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582 results for “Ambrosia”
Figure 6 from: Sittichaya W, Smith SM, Beaver RA (2019) Ten newly recorded species of xyleborine ambrosia beetles (Coleoptera, Curculionidae, Scolytinae, Xyleborini) from Thailand. ZooKeys 862: 109-127. https://doi.org/10.3897/zookeys.862.34766
Figure 6 Beaveriumlatus (Eggers, 1923) A lateral view B dorsal view C posterolateral view D front E antenna F declivity.
Figure 9 from: Sittichaya W, Smith SM, Beaver RA (2019) Ten newly recorded species of xyleborine ambrosia beetles (Coleoptera, Curculionidae, Scolytinae, Xyleborini) from Thailand. ZooKeys 862: 109-127. https://doi.org/10.3897/zookeys.862.34766
Figure 9 Cryptoxyleborusconfusus Browne, 1950 A lateral view B dorsal view C posterolateral view D front.
Figure 3 from: Sittichaya W, Smith SM, Beaver RA (2019) Ten newly recorded species of xyleborine ambrosia beetles (Coleoptera, Curculionidae, Scolytinae, Xyleborini) from Thailand. ZooKeys 862: 109-127. https://doi.org/10.3897/zookeys.862.34766
Figure 3 Amasacylindrotomica (Schedl, 1939) A lateral view B dorsal view C posterolateral view D front E declivity.
Figure 5 from: Sittichaya W, Smith SM, Beaver RA (2019) Ten newly recorded species of xyleborine ambrosia beetles (Coleoptera, Curculionidae, Scolytinae, Xyleborini) from Thailand. ZooKeys 862: 109-127. https://doi.org/10.3897/zookeys.862.34766
Figure 5 Arixyleborushirsutulus Schedl, 1969 A lateral view B dorsal view C posterolateral view D front E declivity.
Figure 11 from: Sittichaya W, Smith SM, Beaver RA (2019) Ten newly recorded species of xyleborine ambrosia beetles (Coleoptera, Curculionidae, Scolytinae, Xyleborini) from Thailand. ZooKeys 862: 109-127. https://doi.org/10.3897/zookeys.862.34766
Figure 11 Cyclorhipidionvigilans (Schedl, 1939) A lateral view B dorsal view C posterolateral view D front E declivity.
Figure 10 from: Sittichaya W, Smith SM, Beaver RA (2019) Ten newly recorded species of xyleborine ambrosia beetles (Coleoptera, Curculionidae, Scolytinae, Xyleborini) from Thailand. ZooKeys 862: 109-127. https://doi.org/10.3897/zookeys.862.34766
Figure 10 Cryptoxyleboruspercuneolus (Schedl) A lateral view B dorsal view C posterolateral view D front E declivity.
Figure 4 from: Sittichaya W, Smith SM, Beaver RA (2019) Ten newly recorded species of xyleborine ambrosia beetles (Coleoptera, Curculionidae, Scolytinae, Xyleborini) from Thailand. ZooKeys 862: 109-127. https://doi.org/10.3897/zookeys.862.34766
Figure 4 Amasaopalescens (Schedl, 1937) A lateral view B dorsal view C posterolateral view D front F declivity.
Figure 1 from: Sittichaya W, Smith SM, Beaver RA (2019) Ten newly recorded species of xyleborine ambrosia beetles (Coleoptera, Curculionidae, Scolytinae, Xyleborini) from Thailand. ZooKeys 862: 109-127. https://doi.org/10.3897/zookeys.862.34766
Figure 1 Peninsular Thailand showing forest covered areas (green), and conservation areas in which the beetles were trapped (stars). Labels indicate study areas where newly recorded species were captured. (Modified from http://new.forest.go.th/land/)
Figure 2 from: Sittichaya W, Smith SM, Beaver RA (2019) Ten newly recorded species of xyleborine ambrosia beetles (Coleoptera, Curculionidae, Scolytinae, Xyleborini) from Thailand. ZooKeys 862: 109-127. https://doi.org/10.3897/zookeys.862.34766
Figure 2 Amasabeesoni (Eggers, 1930) A lateral view B dorsal view C posterolateral view D antenna E front F declivity.
Fig. 2 in Xyleborus bidentatus (Motschulsky, 1863), a Newly Discovered Ambrosia Beetle in Mangrove Forests of Southern Iran (Coleoptera: Curculionidae: Scolytinae)
Fig. 2. Mangrove forest, Mardu Island, Iran.
Fig. 1 in Xyleborus bidentatus (Motschulsky, 1863), a Newly Discovered Ambrosia Beetle in Mangrove Forests of Southern Iran (Coleoptera: Curculionidae: Scolytinae)
Fig. 1. Xyleborus bidentatus, dorsal (left) and lateral (right) habitus.
