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Add module to make iris dataset available.
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@@ -39,4 +39,7 @@ include("tree.jl") | |
include("sentiment.jl") | ||
using .Sentiment | ||
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include("iris.jl") | ||
export Iris | ||
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end |
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""" | ||
Iris | ||
Fisher's classic iris dataset. | ||
Measurements from 3 different species of iris: setosa, versicolor and | ||
virginica. There are 50 examples of each species. | ||
There are 4 measurements for each example: sepal length, sepal width, petal | ||
length and petal width. The measurements are in centimeters. | ||
The module retrieves the data from the [UCI Machine Learning Repository](https://archive.ics.uci.edu/ml/datasets/iris). | ||
""" | ||
module Iris | ||
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using DelimitedFiles | ||
using ..Data: deps, download_and_verify | ||
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const cache_prefix = "" | ||
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# Uncomment if the iris.data file is cached to cache.julialang.org. | ||
# const cache_prefix = "https://cache.julialang.org/" | ||
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function load() | ||
isfile(deps("iris.data")) && return | ||
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@info "Downloading iris dataset." | ||
download_and_verify("$(cache_prefix)https://archive.ics.uci.edu/ml/machine-learning-databases/iris/iris.data", | ||
deps("iris.data"), | ||
"6f608b71a7317216319b4d27b4d9bc84e6abd734eda7872b71a458569e2656c0") | ||
end | ||
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""" | ||
labels() | ||
Get the labels of the iris dataset, a 150 element array of strings listing the | ||
species of each example. | ||
```jldoctest | ||
julia> labels = Flux.Data.Iris.labels(); | ||
julia> summary(labels) | ||
"150-element Array{String,1}" | ||
julia> labels[1] | ||
"Iris-setosa" | ||
``` | ||
""" | ||
function labels() | ||
load() | ||
iris = readdlm(deps("iris.data"), ',') | ||
Vector{String}(iris[1:end, end]) | ||
end | ||
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""" | ||
features() | ||
Get the features of the iris dataset. This is a 4x150 matrix of Float64 | ||
elements. It has a row for each feature (sepal length, sepal width, | ||
petal length, petal width) and a column for each example. | ||
```jldoctest | ||
julia> features = Flux.Data.Iris.features(); | ||
julia> summary(features) | ||
"4×150 Array{Float64,2}" | ||
julia> features[:, 1] | ||
4-element Array{Float64,1}: | ||
5.1 | ||
3.5 | ||
1.4 | ||
0.2 | ||
``` | ||
""" | ||
function features() | ||
load() | ||
iris = readdlm(deps("iris.data"), ',') | ||
Matrix{Float64}(iris[1:end, 1:4]') | ||
end | ||
end | ||
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