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Radiomics analysis combining unsupervised learning and handcrafted features: A multiple‐disease study

18

Citations

47

References

2021

Year

Abstract

This study demonstrated the general benefit of combing handcrafted and learning-based features in radiomics modeling. It also clearly illustrates the task-specific and data-specific dependency on the performance gain and suggests that while the common methodology of feature combination may be applied across various studies and tasks, study-specific feature selection and model optimization are still necessary to achieve high accuracy and robustness.

References

YearCitations

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