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1,029 results for “altitude”

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zenodo32/100

Analysis of the effectiveness and safety of conventional anticoagulants in preventing deep vein thrombosis after total knee arthroplasty in patients undergoing total knee arthroplasty at high altitudes

<p><strong><span>Analysis of the effectiveness and safety of conventional anticoagulants in preventing deep vein thrombosis after total knee arthroplasty in patients undergoing total knee arthroplasty at high altitudes</span></strong></p>

opencc-by-4.0Jul 2024View details →
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FIGURES 4‑6 in Bolivian Rhinotragini Vii: Provisional Report Of Higher Altitude Species (Coleoptera, Cerambycidae) With Descriptions Of New Taxa

FIGURES 4‑6: 4, Ephippiotragus wappesi sp. nov.: A = male holotype, B = female paratype. 5, Ephippiotragus thomasi sp. nov.: A = male holotype, B = female paratype. 6, Amborotragus vestigiepimeron sp. nov.: A = male holotype, B = female paratype.

opennotspecifiedDec 2013View details →
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FIGURES 7‑12 in Bolivian Rhinotragini Vii: Provisional Report Of Higher Altitude Species (Coleoptera, Cerambycidae) With Descriptions Of New Taxa

FIGURES 7‑12: 7, Ecliptoides pseudovicinus sp. nov.: A = male holotype, B = female paratype. 8, Stenopseustes lingafelteri sp. nov.: A = male holotype. 9, Tomopterchasia sullivanorum sp. nov.: A = male holotype. 10, Tomopterchasia cuneiformis (Fisher, 1952) comb. nov., A = female. 11, Tegmen of aedeagus: A = Ephippiotragus wappesi sp. nov., B = Ephippiotragus thomasi sp. nov., C = Amborotragus vestigiepimeron sp. nov. 12, Tegmen of aedeagus: A = Isthmiade mariahelenae sp. nov., B = Isthmiade ichneumoniformis Bates, 1870.

opennotspecifiedDec 2013View details →
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FIGURES 54–56 in A new high-altitude species of centipede from the Andes of Ecuador (Chilopoda, Geophilomorpha, Schendylidae)

FIGURES 54–56. (54) Pectiniunguis aequatorialis sp. nov. [male holotype (QCAZ)]: Detail of subepithelial pigmentation at level of leg-bearing segments 40–44, dorsal. (55–56). Pectiniunguis aequatorialis sp. nov. [male juvenile (MACN-My 51)]: (55) Left coxal organs, ventral (a: individual areas of mucous layer; b: outer lobes). (56) Right gonopod, ventral. Scale bars: 0.1 mm (56); 0.2 mm (55); 0.8 mm (54).

opennotspecifiedJan 2018View details →
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FIGURE 70 in A new high-altitude species of centipede from the Andes of Ecuador (Chilopoda, Geophilomorpha, Schendylidae)

FIGURE 70. Distribution records of Pectiniunguis aequatorialis sp. nov. and Pectiniunguis roigi Pereira, Foddai &amp; Minelli, 2001.

opennotspecifiedJan 2018View details →
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FIGURES 48–53 in A new high-altitude species of centipede from the Andes of Ecuador (Chilopoda, Geophilomorpha, Schendylidae)

FIGURES 48–53. Pectiniunguis aequatorialis sp. nov. [male holotype (QCAZ)]: (48) Ultimate leg-bearing segment and postpedal segments, ventral. (49) Left coxal organs, ventral (a: individual areas of mucous layer; b: outer lobes). (50) Postpedal segments, ventral (a: gonopods). (51) Right gonopod, ventral. (52) Penis, dorsal. (53) Detail of tubula seminifera with mature spermatozoa at level of leg-bearing segments 35–38, ventral (a: spermatozoa, b: contour of tubula seminifera). Scale bars: 0.1 mm (51); 0.2 mm (49, 50, 52); 0.4 mm (48); 0.8 mm (53).

opennotspecifiedJan 2018View details →
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FIGURES 25–32 in A new high-altitude species of centipede from the Andes of Ecuador (Chilopoda, Geophilomorpha, Schendylidae)

