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25 results for “Postulation”

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zenodo40/100

Fig. 2 in Signs of Bacillus thuringiensis (Bacillales: Bacillaceae) infection in Myzus persicae (Hemiptera: Aphididae): Koch's postulates

Fig. 2. Infection signs in Myzus persicae caused by 4 strains of Bacillus thuringiensis. (A) Diet without B. thuringiensis strain, (B) strain GP300, (C) strain GP528, (D) strain GP402, and (E) strain GP777; (a) 24 h, (b) 48 h, (c) 60 h, and (d) 80 h. (For description, see the text.)

opencc-by-4.0Jun 2015View details →
zenodo40/100

Fig. 1 in Signs of Bacillus thuringiensis (Bacillales: Bacillaceae) infection in Myzus persicae (Hemiptera: Aphididae): Koch's postulates

Fig. 1. Analysis of the protein profiles of the original strains and those isolated from dead aphids (10% SDS-PAGE). The first lane for a pair of numbers corresponds to the original strain, and the second lane to the strain isolated from dead aphids; (Lanes 1 and 2) GP209, (Lanes 3 and 4) GP528, (Lanes 5 and 6) GP780, (Lanes 7 and 8) GP139, (Lane 9) Cry1Ac, (Lanes 10 and 11) GP782, (Lanes 12 and 13) GP300, (Lanes 14 and 15) GP777, and (Lanes 16 and 17) GP402.

opencc-by-4.0Jun 2015View details →
zenodo40/100

Structures and Properties of Known and Postulated Interstellar Cations

<p>Positive ions play a fundamental role in interstellar chemistry, especially in cold environments where chemistry is believed to be mainly ion driven. We have carried out new accurate quantum chemical calculations to identify the structures and energies of 262 cations with up to 14 atoms that are postulated to have a role in interstellar chemistry. Optimized structures and rotational constants were obtained at the M06-2X/cc-pVTZ level, while electric dipoles and total electronic energies were computed with CCSD(T)/aug-cc-pVTZ//M06-2X/cc-pVTZ single-point energy calculations.</p>

opencc-by-4.0Sep 2021View details →
zenodo36/100

Zero-Postulation or Null-Postulation and Abstraction

<p><strong>The best bet is to find out the most fundamental components within the system</strong> and building a theory round these. In other words, a theory that is able to describe the world in totality has <strong>to keep the number of basic postulates it depends upon to zero </strong>or near zero.</p> <p><em><strong>Zero Postulation</strong></em> gives rise to abstraction. The abstraction we are talking about here may be defined as, <em><strong>&ldquo;Postulation of non-postulation&rdquo; or, in other words, &ldquo;A system of postulation that gives equal weights to all possible solutions inside the system and favors none of such solutions over others.&rdquo;</strong></em></p>

opencc-by-4.0Dec 2013View details →
zenodo36/100

Dataset for article titled "Assessing continuum plasticity postulates with grain stress and local strain measurements in triaxially compressed sand"

<p>Dataset containing raw and processed data from experiments presented in the article titled &quot;Assessing continuum plasticity postulates with grain-scale stress and strain measurements in triaxially-compressed sand&quot;. An enclosed PDF file describes the data.</p>

opencc-by-4.0Jan 2023View details →
zenodo32/100

bertrand_postulate_results

Open the record for dataset details and reuse information.

opencc-by-4.0Jul 2024View details →
zenodo32/100

Figure 37. Character 75 and its postulated states. A2–A6 in Morphology-based phylogenetic analysis and classification of the family Rhinocryptidae (Aves: Passeriformes)

Figure 37. Character 75 and its postulated states. A2–A6 elements, ventral surface, cartilaginous protuberance: A, absent – 75.0; B, present – 75.1. Stippled areas are cartilaginous tissue, non-stippled areas are calcified structures. A1/B1 elements are indicated. Syringes of (A) Myornis senilis (QCAZ 3724) and (B) Merulaxis ater (MCP 2001) in lateral view. Scale bars = 2 mm.

opennotspecifiedSep 2012View details →
zenodo32/100

Figure 29. Characters 55 and 56 and their postulated states. Char. 55 in Morphology-based phylogenetic analysis and classification of the family Rhinocryptidae (Aves: Passeriformes)

Figure 29. Characters 55 and 56 and their postulated states. Char. 55. Hypotarsus, posterolateral tendinal canal, configuration: A, closed – 55.0; B, open – 55.1. Char. 56. Hypotarsus, posteromedial tendinal canal, configuration: B, closed – 56.0; A, open – 56.1. Proximal end of right tarsometatarsus of (A) Eugralla paradoxa (MCP 2398) and left tarsometatarsus of (B) Pteroptochos tarnii (MCP 2397). Not to scale.

opennotspecifiedSep 2012View details →
zenodo32/100

Figure 20. Characters 37 and 38 and their postulated states. Char. 37 in Morphology-based phylogenetic analysis and classification of the family Rhinocryptidae (Aves: Passeriformes)

