,288 results for “Periodical”
Figure 5 in Monitoring the feeding and parental care behavior of a pair of free-living owls (Tyto furcata) in the nest during the reproductive period in Rio de Janeiro, Brazil
Figure 5. Day frequency that the Tyto furcata family brought food to the nest. Campos dos Goytacazes, RJ.
Figure 4 in Monitoring the feeding and parental care behavior of a pair of free-living owls (Tyto furcata) in the nest during the reproductive period in Rio de Janeiro, Brazil
Figure 4. Frequency that the Tyto furcata parents bring the chicks near themselves (July and August, 2017). Campos dos Goytacazes, RJ.
Figure 6 in Monitoring the feeding and parental care behavior of a pair of free-living owls (Tyto furcata) in the nest during the reproductive period in Rio de Janeiro, Brazil
Figure 6. Day frequency that the Tyto furcata family brought food to the nest, from laying the eggs until the chicks left the nest. Campos dos Goytacazes, RJ.
Figure 3 in Monitoring the feeding and parental care behavior of a pair of free-living owls (Tyto furcata) in the nest during the reproductive period in Rio de Janeiro, Brazil
Figure 3. Observation of the Tyto furcata family in the nest. (A) Female sitting on eggs in the artificial nest; (B) 25-day-old chicks; (C) Adult owl bringing food to the chicks; (D) Chicks feeding alone in the nest. Campos dos Goytacazes, RJ.
Data for "The ipsilateral silent period: an early diagnostic marker of callosal disconnection in ALS"
<p>We studied the copus callosum in ALS patients using using TMS and diffusion tensor imaging</p>
Supplementary online material for KIC 4150611: A quadruply eclipsing heptuple star system with a g-mode period-spacing pattern. Eclipse modelling of the triple and spectroscopic analysis
<p>Additional figures and data supplementary to the published (or soon-to-be-published) paper KIC 4150611: A quadruply eclipsing heptuple star system with a g-mode period-spacing pattern Eclipse modelling of the triple and spectroscopic analysis.</p> <p> </p>
figure 8 Potential distribution modeling for G. subgutturosa across different time periods, including a in Unraveling goitered gazelle (Gazella subgutturosa) diversification: insights from phylogeography and species distribution modeling
figure 8 Potential distribution modeling for G. subgutturosa across different time periods, including a) the Last Glacial Maximum (lgm; 21 Kya) and b) mid-Holocene (6 kya) as past scenarios, c) the present as a current scenario, and future climatic projections for 2070 are based on specific climate models (d: bcc-csm 1, rcp: 4.5; e: bcc-csm1, rcp: 6; f: ccsm 4, rcp: 4.5; g: ccsm 4, rcp: 6.0). Habitat suitability is visualized using color gradients, with blue representing the highest suitability Downloaded from Brill.com 06/21/2024 06:25:06PM and green representing the via lowestOpensuitability Access..This The is presence an openof access article distributed under the terms G. subgutturosa is denoted by a red dot. of the CC BY 4.0 license. https://creativecommons.org/licenses/by/4.0/
Figure 3 in Critical period of weed control in an interseeded system of corn and alfalfa
Figure 3. Interseeded alfalfa total dry biomass yield as a percentage of the weed-free control over the critical duration of weedy treatments averaged over corn hybrid (pendulum and upright) for a 2-yr study (2020–2021). Interseeded corn and alfalfa were established in 2019 and 2020,(establishment years),and alfalfa was harvested four times the following season, in 2020 and 2021. In weedy interseeded treatments, weeds emerged with the crop and were then removed at different dates, creating the critical timing of weed removal (green circles). In weed-free interseeded treatments, weeds were added later in the crop, creating the critical weed free period (black triangles). An interseeded untreated and a weed-free check were included within these treatments. The critical period times are based on a 5% acceptable yield loss and are denoted by the dashed vertical lines, averaged over years and effect of corn hybrid; the boxes denote the SE for each of the growing degree–day estimates. Points represent observed mean values; lines represent the fitted models calculated using the DRC package in R (R Core Team 2020).
Figure 2 in Critical period of weed control in an interseeded system of corn and alfalfa
Figure 2. Interseeded alfalfa dry biomass yield for the first cutting as a percentage of the weed-free interseeded corn and alfalfa control over the critical duration of weedy treatments averaged over corn hybrid (pendulum and upright), for a 2-yr study (2020–2021). Interseeded corn and alfalfa were established in 2019 and 2020 (establishment years), and alfalfa was harvested the following season, in 2020 and 2021. In weedy treatments, weeds emerged with the crop and were then removed at different dates, creating the critical timing of weed removal (green circles).In weed-free interseeded treatments,weeds were added later in the crop, creating the critical weed-free period (black triangles). An interseeded untreated and a weed-free check were included within these treatments. The critical period times are based on a 5% acceptable yield loss and are denoted by the dashed vertical lines, averaged over years and effect of corn hybrid; the boxes denote the SE for each of the growing degree–day estimates. Points represent observed mean values; lines represent the fitted models calculated using the DRC package in R (R Core Team 2020).
