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Supplementary material 1 from: Crottini A, Rosa GM, Penny SG, Cocca W, Holderied MW, Rakotozafy LMS, Andreone F (2020) A new stump-toed frog from the transitional forests of NW Madagascar (Anura, Microhylidae, Cophylinae, Stumpffia). ZooKeys 933: 139-164. https://doi.org/10.3897/zookeys.933.47619

Table S1

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Figure 2 from: Crottini A, Rosa GM, Penny SG, Cocca W, Holderied MW, Rakotozafy LMS, Andreone F (2020) A new stump-toed frog from the transitional forests of NW Madagascar (Anura, Microhylidae, Cophylinae, Stumpffia). ZooKeys 933: 139-164. https://doi.org/10.3897/zookeys.933.47619

Figure 2 50% majority rule consensus tree; Phylogram from a Bayesian Inference analysis of all the available nominal species and candidate new species of Clade A of the genus Stumpffia. Based on 1149 bp of the mitochondrial 3-16S and 5-16S gene fragments. Asterisks mark posterior probabilities: (*) 0.85–0.94, * 0.95–0.98, ** 0.99–1. Scale bar: 0.01 substitutions per site.

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Figure 4 from: Crottini A, Rosa GM, Penny SG, Cocca W, Holderied MW, Rakotozafy LMS, Andreone F (2020) A new stump-toed frog from the transitional forests of NW Madagascar (Anura, Microhylidae, Cophylinae, Stumpffia). ZooKeys 933: 139-164. https://doi.org/10.3897/zookeys.933.47619

Figure 4 Haplotype network reconstruction (based on 323 bp, haplotypes inferred using the Phase algorithm); all available Rag-1 sequences for the nominal and candidate new species of Clade A of the genus Stumpffia (sensuRakotoarison et al. 2017) were used. Small dots represent unsampled or extinct haplotypes, whereas bars represent mutational steps. Overlapping Rag-1 fragment of Stumpffia megsoni, S. sorata and S. sp. Ca07 were not available.

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Figure 1 from: Crottini A, Rosa GM, Penny SG, Cocca W, Holderied MW, Rakotozafy LMS, Andreone F (2020) A new stump-toed frog from the transitional forests of NW Madagascar (Anura, Microhylidae, Cophylinae, Stumpffia). ZooKeys 933: 139-164. https://doi.org/10.3897/zookeys.933.47619

Figure 1 Life colouration of Stumpffia froschaueri sp. nov. A dorsolateral view of holotype ZSM 169/2019 (ACZCV 0940) from Anketsakely (Anabohazo Forest) B dorsolateral view of paratype ZSM 166/2019 (ACZCV 0939) from Ankarafa Forest C dorsolateral view of paratype ZSM 168/2019 (ACZCV 0966) from Ankarafa Forest D dorsolateral view of paratype ZSM 167/2019 (ACZCV 0968) from Ankarafa Forest. Pictures by Gonçalo M. Rosa

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Figure 3 from: Crottini A, Rosa GM, Penny SG, Cocca W, Holderied MW, Rakotozafy LMS, Andreone F (2020) A new stump-toed frog from the transitional forests of NW Madagascar (Anura, Microhylidae, Cophylinae, Stumpffia). ZooKeys 933: 139-164. https://doi.org/10.3897/zookeys.933.47619

Figure 3 Voucher colouration of Stumpffia froschaueri sp. nov. A dorsal and B ventral views of the preserved holotype of Stumpffia froschaueri (ZSM 169/2019; ACZCV 0940), and ventral surfaces of C hand and D foot. Scale bars: 10 mm; hand and foot not to scale.

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Terrestrial Laser Scans of surface deformation associated with the 11/11/2019 Mw 4.7 Le Teil earthquake (SE France)

<p>Terrestrial Laser Scans of surface deformation produced by the 11/11/2019 Mw 4.7 Le Teil earthquake in SE France.</p> <p>All scans were produced with a Faro X330 equipment at 1/2 resolution, low laser power, with in-field filters (lost points). Processing includes import and registration with Faro Scene software, export as LAS files, manual editing of noise, vegetation and scattered points with CloudCompare software and rasterization with universal kriging with Golden Software Surfer software.</p>

opencc-by-4.0Jul 2020View details →
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Three-dimensional numerical simulation of the interseismic and coseismic phases associated with the 6 April 2009, Mw 6.3 L'Aquila earthquake (Central Italy)

