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Figure 10 in Soldier flies (Diptera: Stratiomyidae) on semideciduous seasonal forest fragments, with a list of species for São Paulo State, Brazil, and two new records of species for the country
Figure 10 Climate and seasonal data of soldier flies collected using white roof Malaise traps at the Reserva Ecológica e Biológica de Sertãozinho, São Paulo, Brazil.
Figure 7 in Soldier flies (Diptera: Stratiomyidae) on semideciduous seasonal forest fragments, with a list of species for São Paulo State, Brazil, and two new records of species for the country
Figure 7 Stratiomyids from the Reserva Ecológica e Biológica Augusto Ruschi, Sertãozinho, São Paulo, Brazil. (a) Chloromelas sp. 1, male; (b) Myxosargus sp. 1, male; (c) Myxosargus sp. 2, male; (d) Eidalimus sp. 1, male; (e) Manotes sp. 1, male; (f) Panacris lucida, male; (g) Popanomyia sp. 1, female; (h) Psephiocera sp. 1, female; (i) Strobilapsis sp. 1, female. Scale bar, 1 mm.
Figure 6 in Soldier flies (Diptera: Stratiomyidae) on semideciduous seasonal forest fragments, with a list of species for São Paulo State, Brazil, and two new records of species for the country
Figure 6 Stratiomyids from the Reserva Ecológica e Biológica Augusto Ruschi, Sertãozinho, São Paulo, Brazil. (a) Merosargus nebulifer James, 1971 in James & McFadden, 1971, male; (b) M. opaliger Lindner, 1931, female. (c) M. tripartitus James, 1971 in James & McFadden, 1971, female; (d) Microchrysa bicolor (Wiedemann, 1830), female; (e) Pteticus testaceus (Fabricius, 1805), male; (f) Sargus fasciatus Fabricius, 1805, male; (g) S. thoracicus Macquart, 1834, male; (h) S. thoracicus, female; (i) Sargus sp. 1, male; (j) Sargus sp. 1, female; (k) Sargus sp. 2, female; (l) Glariopsis sp. 1, female. Scale bar, 1 mm.
Figure 3 in Soldier flies (Diptera: Stratiomyidae) on semideciduous seasonal forest fragments, with a list of species for São Paulo State, Brazil, and two new records of species for the country
Figure 3 Stratiomyids from the Reserva Ecológica e Biológica Augusto Ruschi, Sertãozinho, São Paulo, Brazil. (a) Heteracanthia ruficornis Macquart, 1850, female; (b) Oplachantha sp. 1, male; (c) Oplachantha sp. 1, female; (d) Barbiellinia sp. 1, male; (e) Chiromyza sp. 1, male; (f) Chiromyza sp. 1, female; (g) Cyphomyia aurifrons Wiedemann, 1830, male; (h) C. aurifrons, female; (i) C. gracilicornis Gerstaecker, 1857, male; (j) C. gracilicornis, female; (k) C. leucocephala Wiedemann, 1819, female; (l) Cyphomyia sp. 1, male. Scale bar, 1 mm.
Figure 1 in Soldier flies (Diptera: Stratiomyidae) on semideciduous seasonal forest fragments, with a list of species for São Paulo State, Brazil, and two new records of species for the country
Figure 1 Map of the area of study, with limits of all municipalities of the state of São Paulo.(a) Limits of the municipality of Sertãozinho and studied area; (b) Satellite image of the Reserva Ecológica e Biológica Augusto Ruschi, with head office and research buildings outlined in white, larger fragments outlined in red, and numbers 1 and 2 represent the areas of sampling.
Figure 2 in Soldier flies (Diptera: Stratiomyidae) on semideciduous seasonal forest fragments, with a list of species for São Paulo State, Brazil, and two new records of species for the country
Figure 2 Sampling sites at the Reserva Ecológica e Biológica Augusto Ruschi, Sertãozinho, São Paulo, Brazil. (a-c) Areas near an artificial lake, fragment 2; (d) Bottle traps set up in the field; (e) Black roof Malaise trap; (f) White roof Malaise trap.
Fig. 1 in Dung beetle (Coleoptera, Scarabaeidae) assemblage of a highly fragmented landscape of Atlantic forest: from small to the largest fragments of northeastern Brazilian region
Fig. 1. Map showing forest fragments evaluated of the Trapiche property (Oliveira, unpublished data); 1: Mata das Cobas; 2: Canto Escuro; 3: Tauá; 4: Ubaca; 5: Xanguá; 6: Xanguazinho. Sirinhaém, Pernambuco, Brazil, 2010.
