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477 results for “Myriapoda”
Figure 3 from: Bogyó D, Magura T, Nagy DD, Tóthmérész B (2015) Distribution of millipedes (Myriapoda, Diplopoda) along a forest interior – forest edge – grassland habitat complex. In: Tuf IH, Tajovský K (Eds) Proceedings of the 16th International Congress of Myriapodology, Olomouc, Czech Republic. ZooKeys 510: 181-195. https://doi.org/10.3897/zookeys.510.8657
Figure 3 - DCCA analysis for the millipede species of the study area. Squares represent the sampled habitats (blue squares: samples from the forest interior habitat; red squares: samples from the forest edge habitat; black squares: samples from the grassland habitat).The arrows denote the increase of the value of the environmental variables (airtemp: air temperature on the surface; canopy: canopy cover; DH: soil dehydrogenase enzyme activity; dwood: cover of decaying wood material; herbs: cover of herbs; littcover: cover of leaf litter; littdepth: depth of leaf litter; humidity: relative humidity on the surface; pH: soil pH; shrubs: cover of shrubs; stemp: soil temperature at 2cm depth; smoisture: soil moisture; woodysp: number of woody plant species). Green circles and the four-letter abbreviations indicate the millipede species (BRBA: Brachyiulus bagnalli; BRSU: Brachydesmus superus; GLTE: Glomeris tetrasticha; JUTE: Julus terrestris; KROC: Kryphioiulus occultus; LECI: Leptoiulus cibdellus; MABO: Mastigona bosniensis; MEUN: Megaphyllum unilineatum; POCO: Polydesmus complanatus).
Figure 2 from: Bogyó D, Magura T, Nagy DD, Tóthmérész B (2015) Distribution of millipedes (Myriapoda, Diplopoda) along a forest interior – forest edge – grassland habitat complex. In: Tuf IH, Tajovský K (Eds) Proceedings of the 16th International Congress of Myriapodology, Olomouc, Czech Republic. ZooKeys 510: 181-195. https://doi.org/10.3897/zookeys.510.8657
Figure 2 - Hierarchical cluster analysis of millipede assemblages of the studied habitats using Hellinger distance and Ward fusion method.
Figure 1 from: Bogyó D, Magura T, Nagy DD, Tóthmérész B (2015) Distribution of millipedes (Myriapoda, Diplopoda) along a forest interior – forest edge – grassland habitat complex. In: Tuf IH, Tajovský K (Eds) Proceedings of the 16th International Congress of Myriapodology, Olomouc, Czech Republic. ZooKeys 510: 181-195. https://doi.org/10.3897/zookeys.510.8657
Figure 1 - Millipede abundance, species richness and Shannon diversity at the studied habitats. Mean values (±SD) of the overall millipede abundance (A), species richness (B) and Shannon diversity (C) per samples at the studied habitats. Different letters indicate significant differences by Tukey test.
Figure 1 from: Wesener T, Voigtländer K, Decker P, Oeyen JF, Spelda J, Lindner N (2015) First results of the German Barcode of Life (GBOL) – Myriapoda project: Cryptic lineages in German Stenotaenia linearis (Koch, 1835) (Chilopoda, Geophilomorpha). In: Tuf IH, Tajovský K (Eds) Proceedings of the 16th International Congress of Myriapodology, Olomouc, Czech Republic. ZooKeys 510: 15-29. https://doi.org/10.3897/zookeys.510.8852
Figure 1 - Maximum likelihood tree, 1000 bootstrap replicates. L1–L3 = Stenotaenia linearis lineages 1–3; NRW = North Rhine-Westphalia; Baden-W = Baden-Württemberg. Stenotaenia 'sorrentina' comes from GenBank and might refer to Stenotaenia forficularis. For exact locality data, see Table 1.