Figure 20. Characters 37 and 38 and their postulated states. Char. 37. Mandible, lateral margin, caudal end in dorsal view, configuration: A, relatively plain, with no protuberance – 37.0; B, with a small protuberance – 37.1; C, with a well-developed protuberance – 37.2. Char. 38. Mandible, medial process, foramen: A, present – 38.0; B, C, absent – 38.1. Caudal end of the mandible of (A) Melanopareia torquata (MCP 2271), (B) Liosceles thoracicus (MPEG O-3953), and (C) Teledromas fuscus (MCP 2396) in dorsal view. Not to scale.

opennotspecifiedSep 2012View details →
zenodo32/100

Figure 9. Characters 22 and 23 and their postulated states. Char. 22 in Morphology-based phylogenetic analysis and classification of the family Rhinocryptidae (Aves: Passeriformes)

Figure 9. Characters 22 and 23 and their postulated states. Char. 22. Ectethmoid, rostral surface, lateral portion, projection: A, absent – 22.0; B, present – 22.1. Char. 23. Ectethmoid, rostral surface, medial portion, projection: A, absent – 23.0; B, present – 23.1. Skulls of (A) Liosceles thoracicus (MPEG O-3953) and (B) Pteroptochos tarnii (MCP 2397) in ventral view. Not to scale.

opennotspecifiedSep 2012View details →
zenodo32/100

Figure 1. Characters 1 and 2 and their postulated states. Char. 1 in Morphology-based phylogenetic analysis and classification of the family Rhinocryptidae (Aves: Passeriformes)

Figure 1. Characters 1 and 2 and their postulated states. Char. 1. Premaxilla, rostrum, length relative to the maxilla: B, longer – 1.0; A, C, D, shorter – 1.1. Lr is the length of the rostrum and pr is its caudal projection over the maxilla; an arrow marks the caudal margin of the maxillary process of the nasal (see text). Char. 2. Premaxilla, nasal process, form: A, not arched – 2.0; B, smoothly arched – 2.1; C, strongly arched – 2.2; D, developed into a high crest – 2.3. Rostrum of (A) Rhinocrypta lanceolata (MCP 2395), (B) Liosceles thoracicus (MPEG O-3953), (C) Eugralla paradoxa (MCP 2398) and (D) Acropternis orthonyx (QCAZ 3723) in lateral view. Not to scale.

opennotspecifiedSep 2012View details →
dryad32/100

Data from: Population genetics of Manihot esculenta ssp. flabellifolia gives insight into past distribution of xeric vegetation in a postulated forest refugium area in northern Amazonia

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publicFeb 2010View details →
dryad32/100

Data from: The ancient tropical rainforest tree Symphonia globulifera L. f. (Clusiaceae) was not restricted to postulated Pleistocene refugia in Atlantic Equatorial Africa

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publicFeb 2013View details →
zenodo28/100

Fig. 24. Postulated biogenetic pathway for insuetolides A–C in Recent studies on terpenoids in Aspergillus fungi: Chemical diversity, biosynthesis, and bioactivity

Fig. 24. Postulated biogenetic pathway for insuetolides A–C (260–262).

opennotspecifiedJan 2022View details →
zenodo28/100

Fig. 21. Postulated biogenetic pathway for aspertetranones A-D in Recent studies on terpenoids in Aspergillus fungi: Chemical diversity, biosynthesis, and bioactivity

Fig. 21. Postulated biogenetic pathway for aspertetranones A-D (230–233).

opennotspecifiedJan 2022View details →
zenodo28/100

Fig. 20. Postulated biogenetic pathway for yaminterritrems A in Recent studies on terpenoids in Aspergillus fungi: Chemical diversity, biosynthesis, and bioactivity

Fig. 20. Postulated biogenetic pathway for yaminterritrems A (228) and B (229).

opennotspecifiedJan 2022View details →
zenodo28/100

Fig. 16. Postulated biogenetic pathway for asperterpenoid A in Recent studies on terpenoids in Aspergillus fungi: Chemical diversity, biosynthesis, and bioactivity

Fig. 16. Postulated biogenetic pathway for asperterpenoid A (208).

opennotspecifiedJan 2022View details →
zenodo28/100

Fig. 17. Postulated biogenetic pathway for aspterpenacids A in Recent studies on terpenoids in Aspergillus fungi: Chemical diversity, biosynthesis, and bioactivity

Fig. 17. Postulated biogenetic pathway for aspterpenacids A (212) and B (213).

opennotspecifiedJan 2022View details →
zenodo28/100

Fig. 10. Postulated biogenetic pathway for aspergiloid I in Recent studies on terpenoids in Aspergillus fungi: Chemical diversity, biosynthesis, and bioactivity

Fig. 10. Postulated biogenetic pathway for aspergiloid I (121).

opennotspecifiedJan 2022View details →
zenodo28/100

Fig. 5. Structures and postulated biogenetic pathway for ochracenes A I in Recent studies on terpenoids in Aspergillus fungi: Chemical diversity, biosynthesis, and bioactivity

Fig. 5. Structures and postulated biogenetic pathway for ochracenes A I (92–100).

opennotspecifiedJan 2022View details →

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