FIGURES 25–32. Pectiniunguis aequatorialis sp. nov. [male holotype (QCAZ)]: (25) Metasternite 2. (26) Metasternite 3. (27) Metasternite 4. (28) Metasternite 7. (29) Metasternite 10. (30) Metasternite 11. (31) Metasternite 12. (32) Metasternite 13. Scale bar: 0.3 mm.

opennotspecifiedJan 2018View details →
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FIGURES 1–7 in A new high-altitude species of centipede from the Andes of Ecuador (Chilopoda, Geophilomorpha, Schendylidae)

FIGURES 1–7. Pectiniunguis aequatorialis sp. nov. [male holotype (QCAZ)]: (1) Right antenna, ventral. (2) Right a.a. XIII and XIV, ventral (a, b: a, b type sensilla; c: claviform sensilla; d: apical specialized sensilla). (3) Detail of apex of right a.a. XIV, ventral (a: clavate sensilla; b: apical specialized sensilla). (4) Right a.a. II, ventral (b: b type sensilla). (5) Right a.a. V, ventral (a, b: a, b type sensilla). (6) Right a.a. IX, ventral (a, b: a, b type sensilla). (7) Right a.a. II, dorsal (a, b: a, b type sensilla). Scale bars: 0.1 mm (2–7); 0.6 mm (1)

opennotspecifiedJan 2018View details →
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FIGURES 18–24 in A new high-altitude species of centipede from the Andes of Ecuador (Chilopoda, Geophilomorpha, Schendylidae)

FIGURES 18–24. Pectiniunguis aequatorialis sp. nov. [male holotype (QCAZ)]: (18) Left side of first maxillae, dorsal (a: lappet of coxosternite; b: lappet of telopodite). (19) First and second maxillae, ventral (a: pleurite of second maxillae, b: coxosternite of second maxillae). (20) Detail of left postero-external region of coxosternite of second maxillae (b), and pleurite (a), ventral. (21) Claw of right telopodite of second maxillae, ventral. (22) Forcipular segment, ventral. (23) Forcipular segment, dorsal. (24) Detail of venom gland (a), calyx (b), and duct (c) of venom apparatus in left forcipular telopodite, dorsal. Scale bars: 0.05 mm (21); 0.1 mm (20); 0.2 mm (18); 0.3 mm (24); 0.4 mm (19); 0.6 mm (22, 23).

opennotspecifiedJan 2018View details →
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FIGURES 8–17 in A new high-altitude species of centipede from the Andes of Ecuador (Chilopoda, Geophilomorpha, Schendylidae)

FIGURES 8–17. Pectiniunguis aequatorialis sp. nov. [male holotype (QCAZ)]: (8) Right a.a. V, dorsal (a, b: a, b type sensilla). (9) Right a.a. IX, dorsal (a, b, c: a, b, c type sensilla). (10) Right a.a. XIII, dorsal (a, b, c: a, b, c type sensilla). (11) Cephalic plate and bases of antennae. (12) Clypeus and bases of antennae. (13) Labrum. (14) Left mandible, dorsal. (15) Dentate lamella of left mandible, dorsal. (16) Right mandible, dorsal. (17) Dentate lamella of right mandible, dorsal. Scale bars: 0.03 mm (15, 17); 0.1 mm (8–10, 13, 14, 16); 0.4 mm (12); 0.5 mm (11).

opennotspecifiedJan 2018View details →
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FIGURES 41–47 in A new high-altitude species of centipede from the Andes of Ecuador (Chilopoda, Geophilomorpha, Schendylidae)

FIGURES 41–47. Pectiniunguis aequatorialis sp. nov. [male holotype (QCAZ)]: (41) Left leg (pair 23), anteroventral view. (42) Left leg (pair 42), anteroventral view. (43) Left leg (pair 44), ventral. (44) Claw of left leg (pair 25), anterior view (a: anterior accessory spine). (45) Claw of left leg (pair 25), posterior view (a: anterior accessory spine, b: posterior accessory spines). (46) Claw of left leg (pair 33), ventral view (a: anterior accessory spine, b: posterior accessory spines). (47) Ultimate leg-bearing segment and postpedal segments, dorsal (a: ultimate pretergite, b: intercalary pleurite). Scale bars: 0.05 mm (44– 46); 0.3 mm (41–43); 0.4 mm (47).