Figure 5 in Two new species of Anaulacodesmus Attems, 1898 (Polydesmida: Dalodesmidae) from temperate forest fragments in southern Chile
Figure 5. Anaulacodesmus picassovallebuonai sp. nov., paratypes, lateral view, top: female, bottom: male. Scale: 4.0 mm. / Anaulacodesmus picassovallebuonai sp. nov., paratipos, vista lateral, arriba:
Figure 4. A in Two new species of Anaulacodesmus Attems, 1898 (Polydesmida: Dalodesmidae) from temperate forest fragments in southern Chile
Figure 4. A. Hypoproct of Anaulacodesmus panterae sp. nov., ventrolateral view (not to scale). B. Left gonopod of Anaulacodesmus panterae sp. nov., lateral view. Scale: 0.2 mm. C. Left gonopod of Anaulacodesmus picassovallebuonai sp. nov., lateral view. Scale: 0.2 mm. Abbreviations: mb – middle branch; ab – anterior branch; sl – solenomere; me – medial branch. / A. Hipoprocto de Anaulacodesmus panterae sp. nov., vista ventrolateral (no tomado a escala). B. Gonópodo izquierdo de Anaulacodesmus panterae sp. nov., vista lateral. Escala: 0,2 mm. C. Gonópodo izquierdo de Anaulacodesmus picassovallebuonai sp. nov., vista lateral. Escala: 0,2 mm. Abreviaciones: mb – rama media; ab – rama anterior; sl – solenomero; me – rama medial.
Fig. 5 in Diversity of anurans in forest fragments of southwestern Ethiopia: The case of the Yayu Coffee Forest Biosphere Reserve (YCFBR)
Fig. 5. Selected species encountered in YCFBR. (A) Leptopelis ragazzii, (B) Paracassina obscura, (C) Hyperolius nasutus, (D) Xenopus clivii, (E) Ptychadena anchiatae, (F) Conraua beccarii.
Table ¹: Comparison of analysis of variance results for skull (occlusal view) and mandible (side view) shape in Rhipidomys mastacalis from three vegetation classes in Brazil. Object asymmetry and correspondence methods were employed to assess asymmetry for skulls and mandibles, respectively. in Morphological symmetry of Rhipidomys mastacalis (Mammalia, Rodentia, Cricetidae) in fragmented habitats of the Atlantic Forest in Northeastern Brazil: a study on the influence of the environment on an endemic species
<p><b>Table ¹:</b> Comparison of analysis of variance results for skull (occlusal view) and mandible (side view) shape in <i>Rhipidomys mastacalis</i> from three vegetation classes in Brazil.Object asymmetry and correspondence methods were employed to assess asymmetry for skulls and mandibles,respectively.</p><table><tbody><tr><th><b>Shape procrustes ANOVA</b></th></tr></tbody><tbody><tr><th><b>Effect Sum of squares</b></th><td><b>Mean squares</b></td><td><b>Degrees of freedom</b></td><td><i>F statistic</i></td><td><i>p -Value</i></td><td><b>Pillai tr.</b></td><td><i>p -Value</i></td></tr><tr><th><b>Skulls</b></th></tr><tr><th><b>Forested vegetation</b></th></tr><tr><th>Individual</th><td>0.19908517</td><td>0.0004253957</td><td>468</td><td>22.36</td><td><0.0001</td><td>–</td><td>–</td></tr><tr><th>Side</th><td>0.00366522</td><td>0.0002036232</td><td>18</td><td>10.70</td><td><0.0001</td><td>–</td><td>–</td></tr><tr><th>Individual × side</th><td>0.00890443</td><td>0.0000190266</td><td>468</td><td>2.24</td><td><0.0001</td><td>–</td><td>–</td></tr><tr><th>Error 1</th><td>0.00825565</td><td>0.0000084935</td><td>972</td><td>–</td><td>–</td><td>–</td><td>–</td></tr><tr><th><b>Occupancy mosaics in forested areas</b></th></tr><tr><th>Individual</th><td>0.37829478</td><td>0.0003965354</td><td>954</td><td>18.57</td><td><0.0001</td><td>–</td><td>–</td></tr><tr><th>Side</th><td>0.00547536</td><td>0.0003041869</td><td>18</td><td>14.25</td><td><0.0001</td><td>–</td><td>–</td></tr><tr><th>Individual × side</th><td>0.02037065</td><td>0.0000213529</td><td>954</td><td>1.89</td><td><0.0001</td><td>–</td><td>–</td></tr><tr><th>Error 1</th><td>0.02201359</td><td>0.0000113239</td><td>1944</td><td>–</td><td>–</td><td>–</td><td>–</td></tr><tr><th><b>Cocoa plantations</b></th></tr><tr><th>Individual</th><td>0.0645902300</td><td>0.0001302222</td><td>496</td><td>5.18</td><td><0.0001</td><td>–</td><td>–</td></tr><tr><th>Side</th><td>0.0113531900</td><td>0.0007095741</td><td>16</td><td>28.23</td><td><0.0001</td><td>–</td><td>–</td></tr><tr><th>Individual × side</th><td>0.0124666800</td><td>0.0000251344</td><td>496</td><td>1.88</td><td><0.0001</td><td>–</td><td>–</td></tr><tr><th>Error 1</th><td>0.0136608800</td><td>0.0000133407</td><td>1024</td><td>–</td><td>–</td><td>–</td><td>–</td></tr><tr><th><b>Mandibles</b></th></tr><tr><th><b>Forested vegetation</b></th></tr><tr><th>Individual</th><td>0.70443879</td><td>0.0012579264</td><td>560</td><td>8.10</td><td><0.0001</td><td>14.16</td><td><0.0001</td></tr><tr><th>Side</th><td>0.00549957</td><td>0.0002749783</td><td>20</td><td>1.77</td><td>0.0207</td><td>0.0207</td><td>0.0069</td></tr><tr><th>Individual × side</th><td>0.08696012</td><td>0.0001552859</td><td>560</td><td>2.46</td><td><0.0001</td><td>10.75</td><td><0.0001</td></tr><tr><th>Error 1</th><td>0.07312665</td><td>0.0000387718</td><td>1160</td><td>–</td><td>–</td><td>–</td><td>–</td></tr><tr><th><b>Occupancy mosaics in forested areas</b></th></tr><tr><th>Individual</th><td>1.19843989</td><td>0.0011984399</td><td>1000</td><td>8.16</td><td><0.0001</td><td>14.70</td><td><0.0001</td></tr><tr><th>Side</th><td>0.01169771</td><td>0.0005848855</td><td>20</td><td>3.98</td><td><0.0001</td><td>0.74</td><td>0.0001</td></tr><tr><th>Individual × side</th><td>0.14685738</td><td>0.0001468574</td><td>1000</td><td>3.03</td><td><0.0001</td><td>11.21</td><td><0.0001</td></tr><tr><th>Error 1</th><td>0.09880745</td><td>0.0000484350</td><td>2040</td><td>–</td><td>–</td><td>–</td><td>–</td></tr><tr><th><b>Cocoa plantations</b></th></tr><tr><th>Individual</th><td>0.3269927600</td><td>0.0004808717</td><td>680</td><td>4.52</td><td><0.0001</td><td>14.14</td><td><0.0001</td></tr><tr><th>Side</th><td>0.0143644400</td><td>0.0007182221</td><td>20</td><td>6.75</td><td><0.0001</td><td>0.86</td><td>0.0017</td></tr><tr><th>Individual × side</th><td>0.0723474900</td><td>0.0001063934</td><td>680</td><td>2.39</td><td><0.0001</td><td>10.41</td><td>0.0017</td></tr><tr><th>Error 1</th><td>0.0622041800</td><td>0.0000444316</td><td>1400</td><td>–</td><td>–</td><td>–</td><td>–</td></tr></tbody></table>
Table ²: Comparison of the results of analysis of variance on the shape of scapulae (occlusal view) and pelvis (side view) in Rhipidomys mastacalis from three vegetation classes in Brazil. Correspondence asymmetry was the only method used for asymmetry analysis. in Morphological symmetry of Rhipidomys mastacalis (Mammalia, Rodentia, Cricetidae) in fragmented habitats of the Atlantic Forest in Northeastern Brazil: a study on the influence of the environment on an endemic species
