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3,283 results for “males and females”
The Prediction of the Rate of the Dropout of the Primary Schools Students by Using the Genetic Algorithm-Figure 18. Drawing of the time series for males and females of primary stage students and its prediction)
<p>Note that the Tabulated value equals 3.841 while the Q value is less than Tabulated value, so it takes the Null Hypothesis which manifests that the emptiness of the evaluated model out of the contrast in accordance trouble. It's possible to notice that the two parameters functions (Autocorrelation and Partial correlation Functions) of the residues for male females primary stage, in which the residues value is located within confidence interval limits, which means the residues series is random and the evaluated model is good and convenient as it is presented.</p>
The Prediction of the Rate of the Dropout of the Primary Schools Students by Using the Genetic Algorithm-Figure 15. Drawing of autocorrelation function and partial correlation of the residues for males and females primary stage students
<p>After diagnosing and evaluating the models, the accommodating and the sufficiency of the models must be checked for males and females of primary stage students, through applying the compute (Ljung-Box Q) to check the model accommodation on the Function level 0.05 so the Q value occurs of males and females of primary stage students: Ljung-Box Q' = 1.10306, With p-value = P(Chi-square(1) > 1.10306) = 0.2936 Note that the Tabulated value equals 3.841 while the Q value is less than Tabulated value, so it takes the Null Hypothesis which manifests that the emptiness of the evaluated model out of the contrast in accordance trouble. It's possible to notice that the two parameters functions (Autocorrelation and Partial correlation Functions) of the residues for male females primary stage, in which the residues value is located within confidence interval limits, which means the residues series is random and the evaluated model is good and convenient as it is presented.</p>
The Prediction of the Rate of the Dropout of the Primary Schools Students by Using the Genetic Algorithm-Figure 11. Drawing the time series for males and females primary stage after the First difference
<p>We use the Unit Radix Dickey-Fuller Test to ensure the series’ stability. The results are: Dickey-Fuller Test Estimated Value = 0.369693, Statistic Test =1.01829, P-Value=0.9194 We notice from the values above P-Value = 0.9194 on the abstract level of 0.05 which leads to accepting the Null Hypothesis and refusing the Alternative Hypothesis (Existence of a Radix Unit) implies that the time series is instable. By taking the first difference, we notice that the stability of the time series has been achieved. See Figure 11.</p>
The Prediction of the Rate of the Dropout of the Primary Schools Students by Using the Genetic Algorithm-Figure 10. Drawing of autocorrelation function and partial correlation for Males and Females primary stage students
<p>The instability of the time series is recognized, and to be more accurate, we draw each (Autocorrelation Function) ACF, and (Partial Autocorrelation Function) PACF in a row to assure the stability according to the figure (10).</p>
The Prediction of the Rate of the Dropout of the Primary Schools Students by Using the Genetic Algorithm-Figure 9. Drawing the time series for males and females primary stage students
<p>The Unit Radix Dickey-Fuller Test is used to ensure the series’ stability. The results are: Dickey-Fuller Test Estimated Value = 0.736458 , Statistic Test = 0.380545 , P-Value = 0.794 We notice from the values above P-Value = 0.794on the abstract level of 0.05 which leads to refusing the Null Hypothesis and accepting the Alternative Hypothesis ( The Nonexistence of a Radix Unit) implies that the time series is stable. Figure (9) represents the time series of females and males in the primary stage students.</p>
Plate III: Figures 15-19. Lestes debellardi sp.n. (15) holotype male, pectoral color pattern, ventral view; (16) segment 10 with anal appendages, same specimen, left lateral view; (17) same, dorsal view; (18) penis of paratype, right lateral view; (19) same, ventral view. Figures 20-22. Epipleoneura lamina. (20) penis, right lateral view. (21) same, ventral view; (22) hind margin of pronotum of female taken in tandem, dorsal view. Figure 22a. Neoneura denticulata (?). hind margin of pronotum (female), dorsal view. Figures 23-24. Neoneura desana, female taken in tandem. (23) color pattern of head, dorsal view; (24) hind margin of pronotum, dorsal view in Dragonflies (Odonata) From The Sierras Of Tapirapeco And Unturan, In The Extreme South Of Venezuela
Plate III: Figures 15-19. Lestes debellardi sp.n. (15) holotype male, pectoral color pattern, ventral view; (16) segment 10 with anal appendages, same specimen, left lateral view; (17) same, dorsal view; (18) penis of paratype, right lateral view; (19) same, ventral view. Figures 20-22. Epipleoneura lamina. (20) penis, right lateral view. (21) same, ventral view; (22) hind margin of pronotum of female taken in tandem, dorsal view. Figure 22a. Neoneura denticulata (?). hind margin of pronotum (female), dorsal view. Figures 23-24. Neoneura desana, female taken in tandem. (23) color pattern of head, dorsal view; (24) hind margin of pronotum, dorsal view
Figures 7-12 in Couples in phoretic copulation, a tool for male-female association in highly dimorphic insects of the wasp genus Dissomphalus Ashmead (Hymenoptera: Bethylidae)
Figures 7-12. (7-9) Female of Dissomphalus firmus from Panama: (7) habitus in lateral view; (8) head in dorsal view; (9) mesosoma in dorsal view. (10-12) Female of Dissomphalus rettenmeyeri from Panama: (10) habitus in lateral view; (11) head in dorsal view; (12) mesosoma in dorsal view. Scale bars: 100 µm.
