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stylo (version 0.7.5)

dist.entropy: Entropy Distance

Description

Function for computing the entropy distance measure between two (or more) vectors.

Usage

dist.entropy(x)

Value

The function returns an object of the class dist, containing distances between each pair of samples. To convert it to a square matrix instead, use the generic function as.dist.

Arguments

x

a matrix or data table containing at least 2 rows and 2 cols, the samples (texts) to be compared in rows, the variables in columns.

Author

Maciej Eder

References

Juola, P. and Baayen, H. (2005). A controlled-corpus experiment in authorship attribution by cross-entropy. Literary and Linguistic Computing, 20(1): 59-67.

See Also

stylo, classify, dist, as.dist, dist.cosine

Examples

Run this code
# first, preparing a table of word frequencies
        Iuvenalis_1 = c(3.939, 0.635, 1.143, 0.762, 0.423)
        Iuvenalis_2 = c(3.733, 0.822, 1.066, 0.933, 0.511)
        Tibullus_1  = c(2.835, 1.302, 0.804, 0.862, 0.881)
        Tibullus_2  = c(2.911, 0.436, 0.400, 0.946, 0.618)
        Tibullus_3  = c(1.893, 1.082, 0.991, 0.879, 1.487)
        dataset = rbind(Iuvenalis_1, Iuvenalis_2, Tibullus_1, Tibullus_2, 
                        Tibullus_3)
        colnames(dataset) = c("et", "non", "in", "est", "nec")

# the table of frequencies looks as follows
        print(dataset)
        
# then, applying a distance, in two flavors
        dist.entropy(dataset)
        as.matrix(dist.entropy(dataset))

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