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FIGURE 5. Male P. proboscis spec. nov., 18. V. 2016 in New species of Protosticta Selys from Vietnam with a key to the males of the P. curiosa group (Odonata: Platystictidae)

FIGURE 5. Male P. proboscis spec. nov., 18. V. 2016, Lam Dong Province, paratype before capture, same as in Fig. 4.

opencc-zeroDec 2016View details →
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Fig. 3 in Proboscis Monkeys (Nasalis Larvatus (Wurmb, 1787)) Have Unusually High-Pitched Vocalizations

Fig. 3. Cumulative curve of mean frequencies of calls in the study. Graph omits the one call that has a frequency <2.7 kHz.

opencc-by-4.0Aug 2011View details →
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Fig. 2. A in Proboscis Monkeys (Nasalis Larvatus (Wurmb, 1787)) Have Unusually High-Pitched Vocalizations

Fig. 2. A sample spectrogram of a high frequency vocalization of the proboscis monkey, Nasalis larvatus, that shows the harmonic structure of these calls. The fundamental frequency of this call ranges from 3.4–5.4 kHz and the mean frequency is 4.9 kHz.

opencc-by-4.0Aug 2011View details →
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Fig. 3 in Co-infection patterns of intestinal parasites in arboreal primates (proboscis monkeys, Nasalis larvatus) in Borneo

Fig. 3. Differences in width among trichurid egg morphotypes found in proboscis monkey feces. (T1 n = 11, T2 n = 30, T3 n = 30, T4 n = 2, and T5 n = 10). Median, boxes define the 25th and 75th percentiles, whiskers extend to maximum ± 1.5 times the interquartile range (IQR = middle 50% of the records). *p = 0.05; **p = 0.001; ***p = 0.0001.

opencc-by-4.0Dec 2017View details →
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Fig. 2 in Co-infection patterns of intestinal parasites in arboreal primates (proboscis monkeys, Nasalis larvatus) in Borneo

Fig. 2. Taxonomic diversity of helminth parasites found in proboscis monkeys. The five detected helminth orders were: the order Enoplida, trichurids (morphotypes T1-T4 genus Trichuris, T5 genus Anatrichosoma), the order Strongylida (morphotypes S1 genus Trichostrongylus, S2 genus Oesophagostomum/Ternidens, S3 unknown strongylid), the order Rhabditida, genus Strongyloides (R), the order Ascaridida, genus Ascaris (with exfoliated rough brown outer shell layer) (A) and the order Oxyurida, genus Enterobius (O). Scale bars = 50 Mm. (For interpretation of the references to colour in this figure legend, the reader is referred to the web version of this article).

opencc-by-4.0Dec 2017View details →
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Fig. 1 in Co-infection patterns of intestinal parasites in arboreal primates (proboscis monkeys, Nasalis larvatus) in Borneo

Fig. 1. Sample collection sites along the Kinabatangan River in Borneo. The island of Borneo, South-East Asia, with position of Lot 6 on the southern riverbank in the Lower Kinabatangan Wildlife Sanctuary in Sabah, Malaysian Borneo. Map reproduced according to GPS data points collected and mapped via Garmin Map Source (version 6.16.3).

opencc-by-4.0Dec 2017View details →
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Fig. 4 in Co-infection patterns of intestinal parasites in arboreal primates (proboscis monkeys, Nasalis larvatus) in Borneo

Fig. 4. Differences in length among strongylid egg morphotypes found in proboscis monkey feces. (S1 n = 30, S2 n = 30, and S3 n = 17). Median, boxes define the 25th and 75th percentiles, whiskers extend to maximum ± 1.5 times the interquartile range (IQR = middle 50% of the records). *p = 0.05; **p = 0.001; ***p = 0.0001.

opencc-by-4.0Dec 2017View details →
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Figure 5 in On nemerteans with a branched proboscis from Zhanjiang, China

