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269 results for “IG”
Global Ionosphere Maps of vertical electron content combined in real-time from the RT-GIMs of CAS, CNES, UPC-IonSAT, and WHU International GNSS Service (IGS) centers (from Dec 1, 2020, to March 1, 2021)
<p>The datasets consists on 91 daily files, in IONEX format (<a href="http://ftp.aiub.unibe.ch/ionex/draft/ionex11.pdf">http://ftp.aiub.unibe.ch/ionex/draft/ionex11.pdf</a>) , corresponding to three months of global ionospheric maps (GIM) of vertical total electron content (VTEC) computed in real-time from the assessed and combined real-time GIMs generated by four analysis centers. Indeed, the Real-Time Working Group (RTWG) of International GNSS Service (IGS) is dedicated to providing high-quality data, high-accuracy products for Global Navigation Satellite System (GNSS) navigation, positioning, timing, and Earth observations. As one of the important part of real-time products, the IGS combined Real-Time Global Ionosphere Map (RT-GIM) have been generated by real-time weighting technique with the help of RT-GIMs from IGS real-time ionosphere centers including the Chinese Academy of Sciences (CAS), Centre National d’Etudes Spatiales (CNES), Universitat Politècnica de Catalunya (UPC), and Wuhan University (WHU). Compared with IGS rapid Global Ionosphere Maps (GIMs) (corg, ehrg, emrg, esrg, igrg, jprg, uhrg, uprg, uqrg, whrg) and IGS final combined GIM (igsg), the IGS combined RT-GIM (irtg) is equivalent to the post-processed GIMs and even better than some rapid GIMs. The IGS RT-GIMs are reliable sources of real-time global VTEC information and has great potential for real-time applications including range error correction for transionospheric radio signals (such as GNSS positioning, search and rescue, air traffic, radar altimetry, and radioastronomy), the monitoring of space weather (such as geomagnetic and ionospheric storms, ionospheric disturbance) and detection of natural hazards on a global scale (such as hurricanes/typhoons, ionospheric anomalies associated with earthquakes)</p>
Real-time ZTD and gradients from 20 IGS stations; year 2019
<p>This dataset contains multi-GNSS real-time products, i.e. ECEF coordinates, zenith total delay (ZTD), and horizontal gradients, together with their uncertainties estimated every 1 minute over the entire year 2019 for 20 IGS stations: ALGO, BIK0, CAS1, CHPG, CPVG, FAA1, JPLM, KERG, KZN2, LHAZZ, LMMF, NKLG, NNOR, PNGM, POVE, REYK, RGDG, ULAD, WROC, YEL2.</p> <p>Two subsets are available that correspond to two processing strategies, i.e. common and advanced. A detailed description, validation and comparison of both strategies can be found in: https://link.springer.com/article/10.1007/s10291-020-01014-w</p> <p>Data are stored in standard Matlab MAT files. Each file contains a single table array (Matlab format) with the complete set of estimated parameters for a single station. Table columns are labeled and self-explanatory. A comma-delimited text file can be obtained using in-build Matlab function "writetable.m".</p>
GNSS data IGS and SOAM, GAMIT
<p>GNSS data used to carry out the analysis of the submitted article DOI: <a href="https://doi.org/10.22541/essoar.168319853.39124142/v1">10.22541/essoar.168319853.39124142/v1</a>. POS files are in ITRF 2008 reference frame.</p>
An Ignoble Pursuit: Laughing and Thinking about Science Communication and the Ig Nobel Prize
