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46 results for “Movement behaviour”
FIG. 3 in Swarming behaviour, catchment area and seasonal movement patterns of the Bechstein's bats: implications for conservation
FIG. 3. Examples illustrating the recovered movement patterns between maternity colonies and swarming sites. Individuals at swarming sites LA (A) and KG (B) were recovered at multiple colonies. Likewise, individuals recovered at colonies A (C) and H (D) were caught at different swarming sites on the same night. Capture site abbreviations and maternity colony IDs correspond to those used in Fig. 1 and Table 1
FIG. 2 in Swarming behaviour, catchment area and seasonal movement patterns of the Bechstein's bats: implications for conservation
FIG. 2. Map showing the minimum catchment polygon (dark grey), and maximum range circle (light grey) of the two main swarming sites (LA, KG). Country border between Belgium and the Netherlands (irregular black line), forest fragments (irregular grey patches), swarming sites (grey pentagons) and recovered roost sites (black dots) are also indicated
FIG. 1 in Swarming behaviour, catchment area and seasonal movement patterns of the Bechstein's bats: implications for conservation
FIG. 1. Map of the Belgium and adjacent countries (inset top right) indicating the location of study area. Within the study are (main figure), sampled swarming sites and recovered roost sites are indicated (grey pentagons and black circles, respectively). Forest fragments are shaded according to age (recent: light grey; ancient: dark grey). Capture site abbreviations correspond to those used in Table 1
Move ARound And Get Active: an Intervention to Optimize 24-hour Movement Behaviours in Preschoolers
ClinicalTrials.gov study NCT06171191. IPD Sharing: UNDECIDED. Countries: 1. Publications: 1.
Motor Control During Rapid Eye Movement (REM) Sleep Behaviour Disorder
ClinicalTrials.gov study NCT01886131. IPD Sharing: Not stated. Countries: 1. Publications: 17.
Brain Imaging and Behavioural Changes Following Cued-movement Training of Finger Sequences in Healthy Older Adults
ClinicalTrials.gov study NCT06174740. IPD Sharing: YES. Countries: 1. Publications: 37.
Data from: Does movement behaviour predict population densities? a test with 25 butterfly species
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Personality and predictability in farmed calves using movement and space-use behaviours quantified by Ultra-wideband sensors
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Data from: Natural regeneration on seismic lines influences movement behaviour of wolves and grizzly bears
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Data from: Long-term sound and movement recording tags to study natural behaviour and reaction to ship noise of seals
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Data from: Rival group scent induces changes in dwarf mongoose immediate behaviour and subsequent movement
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Data from: Faster and farther: wolf movement on linear features and implications for hunting behaviour
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Micro-personality traits and their implications for behavioural and movement ecology research
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Data from: Individual behaviour mediates effects of warming on movement across a fragmented landscape
Global warming and habitat fragmentation impose dramatic and potentially interactive impacts on ecosystems. Warming induces shifts in species' distributions as they track temperature changes, but this can be hindered in fragmented landscapes. Corridors connecting habitat patches might ameliorate the combined effects of fragmentation and global warming. Using novel automated tracking methods, the movement of woodlice (Oniscus asellus) ranging in body size from 15·3 to 108·6 mg was quantified across a temperature range from 15 to 25 °C as they moved around an experimental fragmented landscape. We used confirmatory path analysis to test causal effects of temperature and body size on individual movement and corridor crossing rates between two habitat patches. Results showed that woodlice behaved differently in corridors than patches by moving, on average, faster and more often. This is congruent with natural systems where corridors generally provide lower quality habitat than patches. Although metabolic theory suggests positive scaling of movement with body temperature (up to a peak) and body size, we found that corridor crossing rate was (i) not directly affected by body size and (ii) negatively influenced by temperature, possibly due to its indirect effects via humidity. Our path model revealed that metabolic scaling could only explain temperature effects on maximum body velocity, but decision-based behaviour explained most variation in corridor crossing rates. This led to direct and indirect effects of temperature and size on individual movement between habitat patches. Our findings suggest that increasing mean global temperatures, coupled with increasing habitat fragmentation, could have synergistic negative impacts on populations through a combination of physiological and behavioural factors that mediate individual responses to temperature and fragmentation.
