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We have developed machine learning algorithms to automatically quantify the severity of pulmonary edema from chest x-rays on a continuous scale. The resulting assessment can be used for visualization of heart failure patient recovery trajectories in prior episodes of heart failure to support physicians with a data-driven approach to treating patients. We would like to investigate different ways of visualizing the clinical tracjectories that can inform physicians how different patients responded to different medications/treatment plans.
ML algorithms for quantifying pulmonary edema in chest x-ray: https://www.csail.mit.edu/research/chest-x-ray-analysis
Example x-ray images:
ML algorithms for quantifying pulmonary edema in chest x-ray: https://www.csail.mit.edu/research/chest-x-ray-analysis