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Рис. 6. Изменение ΔоΛи цист Heterodera glycines разных цветовых групп на протяжении сезона размножения. ГраΔации цвета цист: 1 — моΛочный, 2 — жеΛто- и светΛо-коричневый, 3 — коричневый, 4 — каштановый и темно-коричневый in Reproductive potential of Soybean Cyst Nematode Heterodera glycines - quarantine pest of soybean - in Primorsky Region conditions
Рис. 6. Изменение ΔоΛи цист Heterodera glycines разных цветовых групп на протяжении сезона размножения. ГраΔации цвета цист: 1 — моΛочный, 2 — жеΛто- и светΛо-коричневый, 3 — коричневый, 4 — каштановый и темно-коричневый
Рис. 10. РаспреΔеΛение обсΛеΔованных поΛей в иссΛеΔуемом регионе по степени засоренности Fig. 10. Distribution of the surveyed fields in the studied region by the degree of field weediness in Reproductive potential of Soybean Cyst Nematode Heterodera glycines - quarantine pest of soybean - in Primorsky Region conditions
Рис. 10. РаспреΔеΛение обсΛеΔованных поΛей в иссΛеΔуемом регионе по степени засоренности Fig. 10. Distribution of the surveyed fields in the studied region by the degree of field weediness
Рис. 1. Àинамика посевных пΛощаΔей сои в Приморском крае в 1996–2018 гг. (по Δанным Àепартамента сеΛьского хозяйства и проΔовоΛьствия Приморского края) Fig. 1. The dynamic of soybean crop area at Primorsky Region in 1996–2018 (based on data from the Department of Agriculture and provision of the Primorsky Region) in Reproductive potential of Soybean Cyst Nematode Heterodera glycines - quarantine pest of soybean - in Primorsky Region conditions
Рис. 1. Àинамика посевных пΛощаΔей сои в Приморском крае в 1996–2018 гг. (по Δанным Àепартамента сеΛьского хозяйства и проΔовоΛьствия Приморского края) Fig. 1. The dynamic of soybean crop area at Primorsky Region in 1996–2018 (based on data from the Department of Agriculture and provision of the Primorsky Region)
Рис. 5. Зависимость межΔу цветом и размером цист Heterodera glycines. ГраΔации цвета цист: 1 — моΛочный, 2 — жеΛтый и светΛо-коричневый, 3 — коричневый, 4 — каштановый, 5 — темно-коричневый. Размер цист — в баΛΛах Fig. 5. Relationship between the color and size of Heterodera glycines cysts. Color gradations of cysts: 1 — milky, 2 — yellow and light brown, 3 — brown, 4 — chestnut, 5 — dark brown. The size of cysts — in classes in Reproductive potential of Soybean Cyst Nematode Heterodera glycines - quarantine pest of soybean - in Primorsky Region conditions
Рис. 5. Зависимость межΔу цветом и размером цист Heterodera glycines. ГраΔации цвета цист: 1 — моΛочный, 2 — жеΛтый и светΛо-коричневый, 3 — коричневый, 4 — каштановый, 5 — темно-коричневый. Размер цист — в баΛΛах Fig. 5. Relationship between the color and size of Heterodera glycines cysts. Color gradations of cysts: 1 — milky, 2 — yellow and light brown, 3 — brown, 4 — chestnut, 5 — dark brown. The size of cysts — in classes
Рис. 8. Изменение жизнеспособности цист Heterodera glycines на протяжении сезона размножения Fig. 8. Changes in the viability of Heterodera glycines cysts during the breeding season in Reproductive potential of Soybean Cyst Nematode Heterodera glycines - quarantine pest of soybean - in Primorsky Region conditions
Рис. 8. Изменение жизнеспособности цист Heterodera glycines на протяжении сезона размножения Fig. 8. Changes in the viability of Heterodera glycines cysts during the breeding season
Рис. 4. Сезонная Δинамика размеров цист Heterodera glycines и чисΛа яиц в них. Размер цист в баΛΛах: 1 — меΛкие, 2 — среΔние, 3 — крупные Fig. 4. Seasonal dynamics of the size of Heterodera glycines cysts and the number of eggs in them. The size of cysts in classes: 1 — small, 2 — medium, 3 — large in Reproductive potential of Soybean Cyst Nematode Heterodera glycines - quarantine pest of soybean - in Primorsky Region conditions
Рис. 4. Сезонная Δинамика размеров цист Heterodera glycines и чисΛа яиц в них. Размер цист в баΛΛах: 1 — меΛкие, 2 — среΔние, 3 — крупные Fig. 4. Seasonal dynamics of the size of Heterodera glycines cysts and the number of eggs in them. The size of cysts in classes: 1 — small, 2 — medium, 3 — large
Рис. 11. Зависимость чисΛенности Heterodera glycines от засоренности поΛей Fig. 11. Dependence of the number of Heterodera glycines on the field weediness in Reproductive potential of Soybean Cyst Nematode Heterodera glycines - quarantine pest of soybean - in Primorsky Region conditions
Рис. 11. Зависимость чисΛенности Heterodera glycines от засоренности поΛей Fig. 11. Dependence of the number of Heterodera glycines on the field weediness
Fig. 6 in Reproductive potential of Soybean Cyst Nematode Heterodera glycines - quarantine pest of soybean - in Primorsky Region conditions
Fig. 6. Changes in the proportion of Heterodera glycines cysts of different color groups during the breeding season. Color gradations of cysts: 1 — milk, 2 — yellow and light brown, 3 — brown, 4 — chestnut and dark brown
Рис. 3. ЧисΛо яиц в цистах Heterodera glycines разных размерных групп в 2018 и 2019 гг. Fig. 3. Number of eggs in cysts of Heterodera glycines of different size groups in 2018 and 2019 in Reproductive potential of Soybean Cyst Nematode Heterodera glycines - quarantine pest of soybean - in Primorsky Region conditions
Рис. 3. ЧисΛо яиц в цистах Heterodera glycines разных размерных групп в 2018 и 2019 гг. Fig. 3. Number of eggs in cysts of Heterodera glycines of different size groups in 2018 and 2019
Рис. 2. РаспреΔеΛение среΔних почвенных образцов по коΛичеству жизнеспособных цист Heterodera glycines Fig. 2. Distribution of average soil samples by the number of viable cysts of Heterodera glycines in Reproductive potential of Soybean Cyst Nematode Heterodera glycines - quarantine pest of soybean - in Primorsky Region conditions
Рис. 2. РаспреΔеΛение среΔних почвенных образцов по коΛичеству жизнеспособных цист Heterodera glycines Fig. 2. Distribution of average soil samples by the number of viable cysts of Heterodera glycines
Fig. 1 in Expansion of an invasive pest slug, Deroceras caucasicum (Simroth, 1901) in Primorsky Krai during 1996-2016
Fig. 1. Distribution of a pest slug, Deroceras caucasicum in the continental Primorsky Krai. Invaded areas are shown with red dots.
