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Figs 10-13 in Afrotropical Asilidae (Diptera) 1. The genus Choerades Walker, 1851 and the descriptions of two new genera, Nannolaphria and Notiolaphria, from southern Africa and Malagasy Repuhlic
Figs 10-13. Notiolaphria macra (Bigot) gen. n. Small o. 10. Right wing. 11. Lateral aspect of head. 12-13. Genital bulb. 12. Lateral aspect. 13. Dorsal aspect. (Note: Genital bulb, normally rotated through 180 0 is drawn as if unrotated.)
Figs 6-9 in Afrotropical Asilidae (Diptera) 1. The genus Choerades Walker, 1851 and the descriptions of two new genera, Nannolaphria and Notiolaphria, from southern Africa and Malagasy Repuhlic
Figs 6-9 Nannolaphria niger gen. et sp. n. (N.M. T2100) Holotype 3. 6. Right wing. 7. Lateral aspect of head. 8-9 Genital bulb. 8. Lateral aspect. 9. Dorsal aspect.
FIG. 2 in Two new species and a new combination in the genus Pauridiantha Hook.f. (Rubiaceae) from tropical Africa
FIG. 2. — Distribution map of Pauridiantha chlorantha (K.Schum.) Ntore & O.Lachenaud, comb. nov.
FIG. 1 in Two new species and a new combination in the genus Pauridiantha Hook.f. (Rubiaceae) from tropical Africa
FIG. 1. — Seeds of Pauridiantha chlorantha (K.Schum.) Ntore & O.Lachenaud, comb. nov., from Jannerup & Mhoro 129 (A, B) and P. gracilipes O.Lachenaud & Ntore, sp. nov., from Lachenaud et al. 1981 (C, D) in electron microscopy: A, C, entire seed; B, detail of exotesta cells with outer tangential wall removed, showing thickened radial walls with small pits, and large pits in the inner tangential walls; D, detail of exotesta cells with outer tangential wall removed, showing thin radial walls with small pits, and large pits in the inner tangential walls. Scale bars: A, C, 100 µm; B, D, 10 µm.
Estimations of Sensor Misorientation for Broadband Seismic Stations in and around Africa
<p>To ensure the accuracy of future rotation-based seismological studies using data recorded by broadband seismic stations in Africa and environs, we investigate the sensor orientation of 1075 stations belonging to 41 seismic networks deployed in and around the African continent in the past three decades. We applied three independent waveform-based orientation estimation methods that involve the measurement of P-wave particle motion based on the principal component analysis, minimizing the P-wave energy on the transverse component of motion, and measuring intermediate-period Rayleigh-wave arrival angles from teleseismic earthquakes. This dataset is the compilation of the entire result of this study.</p>
Table S1 for "Lowermost mantle anisotropy beneath Africa from differential SKS-SKKS shear-wave splitting"
<p>SKS-SKKS measurements per station and per event. We provide details in the following order: station, network, station latitude, station longitude, event date, event time, event latitude, event longitude, event depth, event magnitude, distance, backazimuth, misalignment correction value, phi, dt, min. phi error, max. phi error, min. dt error, max. dt error, splitting intensity, min. splitting intensity error, max. splitting intensity error, category (SplitRacer), individual category, category for pair. Values for field ‘category(SplitRacer)’ are based on SplitRacer’s quality criteria: good, average, null-measurement, with our addition of the category ‘fair null-measurement’ for nulls which are slightly noisy. In general, these categories are selected by the user on the basis of the noise level of the traces, the amount of energy reduction, splitting intensity value (and errors), visual comparison of the time derivative radial component to the transverse component, scatter in the histogram over the used time windows and the size of 95% confidence level The selection of final usable events was then based on the width of the 95% confidence level. The field ‘Individual category’ has the following values: 0=null-measurement; 1=very good (phi error < 30°; dt error 0.75 s); 2= good (phi error >30°; < 60°, dt error > 0.75 s; <1.55 s), 3= fair (error bars larger than category 2 but clear splitting and the other phase of the same event is a category 1). Categories for pairs are: 0 = both phases are null-measurements; 1= both phases have an individual category of 1, individual categories of 1 & 2, or one phase is null while the other is an individual category 1; 2= both phases have an individual category of 2 or one phase is null while the other is an individual category 2 measurement or one phase is an individual category 1 measurement while the other is an individual category 3 measurement (the latter only applies to 30 pairs in total).</p>
