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handle: 11390/883533 , 11381/2335668
AbstractThe paper investigates a novel approach, based on Constraint Logic Programming (CLP), to predict the 3D conformation of a protein via fragments assembly. The fragments are extracted by a preprocessor—also developed for this work—from a database of known protein structures that clusters and classifies the fragments according to similarity and frequency. The problem of assembling fragments into a complete conformation is mapped to a constraint solving problem and solved using CLP. The constraint-based model uses a medium discretization degree Cα-side chain centroid protein model that offers efficiency and a good approximation for space filling. The approach and adapts existing energy models to the protein representation used and applies a large neighboring search strategy. The results shows the feasibility and efficiency of the method. The declarative nature of the solution allows to include future extensions, e.g., different size fragments for better accuracy.
FOS: Computer and information sciences, 570, Computer Science - Programming Languages, Computer Science - Artificial Intelligence, Quantitative Biology - Quantitative Methods, 004, Computational Engineering, Finance, and Science (cs.CE), Artificial Intelligence (cs.AI), FOS: Biological sciences, Computer Science - Computational Engineering, Finance, and Science, Quantitative Methods (q-bio.QM), Programming Languages (cs.PL)
FOS: Computer and information sciences, 570, Computer Science - Programming Languages, Computer Science - Artificial Intelligence, Quantitative Biology - Quantitative Methods, 004, Computational Engineering, Finance, and Science (cs.CE), Artificial Intelligence (cs.AI), FOS: Biological sciences, Computer Science - Computational Engineering, Finance, and Science, Quantitative Methods (q-bio.QM), Programming Languages (cs.PL)
citations This is an alternative to the "Influence" indicator, which also reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically). | 13 | |
popularity This indicator reflects the "current" impact/attention (the "hype") of an article in the research community at large, based on the underlying citation network. | Average | |
influence This indicator reflects the overall/total impact of an article in the research community at large, based on the underlying citation network (diachronically). | Average | |
impulse This indicator reflects the initial momentum of an article directly after its publication, based on the underlying citation network. | Top 10% |