<p><strong>Episode Summary:</strong></p> <p>In this episode we are discussing the relationship between science and being funny. Science communication relies on grabbing attention, making science relatable and exciting, and humanising scientists, we talked to Marc Abrahams founder and emcee of the Ig Nobel Prize and editor of Annals of Improbable Research about the role humour plays in this.</p> <p><strong>Resources and Links:</strong></p> <ul> <li><a href="https://improbable.com/about/people/MarcAbrahams.html">Marc Abrahams</a></li> <li><a href="https://www.improbable.com/ig-about/">Ig Nobel Prize</a></li> <li><a href="https://drive.google.com/file/d/19N4X5aNWEBLyjHl54EmlVm1w2SqPlKRK/view?usp=sharing">Public engagement factsheet</a></li> </ul> <p><strong>Episode Quotes:</strong></p> <p>‘If you spend five seconds really looking at it, there’s something funny about it, and that’s what makes it interesting, and once you're interested, if only for five seconds, now you’re paying attention’</p> <p>‘All of us were looking at each other and thinking: at any moment now some ‘grown up’ person is going to stop us’</p>
IG. 6. — A, Trunk vertebra of Alsophis sp. 2 from Pointe du Helleux archaeological site (Square 2 – crab layer) located on Grande-Terre Island; B, trunk vertebra of Erythrolamprus juliae cf. copeae (Parker, 1936) from Sainte-Rose La Ramée archaeological site (US 2058) located on Basse-Terre Island. Abbreviations: cd., condyle; ct., cotyle; di., diapophysis; h. k., hemal keel; m. c., medial constriction; n. a., neural arch; n. s., neural spine; p. c., precondylar constriction; p. d., paracotylar depression; p. n., postero-medial notch of the zygantrum; pa., parapophysis; pz. f., prezygapophyseal facet; pz. p., prezygapophyseal process; s. d., subcentral depression; s. r., subcentral ridge; s. t., sub-cotylar tubercle; zs., zygosphene. Scale bars: 4 mm in Fossil dipsadid snakes from the Guadeloupe Islands (French West-Indies) and their interactions with past human populations
IG. 6. — A, Trunk vertebra of Alsophis sp. 2 from Pointe du Helleux archaeological site (Square 2 – crab layer) located on Grande-Terre Island; B, trunk vertebra of Erythrolamprus juliae cf. copeae (Parker, 1936) from Sainte-Rose La Ramée archaeological site (US 2058) located on Basse-Terre Island. Abbreviations: cd., condyle; ct., cotyle; di., diapophysis; h. k., hemal keel; m. c., medial constriction; n. a., neural arch; n. s., neural spine; p. c., precondylar constriction; p. d., paracotylar depression; p. n., postero-medial notch of the zygantrum; pa., parapophysis; pz. f., prezygapophyseal facet; pz. p., prezygapophyseal process; s. d., subcentral depression; s. r., subcentral ridge; s. t., sub-cotylar tubercle; zs., zygosphene. Scale bars: 4 mm
F igs 1-4 in New Species of Australian Lestidae (Odonata)
F igs 1-4—Thoracic patterns of lestids: (1) Austrolestes psyche, lateral view; (2) Austrolestes minjerriba, lateral view; (3) Indolestes obiri, ♂, darkest specimen, slightly anterolateral view; (4) I. obiri, ♀, slightly anterolateral view. Scale 2 mm.
→ Fig. 9. Antiarchan fish Bothriolepis leptocheira jeremejevi (Rohon, 1900), Sosnogorsk locality, Sosnogorsk Formation, lowermost Famennian, anterior median dorsal (A–G) and posterior median dorsal (H–M) plates of the trunk armour. A. IG KSC 155/5 in dorsal (A1) and visceral (A2) views. B. IG KSC 155/108 in dorsal (B1) and visceral (B2) views. C. IG KSC 155/97 in dorsal view. D. IG KSC 155/113 in dorsal (D1) and visceral (D2) views. E. IG KSC 155/140 in dorsal (E1) and visceral (E2) views. F. Impression of the dorsal surface of IG KSC 155/42. G. IG KSC 155/44 in dorsal view. H. Fragment of IG KSC 155/7 in dorsal view. I. IG KSC 155/1 in dorsal (I1) and visceral (I2) views. J. IG