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Towards optimal deep fusion of imaging and clinical data via a model‐based description of fusion quality

11

Citations

37

References

2022

Year

Abstract

We introduced the concept of data fusion quality for multi-source deep learning problems involving both imaging and clinical data. We provided a theoretical framework, numerical validation, and real-world application in abdominal radiology. Our data suggests that CT imaging and hepatic blood markers provide complementary diagnostic information when appropriately fused.

References

YearCitations

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