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99 results for “submersible”

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zenodo32/100

Figure 29 in Molecular phylogeny, analysis of character evolution, and submersible collections enable a new classification of a diverse group of gobies (Teleostei: Gobiidae: Nes subgroup), including nine new species and four new genera

Figure 29. Varicus cephalocellatus, preserved. (A) holotype, 28.2 mm SL, USNM 427232; (B) paratype, 37.1 mm SL, USNM 427227. Photos by J.L. Van Tassell.

opennotspecifiedAug 2016View details →
zenodo32/100

Figure 24. Varicus adamsi, 61.0 in Molecular phylogeny, analysis of character evolution, and submersible collections enable a new classification of a diverse group of gobies (Teleostei: Gobiidae: Nes subgroup), including nine new species and four new genera

Figure 24. Varicus adamsi, 61.0 mm SL, USNM 427225, in situ at 435 m, Bahamas, photo by R.G. Gilmore and Michael Adams from the Johnson Sea Link II submersible (original photo out of focus – no additional photos available).

opennotspecifiedAug 2016View details →
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Figure 3 in Molecular phylogeny, analysis of character evolution, and submersible collections enable a new classification of a diverse group of gobies (Teleostei: Gobiidae: Nes subgroup), including nine new species and four new genera

Figure 3. Examples of papillae patterns in which rows 5i and 5s are connected (A–C) or distinctly separate (D–F). (A) Varicus bucca, UMML 7119; (B) Pinnichthys prolata, AMNH 87272; (C) Psilotris celsa, USNM 98429; (D) Chriolepis minutilla, USNM 322595; (E) Chriolepis zebra, CAS 31001; (F) Gobulus crescentalis, USNM 48258.

opennotspecifiedAug 2016View details →
zenodo32/100

Figure 4 in Molecular phylogeny, analysis of character evolution, and submersible collections enable a new classification of a diverse group of gobies (Teleostei: Gobiidae: Nes subgroup), including nine new species and four new genera

Figure 4. Variation in branching pattern of pelvic rays 1–4 in the Nes subgroup. (A) branched but united at tips as a flattened, spatulate fleshy pad, Varicus adamsi, USNM 220985; (B) branched to the tips, some branches with minute fleshy tips, Varicus vespa, paratype (USNM 221524); (C) rays unbranched, or branched internally and re-fused (as in ray 3), tips with fleshy pads, Varicus bucca, holotype ANSP 93083; (D) rays branched, mostly internally and re-fused, tips with fleshy pads, Varicus sp., USNM 199060; (E) all rays unbranched without fleshy tips, Varicus veliguttatus USNM 220982; (F) all rays branched, not re-fused and no fleshy tips, Psilotris boehlkei, USNM 427234.

opennotspecifiedAug 2016View details →
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Figure 2 in Molecular phylogeny, analysis of character evolution, and submersible collections enable a new classification of a diverse group of gobies (Teleostei: Gobiidae: Nes subgroup), including nine new species and four new genera

Figure 2. Anal-fin pterygiophore insertion patterns. (A) One anal-fin pterygiophore inserted anterior to first haemal spine (Varicus cephalocellatus paratype, USNM 427227); (B) rare pattern in which haemal spine on vertebra 12 is reduced, and first elongate haemal spine appears on vertebra 13, giving the appearance of two anal-pterygiophores inserted before first haemal spine. This pattern is considered homologous to pattern depicted in A, and occurs only in species in which the pattern from A is also observed (Varicus cephalocellatus paratype, USNM 427227); (C) two anal-fin pterygiophores inserted anterior to first haemal spine (Chriolepis lepidota holotype USNM 211456).

opennotspecifiedAug 2016View details →
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Figure 5 in Molecular phylogeny, analysis of character evolution, and submersible collections enable a new classification of a diverse group of gobies (Teleostei: Gobiidae: Nes subgroup), including nine new species and four new genera

Figure 5. Bayesian phylogeny from MrBayes analysis of the Gobiosomatini. Tip labels follow classification recognized prior to this study. Red bars indicate new classification from this study (Table 2). Support values at nodes are Bayesian posterior probabilities. The "?" for Chriolepis cf. fisheri refers to the incertae sedis status of this species (see "Remarks" section for Chriolepis). Species from the eastern Pacific are denoted with "(P)".

opennotspecifiedAug 2016View details →
zenodo32/100

Figure 30. Varicus cephalocellatus papillae pattern, drawn from paratype USNM 426788 in Molecular phylogeny, analysis of character evolution, and submersible collections enable a new classification of a diverse group of gobies (Teleostei: Gobiidae: Nes subgroup), including nine new species and four new genera

Figure 30. Varicus cephalocellatus papillae pattern, drawn from paratype USNM 426788. Illustration by J.L. Van Tassell. Note that two paratypes USNM 427227 have papillae rows 5i and 5s separated by the space of 1 or two papillae.

opennotspecifiedAug 2016View details →
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Figure 11 in Molecular phylogeny, analysis of character evolution, and submersible collections enable a new classification of a diverse group of gobies (Teleostei: Gobiidae: Nes subgroup), including nine new species and four new genera

Figure 11. Pinnichthys aimoriensis in preservation. (A) holotype, 22.4 mm SL, CIUFES 2414; (B) paratype, 16.4 mm SL, AMNH 265021. Photos by J.L. Van Tassell.

