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135 results for “avocado”

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SBC LTER: Land: Hydrology: Precipitation at Arroyo Hondo at East Avocado Orchard (HO201)

Precipitation was collected at Arroyo Hondo at East Avocado Orchard in the Santa Barbara coastal area (site ID: HO201). A Tipping Bucket rain gauge from either Qualimetrics (Model 6011B) or Sutron (Model 5600-0425-2) was used. Data are reported hourly, and times reflect the end of the each 1-hour interval.

openCC (other)Mar 2022View details →
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Figure 2 in Description of a new coccid (Hemiptera, Coccidae) on avocado (Persea americana Mill.) from Colombia, South America

Figure 2. Bombacoccus aguacatae Kondo, sp. n., adult female. anplt = anal plate; ant = antenna; ar = anal ring; dmic = dorsal microduct; dset = dorsal setae; edd = enlargement of dorsal derm; mset = marginal setae; pvp = perivulvar pore; pop = preopercular pore; sp = simple pore; spp = spiracular pore; stgsp = stigmatic spine; vmic = ventral microduct; vset = ventral setae.

opencc-by-4.0Mar 2010View details →
zenodo40/100

CRISP Fruit-Picking Teleoperated Dataset: Avocado

<p>Dataset of Teleoperated Demonstrations for fruit-picking tasks involving a teleoperated dexterous hand.</p> <p>&nbsp;</p> <p>Data involve the following modalities:</p> <p>- RGB</p> <p>- Tactile</p> <p>- Kinematic</p>

opencc-by-4.0Apr 2022View details →
zenodo40/100

Fig. 2 in Spatial modeling of red spider mite Oligonychus punicae (Acari: Tetranychidae) in avocado crop

Fig. 2. Density maps of Oligonychus punicae Hirst, in avocado crop, by sampling month in plots of Temascaltepec municipality (Mexico). Red to orange to yellow to white indicates a gradual transition from high density of O. punicae to an absence of the species.

opencc-by-4.0Dec 2023View details →
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Fig. 1 in Spatial modeling of red spider mite Oligonychus punicae (Acari: Tetranychidae) in avocado crop

Fig. 1. Density maps of Oligonychus punicae Hirst, in avocado crop, by sampling month in plots of Tenancingo municipality (Mexico). Red to orange to yellow to white indicates a gradual transition from high density of O. punicae to an absence of the species.

opencc-by-4.0Dec 2023View details →
zenodo40/100

Fig. 1 in First report of Heilus freyreissi (Coleoptera: Curculionidae) attacking avocado and associated with Colletotricum sp. in Brazil

Fig. 1. Adult Heilus freyreissi isolated (A, B) and aggregated under the bark of the trunk of an avocado (C). The white ellipse indicates the location of the aggregation of adult beetles.

opencc-by-4.0Jun 2018View details →
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Fig. 2 in First report of Heilus freyreissi (Coleoptera: Curculionidae) attacking avocado and associated with Colletotricum sp. in Brazil

Fig. 2. Injury caused by adults of Heilus freyreissi on branches (A, B), avocado central leaf vein (C), inflorescence (D), peduncle (E), and fruit (F).

opencc-by-4.0Jun 2018View details →
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Fig. 3 in Captures of Stenoma catenifer (Lepidoptera: Depressariidae) are influenced by pheromone trap density in Hass avocado orchards

Fig. 3. Mean cumulative number by treatment of Stenoma catenifer (IC95) caught in traps baited with synthetic sex pheromones at different trap densities in Hass avocado orchards, Colima, Mexico, during the experiment in 2018. Means with the same lowercase letter are not significantly different from each other according to Tukey's test (X0.05). 1T2h = 0.5 traps per ha; 1Th = 1 trap per ha; 2Th = 2 traps per ha; 3Th = 3 traps per ha.

opencc-by-4.0Dec 2022View details →
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Fig. 5 in Captures of Stenoma catenifer (Lepidoptera: Depressariidae) are influenced by pheromone trap density in Hass avocado orchards

Fig. 5. Relationship between total number of Stenoma catenifer caught in different treatments in 4 Hass avocado orchards in Colima, Mexico, 2018. 1T2h = 0.5 traps per ha; 1Th = 1 trap per ha; 2Th = 2 traps per ha; 3Th = 3 traps per ha.

opencc-by-4.0Dec 2022View details →
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Fig. 2 in Captures of Stenoma catenifer (Lepidoptera: Depressariidae) are influenced by pheromone trap density in Hass avocado orchards

Fig. 2. Number of Stenoma catenifer caught in synthetic sex pheromone traps placed at different densities (1 T2h, 1Th, 2Th, and 3Th: treatments, number of traps per area) and in different Hass avocado orchards (1–4 of the Y right axis) in the municipalities of Comala and Cuauhtémoc, Colima, Mexico, 2018. The columns correspond to treatments and the rows to experimental orchards. 1T2h = 0.5 traps per ha; 1Th = 1 trap per ha; 2Th = 2 traps per ha; 3Th = 3 traps per ha.

opencc-by-4.0Dec 2022View details →
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Fig. 4 in Captures of Stenoma catenifer (Lepidoptera: Depressariidae) are influenced by pheromone trap density in Hass avocado orchards

Fig. 4. Nonparametric bootstrap sampling distribution of the total numbers of Stenoma catenifer caught in experimental plots (CI95%) (1–4) in the linear model of the different orchards. The black dot on each line indicates the mean value of the total for each of the treatments. 1T2h = 0.5 traps per ha; 1Th = 1 trap per ha; 2Th = 2 traps per ha; 3Th = 3 traps per ha.