Figure 5. Dendrorhynchus zhanjiangensis Yin & Zeng, 1984, a series of schematic transverse sections through different regions of the holotype of D. zhanjiangensis; the blood system is indicated by solid black. (A) In front of the proboscis pore. (B, C) Through the rhynchodaeal region. (D) At position of proboscis insertion, arrows point to the crescent-like lacunae. (E)–(G) Through successive positions of cerebral region. (H) At anterior border of mouth region; arrows point to the branches of ''esophageal blood lacuna''. (I) Through foregut region. (J) Through the anterior portion of intestinal region. (K) Through the position near posterior end of body. Abbreviations: bc, transverse blood connectives between the mid-dorsal and lateral blood vessels; cm, circular muscle layer of body wall; cso, cerebral sensory organ; ct, connective tissue stratum of body wall; dg, dorsal cerebral ganglion; fg, foregut; fvp, foregut vascular plexus; ilm, inner longitudinal muscle layer of body wall; im, muscles surrounding intestine; in, main duct of intestine; lcl, lateral cerebral lacuna; ln, lateral nerve; lv, lateral blood vessel; m, mouth; mv, mid-dorsal blood vessel; ns, neural sheath; olm, outer longitudinal muscle layer of body wall; pa, parenchyma; rc, rhynchocoel; rd, rhynchodaeum; rv, rhynchocoelic villus; sec, subepidermal circular muscle layer; sl, spacious lacuna that posteriorly leads to lateral blood vessel; ul, U-shaped cerebral lacuna; vc, ventral cerebral commissure; vcl, ventral cerebral lacuna; vg, ventral cerebral ganglion.

opencc-by-4.0Aug 2006View details →
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Figure 3 in On nemerteans with a branched proboscis from Zhanjiang, China

Figure 3. Dendrorhynchus zhanjiangensis Yin & Zeng, 1984. (A) Sagittal section of a body fragment to show the expanded rhynchocoel chambers that are connected by narrow channels (arrowed). (B) Transverse section of body showing the expanded rhynchocoel chamber and the narrow channel (arrowed) near the dorsal border of rhynchocoel. (C) A proboscis with 20 everted primary branches and 110 terminal branchlets. (D) Proboscis of the holotype of D. sinensis; the branching rank is indicated by legend words (redrawn from Yin and Zeng 1985, Figure 4). (E) Proboscis of the holotype of D. zhanjiangensis; the branching rank is indicated by legend words (redraw from Yin and Zeng 1984, Figure 4). (F) Proboscis of the holotype of Polydendrorhynchus papillaris; the branching rank is indicated by legend words (redrawn from Yin and Zeng 1986, Figure 4). Abbreviations: cm, circular muscle layer of body wall; rec, expanded chamber of rhynchocoel. Scale bars: C520 mm; D52 mm; E55mm; F51 mm.

opencc-by-4.0Aug 2006View details →
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Figure 1 in On nemerteans with a branched proboscis from Zhanjiang, China

Figure 1. Dendrorhynchus zhanjiangensis Yin & Zeng, 1984. (A) Photograph of a living worm. (B) Dorsal view of posterior region to show the pale body end. (C) Dorsal view of a living worm, with anterior and posterior regions paler than the middle body region. (D) Dorsal view of the anterior body region. (E) Ventral view of the anterior body region. Scale bars: A520 mm; E510 mm.

opencc-by-4.0Aug 2006View details →
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Fig. 3. Land use and land cover data for 2014 in Population trends and conservation status of proboscis monkeys (Nasalis larvatus) in the face of habitat change in the Klias Peninsula, Sabah, Borneo, Malaysia

Fig. 3. Land use and land cover data for 2014/2015 within the 1-km buffer distance from surveyed rivers, overlaid with proboscis monkey sightings from the 2004/2005 and 2014 surveys, Protected Areas, and Production Forest Reserve boundaries.

opencc-by-4.0Jun 2021View details →
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Fig. 2 in Population trends and conservation status of proboscis monkeys (Nasalis larvatus) in the face of habitat change in the Klias Peninsula, Sabah, Borneo, Malaysia

Fig. 2. Boxplots illustrating the variation in vegetation variables, with each point representing the values for vegetation plot in each site.

opencc-by-4.0Jun 2021View details →
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Fig. 1 in Population trends and conservation status of proboscis monkeys (Nasalis larvatus) in the face of habitat change in the Klias Peninsula, Sabah, Borneo, Malaysia

