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63 results for “Neobisium”
Figs 1–8 in Neobisium (Neobisium) courtiali, a new pseudoscorpion species from France (Arachnida: Pseudoscorpiones, Neobisiidae)
Figs 1–8 – Neobisium (N.) courtiali n. sp., ♂ holotype: 1, carapace, dorsal view (slightly inclined to the left); 2, right chelicera, dorsal view; 3, anterior processes of right coxa I; 4, trochanter, femur and patella of right pedipalp, dorsal view; 5, right pedipalpal chela, dorsal view; 6, same, antiaxial view, with magnified detail of teeth; 7, apex of movable chelal finger, ventral view; 8, right leg IV, antiaxial view, with magnified detail of subterminal seta of telotarsus.
Fig. 3 in Neobisium (Neobisium) doderoi
Fig. 3. Occupation rate of Zhangixalus arvalis in the Chiayi area, Taiwan, in different-sized woodland patches based on data obtained from 2014– 2015. Habitat patches ≤ 2 ha were divided into 20 size classes at 0.1-ha intervals. The numbers on the top refer to the numbers of patches in each size class.
Fig. 2 in Neobisium (Neobisium) doderoi
Fig. 2. Distribution of suitable habitats of Zhangixalus arvalis in the Chiayi area, Taiwan, in 2006 and 2014. Gray areas refer to the suitable habitat in both 2006 and 2014. Red areas are suitable habitat lost from 2006 to 2014–2015. The blue arrows indicate the locations of high priority for habitat construction and/or connection.
Fig. 1 in Neobisium (Neobisium) doderoi
Fig. 1. Study site in the Chiayi area, Taiwan. The different colors in the background indicate the distribution of the six land-cover types in 2014. Red and black filled circles are occurrence records of Zhangixalus arvalis surveyed in 2006 and 2014–2015, respectively. The red-line polygon is the area of extent of occurrence of Z. arvalis from 2006.
Fig. 5 in Neobisium (Neobisium) hellenum
Fig. 5. PCA plot showing the distribution of Aurelia coerulea haplotypes in the four regions (R1, R2, R3, and R4) of Korean coastal waters. The black dots are the haplotypes that are less frequent and have less variation in the four region. The coloured dots are haplotypes that are more frequent and have more variation between the four regions. The green arrows represent parameters pointing in the direction of the four geographical locations (R1, R2, R3, and R4).
Fig. 1 in Neobisium (Neobisium) hellenum
Fig. 1. Sampling locations of the 229 polyp samples of Aurelia coerulea collected within four regions (R1, R2, R3, and R4) from western and southern coasts of Korea. Detailed information on the sampling locations are listed table 1.
Fig. 4 in Neobisium (Neobisium) hellenum
Fig. 4. Distribution of the COI haplotypes of Aurelia coerulea in four regions (R1, R2, R3 and R4) in the Korean coastal waters. The small circles represent the proportion of haplogroup A, haplogroup B and the intermediate haplotypes in each region. The big circles represents the proportion of the haplotypes found in each region, and the number in the middle indicates the total number of individuals sampled in each region. Each color in the circles represents the frequencies of the dominant haplotype. Others are the total frequencies of the haplotypes that are not shown in the respective circles.
Fig. 3 in Neobisium (Neobisium) hellenum
Fig. 3. Haplotype (TCS) network showing the phylogeography of the 53 COI haplotypes of Aurelia coerulea collected from western and southern coasts of Korea. Each circles represent individual haplotypes and the size of the cycle is the proportion of haplotype frequency. The color of each segment indicates the geographic origin of that fraction of the samples. Each line between haplotypes represents a 1-nucleotide mutational change. Small black dots indicate unsampled haplotypes.
Fig. 6 in Neobisium (Blothrus) georgecastriotae Curcic, Dimitrijevic, Rada, Dudic, Simic and Vujcic-Karlo 2006
Fig. 6. Overlap of density of activity over three years between the non-native species (lines) and native carnivores species (dashed lines) based on camera trap data (2017–2019) in Tieqiaoshan Provincial Natural Reserve ("cat" represents the "leopard cat").
Fig. 2 in Neobisium (Blothrus) georgecastriotae Curcic, Dimitrijevic, Rada, Dudic, Simic and Vujcic-Karlo 2006
Fig. 2. Estimated site occupation probability across three years (2017–2019) of non-native species (human, livestock and dog) and carnivore species (leopard, cat and fox) in the Tieqiaoshan Provincial Natural Reserve; outputs of multi-year analysis computed in PRESENCE software. Carnivores' data have been previously used by Vitekere et al. (2020b).