Figure 3 from: Wesener T, Voigtländer K, Decker P, Oeyen JF, Spelda J, Lindner N (2015) First results of the German Barcode of Life (GBOL) – Myriapoda project: Cryptic lineages in German Stenotaenia linearis (Koch, 1835) (Chilopoda, Geophilomorpha). In: Tuf IH, Tajovský K (Eds) Proceedings of the 16th International Congress of Myriapodology, Olomouc, Czech Republic. ZooKeys 510: 15-29. https://doi.org/10.3897/zookeys.510.8852
Figure 3 - Map of Stenotaenia linearis samples studied during GBOL (large dots), as well as other Stenotaenia linearis records from Edaphobase, the ZSM and ZFMK collection (small dots, status 10.2014). Yellow = Stenotaenia linearis L1; Blue = Stenotaenia linearis L2; Green = Stenotaenia linearis L3. (A) Stenotaenia linearis in the field, photo: J. Spelda, specimen from Stuttgart-Hofen, Zuckerberg.
Figure 2 from: Wesener T, Voigtländer K, Decker P, Oeyen JF, Spelda J, Lindner N (2015) First results of the German Barcode of Life (GBOL) – Myriapoda project: Cryptic lineages in German Stenotaenia linearis (Koch, 1835) (Chilopoda, Geophilomorpha). In: Tuf IH, Tajovský K (Eds) Proceedings of the 16th International Congress of Myriapodology, Olomouc, Czech Republic. ZooKeys 510: 15-29. https://doi.org/10.3897/zookeys.510.8852
Figure 2 - Frequency distribution of pairwise intraspecific (blue) and interspecific (red) distances. Blue circle = intraspecific distances of Geophilus alpinus and among Stenotaenia linearis L3; Red circle = interspecific distances and distances between Stenotaenia linearis lineages. Basic table see Suppl. material 1.
Figure 8 from: Le Bras G, Geoffroy J-J, Albenga L, Mauriès J-P (2015) The Myriapoda and Onychophora collection (MY) of the Muséum national d'Histoire naturelle (MNHN, Paris). ZooKeys 518: 139-153. https://doi.org/10.3897/zookeys.518.10223
Figure 8 - Origins of the onychophoran lots in the MNHN-MY dataset. Based on the 191 lots bearing information on country of origin, out of 202 lots in the dataset (entries up to 27.01.2015)
Figure 7 from: Le Bras G, Geoffroy J-J, Albenga L, Mauriès J-P (2015) The Myriapoda and Onychophora collection (MY) of the Muséum national d'Histoire naturelle (MNHN, Paris). ZooKeys 518: 139-153. https://doi.org/10.3897/zookeys.518.10223
Figure 7 - Origins of the myriapod lots containing type specimens in the MNHN-MY dataset. Based on the 1 137 lots of type specimens bearing information on country of origin, out of 1 170 lots containing types in the dataset (entries up to 27.01.2015)
Figure 5 from: Le Bras G, Geoffroy J-J, Albenga L, Mauriès J-P (2015) The Myriapoda and Onychophora collection (MY) of the Muséum national d'Histoire naturelle (MNHN, Paris). ZooKeys 518: 139-153. https://doi.org/10.3897/zookeys.518.10223
Figure 5 - Origins of the myriapod lots collected prior to 1933 in the MNHN-MY dataset. Based on the 3 548 lots bearing information on country of origin, out of 3 559 lots collected before 1933 in the dataset (entries up to 27.01.2015)
Figure 2 from: Le Bras G, Geoffroy J-J, Albenga L, Mauriès J-P (2015) The Myriapoda and Onychophora collection (MY) of the Muséum national d'Histoire naturelle (MNHN, Paris). ZooKeys 518: 139-153. https://doi.org/10.3897/zookeys.518.10223
Figure 2 - Taxonomic coverage (by class) of the MNHN-MY dataset in terms of number of specimens. (Entries up to 27.01.2015)
Figure 4 from: Le Bras G, Geoffroy J-J, Albenga L, Mauriès J-P (2015) The Myriapoda and Onychophora collection (MY) of the Muséum national d'Histoire naturelle (MNHN, Paris). ZooKeys 518: 139-153. https://doi.org/10.3897/zookeys.518.10223
Figure 4 - Origins of the myriapod lots in the MNHN-MY dataset. Based on the 9 587 lots bearing information on country of origin, out of 9 795 lots in the dataset (entries up to 27.01.2015)
Figure 12 from: Le Bras G, Geoffroy J-J, Albenga L, Mauriès J-P (2015) The Myriapoda and Onychophora collection (MY) of the Muséum national d'Histoire naturelle (MNHN, Paris). ZooKeys 518: 139-153. https://doi.org/10.3897/zookeys.518.10223
Figure 12 - Number of onychophoran lots by year of collection. Based on the 72 lots with collection date.
