Missing package decl
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@ -222,7 +222,7 @@ Both the boostrap and cross-validation are build on top of a "resample" object.
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These functions return an object of class "resample", which represents the resample in a memory efficient way. Instead of storing the resampled dataset itself, it instead stores the integer indices, and a "pointer" to the original dataset. This makes resamples take up much less memory.
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```{r}
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x <- resample_bootstrap(as_tibble(mtcars))
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x <- resample_bootstrap(tibble::as_tibble(mtcars))
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class(x)
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x
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4
tidy.Rmd
4
tidy.Rmd
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@ -304,12 +304,12 @@ gather(table5, "year", "population", -1)
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You can also identify columns by name with the notation introduced by the `select` function in `dplyr`, see Section 3.1.
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You can easily combine the new versions of `table4` and `table5` into a single data frame because the new versions are both tidy. To combine the datasets, use the `left_join()` function from Section 3.6.
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You can easily combine the new versions of `table4` and `table5` into a single data frame because the new versions are both tidy. To combine the datasets, use the `dplyr::left_join()` function which you'll learn about in [relational data].
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```{r}
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tidy4 <- gather(table4, "year", "cases", 2:3)
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tidy5 <- gather(table5, "year", "population", 2:3)
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left_join(tidy4, tidy5)
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dplyr::left_join(tidy4, tidy5)
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```
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## `separate()` and `unite()`
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