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396 results for “Humidity”
Figures 5–10 in Scopaeus saotomensis spec. nov., a flightless rove beetle from the Island of São Tomé (Coleoptera: Staphylinidae: Paederinae: Lathrobiini) - Isolation and adaptation in a dark, humid, tropical forest environment
Figures 5–10. Scopaeus saotomensis, holotype, República Democrática de São Tomé e Príncipe, São Tomé, Lagoa Amelia; aedeagus in lateral (5), ventral (6), dorsal (7) view; abdominal sternite VII (8); abdominal sternite VIII in ventral (9) and lateral (10) view. Abbreviations: dl – distal lobes (apical lobes and dorsal lobe not distinguishable), f – flagellum, ll – lateral lobes, mf – median foramen, mtf – median tooth of flagellum, p – parameres, sl – groups of setae of lateral lobes, sp – setae of phallobase, vdl – ventrodextral, lobiform enlargement of distal lobes, vl – ventral lobe.
Figure 1 in Scopaeus saotomensis spec. nov., a flightless rove beetle from the Island of São Tomé (Coleoptera: Staphylinidae: Paederinae: Lathrobiini) - Isolation and adaptation in a dark, humid, tropical forest environment
Figure 1. Habitus of Scopaeus saotomensis, holotype, República Democrática de São Tomé e Príncipe, São Tomé, Lagoa Amelia.
Figures 2–4 in Scopaeus saotomensis spec. nov., a flightless rove beetle from the Island of São Tomé (Coleoptera: Staphylinidae: Paederinae: Lathrobiini) - Isolation and adaptation in a dark, humid, tropical forest environment
Figures 2–4. Scopaeus saotomensis, lateral aspect exhibiting basal depressions of abdominal tergites (upper arrows), basal constrictions of abdominal sternites (lower arrows), and stridular file on dorsolateral surface of metaventrite (2); enlarged view of stridular file (3); plectral ridges on posterior surface of base of mesothoracic leg (4).
Fig. 3 in Biological responses of Hypothenemus hampei (Coleoptera: Curculionidae) on Cenibroca artificial diet at different moisture content levels and relative humidities
Fig. 3. Coffee berry borer external feeding and reproduction behavior on Cenibroca artificial diet with 60% moisture content at 75% relative humidity. Notice how the external reproduction offers a simple separation of the coffee berry borer immature and adults from the diet for coffee berry borer parasitoid production. (A) Diet pellet 10 to 15 d afer infestation showing external feeding and development of first-generation offspring, arrows showing eggs of first generation. (B) Diet pellet 25 to 30 d afer infestation showing external feeding and development of first-generation offspring. Stages suitable for the African ectoparasitoids (Cephalonomia stephanoderis and Prorops nasuta) reproduction. (C) Diet pellet 35 to 40 d afer infestation showing external feeding and development of first-generation offspring. Notice the presence of mature and teneral females, arrows showing oviposition of second generation. (D) Diet pellet> 50 d afer infestation showing female production, suitable for the reproduction of the African ectoparasitoid P. nasuta.
Fig. 2 in Biological responses of Hypothenemus hampei (Coleoptera: Curculionidae) on Cenibroca artificial diet at different moisture content levels and relative humidities
Fig. 2. Loss of moisture content level percentage on a Cenibroca diet pellet with a 50, 60, and 70% moisture content level maintained at 65, 75, and 85% relative humidity. (95% confidence limits of the mean; n = 7 per evaluation time per treatment).
Fig. 1 in Biological responses of Hypothenemus hampei (Coleoptera: Curculionidae) on Cenibroca artificial diet at different moisture content levels and relative humidities
Fig. 1. Mean brood production of coffee berry borer per Cenibroca diet pellet with 50, 60, and 70% moisture content level maintained at 65, 75, and 85% relative humidity at different time periods. (95% confidence limits of the mean; n = 7 per evaluation time per treatment).
