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April 10, 2026Journal of Clinical Medicine2 citationsOpen Access

Artificial Intelligence in Head and Neck Surgical Oncology: A State-of-the-Art Review

SCSteven ChenMFMaria FeuchtABAditya M Bhatt

Key Points

  • The review aims to elucidate the integration of AI technologies in head and neck surgical oncology and evaluate their impact.
  • Discussed various AI applications in preoperative, intraoperative, and postoperative settings.
  • Summarized advancements like augmented reality-assisted navigation and predictive analytics.
  • Critically assessed challenges regarding ethical deployment and clinical validation.
  • AI tools improve detection of nodal metastasis and assist in real-time surgical navigation.
  • Postoperative AI predicts complications such as free flap failure.
  • Current adoption of AI in clinical settings is hampered by privacy and safety concerns.

Abstract

Artificial intelligence (AI) is rapidly reshaping head and neck surgical oncology by augmenting decision-making across the full perioperative continuum. This state-of-the-art review aims to provide head and neck surgical oncologists with a conceptual framework for understanding and critically appraising AI tools entering clinical practice, summarizing how machine learning, deep learning, and generative AI are being integrated into contemporary surgical workflows. Preoperative applications include detection of occult nodal metastasis and extranodal extension. Intraoperative innovations include augmented reality-assisted navigation, real-time margin assessment, and improving visual clarity and tissue handling for robotic platforms. Postoperatively, AI can predict complications like free flap failure and oncologic outcomes. Large language models are being operationalized for clinician-facing applications such as documentation and inbox support, as well as patient-facing education. Despite promising results, broad clinical deployment remains limited by concerns about privacy, validation, reliability, safety, and ethics. Widespread adoption will require prospective clinical trials, robust governance, and human-centered workflows that ensure AI remains a safe, assistive copilot.

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/69d894ec6c1944d70ce05d83https://doi.org/10.3390/jcm15072767
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