85 results on '"Shibiao Wan"'
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2. A Review for Artificial Intelligence Based Protein Subcellular Localization
3. Editorial: Bioinformatics analysis of omics data for biomarker identification in clinical research, Volume II
4. The nuclear receptor ERR cooperates with the cardiogenic factor GATA4 to orchestrate cardiomyocyte maturation
5. Identification of a modular super-enhancer in murine retinal development
6. Editorial: Ferroptosis as a novel therapeutic target for inflammation-related diseases
7. Editorial: Single cell meets metabolism and cancer biology
8. A Sequence Obfuscation Method for Protecting Personal Genomic Privacy
9. Editorial: Transcriptional Regulation in Metabolism and Immunology
10. Special Issue on Bioinformatics and Machine Learning for Cancer Biology
11. Benchmark data for identifying multi-functional types of membrane proteins
12. Is Congenital Amusia a Disconnection Syndrome? A Study Combining Tract- and Network-Based Analysis
13. HybridGO-Loc: mining hybrid features on gene ontology for predicting subcellular localization of multi-location proteins.
14. Processing Millions of Single Cells by SHARP.
15. Ensemble random projection for multi-label classification with application to protein subcellular localization.
16. YAP/TAZ maintain the proliferative capacity and structural organization of radial glial cells during brain development
17. An ensemble classifier with random projection for predicting multi-label protein subcellular localization.
18. Adaptive thresholding for multi-label SVM classification with application to protein subcellular localization prediction.
19. GOASVM: Protein subcellular localization prediction based on Gene ontology annotation and SVM.
20. Protein subcellular localization prediction based on profile alignment and Gene Ontology.
21. Alzheimer’s disease-associated U1 snRNP splicing dysfunction causes neuronal hyperexcitability and cognitive impairment
22. A Method of Continuous Data Flow Embedded within Speech Signals.
23. Machine Learning for Protein Subcellular Localization Prediction
24. Improving bulk RNA-seq classification by transferring gene signature from single cells in acute myeloid leukemia
25. SHARP: hyperfast and accurate processing of single-cell RNA-seq data via ensemble random projection
26. Gram-LocEN: Interpretable prediction of subcellular multi-localization of Gram-positive and Gram-negative bacterial proteins
27. MondoA drives muscle lipid accumulation and insulin resistance
28. Ensemble Linear Neighborhood Propagation for Predicting Subchloroplast Localization of Multi-Location Proteins
29. Mem-ADSVM: A two-layer multi-label predictor for identifying multi-functional types of membrane proteins
30. SHARP: Single-cell RNA-seq Hyper-fast and Accurate Processing via Ensemble Random Projection
31. The impacts of M/A constituents decomposition and complex precipitation on mechanical properties of high-strength weathering steel subjected to tempering treatment
32. Predicting subcellular localization of multi-location proteins by improving support vector machines with an adaptive-decision scheme
33. mLASSO-Hum: A LASSO-based interpretable human-protein subcellular localization predictor
34. Benchmark data for identifying multi-functional types of membrane proteins
35. R3P-Loc: A compact multi-label predictor using ridge regression and random projection for protein subcellular localization
36. GOASVM: A subcellular location predictor by incorporating term-frequency gene ontology into the general form of Chou's pseudo-amino acid composition
37. Semantic Similarity over Gene Ontology for Multi-Label Protein Subcellular Localization
38. FUEL-mLoc: feature-unified prediction and explanation of multi-localization of cellular proteins in multiple organisms
39. Transductive Learning for Multi-Label Protein Subchloroplast Localization Prediction
40. 9. Results and analysis
41. Machine Learning for Protein Subcellular Localization Prediction
42. 8. Experimental setup
43. 7. Ensemble random projection for large-scale predictions
44. A. Webservers for protein subcellular localization
45. B. Support vector machines
46. 6. Mining deeper on GO for protein subcellular localization
47. 10. Properties of the proposed predictors
48. D. Derivatives for penalized logistic regression
49. 3. Legitimacy of using gene ontology information
50. 5. From single- to multi-location
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