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249 results for “MART”
Fig. 4 in Morphological And Physiological Characteristics Of Reproduction Of The Stone Marten, Martes Foina (Mammalia, Carnivora), In The Steppe Zone Of The South Of Ukraine
Fig. 4. The uterus of pregnant female, studied 31 December; in the right horn the highlighted location of blastula.
Eichhornia crassipes (Mart.) Solms (BR0000011728498)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Huperzia selago (L.) Bernh. ex Schrank & Mart. (BR0000010682395)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Huperzia selago (L.) Bernh. ex Schrank & Mart. (BR0000010733868)
Belgium Herbarium image of <a href="https://www.plantentuinmeise.be">Meise Botanic Garden</a>.
Figure 6 in Shading minimizes the effects of water deficit in Campomanesia xanthocarpa (Mart.) O. Berg seedlings
Figure 6. Superoxide dismutase (SOD) activity in leaves (a) and o roots (b, c, d) ofCampomanesia xanthocarpa seedlings as a function of shading (0, 30 and 70%), continuous irrigation (CI) and intermittent (II) conditions, and experimental period (start - T0, 1st and 2nd photosynthesis zero – P0, 1st and 2nd Recovery - REC and END). Uppercase letters compare the same shading and irrigation conditions in different experimental periods.Lowercase letters compare the same irrigation condition and period in different shading.The asterisk compares irrigation conditions in the same shading and period (a). Uppercase letters compare the same condition shading in the different period (d). Lowercase letters compare different irrigation conditions in the different periods (b) and same shading (c) and same period in the different shading (d). The means of shading were compared by the Tukey test, the experimental periods by the Scott Knott test, and the irrigation conditions by the Bonferroni T test. In all cases, 5% probability was used.
Figure 5 in Shading minimizes the effects of water deficit in Campomanesia xanthocarpa (Mart.) O. Berg seedlings
Figure 5. Peroxidase activity (POD) in leaves (a) and roots (b, c, d) of Campomanesia xanthocarpa seedlings as a function of shading (0, 30 and 70%), continuous irrigation (CI) and intermittent (II) conditions, and experimental period (Start - T0, 1st and 2nd Photosynthesis Zero – P0, 1st and 2nd Recovery - REC and END). Uppercase letters compare the same shading and irrigation conditions in different experimental periods. Lowercase letters compare the same irrigation condition and period in different shading. The asterisk compares irrigation conditions in the same shading and period (a). Upper case letters compare the same irrigation condition in different shading and the same shading in the different period (d). Lowercase letters compare different irrigation conditions in the different periods (b) and same shading (c) and same period in the different shading (d). The means of shading were compared by the Tukey test, the experimental periods by the Scott Knott test, and the irrigation conditions by the Bonferroni T test. In all cases, 5% probability was used.
Figure 1 in Herbivory and leaf expansion of Cyathea phalerata Mart. (Cyatheaceae) in subtropical Atlantic Forest, southern Brazil
Figure 1. Accumulated monthly rainfall (columns) and monthly mean temperature (line) during monitoring of leaf expansion and herbivory on Cyathea phalerata from October 2014 to September 2015.
Figure 1 in Shading minimizes the effects of water deficit in Campomanesia xanthocarpa (Mart.) O. Berg seedlings
Figure 1. Water potential (Ψw) of Campomanesia xanthocarpa seedlings as a function of continuous irrigation (CI) and intermittent (II) conditions, shading (0, 30, and 70%) (a) and experimental period (Start: T0, 1st and 2nd Photosynthesis Zero: P0, 1st and 2nd Recovery: REC and END); (b). Uppercase letters compare the same irrigation condition in different shading. Lowercase letters compare the same shading in different irrigation conditions and shading (Figure 1a).
Figure 2 in Herbivory and leaf expansion of Cyathea phalerata Mart. (Cyatheaceae) in subtropical Atlantic Forest, southern Brazil
Figure 2. Monitoring of herbivory on Cyathea phalerata from October 2014 to September 2015: monthly damaged leaves (A), cumulative leaf blade consumption (B), leaves in each consumption class (C), monthly leaf blade consumption (D). Bars: standard deviation.
Figure 7 in Shading minimizes the effects of water deficit in Campomanesia xanthocarpa (Mart.) O. Berg seedlings
Figure 7. Schematic representation of the effects of shading (0, 30, and 70%) on the reduction (%) of water potential (Ψw) in the1st and 2nd photosynthesis zero (P0) in relation to initial fluorescence (F0), basal quantum production of the non-photochemical processes of photosystem II (F0/Fm), potential quantum efficiency of photosystem II (Fv/Fm), maximum efficiency of the photochemical process in photosystem II (Fv/F0), and peroxidase (POD) and superoxide dismutase (SOD) activities in the leaves of Campomanesia xanthocarpa.