opennotspecifiedJan 2018View details →
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FIGURES 33–40 in A new high-altitude species of centipede from the Andes of Ecuador (Chilopoda, Geophilomorpha, Schendylidae)

FIGURES 33–40. Pectiniunguis aequatorialis sp. nov. [male holotype (QCAZ)]: (33) Metasternite 14. (34) Metasternite 16. (35) Metasternite 17. (36) Metasternite 18. (37) Metasternite 19. (38) Left leg (pair 1), anteroventral view. (39) Left leg (pair 2), anteroventral view. (40) Left leg (pair 12), anteroventral view. Scale bars: 0.3 mm.

opennotspecifiedJan 2018View details →
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FIGURES 57–68 in A new high-altitude species of centipede from the Andes of Ecuador (Chilopoda, Geophilomorpha, Schendylidae)

FIGURES 57–68. (57–65). Pectiniunguis ascendens Pereira, Minelli &amp; Barbieri, 1994 [female holotype (INPA)]: (57) Right a.a. I-VI, ventral. (58) Right a.a. VII-XIV, ventral. (59) Clypeus and bases of antennae. (60) Forcipular segment, ventral. (61) Metasternite 3. (62) Metasternite 4. (63) Metasternite 8. (64) Metasternite 12. (65) Detail of left coxal organs, ventral. (66–68). Pectiniunguis ascendens Pereira, Minelli &amp; Barbieri, 1994 [male allotype (INPA)]: (66) Ultimate leg-bearing segment and postpedal segments, dorsal. (67) Ultimate leg-bearing segment and postpedal segments, ventral. (68) Detail of distal end of last podomere of right ultimate leg, dorsal. (All from Pereira et al. 1994). Scale bars: 0.03 mm (68); 0.1 mm (65); 0.2 mm (57, 58, 66, 67); 0.3 mm (61–64, 59); 0.4 mm (60).

opennotspecifiedJan 2018View details →
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FIGURE 69 in A new high-altitude species of centipede from the Andes of Ecuador (Chilopoda, Geophilomorpha, Schendylidae)

FIGURE 69. Photograph showing the type locality of Pectiniunguis aequatorialis sp. nov., in a high Andean (Paramo) ecosystem, road to Papallacta, Oyacachi (ca. 3823 m a.s.l.), Cayambe Coca Ecological Reserve, Napo province, northern Ecuador. (Photo courtesy Matías Izquierdo).

opennotspecifiedJan 2018View details →
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Contoured Altitude by Frequency over Time (CFADT) Animation for Metereologic Radar Data

<p>The animation depicts a 24h space-time contoured frequency by altitude over time visualisation (CFADT) derived from&nbsp;radar-metereologic data recorded by the x-band radar station of the South African Weather Service for the Liebenbergvlei in the Freestate, South Africa on December 31 2001.&nbsp;&nbsp;The temporal resolution (z) is 5 Minutes, starting on 2001-12-31 00:00:00 hours, ending on 2001-12-31 23:55:00 hours.&nbsp; The depicted reflectivity&nbsp;data was recorded in dBZ. The spatial resolution (x) is 1km, covering a radius&nbsp;of 200km from the radar station. The elevation resolution(y) is 1km, from 1 to 18km of elevation above ground. The transversly arranged red panes mark the time stamps of 6:00, 12:00, and 18:00 hours. The perpendicular arranged red pane seperates weak reflectivities (left) versus high reflectivities (right), which indicate&nbsp;heavy precipitation, if they occur on low elevations above ground.</p> <p>Data processing was done in GRASS v6.x, visualisation was done in Paraview.</p>

opencc-by-4.0May 2008View details →
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FIGURES 2–7 in Discovery of a new species of Inocelliidae (Insecta: Raphidioptera) in an altitude of nearly 3500 m in China