Figure 1 in Critical period of weed control in an interseeded system of corn and alfalfa
Figure 1. Interseeded corn silage dry biomass yield as a percentage of the weed-free interseeded corn and alfalfa control over the critical duration of weedy treatments with differing leaf architecture, pendulum (black circles) or upright (green triangles), for 2019 (A) and 2020 (B). In weedy treatments, weeds emerged with the crop and were then removed at different dates,creating the critical timing of weed removal (CTWR;dashed line).In weed-free interseeded treatments,weeds were added later in the crop,creating the critical weed-free period (CWFP; solid line). An interseeded untreated and a weed-free check were included within these treatments. The CTWR based on a 5% acceptable yield loss, averaged over hybrids, is denoted by the dashed vertical line (black); the boxes denote the SEs of those estimates. The CWFP estimates are not shown, because they were greater than the harvest date. Points represent observed mean values; lines represent the fitted models calculated using the DRC package in R (R Core Team 2020).
Fig. 3 in Ecology Of The Cold-Adapted Species Nebria Germari (Coleoptera: Carabidae): The Role Of Supraglacial Stony Debris As Refugium During The Current Interglacial Period
Fig. 3. Sampling data are expressed as average Activity Density (AD: number of individuals per day of trap activity). Whiskers represent standard deviation
Fig. 1 in Ecology Of The Cold-Adapted Species Nebria Germari (Coleoptera: Carabidae): The Role Of Supraglacial Stony Debris As Refugium During The Current Interglacial Period
Fig. 1. Map with the position of the two sampling sites (Agola and Sorapiss). At the top left, a picture of N. germari taken on Sorapiss. (Photo by D. Dalpiaz and F. Pupin/ Archive MUSE)
Fig. 1. Projection cover during vegetation period Fig. 2 in P H E N O L O G Y O F H E R B A C E O U S V Eg E Tat I O N I N Br Oa Dl Eaved Fo Res T O F K Am Sa Bo Tanic Al - Zoological Reserve
Fig. 1. Projection cover during vegetation period Fig. 2. Phenological spectrum of herbs in a) in a) 2009, b) 2010. 2009, b) 2010.
Fig. 5 in The Impact Of Hydrothermal Conditions During Vegetation Period On Grain Quality Traits Of Oat
Fig. 5. β-glucan content and hydrothermal coefficient of phase 1 and 2 for cultivars A: D – 'Laima', B – 'St.Darta', A – 'Arta', E – 'Cwal', L – 'Scorpion', F – 'Pergamon', 1 – HTC1, 2 – HTC2.
Fig. 3 in The Impact Of Hydrothermal Conditions During Vegetation Period On Grain Quality Traits Of Oat
Fig. 3. Crude fat content and hydrothermal coefficient of phase 1 and 2 for cultivars A: B – 'St.Darta', D – 'Laima', E – 'Cwal', A – 'Arta', F – 'Pergamon', C – 'St.Liva', 1 – HTC1, 2 – HTC2.
Fig. 2 in The Impact Of Hydrothermal Conditions During Vegetation Period On Grain Quality Traits Of Oat
Fig. 2. Crude protein content and hydrothermal coefficient of phase 1 and 2 for cultivars B: K – 'Ingeborg', F – 'Pergamon', H – 'Duffy', L – 'Scorpion', J – 'Kerstin', G – 'Corona', 1 – HTC1, 2 – HTC2.
Fig. 15. D. latissimus larva, Fig. 16. Dead D in Methodologicalaspects Of Study On Biologyand Development Cycles Of Dytiscus Latissimus (Coleoptera: Dytiscidae) In Laboratory Environment. Spring-Summer Period
Fig. 15. D. latissimus larva, Fig. 16. Dead D.latissimus (male) died during pupation couple of hours after metamorphosis
Fig. 9. Young D in Methodologicalaspects Of Study On Biologyand Development Cycles Of Dytiscus Latissimus (Coleoptera: Dytiscidae) In Laboratory Environment. Spring-Summer Period
Fig. 9. Young D.latissimus imago. Female couple of hours after metamorphosis.: A – immediately after metamorphosis, B – in 6 hours, C – in 24 hours (integuments gained their normal colour).
Fig.6. Instar II larva attacking a in Methodologicalaspects Of Study On Biologyand Development Cycles Of Dytiscus Latissimus (Coleoptera: Dytiscidae) In Laboratory Environment. Spring-Summer Period
Fig.6. Instar II larva attacking a caddis larva (with Fig.7. D. latissimus instar III larva exuvium on its left)
Fig.5. D in Methodologicalaspects Of Study On Biologyand Development Cycles Of Dytiscus Latissimus (Coleoptera: Dytiscidae) In Laboratory Environment. Spring-Summer Period
Fig.5. D. latissimus egg While keeping the larvae one has to also laying inside the stem of consider the fact, that these larvae have an Caltha palustris
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.