Figure 3 in Shading minimizes the effects of water deficit in Campomanesia xanthocarpa (Mart.) O. Berg seedlings
Figure 3. Maximum efficiency of the photochemical process in photosystem II – Fv/F0 (a, b) and basal quantum production of the non-photochemical processes of photosystem – F0/Fm (c) of Campomanesia xanthocarpa seedlings as a function of continuous irrigation (CI) and intermittent (II) conditions, shading (0, 30, and 70%) and experimental period (Start - T0, 1st and 2nd Photosynthesis Zero – P0, 1st and 2nd Recovery - REC and END). Uppercase letters compare the same irrigation condition in different shading (a) and different experimental periods (b). Lowercase letters compare different irrigation conditions in the same shading (a) and different experimental periods (b). Uppercase letters compare the same shading and irrigation conditions in different experimental periods. Lowercase letters compare the same irrigation condition and period in different shading. The asterisk compares irrigation conditions in the same shading and period (c). The means of shading were compared by the Tukey test, the experimental periods by the Scott Knott test, and the irrigation conditions by the Bonferroni T test. In all cases, 5% probability was used.
Figure 4 in Shading minimizes the effects of water deficit in Campomanesia xanthocarpa (Mart.) O. Berg seedlings
Figure 4. Dickson quality index (DQI) (a, b) and chlorophyll index (c) of Campomanesia xanthocarpa seedlings as a function of continuous irrigation (CI) and intermittent (II) conditions, shading (0, 30, and 70%) and experimental period (Start: T0, 1st and 2nd Photosynthesis Zero: P0, 1st and 2nd Recovery: REC and END). Uppercase letters compare the same irrigation condition in different shading. Lowercase letters compare different irrigation conditions in the same shading (a). The means of shading were compared with the Tukey test; experimental periods, Scott Knott test; and irrigation conditions, Bonferroni t-test. In all cases, 5% probability was used.
Dataset: America's Car-Mart, Inc. (CRMT) Stock Performance
This dataset provides historical stock market performance data for specific companies. It enables users to analyze and understand the past trends and fluctuations in stock prices over time. This information can be utilized for various purposes such as investment analysis, financial research, and market trend forecasting.
Fig. 3 in An Evaluation Of Stone Marten (Martes Foina) Records In The City Of Budapest, Hungary
Fig. 3. Density of stone marten records (n = 214) in Budapest districts (n = 23) between 1996 and 2008. The black coloured columns represent the districts with at least one or more registrations per km2
Fig. 4 in An Evaluation Of Stone Marten (Martes Foina) Records In The City Of Budapest, Hungary
Fig. 4. Average greenness (%) of those 25 ha patches (n = 225) that contained at least one marten record. Green (> 50%) districts are highlighted in black
Fig. 2 in An Evaluation Of Stone Marten (Martes Foina) Records In The City Of Budapest, Hungary
Fig. 2. The number of yearly topographical records of stone martens in Budapest (n = 303) during the 13 years of monitoring
Fig. 1 in An Evaluation Of Stone Marten (Martes Foina) Records In The City Of Budapest, Hungary
Fig. 1. Numbering and location of the 23 districts in Budapest. The grey patches represent the DESERT (≤ 50% green) and the striped patches represent the GREEN (≥ 50% green) type districts according to the records on the stone marten. There were no topographical data available for districts
Figs. 2 A-D in InfluênciA climáticA e sAZonAlidAde dA fenologiA reprodutivA de QUALEA PARvifloRA MArt. (VocHysiAceAe) em cerrAdão
Figs. 2 A-D. Histogramas circulares das intensidades reprodutivas mensais de Q. parviflora em fisionomia cerradão. A. Fruto imaturo de 2016-2017; B. Fruto imaturo de 2017-2018; C. Fruto maduro de 2016-2017; D. Fruto maduro de 2017-2018.
Figs. 1A-D in InfluênciA climáticA e sAZonAlidAde dA fenologiA reprodutivA de QUALEA PARvifloRA MArt. (VocHysiAceAe) em cerrAdão
Figs. 1A-D. Histogramas circulares das intensidades reprodutivas mensais de Q. parviflora em fisionomia cerradão. A. Botão floral de 2016-2017; B. Botão floral de 2017-2018; C. Antese de 2016-2017; D. Antese de 2017-2018.
Fig. 2 in Potencial alelopático de Stryphnodendron adstringens (Mart) Coville na germinação e crescimento inicial de picão-preto
Fig. 2. Espectro de infravermelho (IV) do extrato metanólico (EM) das folhas de Stryphnodendron adstringens (Mart) Coville.
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