Figure 4 in The coffee leaf miner, Leucoptera coffeella (Lepidoptera: Lyonetiidae): identification of the larval instars and description of male and female genitalia
Figure 4 External morphological characteristics of coffee leaf minerLeucoptera coffeella larvae. (A) Dorsal view of the larva body of the first larval instar. Arrow indicates primary seta. (B) Chewing mouthpiece of the second larval instar. Arrow indicates spine. (C) Ventral view of the third larval instar. Arrows indicate prolegs without crochets. (D) Ventral view of the fourth larval instar.Arrows indicate prolegs with crochets. (E) Ventral view of crochets in the shape of uniordinal circle in a fourth instar larva.Arrow indicates crochet. (F) Cephalic capsule of the fourth larval instar. Arrow indicates ecdysial line.
Figure 6 in The coffee leaf miner, Leucoptera coffeella (Lepidoptera: Lyonetiidae): identification of the larval instars and description of male and female genitalia
Figure 6 Leucoptera coffeella last abdominal segments. (A) Male last abdominal segment in ventral view, with a white bipartite segment. (B) Female last abdominal segment in ventral view, with a white tubular shape.
Figure 2 in The coffee leaf miner, Leucoptera coffeella (Lepidoptera: Lyonetiidae): identification of the larval instars and description of male and female genitalia
Figure 2 Leucoptera coffeella life cycle phases. (A) Egg Stage. (B) Larval stage. (C) Pupa stage. (D) Adult.
Figure 7 in The coffee leaf miner, Leucoptera coffeella (Lepidoptera: Lyonetiidae): identification of the larval instars and description of male and female genitalia
Figure 7 Leucoptera coffeella, male genitalia. (A) Tergite 8, coremata, sternite 8 and ejaculatory bulb ventral view. (B) Valva ventral view. (C) Gnathos ventral view. (D) Aedeagus dorsal view. Arrow indicates apex of aedeagus. C = coremata, T8 = tergite 8, S8 = sternite 8, b.e. = bulbus ejaculatorius, v = valva, g = gnathos.
Figure 3 in The coffee leaf miner, Leucoptera coffeella (Lepidoptera: Lyonetiidae): identification of the larval instars and description of male and female genitalia
Figure 3 Immatures of Leucoptera coffeella. (A) First instar larva. (B) Cephalic capsule of the first larval instar. Arrow indicates chewing mouthpiece. (C) Larva of the second instar. Arrow indicates first body segment. (D) Cephalic capsule of the second larval instar. (E) Larva of the third instar. (F) Cephalic capsule of the third larval instar. (G) Larva of the fourth instar. (H) Cephalic capsule of the fourth larval instar.
Fig. 1. 1–9 in Male and female association in Trichomyia Haliday in Curtis, 1839 using a molecular approach (Diptera, Psychodidae, Trichomyiinae), and description of new species from Brazil
Fig. 1. 1–9 Trichomyia pseudoannae sp. nov.1. Scape, pedicel and flagellomeres 1 and 2; 2. Right wing; 3. Head, dorsal view; 4. Head, ventral view; 5. Palpus; 6. Male terminalia, lateral, arrow in projection in the gonocoxal apodeme; 7. Cerci, epandrium, hypoproct; 8. Male terminalia, ventral; 9. Aedeagus and parameres (agv, ventral arm of gonocoxite; agd, dorsal arm of gonocoxite; cer, cercus; aed, aedeagus; hyp, hypoproct; pm, paramere; php, post-hypandrial plate).
Fig. 2. 1–3 in Male and female association in Trichomyia Haliday in Curtis, 1839 using a molecular approach (Diptera, Psychodidae, Trichomyiinae), and description of new species from Brazil
Fig. 2. 1–3 Trichomyia pseudoannae sp. nov. 1. Female terminalia, ventral; 2. Median apodeme and spermathecae; 3. Female terminalia, dorsal (map, median apodeme; cer, cercus; spm, spermathecae; subp, subgenital plate).
Figure. Comparison of longest primary feather, tail length, and chest circumference in male and female common snipe (* = p <0.05; **= p <0.01). Table 3. Weight of gut variables in male and female common snipe. in Revision of common snipe, Gallinago gallinago in morphometric analysis and building the standard reference haematological values for further studies
Figure. Comparison of longest primary feather, tail length, and chest circumference in male and female common snipe (* = p <0.05; **= p <0.01). Table 3. Weight of gut variables in male and female common snipe.