Fig. 5 in Xyleborus bidentatus (Motschulsky, 1863), a Newly Discovered Ambrosia Beetle in Mangrove Forests of Southern Iran (Coleoptera: Curculionidae: Scolytinae)
Fig. 5. Distribution map of Xyleborus bidentatus in Iran.
Figs. 3–4 in Xyleborus bidentatus (Motschulsky, 1863), a Newly Discovered Ambrosia Beetle in Mangrove Forests of Southern Iran (Coleoptera: Curculionidae: Scolytinae)
Figs. 3–4. Traps in mangrove forest, Mardu Island, Iran. 3) Light trap; 4) Ethanol-baited trap.
Xyleborini Ambrosia Beetles (myspecies): Resource (755) DwCA
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Figure 1 from: Dole SA, Hulcr J, Cognato AI (2021) Species-rich bark and ambrosia beetle fauna (Coleoptera, Curculionidae, Scolytinae) of the Ecuadorian Amazonian Forest Canopy. In: Spence J, Casale A, Assmann T, Liebherr JК, Penev L (Eds) Systematic Zoology and Biodiversity Science: A tribute to Terry Erwin (1940-2020). ZooKeys 1044: 797-813. https://doi.org/10.3897/zookeys.1044.57849
Figure 1 A species accumulation curves for Onkone Gare B species accumulation curves for Tiputini C species richness estimators for Onkone Gare D species richness estimators for Tiputini E species accumulation curves for both sites combined F species richness estimators for both sites combined.
FIGURE 1 in A Synopsis of the Scolytine Ambrosia Beetles of Thailand (Coleoptera: Curculionidae: Scolytinae)
FIGURE 1. Map of Thailand showing the regions and provinces (redrawn after FAO 2008).
FIGURE 2 in A Synopsis of the Scolytine Ambrosia Beetles of Thailand (Coleoptera: Curculionidae: Scolytinae)
FIGURE 2. Forest classification map of Thailand (modified from UNEP 1997).
Fig. 1 in Amasa truncata (Erichson) (Coleoptera: Curculionidae: Scolytinae): A New Exotic Ambrosia Beetle in Uruguay
Fig. 1. Amasa truncata, female, lateral view. Scale bar = 1 mm. Photograph by D. Gómez.
Causes of differences in the distribution of the invasive plants Ambrosia artemisiifolia and Ambrosia trifida in Yili Valley, China
<p class="1"><i>Ambrosia artemisiifolia</i> and <i>Ambrosia trifida</i> are two species of very harmful and invasive plants of the same genus. However, it remains unclear why <i>A. artemisiifolia </i>is more widely distributed than <i>A. trifida</i> worldwide.</p> <p class="1">Distribution and abundance of these two species were surveyed and measured from 2010 to 2017 in the Yili Valley, Xinjiang, China. Soil temperature and humidity, main companion species, the biological characteristics in farmland ecotone, residential area, roadside and grassland, and water demand of the two species were determined and studied from 2017 to 2018.</p> <p class="1">The area occupied by <i>A. artemisiifolia </i>in the Yili Valley was more extensive than that of <i>A. trifida</i>, while the abundance of <i>A. artemisiifolia </i>in grassland was less than that of <i>A. trifida</i> at eight years after invasion. The interspecific competitive ability of two species were stronger than those of companion species in farmland ecotone, residential, and roadside. In addition, <i>A. trifida </i>had greater interspecific competitive ability than other plant species in grassland. The seed size and seed weight of <i>A. trifida</i> were five times or eight times those of <i>A.artemisiifolia</i>. When comparing the changes under simulated annual precipitation of 840 mm versus 280 mm, the seed yield per m<sup>2</sup> of <i>A. trifida</i> decreased from 50,185 to 19, while that of <i>A. artemisiifolia </i>decreased from 15,579 to 530.</p> <p>The differences in the distribution of the two species are mainly due to differences in interspecific competitive ability, seed size, and water dependence. The two species have stronger interspecific competitive ability than that of companion species, but <i>A. artemisiifolia </i>has a smaller seed size and stronger drought tolerance, which allows <i>A. artemisiifolia </i>to spread farther than <i>A. trifida</i>. The reason for wider distribution of <i>A. trifida</i> in grassland is that <i>A. trifida</i> has stronger interspecific competitive ability than <i>A. artemisiifolia </i>under sufficient water.</p>
Supplementary material 3 from: Colombari F, Battisti A (2023) Citizen science at school increases awareness of biological invasions and contributes to the detection of exotic ambrosia beetles. In: Jactel H, Orazio C, Robinet C, Douma JC, Santini A, Battisti A, Branco M, Seehausen L, Kenis M (Eds) Conceptual and technical innovations to better manage invasions of alien pests and pathogens in forests. NeoBiota 84: 211-229. https://doi.org/10.3897/neobiota.84.95177
Number of individuals of each species captured at each school
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