Fig. 3 in Expansion of an invasive pest slug, Deroceras caucasicum (Simroth, 1901) in Primorsky Krai during 1996-2016
Fig. 3. Distribution of pest slug D. caucasicum on islands of Peter the Great Bay. Invaded areas are shown with red dots.
Fig. 2 in Expansion of an invasive pest slug, Deroceras caucasicum (Simroth, 1901) in Primorsky Krai during 1996-2016
Fig. 2. Distribution of pest slug Deroceras caucasicum near the boundaries of the Ussuriysky Nature Reserve (Primorsky Krai). Invaded areas are shown with heavy red lines and red dots.
Figure 7 in Within-tree distribution and seasonal dynamics of Eutetranychus banksi and Euseius stipulatus (Acari: Tetranychidae, Phytoseiidae) on citrus: Implications for the biological control of the pest
Figure 7 Mean proportion of phytoseiids per leaf outside or inside the canopy (a), on the adaxial or abaxial side of the leaves (b), white or red coloured (c), and collected on fruits (d), whenE. banksi occurred or was absent. Capped bars represent ± standard error (SE). Significant differences are denoted with asterisks. Chi square contingency test:P <0.001.
Figure 1 in Within-tree distribution and seasonal dynamics of Eutetranychus banksi and Euseius stipulatus (Acari: Tetranychidae, Phytoseiidae) on citrus: Implications for the biological control of the pest
Figure 1 Mean number ofE. banksi(a–d) and phytoseiid mites (e–h) per leaf or per cm2 of leaves and fruits. Capped bars represent ± standard error (SE). Bars with different letters are significantly different (Wilcoxon rank-sum test).
Figure 5 in Within-tree distribution and seasonal dynamics of Eutetranychus banksi and Euseius stipulatus (Acari: Tetranychidae, Phytoseiidae) on citrus: Implications for the biological control of the pest
Figure 5 (a–d) Representation of the binomial (logit-link) generalized linear models (GLMs) showing the relationship between the proportion
Figure 3 in Within-tree distribution and seasonal dynamics of Eutetranychus banksi and Euseius stipulatus (Acari: Tetranychidae, Phytoseiidae) on citrus: Implications for the biological control of the pest
Figure 3 Seasonal relative abundance of motile forms of phytoseiid species in four (2018) and six (2019) citrus orchards. Percentage of each species per sampling is represented. The summer decline
Figure 4 in Within-tree distribution and seasonal dynamics of Eutetranychus banksi and Euseius stipulatus (Acari: Tetranychidae, Phytoseiidae) on citrus: Implications for the biological control of the pest
Figure 4 Variation in the spatial distribution and body coloration of phytoseiid in relation to the abundanceE. of banksi in four (2018) and six (2019) citrus orchards. Grey bars indicate the percentage of phytoseiids collected outside the canopy, on the leaf adaxial sides, fruits occupied by phytoseiids, and red phytoseiids (primary y-axis), in relation with the mean numberE of. banksi per leaf or fruit represented as a solid line (secondary, y-axis). Capped bars represent ± standard error (SE).
Figure 2 in Within-tree distribution and seasonal dynamics of Eutetranychus banksi and Euseius stipulatus (Acari: Tetranychidae, Phytoseiidae) on citrus: Implications for the biological control of the pest
Figure 2 Seasonal trends ofE. banksi and phytoseiid mites on leaves (solid line, first y-axis) and fruits (broken line, second y-axis) in four and six citrus orchards in 2018 and 2019 respectively. Mean number of mites collected per sampling unit (all the stages were pooled together). Note that first and second y-axis scales are different. Mean (solid line), maximum and minimum daily temperatures in °C (broken lines) and mean daily relative humidity (RH) were represented.
Fig. 2 in Dynamis borassi (Coleoptera: Curculionidae), a new potential pest to the palms (Arecaceae): an early warning for the palm producers
Fig. 2. Variable area transects used in the evaluation of the peach palm infestation by Dynamis borassi and Rhynchophorus palmarum in 33 production sites in Colombia. The size of each sampling rectangle is determined for the number of affected palms, as illustrated.
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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.