<p>Results&nbsp;of the numerical model&nbsp;expressed in terms of nodal stresses, strains and displacements at the end of the interseismic and coseismic phases.</p>

opencc-by-4.0Jul 2020View details →
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Data used in the figures of "Aseismic deformation during the 2014 Mw 5.2 Karonga earthquake, Malawi from InSAR and earthquake source mechanisms"

<p>Data used in Figures 2, 4, and SI3 of the paper &quot;Aseismic deformation during the 2014 Mw 5.2 Karonga earthquake, Malawi from InSAR and earthquake source mechanisms.&quot;</p>

opencc-by-4.0Oct 2020View details →
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EXCEPTIONAL GROUND MOTION DURING THE SHALLOW MW 4.9 2019 LE TEIL EARTHQUAKE, FRANCE

<p>An unusually damaging Mw 4.9 earthquake occurred on November 11, 2019 in the south east of France within the lower Rh&ocirc;ne river valley, an industrial region that hosts several operating nuclear power plants. The hypocentre of this event occurred at an exceptionally shallow depth of about 1 km. Here we use far-field seismological observations to demonstrate that the rupture properties are consistent with those commonly observed for large deeper earthquakes. In the absence of strong motion sensors in the fault vicinity, we perform numerical predictions of the ground acceleration on a virtual array of near-fault stations. These predictions are in agreement with independent quantitative estimations of ground acceleration from in-situ observations of displaced objects. Both numerical and in-situ analyses converge toward estimates of an exceptional level of ground acceleration in the fault vicinity, that exceeded gravity, and explains the unexpectedly significant damage.</p>

opencc-by-4.0Dec 2020View details →
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Data and model of the 2014 Mw 6.9 Yutian Earthquake

<p>If your work results in an publication where you used our data, we kindly ask you to consider citing this&nbsp;article as</p> <p>Li, X., W. Xu, S. J&oacute;nsson, Y. Klinger, and G. Zhang (2020). Source Model of the 2014 Mw 6.9 Yutian Earthquake at the Southwestern End of the Altyn Tagh Fault in Tibet Estimated from Satellite Images, Seismol. Res. Lett. 91, 3161&ndash;3170,</p>

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Figure 37-44 from: Gates MW, Zhang YM, Buffington ML (2020) The great greenbriers gall mystery resolved? New species of Aprostocetus Westwood (Hymenoptera, Eulophidae) gall inducer and two new parasitoids (Hymenoptera, Eurytomidae) associated with Smilax L. in southern Florida, USA. Journal of Hymenoptera Research 80: 71-98. https://doi.org/10.3897/jhr.80.59466

Figure 37-44 Sycophila smilax37 frontal view of head 38 frontal view of lower face 39 dorsal view of head 40 posterior view of head 41 female antenna 42 lateral view of mesosoma 43 dorsal view of mesosoma 44 dorsal view of propodeum.

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Figure 21-28 from: Gates MW, Zhang YM, Buffington ML (2020) The great greenbriers gall mystery resolved? New species of Aprostocetus Westwood (Hymenoptera, Eulophidae) gall inducer and two new parasitoids (Hymenoptera, Eurytomidae) associated with Smilax L. in southern Florida, USA. Journal of Hymenoptera Research 80: 71-98. https://doi.org/10.3897/jhr.80.59466

Figure 21-28 Phylloxeroxenus smilax21 frontal view of head 22 frontal view of lower face 23 dorsal view of head 24 posterior view of head 25 female antenna 26 lateral view of mesosoma 27 dorsal view of mesosoma 28 ventral view of mesosoma.

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Figure 29-34 from: Gates MW, Zhang YM, Buffington ML (2020) The great greenbriers gall mystery resolved? New species of Aprostocetus Westwood (Hymenoptera, Eulophidae) gall inducer and two new parasitoids (Hymenoptera, Eurytomidae) associated with Smilax L. in southern Florida, USA. Journal of Hymenoptera Research 80: 71-98. https://doi.org/10.3897/jhr.80.59466

Figure 29-34 Phylloxeroxenus smilax29 dorsal view of propodeum 30 lateral view of female metasoma 31 ventral view of female petiole 32 male antenna 33 ventral view of male metasoma 34 lateral view of male metasoma.

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Figure 4-11 from: Gates MW, Zhang YM, Buffington ML (2020) The great greenbriers gall mystery resolved? New species of Aprostocetus Westwood (Hymenoptera, Eulophidae) gall inducer and two new parasitoids (Hymenoptera, Eurytomidae) associated with Smilax L. in southern Florida, USA. Journal of Hymenoptera Research 80: 71-98. https://doi.org/10.3897/jhr.80.59466

Figure 4-11 Aprostocetus smilax4 frontal view of head 5 frontal view of lower face 6 dorsal view of head 7 posterior view of head 8 female antenna 9 lateral view of mesosoma 10 dorsal view of mesosoma 11 ventral view of mesosoma.