Fig. 5 in Neobisium (Blothrus) georgecastriotae Curcic, Dimitrijevic, Rada, Dudic, Simic and Vujcic-Karlo 2006
Fig. 5. Estimated extirpation rates across three years (2017–2019) of non-native species (human, livestock, and dog) and carnivore species (leopard, cat, and fox) in the Tieqiaoshan Provincial Natural Reserve; outputs of multi-year analysis performed in PRESENCE, ext1: local extirpation in interseason 1 and ext2: local extirpation interseason 2. Carnivores' data have been previously used by Vitekere et al. (2020b).
Fig. 4 in Neobisium (Blothrus) georgecastriotae Curcic, Dimitrijevic, Rada, Dudic, Simic and Vujcic-Karlo 2006
Fig. 4. Estimated colonisation rates across three years (2017–2019) of non-native species (human, livestock and dog) and carnivore species (leopard, cat and fox) in the Tieqiaoshan Provincial Natural Reserve; outputs of multi-year analysis performed in PRESENCE software, col1: colonisation in interseason 1 and col2: colonisation in interseason 2. Carnivores' data have been previously used by Vitekere et al. (2020b).
Fig. 5 in Neobisium (Blothrus) georgecastriotae Curcic, Dimitrijevic, Rada, Dudic, Simic and Vujcic-Karlo 2006
Fig. 5. Variation in C. lowei home range size for high-level provisioned group (High-level provisioning group) and low-level provisioned group (Low-level provisioning group) in dry and wet season at the Boabeng-Fiema monkey sanctuary. (Home range sizes – HP group: dry season, 4.99 ha; rainy season, 4.36 ha; LP group: dry season, 17.34 ha; rainy season, 11.16 ha).
Fig. 3 in Neobisium (Blothrus) georgecastriotae Curcic, Dimitrijevic, Rada, Dudic, Simic and Vujcic-Karlo 2006
Fig. 3. Cercopithecus lowei high-level provisioned group being fed by a group of tourists in the forest (top); foraging around corn milling machine (bottom) in Boabeng community.
Fig. 4 in Neobisium (Blothrus) georgecastriotae Curcic, Dimitrijevic, Rada, Dudic, Simic and Vujcic-Karlo 2006
Fig. 4. Comparison of mean proportion of scans allocated to feeding, moving, resting, and social activity between a group high-level provisioning group (High-level provisioning group – light grey) and a low-level provisioning group of C. lowei (Low-level provisioning group – dark grey). (Error bars indicate SE; * significant differences at p <0.05).
Fig. 1 in Neobisium (Blothrus) georgecastriotae Curcic, Dimitrijevic, Rada, Dudic, Simic and Vujcic-Karlo 2006
Fig. 1. Map of the Boabeng-Fiema Monkey Sanctuary (black contour line demarcates the core area of the sanctuary), eight surrounding communities (polygons in colors), and the location of the study groups (green dot: high-level provisioned group; blue dot: low-level provisioned group). Grey lines represent vehicular roads.
Fig. 3 in Neobisium (Blothrus) georgecastriotae Curcic, Dimitrijevic, Rada, Dudic, Simic and Vujcic-Karlo 2006
Fig. 3. Estimated detection probabilities across three years (2017–2019) of non-native species (human, livestock and dog) and carnivore species (leopard, cat and fox) in the Tieqiaoshan Provincial Natural Reserve; outputs of multi-year analysis performed in PRESENCE software. Carnivores' data have been previously used by Vitekere et al. (2020b).
Fig. 6 in Neobisium (Blothrus) georgecastriotae Curcic, Dimitrijevic, Rada, Dudic, Simic and Vujcic-Karlo 2006
Fig. 6. Comparison of the proportion of time spent in each stratum level (ground, low, medium, high) by the high-level provisioning group (light grey) and low-level provisioning group (dark grey) of C. lowei in the BFMS. (Error bars indicate Standard Error; * significant differences at p <0.05).
Fig. 1 in Neobisium (Blothrus) georgecastriotae Curcic, Dimitrijevic, Rada, Dudic, Simic and Vujcic-Karlo 2006
Fig. 1. The data collection sites within the Tieqiaoshan Provincial Nature Reserve and villages housing herdsmen in and around the Protected Area.
Figure 3 in Neobisium (N.) tothi sp. nov., a new species from Hungary and Romania, and first records of Neobisium (N.) noricum Beier, 1939 from Hungary (Pseudoscorpiones: Neobisiidae)
Figure 3. Neobisium (N.) noricum Beier, 1939 (HNHM Pseud-1880): A- carapace, dorsal view (female); B- right chelicera (female), dorsal view; C- left pedipalp (male), dorsal view; D- left chela (male), lateral view.
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OpenNeuro
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