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18 results for “State Accountability”
Figures 2-3 in Millipeds from the eastern Dakotas and western Minnesota, USA, with an account of Pseudopolydesmus serratus (Say, 1821) (Polydesmida: Polydesmidae); first published records from six states and the District of Columbia
Figures 2-3. Acropodite of left gonopod of Pseudopolydesmus serratus male from Fargo, Cass Co., North Dakota. 2) Mesal view. 3) Ectal view. en, endomerite; e2, e4, m1, m2, ectal and mesal processes as defined by Hoffman (1974). Scale line = 0.50 mm.
Figure 4 in Millipeds from the eastern Dakotas and western Minnesota, USA, with an account of Pseudopolydesmus serratus (Say, 1821) (Polydesmida: Polydesmidae); first published records from six states and the District of Columbia
Figure 4. Distribution of Pseudopolydesmus serratus showing peripheral localities. Upper star, type locality of Polydesmus canadensis Newport, 1844, type-species of Pseudopolydesmus; Lower Star, denoted by the arrow, approximate type locality of Polydesmus serratus Say, 1821, on the Eastern Shore of Virginia.
LAND RESOURCES OF YAKUTIA'S AGRICULTURE IN THE LAST DECADE OF SOCIALISM: PECULIARITIES OF LAND ACCOUNTING OF STATE FARMS IN THE ARCTIC AND NORTHERN REGIONS
<p><span>The article shows the peculiarities of land resources utilization in the traditional economy of the indigenous population of Yakutia in the last decade of the Soviet period with a separate delineation of the state of the land balance and lands used in agriculture in 1990-1991. Including on the basis of archival data on land resources of state farms of the studied 15 arctic and northern regions, peculiarities of their accounting, preliminary results of statistical analysis of land resources of these large farms are obtained. The author introduces into scientific turnover new factual materials on land resources of separate state farms for the last Soviet 1991, in particular on their agricultural lands, reindeer and horse pastures.</span></p>
A multi-state occupancy model to non-invasively monitor visible signs of wildlife health with camera traps that accounts for image quality
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Fig. 3. Eleodes species, character states. A in Amphidorini Leconte (Coleoptera: Tenebrionidae) of Arizona: Keys and Species Accounts
Fig. 3. Eleodes species, character states. A) E. obscurus, spined fore femur, B) E. hepburni, sinuate fore femur, C) E. pilosus, simple fore femur; D) E. subnitens, male, probasitarsis with tomentose pad, E) E. debilis, female, probasitarsis with pencil brush of dark spicules, F) E. suturalis, lateral elytral carina, G) E. longicollis, prosternal process projected posteroventrally, H) E. subnitens, prosternal process porrect, projected posteriorly.
FIGURE 2 in Does The Reproductive Season Account For More Records Of Birds In A Marked Seasonal Climate Landscape In The State Of São Paulo, Brazil?
FIGURE 2: Boxplot (a) and hierarchical cluster analysis (b) of monthly rainfall values collected in Bauru, state of São Paulo, southeastern Brazil, from January 2004-December 2010.
FIGURE 1 in Does The Reproductive Season Account For More Records Of Birds In A Marked Seasonal Climate Landscape In The State Of São Paulo, Brazil?
FIGURE 1: Location (white circle) where bird surveys were carried out in the municipality of Bauru (black arrow), state of São Paulo, southeastern Brazil. Shades of gray represent the original Cerrado vegetation cover (light hue) and the Atlantic forest (intermediate hue); dark gray hues indicate the present-day distribution of Cerrado remnant vegetation.
FIGURE 4 in Does The Reproductive Season Account For More Records Of Birds In A Marked Seasonal Climate Landscape In The State Of São Paulo, Brazil?
FIGURE 4: Differences in the numbers of species (a) and individuals (b) recorded during breeding and nonbreeding seasons at the Jardim Botânico (triangles) and at the UNESP campus (squares), Bauru, state of São Paulo, southeastern Brazil, from September 2005-November 2006. Error bars represent SE.
FIGURES 10–12. 10 in Leonardesmus injucundus, n. gen., n. sp., an aromatic, small-bodied milliped from Washington State, U. S. A., and a revised account of the family Nearctodesmidae (Polydesmida)
FIGURES 10–12. 10, Left gonopod of male syntype, medial view; 11, the same, lateral view; 12, Left cyphopod of female syntype, caudal view. Scale lines for figs 10–11 and fig. 12 = 0.25 mm.
FIGURE 1 in Leonardesmus injucundus, n. gen., n. sp., an aromatic, small-bodied milliped from Washington State, U. S. A., and a revised account of the family Nearctodesmidae (Polydesmida)
FIGURE 1. Leonardesmus injucundus syntype from Grays Harbor Co., Washington. Photo by W. P. Leonard.
FIGURES 7–9. 7 in Leonardesmus injucundus, n. gen., n. sp., an aromatic, small-bodied milliped from Washington State, U. S. A., and a revised account of the family Nearctodesmidae (Polydesmida)
FIGURES 7–9. 7, SEM photo of left gonopod of male syntype, sublateral view; 8, the same, submedial view; 9, the same, subventral view. Magnifications indicated on scale lines.