Figure 11 from: Le Bras G, Geoffroy J-J, Albenga L, Mauriès J-P (2015) The Myriapoda and Onychophora collection (MY) of the Muséum national d'Histoire naturelle (MNHN, Paris). ZooKeys 518: 139-153. https://doi.org/10.3897/zookeys.518.10223
Figure 11 - Number of myriapod lots containing type specimens by year of collection. Based on the 875 lots containing types with collection date.
Figure 9 from: Le Bras G, Geoffroy J-J, Albenga L, Mauriès J-P (2015) The Myriapoda and Onychophora collection (MY) of the Muséum national d'Histoire naturelle (MNHN, Paris). ZooKeys 518: 139-153. https://doi.org/10.3897/zookeys.518.10223
Figure 9 - Origins of the onychophoran lots containing types in the MNHN-MY dataset. Based on the 56 lots of type specimens in the dataset, all of which bear information on country of origin (entries up to 27.01.2015)
Figure 1 from: Le Bras G, Geoffroy J-J, Albenga L, Mauriès J-P (2015) The Myriapoda and Onychophora collection (MY) of the Muséum national d'Histoire naturelle (MNHN, Paris). ZooKeys 518: 139-153. https://doi.org/10.3897/zookeys.518.10223
Figure 1 - Taxonomic coverage (by class) of the MNHN-MY dataset in terms of number of lots. (Entries up to 27.01.2015)
Figure 10 from: Le Bras G, Geoffroy J-J, Albenga L, Mauriès J-P (2015) The Myriapoda and Onychophora collection (MY) of the Muséum national d'Histoire naturelle (MNHN, Paris). ZooKeys 518: 139-153. https://doi.org/10.3897/zookeys.518.10223
Figure 10 - Number of myriapod lots by year of collection. Based on the 8 055 lots with collection date.
Data from: Exploring phylogenetic relationships within Myriapoda and the effects of matrix composition and occupancy on phylogenomic reconstruction
Open the record for dataset details and reuse information.
Figure 1 from: Dányi L, Balázs G, Tuf IH (2019) Taxonomic status and behavioural documentation of the troglobiont Lithobius matulici (Myriapoda, Chilopoda) from the Dinaric Alps: Are there semiaquatic centipedes in caves? ZooKeys 848: 1-20. https://doi.org/10.3897/zookeys.848.33084
Figure 1 Occurrences of blind Lithobius species in the South Dinaric Alps.
Figure 5 from: Spelda J, Reip H, Oliveira Biener U, Melzer R (2011) Barcoding Fauna Bavarica: Myriapoda – a contribution to DNA sequence-based identifications of centipedes and millipedes (Chilopoda, Diplopoda). ZooKeys 156: 123-139. https://doi.org/10.3897/zookeys.156.2176
Figure 5 - Intraspecific COI variability (K2P): maximum pairwise distances; Chilopoda
Figure 3 from: Spelda J, Reip H, Oliveira Biener U, Melzer R (2011) Barcoding Fauna Bavarica: Myriapoda – a contribution to DNA sequence-based identifications of centipedes and millipedes (Chilopoda, Diplopoda). ZooKeys 156: 123-139. https://doi.org/10.3897/zookeys.156.2176
Figure 3 - Interspecific COI variability (K2P): distance to nearest neighbour; Chilopoda
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