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268 results for “survivorship”
Fig. 1 in Improvement in Survivorship: The Key for Population Recovery?
Fig. 1. Detailed study area with the current distribution of Otaria flavescens colonies at northern Patagonia
Fig. 4 in Improvement in Survivorship: The Key for Population Recovery?
Fig. 4. Age-frequency distribution of female (n = 70) and male (n = 109) pups by age-class category from northern Patagonia collected between 2000-2008.
Fig. 3 in Improvement in Survivorship: The Key for Population Recovery?
Fig. 3. Age-frequency distribution of female (n = 210) and male (n = 214) South American sea lions from northern Patagonia collected between 2000-2008.
Fig. 6 in Improvement in Survivorship: The Key for Population Recovery?
Fig. 6. Survivorship curves for recent (grey) and past (white) female sea lions. Parameter values for the full model are given in table 5. Age is expressed as proportion of longevity, Ω.
Fig. 5 in Improvement in Survivorship: The Key for Population Recovery?
Fig. 5. Survivorship curves for male (black) and female (grey) sea lions from 2000-2008. Parameter values for the full model are given in table 4. Age is expressed as proportion of longevity, Ω.
Fig. 2 in Effect of common ornamental plants on the survivorship and fecundity of the Aedes albopictus (Diptera: Culicidae)
Fig. 2. Survival curves of male (A, C, E) and female (B, D, F) Aedes albopictus exposed to different plant species, 10% sucrose, or water only. A and B refer to control groups; C and D refer to flowering plants; E and F refer to nonflowering plants.
Fig. 1 in Effect of common ornamental plants on the survivorship and fecundity of the Aedes albopictus (Diptera: Culicidae)
Fig. 1. Common ornamental plants from urban areas used in survival and fecundity assays of adult Aedes albopictus.
Figure 1. Plant tissue-culture growth chamber Percival. A in Survivorship of soybean aphid biotypes (Hemiptera: Aphididae) on winter hosts, common and glossy buckthorn
Figure 1. Plant tissue-culture growth chamber Percival. A) Soybean plants maintained in a plant growth chamber for 21 days before placed Rhamnus cathartica. B) Leaf of R. cathartica infested with soybean aphid biotype 1. C) Leaf of Frangula alnus with soybean aphid biotype 4.
Figure 3 in Survivorship of soybean aphid biotypes (Hemiptera: Aphididae) on winter hosts, common and glossy buckthorn
Figure 3. Males of soybean aphid, Aphis glycines, biotype 3. A) Alate male. B) Apterous male with sclerites on thorax. C) Apterous male without sclerites on thorax. The slides mounted images were magnified to 64.3x.
Figure 2 in Survivorship of soybean aphid biotypes (Hemiptera: Aphididae) on winter hosts, common and glossy buckthorn
Figure 2. Adult morphs and eggs of soybean aphid, Aphis glycines, biotype 3 on Rhamnus cathartica. A) Gynopara. B) Ovipara. C) Dorsal view of apterous male. D) Ventral view of apterous male. E) Eggs on bud.
Fig. 6 in Dyrosaurid (Crocodyliformes: Mesoeucrocodylia) Fossils from the Upper Cretaceous and Paleogene of Mali: Implications for Phylogeny and Survivorship across the K/T Boundary
Fig. 6. cf. Sokotosuchus. CNRST SUNY 279, partial skull roof and occiput in A, dorsal and B, occipital views. Scale bar equals 2 cm.
Fig. 5. Chenanisuchus lateroculi. CNRST SUNY 280 in Dyrosaurid (Crocodyliformes: Mesoeucrocodylia) Fossils from the Upper Cretaceous and Paleogene of Mali: Implications for Phylogeny and Survivorship across the K/T Boundary
Fig. 5. Chenanisuchus lateroculi. CNRST SUNY 280, partial skull roof and occiput in A, dorsal and B, occipital views. Scale bar equals 2 cm.
Fig. 2 in Dyrosaurid (Crocodyliformes: Mesoeucrocodylia) Fossils from the Upper Cretaceous and Paleogene of Mali: Implications for Phylogeny and Survivorship across the K/T Boundary
Fig. 2. Diagrammatic stratigraphic sections depicting correlations in age between strata at different Malian localities. Fossils described herein come from deposits in Mali-8 (Maastrichtian), Mali-18 (Paleocene), and Mali-20 (Eocene). Inset: map of eastern Mali showing relative locations of fossiliferous localities.
