Evaluating deep learning-based image segmentation for radiotherapy planning in pelvic and abdominal cancers
Xuejiao Chen, Shuo Lai

TL;DR
This paper introduces a new deep learning framework for improving image segmentation in radiotherapy planning for pelvic and abdominal cancers.
Contribution
The novel contribution is an attention-enhanced domain-adaptive segmentation framework for more accurate and efficient radiotherapy planning.
Findings
The proposed framework improves segmentation accuracy on heterogeneous datasets.
The method enhances robustness and reproducibility in contouring organs and lesions.
The framework maintains computational efficiency while adapting to diverse clinical data.
Abstract
The integration of artificial intelligence (AI) into radiotherapy planning for pelvic and abdominal malignancies has ushered in a new era of precision oncology, enhancing treatment accuracy and patient outcomes. Central to this advancement is the development of sophisticated image segmentation techniques that accurately delineate tumors and surrounding organs at risk. Traditional segmentation methods, often reliant on manual contouring or basic algorithmic approaches, are time-consuming and susceptible to inter-operator variability, potentially compromising treatment efficacy. Moreover, existing deep learning models, while promising, frequently struggle with challenges such as ambiguous anatomical boundaries, small or disconnected lesion regions, and underrepresented classes within training datasets. To address these challenges, research has progressively evolved from rigid anatomical…
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Taxonomy
TopicsAdvanced Radiotherapy Techniques · AI in cancer detection · Advanced Neural Network Applications