Fig. 1. Map showing the Klias Peninsula region in western Sabah, in the northern part of Borneo (inset), Malaysia, and the research sampling sites in riverine, mangrove, and mixed mangrove-riverine forests along rivers in Padang Teratak Bird Sanctuary, Padas Damit Forest Reserve, Menumbok Forest Reserve, Binsulok Forest Reserve, Klias Forest Reserve, Kg. Hindian Forest Reserve, and Nabahan Forest Reserve, where the river surveys of the sleeping sites of proboscis monkeys were conducted.

opencc-by-4.0Jun 2021View details →
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Fig. 9 in Ordovician opabiniid-like animals and the role of the proboscis in euarthropod head evolution

Fig. 9 | Details of posterior body and tail fan of Castle Bank euarthropod A (NMW.2021.3 G.8). cb-l leftcaudal blade, cb-r rightcaudalblade, df dorsalfurrow, fl lateral flap, sp spine.

opencc-by-4.0Nov 2022View details →
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Fig. 4 in Ordovician opabiniid-like animals and the role of the proboscis in euarthropod head evolution

Fig. 4 | Details of anterior of Mieridduryn bonniae nov. gen. et sp. (NMW.2021.3 G.7) photographed using fluorescence. a Anterior of the head regionincludingproboscis,mouth, and gut. b Dorsalsclerite. c Mouthand anterior flaps with strengthening rays. d Proboscis with spines. ds dorsal sclerite, pr proboscis, sp spine, sr strengthening rays.

opencc-by-4.0Nov 2022View details →
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Fig. 7 in Ordovician opabiniid-like animals and the role of the proboscis in euarthropod head evolution

Fig. 7 | Details of anterior of Castle Bank euarthropod A (NMW.2021.3 G.8). a Anterior of head including lateral sclarites, rectangular elements and spinose proboscis with annulations (b) Details of spinose proboscis and annulations; an annulation, ic internal canal of proboscis, ls-l left lateral sclerite, ls-r right lateral sclerite,mr marginalrimtocarapace element,pr proboscis,rerectangular element posterior to lateral sclerites, sp spine.

opencc-by-4.0Nov 2022View details →
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Fig. 3 in Ordovician opabiniid-like animals and the role of the proboscis in euarthropod head evolution

Fig. 3 | Details of proboscis of Mieridduryn bonniae nov. gen. et sp. (NMW.2021.3 G.7) under different lighting conditions. a S8 microscope, cross-polarised light, stitched images, with contrast increased. b M125 microscope under high angle light. an annulation, sp spine.

opencc-by-4.0Nov 2022View details →
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Fig. 6 in Ordovician opabiniid-like animals and the role of the proboscis in euarthropod head evolution

Fig. 6 | Castle Bank euarthropod A (NMW.2021.3 G.8) from the Castle Bank biota. a Overview of whole specimen. Boxes indicate areas detailed in Fig. 7. b Explanatory drawing of (a). an annulations of proboscis, cf-l leftblades of caudal fan, cf-r right blades of caudalfan, df dorsal furrow in trunk, fl dorsolateral flap, ic internal canal of proboscis, ls lateral sclerite, pr proboscis, re subrectangular elements posterior to lateral sclerites, sp spine on proboscis.

opencc-by-4.0Nov 2022View details →
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Fig. 8 in Ordovician opabiniid-like animals and the role of the proboscis in euarthropod head evolution

Fig. 8 | Details of Castle Bank euarthropod A (NMW.2021.3 G.8), photographed using fluorescence. a Overview of whole specimen. b Details of tail fan with spinose margin. c Details of proboscis with dorsal spines. sp spine.

opencc-by-4.0Nov 2022View details →
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Fig. 2 in Ordovician opabiniid-like animals and the role of the proboscis in euarthropod head evolution

Fig. 2 | Details of anterior of Mieridduryn bonniae nov. gen. et sp. (NMW.2021.3 G.7). a Anteriorof the head region including proboscis, mouth, gut, view of anterior details including spinous proboscis, mouth and gut. b Mouth and anterior flapswith strengtheningrays.c Explanatory drawingof (b). anannulations on proboscis, gu gut, lfleftdorsolateral flap, mo mouth, rf rightdorsolateral flap, sb setal blades, sp spines on proboscis, sr strengthening rays.

opencc-by-4.0Nov 2022View 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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OpenNeuro

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Last verified 2026-04-29Open record