Fig. 1 in Effects of relative humidity on the vector of rose rosette disease, Phyllocoptes fructiphilus (Eriophyidae), and incidence of disease symptoms
Fig. 1. Mean (± SE) number of Phyllocoptes fructiphilus under various relative humidity regimes (A) by wk and (B) for the duration of the experiment. The same letters within a wk afer infestation or bars are not significantly different (ANOVA followed by Tukey's HSD test; α = 0.05). Where no differences were observed, no letters are included.
Fig. 2 in Effects of relative humidity on the vector of rose rosette disease, Phyllocoptes fructiphilus (Eriophyidae), and incidence of disease symptoms
Fig. 2. Mean (± SE) (A) proportion of rose rosette disease symptomatic terminals and (B) value of the Horsfall-Barratt scale on the severity of rose rosette disease. The same letters within a wk afer infestation are not significantly different (ANOVA followed by Tukey's HSD test; α = 0.05). Where no differences were observed, no letters are included.
Fig 1 in The effects of relative humidity on Halyomorpha halys (Stål) (Hemiptera: Pentatomidae) egg hatch, nymph survival, and adult reproduction
Fig 1. Mean (± SE) percent egg hatch and nymphal survival of Halyomorpha halys from whole and divided egg clutches exposed to 15% to 90% RH. Means with the same letter are not significantly different (Tukey-Kramer test, P ≤ 0.05).
Fig 2 in The effects of relative humidity on Halyomorpha halys (Stål) (Hemiptera: Pentatomidae) egg hatch, nymph survival, and adult reproduction
Fig 2. Mean survival (± SE) of 6 second instar nymphs to the third, fourth, and fifh instar, and adult stage of Halyomorpha halys exposed to 15% to 90% RH. Means with the same letter are not significantly different (Tukey- Kramer test, P ≤ 0.05).
Strategies to control humidity sensitivity of azobenzene isomerisation kinetics in polymer thin films
<p>This is the full dataset for the manuscript "Strategies to control humidity sensitivity of azobenzene isomerisation kinetics in polymer thin films", submitted to the journal "Communications Materials".</p> <p>All the results presented in the manuscript is based on the data included in this dataset. All the raw data and analysed data is included, excluding final figures in the manuscript, which were composed from the data within.</p> <p>The data includes multiple experiments with different methods and materials. The data is sorted from the top down all the way down to single experiments. The dataset includes "README.txt" files that provide additional information relevant at each level, for example for raw data they provide information on the experimental settings and for analysed data the provide analysis methods used.</p>
Humidity and temperature influence on the self-cleaning performance of building materials containing the photocatalysts
<p>Datasets for article Humidity and temperature influence on the self-cleaning performance of building materials containing the photocatalysts</p>
GNSS deep SNR retrievals of marine atmosphere boundary layer (MABL) specific humidity
<p>This folder contains 5 prediction files ended with *_v2.h5. These files can be loaded using the provided code "prediction_data_loader.py". All variables are in their respective physical units.</p> <p>The *.tgz file contains the training and validation codes as well as sample training and validation datasets from METOP-B satellite. Please refer to the paper for details. All variables had been normalized in the training and validation datasets so no real physical meaning attached.</p> <p>Reference:</p> <p><a href="https://publications.copernicus.org/">Gong, J., Wu, D. L., Badalov, M., Ganeshan, M., and Zheng, M.: A machine-learning-based marine atmosphere boundary layer (MABL) moisture profile retrieval product from GNSS-RO deep refraction signals, Atmos. Meas. Tech., 18, 4025–4043, https://doi.org/10.5194/amt-18-4025-2025, 2025.</a></p> <p> </p> <p>POC: Jie.Gong@nasa.gov</p> <p>10/17/2024</p> <p> </p> <p>Update on 08/27/2025: The final paper has been published on AMT. Please see updated reference information above.</p> <p>--- THE END ---</p>
Air Temperature and Relative Humidity, San Marcos, CA, USA, March 2020 - June 2021
<p>Air temperature and relative humidity collected with MX2201 and MX2301A sensors/loggers (manufactured by Onset Computer Corporation ®) in San Marcos, CA, USA. Time series span March 2020 to June 2021. Support for equipment and data collection was provided by California State University San Marcos. See metadata in files for additional information.</p>
Temperature and humidity observations in Kampala, Uganda, during the boreal summer 2018-2019
<p>Both climate change and rapid urbanization accelerate exposure to heat in the city of Kampala, Uganda. To investigate the heterogeneous distribution of temperature and humidity throughout the city, we set up a network of low-cost iButton sensors, operational in the boreal summer months of 2018-2019. This dataset provides the observational data of 45 sensors installed at 15 different locations in the city of Kampala.</p>
FIG. 9. — A-D, Rossodes ankaratra n in Une sous-famille caractÉristique des forÊts humides primaires malgaches: les Rossodinae (Trichoptera, Philopotamidae)
FIG. 9. — A-D, Rossodes ankaratra n. sp.; A, vue latérale des genitalia; B, vue latérale de l'appareil phallique; C, vue dorsale du dixième tergite; D, vue dorsale partielle des appendices inférieurs. Échelle: 0,1 mm.