FIGURES 4–6. 4 in Leonardesmus injucundus, n. gen., n. sp., an aromatic, small-bodied milliped from Washington State, U. S. A., and a revised account of the family Nearctodesmidae (Polydesmida)
FIGURES 4–6. 4, SEM photo of head and segments 1–7 of male syntype, ventrolateral view from left side; 5, midbody tergite of poriferous segment of the same, dorsal view; 6, left ozopore on caudolateral paranotal corner of the same, dorsal view. Magnifications indicated on scale lines.
FIGURES 2–3. 2 in Leonardesmus injucundus, n. gen., n. sp., an aromatic, small-bodied milliped from Washington State, U. S. A., and a revised account of the family Nearctodesmidae (Polydesmida)
FIGURES 2–3. 2, Distribution of the Nearctodesmidae. The dot in southcentral British Columbia represents the allopatric population of Nearctodesmus insulanus in the Shuswap Region; those in California, Nevada, and Arizona, some covering two closely proximate sites, represent known or published localities for the southwestern "micronearctodesmids." 3, Known occurrences of Leonardesmus and L. injucundus.
Data from: Accounting for experimental noise reveals that mRNA levels, amplified by post-transcriptional processes, largely determine steady-state protein levels in yeast
Cells respond to their environment by modulating protein levels through mRNA transcription and post-transcriptional control. Modest observed correlations between global steady-state mRNA and protein measurements have been interpreted as evidence that mRNA levels determine roughly 40% of the variation in protein levels, indicating dominant post-transcriptional effects. However, the techniques underlying these conclusions, such as correlation and regression, yield biased results when data are noisy, missing systematically, and collinear---properties of mRNA and protein measurements---which motivated us to revisit this subject. Noise-robust analyses of 24 studies of budding yeast reveal that mRNA levels explain more than 85% of the variation in steady-state protein levels. Protein levels are not proportional to mRNA levels, but rise much more rapidly. Regulation of translation suffices to explain this nonlinear effect, revealing post-transcriptional amplification of, rather than competition with, transcriptional signals. These results substantially revise widely credited models of protein-level regulation, and introduce multiple noise-aware approaches essential for proper analysis of many biological phenomena.
Figure 1 in Millipeds from the eastern Dakotas and western Minnesota, USA, with an account of Pseudopolydesmus serratus (Say, 1821) (Polydesmida: Polydesmidae); first published records from six states and the District of Columbia
Figure 1. Occurrences of indigenous, non-parajulid diplopods in the eastern Dakotas and western Minnesota. Square, Narceus americanus; Triangles, Abacion texense; Diamonds, Underwoodia iuloides; Dots, Pleuroloma flavipes; Stars, Pseudopolydesmus serratus. MAN, Manitoba, Canada; MN, Minnesota; ND, North Dakota; SD, South Dakota.
Data from: Accounting for experimental noise reveals that mRNA levels, amplified by post-transcriptional processes, largely determine steady-state protein levels in yeast
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Data and R-Code from: How to account for behavioral states in step-selection analysis: a model comparison
<p>This repository provides the R-code and data used for the simulation and case study of the research paper: "How to account for behavioral states in step-selection analysis: a model comparison".</p><p>The folder "<strong>Pohle_et_al_2023_BehavioralStates_iSSA_Data</strong>" contains the landscape rasters used for data generation in the simulation study, and the bank vole (<i>Myodes glareolus</i>) movement data used in the case study on bank vole interactions:</p><ul><li>landscape10.RData and landscape50.RData: Landscape rasters for the simulation study.</li><li>Vole_case_control.rds: Case-control bank vole data for the case study.</li><li>Info_replicates.rds: Information about bank vole indiviuals and corresponding replicates for the case study.</li><li>Codebook_case_study.xlsx: Codebook for the case study data sets.</li><li>Read_me.txt</li></ul><p>The folder "<strong>Pohle_et_al_2023_BehavioralStates_iSSA_RCode</strong>" contains the R-scripts for the simulation and case study:</p><ul><li>Functions.R: Functions to apply HMMs, TS-iSSAs, and HMM-iSSAs to movement data; used for the simulation and case study.</li><li>Simulation_study.R: R-Code to run the simulation study. Parallel computation is used.</li><li>Results_simulation_study.R: R-Code to create the result figures and tables for the simulation study.</li><li>Case_study.R: R-Code to run the bank vole interaction case study. Parallel computation is used.</li><li>Results_case_study.R: R-Code to create the result figures and tables for the case study.</li><li>Read_me.txt</li></ul><p>Besides the simulation and case study from the paper, the included functions (<i>Functions.R</i>) can generally be used to perform an HMM-iSSA analysis.</p><p>For the bank vole movement data without control locations, see: Schlägel, U.E. et al. (2019). Data from: Estimating interactions between individuals from concurrent animal movements [Dataset]. Dryad. <a href="https://doi.org/10.5061/dryad.rt535m8">https://doi.org/10.5061/dryad.rt535m8</a>.</p><p><strong>Acknowledgements</strong></p><p>We thank Sophie Eden, Angela Puschmann and Pauline Lange for help with the bank vole data collection and maintenance of the outdoor enclosures.</p><p> </p><p> </p>
FIGURE 3 in Does The Reproductive Season Account For More Records Of Birds In A Marked Seasonal Climate Landscape In The State Of São Paulo, Brazil?
FIGURE 3: Species accumulation curves of the observed number of species according to breeding (solid lines) and nonbreeding seasons (dotted lines) at the Jardim Botânico (a) and at the UNESP campus (b), Bauru, state of São Paulo, southeastern Brazil, from September 2005-November 2006.
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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.