Fig. 1 in Dyrosaurid (Crocodyliformes: Mesoeucrocodylia) Fossils from the Upper Cretaceous and Paleogene of Mali: Implications for Phylogeny and Survivorship across the K/T Boundary
Fig. 1. Alternative hypotheses explaining the phylogenetic relationships of dyrosaurids. A, ''manual cladogram'', not based on a cladistic data matrix, hypothesized by Buffetaut (1978b). B, cladogram presented by Jouve (2005), based on cladistic analysis of 12 characters. C, cladogram presented by Jouve et al (2005b), based on cladistic analysis of 30 characters. Note basal position of Phosphatosaurus and highly nested position of Hyposaurus common to all hypotheses.
Fig. 7 in Dyrosaurid (Crocodyliformes: Mesoeucrocodylia) Fossils from the Upper Cretaceous and Paleogene of Mali: Implications for Phylogeny and Survivorship across the K/T Boundary
Fig. 7. Phylogenetic relationships and stratigraphic distribution of 10 dyrosaurid taxa and four outgroups, derived from ten equally most parsimonious trees. Tree length 5 66 steps; CI 5 0.6522; RI 5 0.7576; RCI 5 0.4941. Inset shows strict consensus of 10 most parsimonious trees; larger cladogram based on the single agreement subtree, which excluded Chenanisuchus, Congsaurus, and Elosuchus. Fine black lines depict the hypothesized phylogenetic relationships based on the current analysis. Bold black bars indicate the known stratigraphic ranges of taxa; solid gray bars represent inferred occurrences of taxa (i.e., ghost lineages). Alternative positions of Chenanisuchus (two alternatives) Congosaurus (four alternatives), and
Fig. 3 in Dyrosaurid (Crocodyliformes: Mesoeucrocodylia) Fossils from the Upper Cretaceous and Paleogene of Mali: Implications for Phylogeny and Survivorship across the K/T Boundary
Fig. 3. Rhabdognathus keiniensis. Partial skull roof and occiput of two individuals. CNRST SUNY 276 in A, dorsal and B, occipital views. CNRST SUNY 277 in C, dorsal and D, occipital views. Scale bars equal 2 cm.
Fig. 1 in Population size and survivorship for juvenile lemon sharks (Negaprion brevirostris) on their nursery grounds at a marine protected area in Brazil
Fig. 1. Map of the Atol das Rocas Biological Reserve off Brazil, showing the sampling sites: BL = Baía da Lama (total capture (tc) = 272), 1 = Farol Pool (tc = 29), 2 = Cemitério Pool (tc = 25), 3 = Podes Crer Pool (tc = 3), 4 = Barretinha (tc = 6), 5 = Lagoon, North of Cemitério Island (tc = 5), 6 = Lagoon, South of Farol Island (tc = 7). CI = Cemitério Island, FI = Farol Island. Broken lines represent the 5 and 10 m isobaths.
Data from: Dinosaurian survivorship schedules revisited: new insights from an age-structured population model
<p>Little is known on dinosaur population biology due to insufficient information on age-dependent fecundities and mortalities. So far, survivorship curves (hereafter SC) of only six dinosaurs (four tyrannosaurs, one ceratopsian, one hadrosaur) were erected from bone assemblages of aged specimens. They indicate high survival throughout most of their life with presumable higher mortalities after hatching and increasing mortalities towards its end. However, all studies ignored that assemblages must preserve stationary age distributions (i.e., the population's age distribution is stable and its size is constant over time as overall population fecundities match mortalities, hereafter SAD population) to infer a reliable SC for a taxon.</p> <p>To assess SCs of these dinosaurs, I built a simple population model with age-dependent fecundities and survival rates. Its few input parameters are maximum longevity, age at sexual maturation and maximum annual offspring number, on which information exists in these dinosaurs. As bone histological studies and scaling relationships provide estimates on its three parameters, my model is also applicable to other extinct taxa.</p> <p> Modelling suggests that bone assemblages did not preserve SAD populations. SCs determined for SAD populations of <i>Albertosaurus sarcophagus</i>,<i> Gorgosaurus libratus</i>, <i>Dasplatosaurus torosus</i> and <i>Tyrannosaurus rex</i> indicated that low mortalities follow high mortalities early in their life or that mortalities were rather constant throughout their life. In <i>Psittacosaurus lujiatuensis</i> modelling suggests low mortalities throughout most of its life that increase towards its end. The SC of <i>Maiasaura peeblesorum</i> was not questioned by my model as it is unable to capture sigmoidal or other composite SCs.</p>
Enhancing Survivorship Care Planning for Patients With Localized Prostate Cancer Using A Couple-focused Web-based Tailored Symptom Self-management Program
ClinicalTrials.gov study NCT04350788. IPD Sharing: YES. Countries: 1. Publications: 1.
Data from: Dinosaurian survivorship schedules revisited: new insights from an age-structured population model
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