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Figure 59-62 from: Gates MW, Zhang YM, Buffington ML (2020) The great greenbriers gall mystery resolved? New species of Aprostocetus Westwood (Hymenoptera, Eulophidae) gall inducer and two new parasitoids (Hymenoptera, Eurytomidae) associated with Smilax L. in southern Florida, USA. Journal of Hymenoptera Research 80: 71-98. https://doi.org/10.3897/jhr.80.59466

Figure 59-62 Periclistus smilacis59 lateral habitus of lectotype 60 series of specimens and gall of lectotype 61 label of lectotype 62 dorsal habitus of lectotype.

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Figure 63 from: Gates MW, Zhang YM, Buffington ML (2020) The great greenbriers gall mystery resolved? New species of Aprostocetus Westwood (Hymenoptera, Eulophidae) gall inducer and two new parasitoids (Hymenoptera, Eurytomidae) associated with Smilax L. in southern Florida, USA. Journal of Hymenoptera Research 80: 71-98. https://doi.org/10.3897/jhr.80.59466

Figure 63 Concatenated 28S and COI phylogram of the Smilax gall inhabitants estimated using Maximum Likelihood framework in IQ-TREE2. Black dots at the nodes indicate ≥90% ultrafast bootstrap support. Inset images in counterclockwise order: Stem gall induced by Aprostocetus smilax on Smilax havanensis, with emergence holes (photo by MWG); A. smilax, Sycophila smilax, Phylloxeroxenus smilax.

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Figure 54-58 from: Gates MW, Zhang YM, Buffington ML (2020) The great greenbriers gall mystery resolved? New species of Aprostocetus Westwood (Hymenoptera, Eulophidae) gall inducer and two new parasitoids (Hymenoptera, Eurytomidae) associated with Smilax L. in southern Florida, USA. Journal of Hymenoptera Research 80: 71-98. https://doi.org/10.3897/jhr.80.59466

Figure 54-58 Diastrophus smilacis54 lateral habitus of holotype 55 dorsal habitus of holotype 56 gall of holotype 57 label of holotype 58 label of other specimens collected by C.V. Riley.

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Figure 1 from: Gates MW, Zhang YM, Buffington ML (2020) The great greenbriers gall mystery resolved? New species of Aprostocetus Westwood (Hymenoptera, Eulophidae) gall inducer and two new parasitoids (Hymenoptera, Eurytomidae) associated with Smilax L. in southern Florida, USA. Journal of Hymenoptera Research 80: 71-98. https://doi.org/10.3897/jhr.80.59466

Figure 1 Illustration of the stem gall on Smilax havanensis induced by Aprostocetus smilax (top right), with the inset showing the internal structure and an egg. Two eurytomid parasitoids, Phylloxeroxenus smilax (middle right), and Sycophila smilax (bottom right) are included. Illustration by Taina Litwak.

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Figure 45-53 from: Gates MW, Zhang YM, Buffington ML (2020) The great greenbriers gall mystery resolved? New species of Aprostocetus Westwood (Hymenoptera, Eulophidae) gall inducer and two new parasitoids (Hymenoptera, Eurytomidae) associated with Smilax L. in southern Florida, USA. Journal of Hymenoptera Research 80: 71-98. https://doi.org/10.3897/jhr.80.59466

Figure 45-53 Sycophila smilax45 ventral view of mesosoma 46 lateral view of female metasoma 47 ventral view of female petiole 48 lateral view of female petiole 49 closeup of female ovipositor 50 male antenna 51 dorsal view of male petiole 52 ventral view of male petiole 53 lateral view of male metasoma.

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Figure 12-18 from: Gates MW, Zhang YM, Buffington ML (2020) The great greenbriers gall mystery resolved? New species of Aprostocetus Westwood (Hymenoptera, Eulophidae) gall inducer and two new parasitoids (Hymenoptera, Eurytomidae) associated with Smilax L. in southern Florida, USA. Journal of Hymenoptera Research 80: 71-98. https://doi.org/10.3897/jhr.80.59466

Figure 12-18 Aprostocetus smilax12 dorsal view of female metasoma 13 ventral view of female metasoma 14 lateral view of female metasoma 15 male antenna 16 lateral view of male metasoma 17 ventral view of male metasoma 18 closeup of male genital opening.

opencc-by-4.0Jan 2021View details →

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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.

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neuroscienceopenPublished datasets are available on demand over the internet.
Last verified 2026-04-29Open record