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The Essential Histogram

The histogram is widely used as a simple, exploratory display of data, but it is usually not clear how to choose the number and size of bins. We construct a confidence set of distribution functions that optimally address the two main tasks of the histogram: estimating probabilities and detecting features such as increases and modes in the distribution. We define the essential histogram as the histogram in the confidence set with the fewest bins. Thus the essential histogram is the simplest visualization of the data that optimally achieves the main tasks of the histogram. The only assumption we make is that the data are independent and identically distributed. We provide a fast algorithm for the essential histogram, and illustrate our methodology with examples. An R-package is available on CRAN.

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Related contextCo-authorshipCo-authorshipCo-authorshipCo-authorshipCo-authorshipCo-authorshipAuthorshipAuthorshipAuthorshipAuthorshipTopic signalTopic signalTopic signalWThe Essential Histogrampreprint / 2019AHousen LiResearcherAAxel MunkResearcherAHannes SielingResearcherAGuenther WaltherResearcherTMethodology5119 worksTmath.ST3384 worksTStatistics Theory3281 works
PaperSignal 107 links

The Essential Histogram

preprint / 2019

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