AI Article Synopsis

  • Delayed detection of cancers, especially oral cancers, leads to poor patient outcomes, highlighting the need for better diagnostic methods.
  • The study focuses on analyzing NCBI's oral cancer datasets to identify relevant attributes, such as genes and clinical significance, for improving the understanding of gingivobuccal cancer (GBC).
  • By employing machine learning techniques, this research aims to uncover critical genes linked to GBC, potentially enhancing detection methods not just for GBC but for other oral cancers as well.

Article Abstract

Delayed cancer detection is one of the common causes of poor prognosis in the case of many cancers, including cancers of the oral cavity. Despite the improvement and development of new and efficient gene therapy treatments, very little has been carried out to algorithmically assess the impedance of these carcinomas. In this work, from attributes or NCBI's oral cancer datasets, viz. (i) name, (ii) gene(s), (iii) protein change, (iv) condition(s), clinical significance (last reviewed). We sought to train the number of instances emerging from them. Further, we attempt to annotate viable attributes in oral cancer gene datasets for the identification of gingivobuccal cancer (GBC). We further apply supervised and unsupervised machine learning methods to the gene datasets, revealing key candidate attributes for GBC prognosis. Our work highlights the importance of automated identification of key genes responsible for GBC that could perhaps be easily replicated in other forms of oral cancer detection.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9777687PMC
http://dx.doi.org/10.3390/genes13122379DOI Listing

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