FIGURES 2–7. Inocellia occidentalis sp. nov., holotype male. 2. Male genital segments, lateral view; 3. Male genital segments, caudal view; 4. Male genital segments showing internal structures, lateral view; 5. Fused gonocoxites 11 (gonarcus), dorsal view; 6. Complex of fused gonocoxites, gonapophyses, and gonostyli 10 (fused parameres), dorsal view; 7. Hypandrium internum, ventral view. e: ectoproct; ep: endophallus; gst9: gonostylus 9; gx9: gonocoxite 9; gx10: complex of fused gonocoxites, gonapophyses, and gonostyli 10 (fused parameres); gx11: fused gonocoxites 11 (gonarcus); ps: pseudostylus (basal part of gonapophysis 9); S8, 9: sternum 8 and 9; T8, 9: tergum 8 and 9. Scale bar = 0.5 mm.

opennotspecifiedSep 2018View details →
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Fig. 4 in Age and body size of Salamandrella keyserlingii (Caudata: Hynobiidae): a difference in altitudes, latitudes, and temperatures

Fig. 4 Fittest equations (rational function approximation or second order polynomial regression) between latitude (x-axis: °N)/temperature in descending order (x-axis: °C) and maximum body size (y-axis: mm). No relationship was found between latitude and M-TOL (solid circle: n 018, R 2 0.043, P 0.4116, y intercept 144.876, slope 0.414) M-SVL 0000– or (open circle: n 024, R 2 00.020, P00.5097, y intercept 077.240, slope 0 –0.175). Rational function approximations indicated an intraspecific tendency to decrease M-TOL (Equation a: y ¼ 4: 98338 x 454: 274 þ 16386: 0= x R2 ¼ 0: 202&gt; 0: 043 regression coefficient for a given linear ' regression) with increased latitude from 43 to 57°N and then increase the size from 57 to 69°N (U shaped curve), unlike M-SVL (Equation b: y ¼ 0: 351151 x þ 21: 1776 þ 1478: 83= x R2 ¼ 0: 022 0: 020). A ' significant relationship was not found between temperature and M-TOL (n 18, R 2 0.127, P 0.1464, y intercept 124.426, slope 0.857), and 00000 – neither relationship nor trend was found between temperature and M-SVL (n 22, R 2 0.001, P 0.8804, y intercept 68.330, slope 0.048). Poly00000 – nomial regressions also appeared to decrease M-TOL (Equation c: y ¼ 0: 142278 x2 þ 1: 91652 x þ 121: 877 R2 ¼ 0: 304&gt; 0: 127 ' regression coefficient for a given linear regression) with decreased temperature from 8 to –7 °C and then increase the size from –7 to –15 °C (U shaped curve), but they did not show any trend for M-SVL (Equation d: y ¼ 0: 00965508 x2 þ 0: 0919399 x þ 68: 1711 R2 ¼ 0: 003 0: 001) '

opennotspecifiedJun 2012View details →
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FIG. 8 in A New Species of Silverside of the Genus Odontesthes (Atheriniformes: Atherinopsidae) with Hypertrophic Lips from a High-Altitude Basin in Southern Brazil

FIG. 8. Distribution of Odontesthes crossognathos in the Pelotas River basin, Upper Uruguay River drainage, Rio Grande do Sul and Santa Catarina states, south Brazil. Star represents the type locality.

opennotspecifiedNov 2022View details →
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FIG. 9 in A New Species of Silverside of the Genus Odontesthes (Atheriniformes: Atherinopsidae) with Hypertrophic Lips from a High-Altitude Basin in Southern Brazil

FIG. 9. Haplotype network illustrating the genetic connectivity of COI haplotypes of Odontesthes crossognathos and congeners. Each circle represents a unique haplotype with circle sizes being proportional to their frequencies. Each color represents a different species of Odontesthes. Crossed markers in the branches that connect the haplotypes represent the number of mutations.

opennotspecifiedNov 2022View details →
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FIG. 7 in A New Species of Silverside of the Genus Odontesthes (Atheriniformes: Atherinopsidae) with Hypertrophic Lips from a High-Altitude Basin in Southern Brazil

FIG. 7. Histological section of the lip of Odontesthes crossognathos showing dermal papillae (black arrows) as fingerlike projections from dermis constituted by loose connective tissue (lct), and projected through epidermal layers of pavement cells and reaching stratified squamous epithelial tissue (sste). EP ¼ epidermis; DE ¼ dermis; (*) ¼ technique artifact. Scale bar ¼ 200 lm.

opennotspecifiedNov 2022View details →

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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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Last verified 2026-04-29Open record

OpenNeuro

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