texas Posted June 26, 2015 Report Posted June 26, 2015 Background: A process used to emphasize variability and bring out strong patterns in a dataset. This variability is expressed by principal components; which are directions of highest degree of variance. The first several principal components represent 80-90% of the variance and hence most important. Use Cases: - Dimensional Reduction / Compression / Image Recognition - Medical Diagnosis / Medical Imaging / Sensor Data - Outlier Detection 1
texas Posted June 26, 2015 Author Report Posted June 26, 2015 https://www.youtube.com/watch?v=FJcPLXVFZeU 1
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