<p><b>Table ²:</b> Comparison of the results of analysis of variance on the shape of scapulae (occlusal view) and pelvis (side view) in <i>Rhipidomys mastacalis</i> from three vegetation classes in Brazil. Correspondence asymmetry was the only method used for asymmetry analysis.</p><table><tbody><tr><th><b>Shape procrustes ANOVA</b></th></tr></tbody><tbody><tr><th><b>Effect Sum of squares</b></th><td><b>Mean squares</b></td><td><b>Degrees of freedom</b></td><td><i>F statistic</i></td><td><i>p -Value</i></td><td><b>Pillai tr.</b></td><td><i>p -Value</i></td></tr><tr><th><b>Scapulae</b></th></tr><tr><th><b>Forested vegetation</b></th></tr><tr><th>Individual</th><td>0.0941373400</td><td>0.0010459705</td><td>90</td><td>3</td><td><0.0001</td><td>–</td><td>–</td></tr><tr><th>Side</th><td>0.0100439600</td><td>0.0010043960</td><td>2.88</td><td>0.0037</td><td>0.0003</td><td>–</td><td>–</td></tr><tr><th>Individual × side</th><td>0.0314069500</td><td>0.0003489662</td><td>90</td><td>5.89</td><td><0.0001</td><td>4.91</td><td><0.0001</td></tr><tr><th>Error 1</th><td>0.0118544100</td><td>0.0000592721</td><td>200</td><td>–</td><td>–</td><td>–</td><td>–</td></tr><tr><th><b>Occupancy mosaics in forested areas</b></th></tr><tr><th>Individual</th><td>0.2064168200</td><td>0.0010320841</td><td>200</td><td>4.82</td><td><0.0001</td><td>7.15</td><td><0.0001</td></tr><tr><th>Side</th><td>0.0262808000</td><td>0.0026280796</td><td>10</td><td>12.28</td><td><0.0001</td><td>0.86</td><td>0.0022</td></tr><tr><th>Individual × side</th><td>0.0428160400</td><td>0.0002140802</td><td>200</td><td>2.68</td><td><0.0001</td><td>4.98</td><td><0.0001</td></tr><tr><th>Error 1</th><td>0.0335675700</td><td>0.0000799228</td><td>420</td><td>–</td><td>–</td><td>–</td><td>–</td></tr><tr><th><b>Cocoa plantations</b></th></tr><tr><th>Individual</th><td>0.2508635400</td><td>0.0009291242</td><td>270</td><td>4.07</td><td><0.0001</td><td>7.11</td><td><0.0001</td></tr><tr><th>Side</th><td>0.0256608100</td><td>0.0025660812</td><td>10</td><td>11.24</td><td><0.0001</td><td>0.87</td><td><0.0001</td></tr><tr><th>Individual × side</th><td>0.0616394000</td><td>0.0002282941</td><td>270</td><td>3.10</td><td><0.0001</td><td>5.72</td><td><0.0001</td></tr><tr><th>Error 1</th><td>0.0412323300</td><td>0.0000736292</td><td>560</td><td>–</td><td>–</td><td>–</td><td>–</td></tr><tr><th><b>Pelvis</b></th></tr><tr><th><b>Forested vegetation</b></th></tr><tr><th>Individual</th><td>0.0543411200</td><td>0.0004312787</td><td>126</td><td>4.63</td><td><0.0001</td><td></td><td></td></tr><tr><th>Side</th><td>0.0043155600</td><td>0.0003082544</td><td>14</td><td>3.31</td><td>0.0002</td><td></td><td></td></tr><tr><th>Individual × side</th><td>0.0117297800</td><td>0.0000930935</td><td>126</td><td>2.31</td><td><0.0001</td><td>6.07</td><td><0.0001</td></tr><tr><th>Error 1</th><td>0.0112943700</td><td>0.000040337</td><td>280</td><td>–</td><td>–</td><td>–</td><td>–</td></tr><tr><th><b>Occupancy mosaics in forested areas</b></th></tr><tr><th>Individual</th><td>0.1059661700</td><td>0.0003440460</td><td>308</td><td>4.42</td><td><0.0001</td><td>9.69</td><td><0.0001</td></tr><tr><th>Side</th><td>0.0049395300</td><td>0.0003528236</td><td>14</td><td>4.53</td><td><0.0001</td><td>0.85</td><td>0.0311</td></tr><tr><th>Individual × side</th><td>0.0239852500</td><td>0.0000778742</td><td>308</td><td>2.00</td><td><0.0001</td><td>6.64</td><td><0.0001</td></tr><tr><th>Error 1</th><td>0.0251368400</td><td>0.0000390324</td><td>644</td><td>–</td><td>–</td><td>–</td><td>–</td></tr><tr><th><b>Cocoa plantations</b></th></tr><tr><th>Individual</th><td>0.1292837500</td><td>0.0003420205</td><td>378</td><td>5.68</td><td><0.0001</td><td>10.51</td><td><0.0001</td></tr><tr><th>Side</th><td>0.0043550500</td><td>0.0003110747</td><td>14</td><td>5.17</td><td><0.0001</td><td>0.84</td><td>0.0016</td></tr><tr><th>Individual × side</th><td>0.0227608400</td><td>0.0000602139</td><td>378</td><td>2.24</td><td><0.0001</td><td>6.17</td><td><0.0001</td></tr><tr><th>Error 1</th><td>0.0210413800</td><td>0.0000268385</td><td>714</td><td>–</td><td>–</td><td>–</td><td>–</td></tr></tbody></table>