opennotspecifiedAug 2016View details →
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Figure 18 in Molecular phylogeny, analysis of character evolution, and submersible collections enable a new classification of a diverse group of gobies (Teleostei: Gobiidae: Nes subgroup), including nine new species and four new genera

Figure 18. Psilotris laetarii holotype, preserved, 23.6 mm SL, AMNH 261272. Photo by J.L. Van Tassell.

opennotspecifiedAug 2016View details →
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Figure 10 in Molecular phylogeny, analysis of character evolution, and submersible collections enable a new classification of a diverse group of gobies (Teleostei: Gobiidae: Nes subgroup), including nine new species and four new genera

Figure 10. Pinnichthys aimoriensis holotype, prior to preservation, 22.4 mm SL, CIUFES 2414. Photo by Hudson Pinheiro.

opennotspecifiedAug 2016View details →
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Figure 27 in Molecular phylogeny, analysis of character evolution, and submersible collections enable a new classification of a diverse group of gobies (Teleostei: Gobiidae: Nes subgroup), including nine new species and four new genera

Figure 27. Varicus cephalocellatus, illustration of holotype, 28.2 mm SL, USNM 427232, based on notes of live coloration, by R.G. Gilmore.

opennotspecifiedAug 2016View details →
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Figure 21 in Molecular phylogeny, analysis of character evolution, and submersible collections enable a new classification of a diverse group of gobies (Teleostei: Gobiidae: Nes subgroup), including nine new species and four new genera

Figure 21. Psilotris laurae holotype, preserved, 26.8 mm SL, USNM 426779. Photo by J.L. Van Tassell.

opennotspecifiedAug 2016View details →
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Figure 8 in Molecular phylogeny, analysis of character evolution, and submersible collections enable a new classification of a diverse group of gobies (Teleostei: Gobiidae: Nes subgroup), including nine new species and four new genera

Figure 8. Ancestral character estimation for (A) branched versus unbranched 5th pelvic ray and (B) presence/absence of a well-developed membrane connecting the innermost pelvic rays. Pies at nodes represent posterior probabilities for ancestor's character state. Species from the eastern Pacific are denoted with "(P)".

opennotspecifiedAug 2016View details →
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Figure 26 in Molecular phylogeny, analysis of character evolution, and submersible collections enable a new classification of a diverse group of gobies (Teleostei: Gobiidae: Nes subgroup), including nine new species and four new genera

Figure 26. Varicus adamsi papillae pattern, composite from type series. Illustration by J.L. Van Tassell.

opennotspecifiedAug 2016View details →
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Figure 14. Pinnichthys saurimimica, holotype. 55.5 in Molecular phylogeny, analysis of character evolution, and submersible collections enable a new classification of a diverse group of gobies (Teleostei: Gobiidae: Nes subgroup), including nine new species and four new genera

Figure 14. Pinnichthys saurimimica, holotype. 55.5 mm SL, USNM 427228, in situ at 282 m, Bahamas, photo by R.G. Gilmore, from the Johnson Sea Link II submersible.

opennotspecifiedAug 2016View details →
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Figure 15. Pinnichthys saurimimica holotype, 55.4 in Molecular phylogeny, analysis of character evolution, and submersible collections enable a new classification of a diverse group of gobies (Teleostei: Gobiidae: Nes subgroup), including nine new species and four new genera

Figure 15. Pinnichthys saurimimica holotype, 55.4 mm SL, USNM 427228, preserved. Photo by J.L. Van Tassell.

opennotspecifiedAug 2016View details →
zenodo32/100

Data to reproduce the results presented in Lake et al. 2023. Science of The Total Environment, https://doi.org/10.1016/j.scitotenv.2023.162332 ("Use of a submersible spectrophotometer probe to fingerprint spatial suspended sediment sources at catchment scale")

<p>This repository contains the absorbance data measured on the water samples collected in all sampling sites, for the three campaigns, as described in&nbsp;Lake et al., 2023.&nbsp;</p> <p>Data consists of:</p> <p>- Absorbance data compensated for measured concentration and compensated for absorbance measured on filtered water&nbsp;</p> <p>- Absorbance data compensated for measured concentration</p> <p>Shown files are the input files for the MixSIAR modelling exercise as described in Lake et al., 2023.</p>

opencc-by-4.0Feb 2023View details →
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Data from: Worms and submersed macrophytes reduce methane release and increase nutrient removal in organic sediments

Open the record for dataset details and reuse information.

publicAug 2021View details →
dryad32/100

Data from: A submersible, off-axis holographic microscope for detection of microbial motility and morphology in aqueous and icy environments

Open the record for dataset details and reuse information.

publicJan 2017View details →
zenodo28/100

Figure 3 in Phytoplankton Exopolymers Enhance Adhesion of Microplastic Particles to Submersed Surfaces

Figure 3. Aggregates of 4.3-µm fluorescent microsphere settled at the bottom of the experimental vessels with Rhodomonas salina (RHO), Tetraselmis suecica (TET) and the reference vessel (CNL) on the fourth day of experiment. Micrographs were obtained in light (top) and fluorescent (bottom) modes. Arrows show organic matrix stained by Alcian Blue. The microspheres fluoresce in green.

opencc-by-4.0Oct 2019View details →

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Allen Brain Atlas

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DANDI Archive for NWB datasets

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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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OpenNeuro

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Last verified 2026-04-29Open record