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About The Book
Description
Author
In many machine learning applications available datasets are sometimes incomplete noisy or affected by artifacts. In supervised scenarios it could happen that label information has low quality which might include unbalanced training sets noisy labels and other problems. Moreover in practice it is very common that available data samples are not enough to derive useful supervised or unsupervised classifiers. All these issues are commonly referred to as the low-quality data problem. This book collects novel contributions on machine learning methods for low-quality datasets to contribute to the dissemination of new ideas to solve this challenging problem and to provide clear examples of application in real scenarios.