FIG. 8. — A-D, Rossodes rakotonirinai n in Une sous-famille caractÉristique des forÊts humides primaires malgaches: les Rossodinae (Trichoptera, Philopotamidae)
FIG. 8. — A-D, Rossodes rakotonirinai n. sp.; A, vue latérale des genitalia; B, vue latérale de l'appareil phallique; C, vue dorsale du dixième tergite; D, vue dorsale partielle des appendices inférieurs; E-H, R. ambatomisana n. sp.; E, vue latérale des genitalia; F, vue latérale de l'appareil phallique; G, vue dorsale du dixième tergite et du neuvième segment; H, vue dorsale partielle des appendices inférieurs. Échelles: 0,1 mm.
FIG. 2. — A-D, Rossodes mantadia n in Une sous-famille caractÉristique des forÊts humides primaires malgaches: les Rossodinae (Trichoptera, Philopotamidae)
FIG. 2. — A-D, Rossodes mantadia n. sp.; A, vue latérale des genitalia; B, vue latérale de l'appareil phallique; C, vue dorsale du dixième tergite; D, vue dorsale partielle des appendices inférieurs; E-H, R. pilakai n. sp.; E, vue latérale des genitalia; F, vue latérale de l'appareil phallique; G, vue dorsale du dixième tergite et du neuvième segment; H, vue dorsale partielle des appendices inférieurs.Échelles: 0,1 mm.
FIG. 3. — A-D, Rossodes hertui n in Une sous-famille caractÉristique des forÊts humides primaires malgaches: les Rossodinae (Trichoptera, Philopotamidae)
FIG. 3. — A-D, Rossodes hertui n. sp.: A, vue latérale des genitalia; B, vue latérale de l'appareil phallique; C, vue dorsale du dixième tergite; D, vue dorsale partielle des appendices inférieurs. E-H, R. goodmani n. sp.; E, vue latérale des genitalia; F, vue latérale de l'appareil phallique; G, vue dorsale du dixième tergite et du neuvième segment; H, vue dorsale partielle des appendices inférieurs. Échelles: 0,1 mm.
FIG. 7. — A-D, Rossodes langrandi n in Une sous-famille caractÉristique des forÊts humides primaires malgaches: les Rossodinae (Trichoptera, Philopotamidae)
FIG. 7. — A-D, Rossodes langrandi n. sp.; A, vue latérale des genitalia; B, vue latérale de l'appareil phallique; C, vue dorsale du dixième tergite; D, vue dorsale partielle des appendices inférieurs; E-H, R. humberti n. sp.; E, vue latérale des genitalia; F, vue latérale de l'appareil phallique; G, vue dorsale du dixième tergite et du neuvième segment; H, vue dorsale partielle des appendices inférieurs. Échelles: 0,1 mm.
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Allen Brain Atlas
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Annotated Behaviour and Observability Dataset (ABODe)
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DANDI Archive for NWB datasets
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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
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