Supplementary material 1 from: Belluardo F, Quirós DD, Lobón-Rovira J, Rosa GM, Rasoazanany M, Andreone F, Crottini A (2021) Uncovering the herpetological diversity of small forest fragments in south-eastern Madagascar (Haute Matsiatra). Zoosystematics and Evolution 97(2): 315-343. https://doi.org/10.3897/zse.97.63936
Table S1. Sampling localities visited in this study, with associated coordinates and elevation
Figure 3 from: Belluardo F, Quirós DD, Lobón-Rovira J, Rosa GM, Rasoazanany M, Andreone F, Crottini A (2021) Uncovering the herpetological diversity of small forest fragments in south-eastern Madagascar (Haute Matsiatra). Zoosystematics and Evolution 97(2): 315-343. https://doi.org/10.3897/zse.97.63936
Figure 3 Amphibians of the mantellid subfamily Mantellinae identified in this study. Sampling localities for each photographed individual are provided. ANP ES – Andringitra National Park Eastern Slopes; ANP WS – Andringitra National Park Western Slopes (Fig. 1; Suppl. material 1: Table S1). A.Mantidactylus (Bryogoomantis) bourgati from Namoly; B.Mantidactylus (Bryogoomantis) betsileanus from Namoly; C.Mantidactylus (Chonomantis) delormei from Imaitso (ANP ES); D.Mantidactylus (Ochthomantis) femoralis from Asaramanitra (ANP ES); E.Mantidactylus (Bryogoomantis) sp. Ca14 from Tsaranoro; F.Mantidactylus (Hylobatrachus) sp. Ca48 from Fivahona–Velotsoa; G.Gephyromantis (Gephyromantis) blanci from Imaitso (ANP ES); H.Gephyromantis (Phylacomantis) corvus from Sakaviro; I.Mantella betsileo from Ambatomainty; J. Subadult and tadpoles of Spinomantis elegans from Imaitso (ANP ES). Photographs by Javier Lobón-Rovira.
Figure 2 from: Belluardo F, Quirós DD, Lobón-Rovira J, Rosa GM, Rasoazanany M, Andreone F, Crottini A (2021) Uncovering the herpetological diversity of small forest fragments in south-eastern Madagascar (Haute Matsiatra). Zoosystematics and Evolution 97(2): 315-343. https://doi.org/10.3897/zse.97.63936
Figure 2 Hyperoliid, microhylid, ptychadenid and mantellid (subfamilies Boophinae and Laliostominae) species identified in this study. Sampling localities for each photographed individual are provided. ANP ES – Andringitra National Park Eastern Slopes; ANP WS – Andringitra National Park Western Slopes (Fig. 1; Suppl. material 1: Table S1). A.Boophis (Boophis) ankaratra from Imaitso (ANP ES); B.Boophis (Boophis) boppa from Iantaranomby (ANP WS); C.Boophis (Sahona) doulioti from Ambalavao; D.Boophis (Boophis) laurenti from Iantaranomby (ANP WS); E.Boophis (Boophis) luteus from Fivahona–Velotsoa; F.Boophis (Boophis) majori from Asaramanitra (ANP ES); G.Boophis (Boophis) obscurus from Imaitso (ANP ES); H.Boophis (Boophis) occidentalis from Andramena (ANP WS); I.Boophis (Boophis) popi from Imaitso (ANP ES); J.Boophis (Boophis) sp. Ca33 from Asaramanitra (ANP ES); K.Boophis (Boophis) rhodoscelis from Fivahona–Ambavanala; L.Heterixalus betsileo from Sakaviro; M.Heterixalus luteostriatus from Anja; N.Scaphiophryne (Scaphiophryne) madagascariensis from Andramena (ANP WS); O.Scaphiophryne (Pseudohemisus) calcarata from Ambalavao; P.Laliostoma labrosum from Anja; Q.Aglyptodactylus madagascariensis from Namoly; R.Ptychadena sp. aff. mascareniensis "OTU1" from Iantaranomby (ANP WS). Photographs by Javier Lobón-Rovira (A–J, L–R) and Francesco Belluardo (K).