Approximate map of Sulemaana Kantè's post-1941 travels and history of residence in West Africa
<p>Approximate map of Kantè’s post-1941 travels and history of residence in West Africa. Originally appeared in the following:</p> <p>Donaldson, Coleman. 2017. “Clear Language: Script, Register and the N’ko Movement of Manding-Speaking West Africa.” Doctoral Dissertation, Philadelphia, PA: University of Pennsylvania. Philadelphia, PA. <a href="https://repository.upenn.edu/dissertations/AAI10681364/">https://repository.upenn.edu/dissertations/AAI10681364/</a>.</p> <p>Created with data from the following sources:</p> <p>Amselle, Jean-Loup. 2003. “Peut-on être musulman sans être arabe? : A propos du N’ko malinké d’Afrique de l’Ouest.” In <em>Islam et villes en Afrique au sud du Sahara: entre soufisme et fondamentalisme</em>, edited by Adriana Piga and Costanza Ventura, 257–69. Paris: Karthala.</p> <p>Kántɛ, Sùlemáana. 1968. <em>Ɲìninkalibá’ 5 n’à jáabi’</em> ߢߌ߬ߣߌ߲߬ߞߊ߬ߟߌ߬ߓߊ ߅ ߣߴߊ߬ ߖߊ߯ߓߌ [Five Big Questions and Their Answer]. Edited by Bàbá Màmádi Jàanɛ.</p> <p>Oyler, Dianne White. 2005. <em>The History of the N’ko Alphabet and Its Role in Mandé Transnational Identity: Words as Weapons</em>. Cherry Hill, NJ: Africana Homestead Legacy Publishers.</p> <p>Sangaré, Mahmoud. 2011. <em>Jón yé Sòlomána Kántɛ́ dí?</em> ߖߐ߲߫ ߧߋ߫ ߛߟߏ߬ߡߣߊ߫ ߞߊ߲ߕߍ߫ ߘߌ߫؟ [Who Is Sulemaana Kantè?]. Bamako, Mali.</p> <p>--</p> <p>Blog: <a href="https://ajami.hypotheses.org/">https://ajami.hypotheses.org/</a><br> Project: <a href="https://www.manuscript-cultures.uni-hamburg.de/ajami/index_e.html">https://www.manuscript-cultures.uni-hamburg.de/ajami/index_e.html</a></p>
Fig. 3 in A new species of Quadrivisio (Amphipoda, Maeridae) from coastal tropical lagoons (Benin, West Africa)
Fig. 3. Quadrivisio laleyei sp. nov. A., C. Holotype, ♂, 7.5 mm, MNHN IU-2017-209, gnathopod. B., D. Paratype, ♀, 7.0 mm, MNHN IU-2017-211, gnathopod.
Fig. 2 in A new species of Quadrivisio (Amphipoda, Maeridae) from coastal tropical lagoons (Benin, West Africa)
Fig. 2. Quadrivisio laleyei sp. nov., ♂, holotype, 7.5 mm, MNHN IU-2017-209. A. Habitus (scale 1). B. Lower lip (scale 3). C. First antenna (scale 2). D. Second antenna (scale 2). E. Left mandible (scale 4). F. Maxilliped palp (scale 3).
Fig. 5 in A new species of Quadrivisio (Amphipoda, Maeridae) from coastal tropical lagoons (Benin, West Africa)
Fig. 5. Quadrivisio laleyi sp. nov. A–D., F. Holotype, ♂, 7.5 mm, MNHN IU-2017-209. E. Paratype, ♀, 7.0 mm, MNHN IU-2017-211. A. Male uropod 1 (scale 1). B. Male uropod 2 (scale 1). C. Male urosome (scale 1). D. Male uropod 3 (scale 1). E. Female uropod 3 (scale 1). F. Male telson (scale 2).
Fig. 4 in A new species of Quadrivisio (Amphipoda, Maeridae) from coastal tropical lagoons (Benin, West Africa)
Fig. 4. Quadrivisio laleyi sp. nov. A–B., D–E. Holotype, ♂, 7.5 mm, MNHN IU-2017-209. C. Paratype, ♂, 7.6 mm, MNHN IU-2017-210. A. Pereopod 3. B. Pereopod 4. C. Pereopod 5. D. Pereopod 6. E. Pereopod 7.
Fig. 613 in Review of Aphidiinae parasitoids (Hymenoptera: Braconidae) of the Middle East and North Africa: key to species and host associations
Fig. 613. Map of the Middle East and North Africa. A country is highlighted with green color indicates that there are available data on aphidiine parasitoids. A country highlighted with red color, indicates that there are no available data on aphidiine parasitoids
Figs 546–562 in Review of Aphidiinae parasitoids (Hymenoptera: Braconidae) of the Middle East and North Africa: key to species and host associations
Figs 546–562. Lateral aspect of ♀ genitalia: 546. Areopraon lepelleyi. 547. Betuloxys hortorum. 548. Binodoxys acalephae. 549. Binodoxys angelicae. 550. Binodoxys brevicornis. 551. Binodoxys centaureae. 552. Binodoxys heraclei. 553. Diaeretiella rapae. 554. Diaeretus leucopterus. 555. Ephedrus cerasicola. 556. Ephedrus chaitophori. 557. Ephedrus helleni. 558. Ephedrus lacertosus. 559. Ephedrus nacheri. 560. Ephedrus niger. 561. Ephedrus persicae. 562. Ephedrus plagiator.