KSC 155/71 in dorsal view. K. Slightly deformed IG KSC 155/70 in dorsal (K1) and visceral (K2) views. L. IG KSC 155/158 in dorsal view. M. IG KSC 155/157 in dorsal (M1) and visceral (M2) views. Abbreviations: ADL, anterior dorso-lateral plate; alr, postlevator thickening; AMD, anterior median dorsal plate; cf.ADL, cf.AMD, and cf.MxL, area overlapping ADL, AMD or MxL respectively; cr.tp, posterior transversal internal crest; dlg1 and dlg2, anterior and posterior oblique dorsal sensory line groove; dma, tergal angle; dmr, dorsal median ridge; f.retr, levator fossa; grm, ventral median groove; l, lateral corner; mvr, median ventral ridge; MxL, mixilateral plate; npn, postnuchal notch; oa.ADL, oa.MxL and oa.PMD, area overlapped by ADL, MxL or PMD respectively; pa, posterior corner; pma, posterior marginal area; PMD, posterior median dorsal plate; pr.p, posterior process of AMD; pr.pl, external postlevator process; prv2, posterior ventral process of dorsal wall of trunk armour; pt1 and pt2, anterior and posterior ventral pit; pua, posterior unornamented area of PMD; rf, "round fossula"; sna, supranuchal area; tb, ventral tuberosity. in A new assessment of the Late Devonian antiarchan fish Bothriolepis leptocheira from South Timan (Russia) and the biotic crisis near the Frasnian-Famennian boundary
→ Fig. 9. Antiarchan fish Bothriolepis leptocheira jeremejevi (Rohon, 1900), Sosnogorsk locality, Sosnogorsk Formation, lowermost Famennian, anterior median dorsal (A–G) and posterior median dorsal (H–M) plates of the trunk armour. A. IG KSC 155/5 in dorsal (A1) and visceral (A2) views. B. IG KSC 155/108 in dorsal (B1) and visceral (B2) views. C. IG KSC 155/97 in dorsal view. D. IG KSC 155/113 in dorsal (D1) and visceral (D2) views. E. IG KSC 155/140 in dorsal (E1) and visceral (E2) views. F. Impression of the dorsal surface of IG KSC 155/42. G. IG KSC 155/44 in dorsal view. H. Fragment of IG KSC 155/7 in dorsal view. I. IG KSC 155/1 in dorsal (I1) and visceral (I2) views. J. IG KSC 155/71 in dorsal view. K. Slightly deformed IG KSC 155/70 in dorsal (K1) and visceral (K2) views. L. IG KSC 155/158 in dorsal view. M. IG KSC 155/157 in dorsal (M1) and visceral (M2) views. Abbreviations: ADL, anterior dorso-lateral plate; alr, postlevator thickening; AMD, anterior median dorsal plate; cf.ADL, cf.AMD, and cf.MxL, area overlapping ADL, AMD or MxL respectively; cr.tp, posterior transversal internal crest; dlg1 and dlg2, anterior and posterior oblique dorsal sensory line groove; dma, tergal angle; dmr, dorsal median ridge; f.retr, levator fossa; grm, ventral median groove; l, lateral corner; mvr, median ventral ridge; MxL, mixilateral plate; npn, postnuchal notch; oa.ADL, oa.MxL and oa.PMD, area overlapped by ADL, MxL or PMD respectively; pa, posterior corner; pma, posterior marginal area; PMD, posterior median dorsal plate; pr.p, posterior process of AMD; pr.pl, external postlevator process; prv2, posterior ventral process of dorsal wall of trunk armour; pt1 and pt2, anterior and posterior ventral pit; pua, posterior unornamented area of PMD; rf, "round fossula"; sna, supranuchal area; tb, ventral tuberosity.
Fig. 3 in Peroral Echinococcus multilocularis egg inoculation in Myodes glareolus, Mesocricetus auratus and Mus musculus (CD-1 IGS and C57BL/6j)
Fig. 3. Number of metacestodes of varying sizes in individual species at 6 wpi (M. glareolus at 8 wpi) after receiving 100 viable E. multilocularis eggs. A <1 mm, B 1 - Ý2 mm, C> 2 - Ý3 mm, D> 3 - Ý4 mm, E 4 - Ý5 mm, F> 5 mm. Data from current study and (Woolsey et al., 2015a; Woolsey et al., 2015b).