opencc-by-4.0Dec 2022View details →
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Fig. 1 in Actual and potential distribution of five regulated avocado pests across Mexico, using the maximum entropy algorithm

Fig. 1. Potential distribution of 5 insect pests of quarantine importance in Mexican avocados, based on ecological niche modeling. A) Conotrachelus aguacatae; B) Conotrachelus perseae; C) Copturus aguacatae; D) Heilipus lauri; and E) Stenoma catenifer. Current and potential distribution in Mexico was projected according to biogeographic provinces (Morrone 2005, 2014a), 1 = Baja California, 2 = California, 3 = Sonora, 4 = Sierra Madre Occidental, 5 = Mexican Plateau, 6 = Tamaulipeca, 7 = Mexican Pacific Coast, 8 = Trans-Mexican Volcanic Belt, 9 = Sierra Madre Oriental, 10 = Veracruzana, 11 = Balsas Basin, 12 = Sierra Madre del Sur, 13 = Chiapas, 14 = Yucatan. Scale values: 0 = absence, 1 = presence.

opencc-by-4.0Mar 2017View details →
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Fig. 2 in Actual and potential distribution of five regulated avocado pests across Mexico, using the maximum entropy algorithm

Fig. 2. Geographic areas in Mexico where both the insect pest and avocados are found. Shading indicates hectares affected. A) Conotrachelus aguacatae; B) Conotrachelus perseae; C) Copturus aguacatae; D) Heilipus lauri; and E) Stenoma catenifer.

opencc-by-4.0Mar 2017View details →
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Fig. 7 in Population genetics of Oligonychus perseae (Acari: Tetranychidae) collected from avocados in Mexico and California

Fig. 7. Local aerial dispersal behavior detected in field populations of Oligonychus perseae. A. Cultivar 'Hass' avocado tree foliage from a commercial orchard in California infested with O. perseae as indicated by characteristic necrotic spots on the leaf undersurface. B. Adult O. perseae being carried by wind currents land on hand and clothes during assessment of mite infestation. C. A group of O. perseae adults (individual mites within black dashed circles) begins to disperse on a fine silk strand from a cultivar 'Hass' avocado leaf. All photographs by JRL.

opencc-by-4.0Sep 2017View details →
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Fig. 5. Sequence variation among 4 28S in Population genetics of Oligonychus perseae (Acari: Tetranychidae) collected from avocados in Mexico and California

Fig. 5. Sequence variation among 4 28S genotypes identified from Oligonychus perseae populations in California, Mexico, and Costa Rica. Genotypes are named according to 3 genetic clusters identified from cytochrome oxidase subunit 1 (COI) haplotypes (see Fig. 2).

opencc-by-4.0Sep 2017View details →
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Fig. 6 in Population genetics of Oligonychus perseae (Acari: Tetranychidae) collected from avocados in Mexico and California

Fig. 6. Divergence in the 28S rRNA region among Oligonychus perseae specimens with deeply diverged mitochondrial haplotypes (see Fig. 2). Neighborjoining tree constructed in MEGA version 6.06. Tree is drawn to scale and branch lengths represent number of base differences per site (p-distance). Bootstrap (1,000 replicates) support shown for major branches.

opencc-by-4.0Sep 2017View details →
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Fig. 3. Sequence variation among 4 internal transcribed spacer 2 in Population genetics of Oligonychus perseae (Acari: Tetranychidae) collected from avocados in Mexico and California

Fig. 3. Sequence variation among 4 internal transcribed spacer 2 (ITS2) genotypes identified from Oligonychus perseae populations in California,Mexico, and Costa Rica. Genotypes are named according to 3 genetic clusters identified from cytochrome oxidase subunit 1 (COI) haplotypes (see Fig. 2).

opencc-by-4.0Sep 2017View details →
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Fig. 4 in Population genetics of Oligonychus perseae (Acari: Tetranychidae) collected from avocados in Mexico and California

Fig. 4. Divergence in the internal transcribed spacer 2 (ITS2) rRNA region among Oligonychus perseae specimens with deeply diverged mitochondrial haplotypes (see Fig. 2). Additional sequences from Ben-David et al. (2007), Guzmán-Valencia et al. (2014), and Perez-Sayas et al. (unpublished). Neighborjoining tree constructed in MEGA version 6.06. Tree is drawn to scale and branch lengths represent number of base differences per site (p-distance). Bootstrap (1,000 replicates) support shown for major branches.

opencc-by-4.0Sep 2017View details →
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Fig. 2. Genealogical relationships among 11 cytochrome oxidase subunit 1 in Population genetics of Oligonychus perseae (Acari: Tetranychidae) collected from avocados in Mexico and California

Fig. 2. Genealogical relationships among 11 cytochrome oxidase subunit 1 (COI) haplotypes detected in Oligonychus perseae populations in California, Mexico, and Costa Rica. Additional congeneric and outgroup sequences were retrieved from GenBank. Maximum likelihood tree constructed from a 305 base pair section of COI using PhyML. Support (aLRT) for major branches is shown.

opencc-by-4.0Sep 2017View details →
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Fig. 1 in Population genetics of Oligonychus perseae (Acari: Tetranychidae) collected from avocados in Mexico and California

Fig. 1. Map showing Oligonychus perseae collection sites (filled circles) from California (USA), Mexico, and Costa Rica (gray areas). See Table 1 for further site details.

opencc-by-4.0Sep 2017View details →

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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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OpenNeuro

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