Disparate movement behaviour and feeding ecology in sympatric ecotypes of Atlantic cod
<p>Co-existence of ecotypes, genetically divergent population units, is a widespread phenomenon, potentially affecting ecosystem functioning and local food web stability. In coastal Skagerrak, Atlantic cod (<i>Gadus morhua</i>) occur as two such co-existing ecotypes. We applied a combination of acoustic telemetry, genotyping and stable isotope analysis to 72 individuals to investigate movement ecology and food niche of putative local "Fjord" and putative oceanic "North Sea" ecotypes – thus named based on previous molecular studies. Genotyping and individual origin assignment suggested 41 individuals were Fjord and 31 were North Sea ecotypes. Both ecotypes were found throughout the fjord. Seven percent of Fjord ecotype individuals left the study system during the study while 42 % of North Sea individuals left, potentially homing to natal spawning grounds. Home range sizes were similar for the two ecotypes but highly variable among individuals. Fjord ecotype cod had significantly higher δ<sup>13</sup>C and δ<sup>15</sup>N stable isotope values than North Sea ecotype cod, suggesting they exploited different food niches. The results suggest coexisting ecotypes may possess innate differences in feeding- and movement ecologies and may thus fill different functional roles in marine ecosystems. This highlights the importance of conserving interconnected populations to ensure stable ecosystem functioning and food web structures.</p>
Move@NUS: a Digital Intervention Cohort Promoting Healthy Movement Behaviours
ClinicalTrials.gov study NCT06597890. IPD Sharing: NO. Countries: 0. Publications: 0.
Data from: Individual behaviour mediates effects of warming on movement across a fragmented landscape
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Disparate movement behaviour and feeding ecology in sympatric ecotypes of Atlantic cod
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Movement behaviour and selection for protected areas by the African white-backed vulture, Gyps africanus, in relation to supplementary feeding
<p>This folder contains data that has previously been collected by supervisor, Dr. Adam Kane for the use of this research project which has been presented to the School of Biology and Environmental Science, University College Dublin. The vultures, ID1 and ID2, were tagged and their whereabouts (latitude and longitude) were tracked every four hours over a year and a half long period (May 2015-December 2016). The time and date were recorded for every point and this data was then recorded in a CSV file.</p>
Something in the wind: The influence of wind speed and direction on African lion movement behaviour
<p>Olfaction is a key sense, enabling animals to locate forage, select mates, navigate their environment, and avoid predation. Wind is an important abiotic factor that modulates the strength of olfactory information detected by animals. In theory, when airflow is unidirectional, an animal can maximise the size of their olfactory search area and increase odour detection probability by moving crosswind. Given energetic costs inherent to activity and locomotion, behavioural search strategies that optimize the benefit-cost ratio should be advantageous. We tested whether African lions (Panthera leo) modify their movement directionality and distance according to wind speed and direction during hours of darkness when they are most likely to hunt mobile and elusive prey. We tracked 29 lions in southern Zimbabwe using GPS collars and deployed a weather station to collect detailed abiotic data. We found that when wind speeds increased lions were more likely to move crosswind. We also found that female lions, which tend to hunt more often than males, travelled farther when wind speeds were stronger. The results of our analysis suggest that lions adapt their movement behaviour according to wind speed and direction. We inferred that this was a behavioural decision to maximise the amount of olfactory information gained per unit of energy spent. Our findings not only offer one of the first detailed insights on large carnivore anemotaxis (movement direction relative to wind) but also make an important contribution towards understanding the influence of wind on predator ecology in general which remains understudied to date. Keywords: Panthera Leo, anemotaxis, wind, movement behaviour, olfaction</p>
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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)
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.