Figures 41–42. Male genitalia and Figures 43–45. Female genitalia. 41. D in Notes on the subgenus Albocosta Fibiger & Lafontaine 1997, with descriptions of five new taxa from Asia (Lepidoptera, Noctuidae)
Figures 41–42. Male genitalia and Figures 43–45. Female genitalia. 41. D. (A.) antevolans sp. n., PT, Nepal, Annapurna, GYP 5347; 42. D. (A.) stentzi China, Sichuan, GYP 5230; 43. D. (A.) lasciva, Tajikistan, Hissar, GYP 5225; 44. D. (A.) lasciva pamirpsychra ssp. n., PT, Tajikistan, E Pamir GYP 5233; 45. D. (A.) lasciva pamirpsychra ssp. n., PT, Tajikistan, W Pamir GYP 5226.
Figure 11. Compsobuthus pallidus. Male, A. Dorsal aspect. B. ventral aspect. Female, C. Dorsal aspect. D in Scorpions of the State of Kuwait
Figure 11. Compsobuthus pallidus. Male, A. Dorsal aspect. B. ventral aspect. Female, C. Dorsal aspect. D. ventral aspect. Scale bar = 5 mm.
Рис. 1–6. Carabus (Ophiocarabus) spp., общий виÃ. 1–2 – C. ernsti ulastaiensis subsp. n., паратипы: 1 – самец, 2 – самка; 3–4 – C. ernsti ernsti Kabak, 2002: 3 – самец из ÃоΛины правого притока реки Сарык, 4 – самец с гор к запаÃу от реки Сарык; 5–6 – C. ernsti nilkiensis Kabak, 2014, паратипы: 5 – самец, 6 – самка. Figs 1–6. Carabus (Ophiocarabus) spp., general view. 1–2 – C. ernsti ulastaiensis subsp. n., paratypes: 1 – male, 2 – female; 3–4 – C. ernsti ernsti Kabak, 2002: 3 – male from the locality in right tributary of the Saryk River, 4 – male from the locality in mountains to the West of the Saryk River; 5–6 – C. ernsti nilkiensis Kabak, 2014, paratypes: 5 – male, 6 – female. in New data on the taxonomy of the genus Carabus Linnaeus, 1758 (Coleoptera: Carabidae) from the Ili River basin (China)
Рис. 1–6. Carabus (Ophiocarabus) spp., общий виÃ. 1–2 – C. ernsti ulastaiensis subsp. n., паратипы: 1 – самец, 2 – самка; 3–4 – C. ernsti ernsti Kabak, 2002: 3 – самец из ÃоΛины правого притока реки Сарык, 4 – самец с гор к запаÃу от реки Сарык; 5–6 – C. ernsti nilkiensis Kabak, 2014, паратипы: 5 – самец, 6 – самка. Figs 1–6. Carabus (Ophiocarabus) spp., general view. 1–2 – C. ernsti ulastaiensis subsp. n., paratypes: 1 – male, 2 – female; 3–4 – C. ernsti ernsti Kabak, 2002: 3 – male from the locality in right tributary of the Saryk River, 4 – male from the locality in mountains to the West of the Saryk River; 5–6 – C. ernsti nilkiensis Kabak, 2014, paratypes: 5 – male, 6 – female.
Рис. 2–5. Glaphyrus oxypterus, Αва поΑвиΑа. 2–4 – G. o. kasatkini Shokhin, subsp. n.; 5 – G. o. oxypterus (Pallas, 1771). 2–3 – внешний виΑ; 2, 4, 5 – самец; 3 – самка; 4–5 – вершина наΑкрыΛий. Figs 2–4. Glaphyrus oxypterus, two subspecies 2–4 – G. o. kasatkini Shokhin, subsp. n.; 5 – G. o. oxypterus (Pallas, 1771). 2–3 – habitus; 2, 4, 5 – male; 3 – female; 4–5 – apex of elytra. in The fauna of lamellicorn beetles (Coleoptera: Scarabaeoidea) of Azerbaijan
Рис. 2–5. Glaphyrus oxypterus, Αва поΑвиΑа. 2–4 – G. o. kasatkini Shokhin, subsp. n.; 5 – G. o. oxypterus (Pallas, 1771). 2–3 – внешний виΑ; 2, 4, 5 – самец; 3 – самка; 4–5 – вершина наΑкрыΛий. Figs 2–4. Glaphyrus oxypterus, two subspecies 2–4 – G. o. kasatkini Shokhin, subsp. n.; 5 – G. o. oxypterus (Pallas, 1771). 2–3 – habitus; 2, 4, 5 – male; 3 – female; 4–5 – apex of elytra.
Рис. 2–4. ВиΑы роΑа Dorcadion. 2–3 – D. natali sp. n.: 2 – cамец, гоΛотип, 3 – самка, паратип; 4 – D. urdzharicum, самец. Figs 1–4. Species of the genus Dorcadion. 2–3 – D. natali sp. n.: 2 – male, holotype, 3 – female, paratype; 4 – D. urdzharicum, male. in A new species of Dorcadion Dalman, 1817 (Coleoptera: Cerambycidae) from East Kazakhstan
Рис. 2–4. ВиΑы роΑа Dorcadion. 2–3 – D. natali sp. n.: 2 – cамец, гоΛотип, 3 – самка, паратип; 4 – D. urdzharicum, самец. Figs 1–4. Species of the genus Dorcadion. 2–3 – D. natali sp. n.: 2 – male, holotype, 3 – female, paratype; 4 – D. urdzharicum, male.
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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.