Implementation of Machine Learning in Lung Cancer Prediction and Prognosis: A Review

2021 ◽  
pp. 225-231
Author(s):  
Afsha Jaweed ◽  
Farheen Siddiqui
PROTEOMICS ◽  
2003 ◽  
Vol 3 (9) ◽  
pp. 1716-1719 ◽  
Author(s):  
Melanie Hilario ◽  
Alexandros Kalousis ◽  
Markus Müller ◽  
Christian Pellegrini

Author(s):  
Nikita Banerjee ◽  
Subhalaxmi Das

This work is focused on lung cancer prediction using machine learning technique. Lung cancer is one of the widespread diseases due to the growth of irregular cell in both the lungs as a result of which this irregular cell starts growing into tumour, and this tumour can be cancerous as well as non-cancerous. In the traditional approach CT scan images has been used based on the report image segmentation has been done to remove the noise so that a clear picture can be generated to detect the location of tumor. Once the location is known then classification or clustering approach can be used to predict the stage of cancer. Previously supervised machine learning algorithm has been used to predict lung cancer. In this work a prediction model is proposed that is based on the median filter, watershed segmentation, and then feature extraction has done like texture and region. And on the extracted feature classification technique was applied for prediction of cancer.


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