Fig. 2 in Peroral Echinococcus multilocularis egg inoculation in Myodes glareolus, Mesocricetus auratus and Mus musculus (CD-1 IGS and C57BL/6j)
Fig. 2. Mean establishment of E. multilocularis oncospheres in the different rodent intermediate hosts after receiving 100 viable eggs at 6 wpi (M. glareolus at 8 wpi). Data from current study and (Woolsey et al., 2015a; Woolsey et al., 2015b).
Рис. 4. Варианты преΑсказанной Αоменной структуры Λектинов с иммуногΛобуΛиновыми Αоменами из гемоцитов моΛΛюсков Planorbarius corneus. Сокращения (зΑесь и ΑаΛее): IG — иммуногΛобуΛиновый Αомен, IgC2 — иммуногΛобуΛин C-2 типа, IG-like — иммуногΛобуΛинопоΑобный Αомен in Pathogen recognition molecules from hemocytes of Planorbarius corneus molluscs (Planorbidae, Pulmonata)
Рис. 4. Варианты преΑсказанной Αоменной структуры Λектинов с иммуногΛобуΛиновыми Αоменами из гемоцитов моΛΛюсков Planorbarius corneus. Сокращения (зΑесь и ΑаΛее): IG — иммуногΛобуΛиновый Αомен, IgC2 — иммуногΛобуΛин C-2 типа, IG-like — иммуногΛобуΛинопоΑобный Αомен
A Study to Evaluate the Safety, Pharmacokinetics (PK) and Pharmacodynamics (PD) for TAK-906 in Participants With Diabetes Mellitus and Gastroparesis (DG) or With Idiopathic Gastroparesis (IG)
ClinicalTrials.gov study NCT03268941. IPD Sharing: YES. Countries: 1. Publications: 1.
IGS TEC data grid, 10-16 June 2022
<p>This dataset provides the processed IGS TEC map data that were used in the study by Stephan et al. (2024, submitted).</p> <p>Data are an IDL save set, with the following gridded arrays:</p> <p>; IGSDATE FLOAT = griday[6, 576]<br>; IGSDOY FLOAT = griday[576] ; DOY 161 to 167, corresponding to June 10-16 2022<br>; IGSLAT FLOAT = griday[71]<br>; IGSLON FLOAT = griday[73]<br>; IGSTEC FLOAT = griday[73, 71, 576]<br>;</p> <p>Elements within IGSDATE array:<br>;print, igsdate(*,0)<br>; year month dom hour min sec <br>;2022.00 6.00000 11.0000 0.00000 0.00000 0.00000</p>
IG receptor germline set for species: Mouse subgroup: 129S1/SvImJ set_name: 129S1/SvlmJ IGLV
<p>IG Germline Reference set published on the Open Germline Receptor Database (OGRDB)</p>
IG receptor germline set for species: Mouse subgroup: BALB/c/ByJ set_name: BALB/c/ByJ IGLV
<p>Germline Reference set published on the Open Germline Receptor Database (OGRDB)</p>
IG receptor germline set for species: Mouse subgroup: A/J set_name: A/J IGLV
<p>Germline Reference set published on the Open Germline Receptor Database (OGRDB)</p>
IG receptor germline set for species: Mouse subgroup: 129S1/SvImJ set_name: 129S1/SvImJ IGKV
<p>IG Germline Reference set published on the Open Germline Receptor Database (OGRDB)</p>
IG receptor germline set for species: Mouse subgroup: C3H/HeJ set_name: C3H/HeJ IGKV
<p>Germline Reference set published on the Open Germline Receptor Database (OGRDB)</p>
IG receptor germline set for species: Mouse subgroup: BALB/c set_name: BALB/c IGH
<p>Germline Reference set published on the Open Germline Receptor Database (OGRDB)</p>
IG receptor germline set for species: Mouse subgroup: AKR/J set_name: AKR/J IGKV
<p>Germline Reference set published on the Open Germline Receptor Database (OGRDB)</p>
IG receptor germline set for species: Mouse subgroup: AKR/J set_name: AKR/J IGLV
<p>Germline Reference set published on the Open Germline Receptor Database (OGRDB)</p>
ScienceDex guides
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These curated guides explain access requirements, typical timelines, costs, and reuse considerations for widely used research datasets.
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.