Publication | Open Access
A survey of dimensionality reduction techniques
317
Citations
117
References
2014
Year
EngineeringComplexity ReductionData ScienceData MiningPattern RecognitionBiostatisticsExperimental Life SciencesPublic HealthStatisticsStatistical MethodsKnowledge DiscoveryDimensionality ReductionNonlinear Dimensionality ReductionFunctional Data AnalysisHigh-dimensional MethodHigher Dimensional ProblemComputational BiologyDimension Reduction TechniquesDimensionality Reduction Techniques
Experimental life sciences like biology or chemistry have seen in the recent decades an explosion of the data available from experiments. Laboratory instruments become more and more complex and report hundreds or thousands measurements for a single experiment and therefore the statistical methods face challenging tasks when dealing with such high dimensional data. However, much of the data is highly redundant and can be efficiently brought down to a much smaller number of variables without a significant loss of information. The mathematical procedures making possible this reduction are called dimensionality reduction techniques; they have widely been developed by fields like Statistics or Machine Learning, and are currently a hot research topic. In this review we categorize the plethora of dimension reduction techniques available and give the mathematical insight behind them.
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