Supplementary material 5 from: Belluardo F, Quirós DD, Lobón-Rovira J, Rosa GM, Rasoazanany M, Andreone F, Crottini A (2021) Uncovering the herpetological diversity of small forest fragments in south-eastern Madagascar (Haute Matsiatra). Zoosystematics and Evolution 97(2): 315-343. https://doi.org/10.3897/zse.97.63936
Table S5. Within taxa uncorrected p–distances (16S) of amphibian taxa identified in this study
Figure 7 from: Belluardo F, Quirós DD, Lobón-Rovira J, Rosa GM, Rasoazanany M, Andreone F, Crottini A (2021) Uncovering the herpetological diversity of small forest fragments in south-eastern Madagascar (Haute Matsiatra). Zoosystematics and Evolution 97(2): 315-343. https://doi.org/10.3897/zse.97.63936
Figure 7 Psammophiid, pseudoxyrhophiid and sanziniid snakes identified in this study. Sampling localities for each photographed individual are provided. ANP ES – Andringitra National Park Eastern Slopes; ANP WS – Andringitra National Park Western Slopes (Fig. 1; Suppl. material 1: Table S1). A.Compsophis infralineatus from Namoly; B.Leioheterodon modestus from Antanifotsy 1; C.Madagascarophis meridionalis from Anja; D.Thamnosophis lateralis from Anja; E.Pseudoxyrhopus sp. Ca2 from Ambatomainty; F.Liophidium torquatum from Anja G.Mimophis mahfalensis from Sakaviro; H.Sanzinia cf. volontany from Anja; I.Acrantophis dumerili from Sakaviro. Photographs by Javier Lobón-Rovira (A–E, G, I), Gonçalo M. Rosa (F) and Franco Andreone (H).
Figure 5 from: Belluardo F, Quirós DD, Lobón-Rovira J, Rosa GM, Rasoazanany M, Andreone F, Crottini A (2021) Uncovering the herpetological diversity of small forest fragments in south-eastern Madagascar (Haute Matsiatra). Zoosystematics and Evolution 97(2): 315-343. https://doi.org/10.3897/zse.97.63936
Figure 5 Geckos species identified in this study. Sampling localities for each photographed individual are indicated. ANP ES – Andringitra National Park Eastern Slopes; ANP WS – Andringitra National Park Western Slopes (Fig. 1; Suppl. material 1: Table S1). A.Hemidactylus mercatorius from Tsaranoro; B.Lygodactylus pictus from Belambo (ANP ES); C.Lygodactylus sp. aff. pictus Ca01 "Isalo" from Ambatomainty; D.Paragehyra felicitae from Anja; E.Paragehyra sp. aff. felicitae "Tsaranoro" from Tsaranoro; F.Paroedura rennerae from Anja; G.Paroedura sp. aff. bastardi Lineage D from Anja; H.Phelsuma barbouri from Belambo (ANP ES); I.Phelsuma gouldi from Tsaranoro; J.Phelsuma lineata elanthana from Fivahona–Velotsoa. Photographs by Javier Lobón-Rovira (A–G, I–J) and Gonçalo M. Rosa (H).
Supplementary material 6 from: Belluardo F, Quirós DD, Lobón-Rovira J, Rosa GM, Rasoazanany M, Andreone F, Crottini A (2021) Uncovering the herpetological diversity of small forest fragments in south-eastern Madagascar (Haute Matsiatra). Zoosystematics and Evolution 97(2): 315-343. https://doi.org/10.3897/zse.97.63936
Table S6. Within taxa uncorrected p–distances (COI) of reptile taxa identified in this study
Supplementary material 9 from: Belluardo F, Quirós DD, Lobón-Rovira J, Rosa GM, Rasoazanany M, Andreone F, Crottini A (2021) Uncovering the herpetological diversity of small forest fragments in south-eastern Madagascar (Haute Matsiatra). Zoosystematics and Evolution 97(2): 315-343. https://doi.org/10.3897/zse.97.63936
Table S7. Locality records of amphibian and reptile species identified in this study
ScienceDex guides
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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.