Figs 581–598 in Review of Aphidiinae parasitoids (Hymenoptera: Braconidae) of the Middle East and North Africa: key to species and host associations
Figs 581–598. Lateral aspect of ♀ genitalia: 581. Pauesia silana. 582. Pauesia unilachni. 583. Praon abjectum. 584. Praon absinthii. 585. Praon athenaeum. 586. Praon barbatum. 587. Praon bicolor. 588. Praon exsoletum. 589. Praon flavinode. 590. Praon gallicum. 591. Praon longicorne. 592. Praon necans. 593. Praon nonveilleri. 594. Praon orpheusi. 595. Praon pubescens. 596. Praon rosaecola. 597. Praon unitum. 598. Praon uroleucon.
Figs 488–499 in Review of Aphidiinae parasitoids (Hymenoptera: Braconidae) of the Middle East and North Africa: key to species and host associations
Figs 488–499. Anterolateral aspect of petiole in Aphidius species (♀): 488. Aphidius platensis. 489. Aphidius popovi. 490. Aphidius rhopalosiphi. 491. Aphidius rosae. 492. Aphidius salicis. 493. Aphidius setiger. 494. Aphidius smithi. 495. Aphidius stigmaticus. 496. Aphidius transcaspicus. 497. Aphidius uroleuci. 498. Aphidius urticae. 499. Aphidius uzbekistanicus.
Figs 510–527 in Review of Aphidiinae parasitoids (Hymenoptera: Braconidae) of the Middle East and North Africa: key to species and host associations
Figs 510–527. Lateral aspect of ♀ genitalia: 510. Aclitus obscuripennis. 511. Adialytus ambiguus. 512. Adialytus salicaphis. 513. Adialytus thelaxis. 514. Adialytus veronicaecola. 515. Aphidius absinthii. 516. Aphidius arvensis. 517. Aphidius asteris. 518. Aphidius avenae. 519. Aphidius banksae. 520. Aphidius cingulatus. 521. Aphidius colemani. 522. Aphidius eadyi. 523. Aphidius eglanteriae. 524. Aphidius ervi. 525. Aphidius funebris. 526. Aphidius hieraciorum. 527. Aphidius iranicus.
Figs 476–487 in Review of Aphidiinae parasitoids (Hymenoptera: Braconidae) of the Middle East and North Africa: key to species and host associations
Figs 476–487. Anterolateral aspect of petiole in Aphidius species (♀): 476. Aphidius absinthii. 477. Aphidius asteris. 478. Aphidius avenae. 479. Aphidius banksae. 480. Aphidius cingulatus. 481. Aphidius colemani. 482. Aphidius eadyi. 483. Aphidius ervi. 484. Aphidius funebris. 485. Aphidius matricariae. 486. Aphidius microlophii. 487. Aphidius persicus.
Figs 528–545 in Review of Aphidiinae parasitoids (Hymenoptera: Braconidae) of the Middle East and North Africa: key to species and host associations
Figs 528–545. Lateral aspect of ♀ genitalia: 528. Aphidius matricariae. 529. Aphidius microlophii. 530. Aphidius myzocallidis. 531. Aphidius persicus. 532. Aphidius platensis. 533. Aphidius popovi. 534. Aphidius rhopalosiphi. 535. Aphidius ribis. 536. Aphidius rosae. 537. Aphidius salicis. 538. Aphidius setiger. 539. Aphidius smithi. 540. Aphidius sonchi. 541. Aphidius stigmaticus. 542. Aphidius transcaspicus. 543. Aphidius uroleuci. 544. Aphidius urticae. 545. Aphidius uzbekistanicus.
Figs 450–475 in Review of Aphidiinae parasitoids (Hymenoptera: Braconidae) of the Middle East and North Africa: key to species and host associations
Figs 450–475. Dorsal aspect of petiole (♀): 450. Praon bicolor. 451. Praon exsoletum. 452. Praon flavinode. 453. Praon gallicum. 454. Praon longicorne. 455. Praon necans. 456. Praon nonveilleri. 457. Praon orpheusi. 458. Praon pubescens. 459. Praon rosaecola. 460. Praon unitum. 461. Praon uroleucon. 462. Praon volucre. 463. Praon yomenae. 464. Toxares deltiger. 465. Trioxys asiaticus. 466. Trioxys cirsii. 467. Trioxys complanatus. 468. Trioxys curvicaudus. 469. Trioxys metacarpalis. 470. Trioxys moshei. 471. Trioxys pallidus. 472. Trioxys pannonicus. 473. Trioxys pappi. 474. Trioxys quercicola. 475. Trioxys tanaceticola.
Figs 500–509 in Review of Aphidiinae parasitoids (Hymenoptera: Braconidae) of the Middle East and North Africa: key to species and host associations
Figs 500–509. Lateral aspect of hind femur in Adialytus and Lysiphlebus species (♀): 500. Adialytus ambiguus. 501. Adialytus salicaphis. 502. Adialytus thelaxis. 503. Adialytus veronicaecola. 504. Lysiphlebus cardui. 505. Lysiphlebus confusus. 506. Lysiphlebus desertorum. 507. Lysiphlebus fabarum. 508. Lysiphlebus fritzmuelleri. 509. Lysiphlebus testaceipes.
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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.