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Creation of a Tumor Diagnostic Tool Using Machine Learning in Python

  • Zynnia Echeverria
  • , Felix Chavez
  • , Darling Balon
  • , Gabriel Arellano

Producción científica: Capítulo del libro/informe/acta de congresoContribución de conferenciarevisión exhaustiva

Resumen

This analysis aims to design a diagnostic tool using a predictive model for the early detection of breast tumor malignancy by applying Python programming software and Machine Learning. We employed supervised and unsupervised methods, including PCA, ISOMAP, and clustering, to perform a preliminary analysis and explore the data structure. Subsequently, supervised methods are applied to train different models, using histopathological data and pre-accuracy metrics. The results highlight that LDA offers an optimal balance between accuracy and recall, being suitable for accurate differentiation between benign and malignant tumors. In response to these findings, a graphical interface trained with LDA was developed, aimed at improving early identification of tumor malignancy. This tool promises to facilitate more accurate prognostication and therapeutic intervention for patients.

Idioma originalInglés
Título de la publicación alojadaEmerging Research in Intelligent Systems - Proceedings of the ESPE CIT 2025
EditoresGonzalo Fernando Olmedo Cifuentes, Diego Gustavo Arcos Avilés, Hernán Vinicio Lara Padilla
EditorialSpringer Science and Business Media Deutschland GmbH
Páginas381-393
Número de páginas13
ISBN (versión impresa)9783032198440
DOI
EstadoPublicada - 2026
Publicado de forma externa
Evento20th International Multidisciplinary Congress on Science and Technology, CIT 2025 - Sangolquí, Ecuador
Duración: 11 ago 202515 ago 2025

Serie de la publicación

NombreLecture Notes in Networks and Systems
Volumen1880 LNNS
ISSN (versión impresa)2367-3370
ISSN (versión digital)2367-3389

Conferencia

Conferencia20th International Multidisciplinary Congress on Science and Technology, CIT 2025
País/TerritorioEcuador
CiudadSangolquí
Período11/08/2515/08/25

Nota bibliográfica

Publisher Copyright:
© The Author(s), under exclusive license to Springer Nature Switzerland AG 2026.

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