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<h1 class="title toc-ignore">Programming with tidyr</h1>
<div id="introduction" class="section level2">
<h2>Introduction</h2>
<p>Most tidyr verbs use <strong>tidy evaluation</strong> to make
interactive data exploration fast and fluid. Tidy evaluation is a
special type of non-standard evaluation used throughout the tidyverse.
Here’s some typical tidyr code:</p>
<div class="sourceCode" id="cb1"><pre class="sourceCode r"><code class="sourceCode r"><span id="cb1-1"><a href="#cb1-1" aria-hidden="true" tabindex="-1"></a><span class="fu">library</span>(tidyr)</span>
<span id="cb1-2"><a href="#cb1-2" aria-hidden="true" tabindex="-1"></a></span>
<span id="cb1-3"><a href="#cb1-3" aria-hidden="true" tabindex="-1"></a>iris <span class="sc">%>%</span></span>
<span id="cb1-4"><a href="#cb1-4" aria-hidden="true" tabindex="-1"></a> <span class="fu">nest</span>(<span class="at">data =</span> <span class="sc">!</span>Species)</span>
<span id="cb1-5"><a href="#cb1-5" aria-hidden="true" tabindex="-1"></a><span class="co">#> # A tibble: 3 × 2</span></span>
<span id="cb1-6"><a href="#cb1-6" aria-hidden="true" tabindex="-1"></a><span class="co">#> Species data </span></span>
<span id="cb1-7"><a href="#cb1-7" aria-hidden="true" tabindex="-1"></a><span class="co">#> <fct> <list> </span></span>
<span id="cb1-8"><a href="#cb1-8" aria-hidden="true" tabindex="-1"></a><span class="co">#> 1 setosa <tibble [50 × 4]></span></span>
<span id="cb1-9"><a href="#cb1-9" aria-hidden="true" tabindex="-1"></a><span class="co">#> 2 versicolor <tibble [50 × 4]></span></span>
<span id="cb1-10"><a href="#cb1-10" aria-hidden="true" tabindex="-1"></a><span class="co">#> 3 virginica <tibble [50 × 4]></span></span></code></pre></div>
<p>Tidy evaluation is why we can use <code>!Species</code> to say “all
the columns except <code>Species</code>”, without having to quote the
column name (<code>"Species"</code>) or refer to the enclosing data
frame (<code>iris$Species</code>).</p>
<p>Two basic forms of tidy evaluation are used in tidyr:</p>
<ul>
<li><p><strong>Tidy selection</strong>: <code>drop_na()</code>,
<code>fill()</code>,
<code>pivot_longer()</code>/<code>pivot_wider()</code>,
<code>nest()</code>/<code>unnest()</code>,
<code>separate()</code>/<code>extract()</code>, and <code>unite()</code>
let you select variables based on position, name, or type
(e.g. <code>1:3</code>, <code>starts_with("x")</code>, or
<code>is.numeric</code>). Literally, you can use all the same techniques
as with <code>dplyr::select()</code>.</p></li>
<li><p><strong>Data masking</strong>: <code>expand()</code>,
<code>crossing()</code> and <code>nesting()</code> let you refer to use
data variables as if they were variables in the environment (i.e. you
write <code>my_variable</code> not <code>df$myvariable</code>).</p></li>
</ul>
<p>We focus on tidy selection here, since it’s the most common. You can
learn more about data masking in the equivalent vignette in dplyr: <a href="https://dplyr.tidyverse.org/dev/articles/programming.html" class="uri">https://dplyr.tidyverse.org/dev/articles/programming.html</a>.
For other considerations when writing tidyr code in packages, please see
<code>vignette("in-packages")</code>.</p>
<p>We’ve pointed out that tidyr’s tidy evaluation interface is optimized
for interactive exploration. The flip side is that this adds some
challenges to indirect use, i.e. when you’re working inside a
<code>for</code> loop or a function. This vignette shows you how to
overcome those challenges. We’ll first go over the basics of tidy
selection and data masking, talk about how to use them indirectly, and
then show you a number of recipes to solve common problems.</p>
<p>Before we go on, we reveal the version of tidyr we’re using and make
a small dataset to use in examples.</p>
<div class="sourceCode" id="cb2"><pre class="sourceCode r"><code class="sourceCode r"><span id="cb2-1"><a href="#cb2-1" aria-hidden="true" tabindex="-1"></a><span class="fu">packageVersion</span>(<span class="st">"tidyr"</span>)</span>
<span id="cb2-2"><a href="#cb2-2" aria-hidden="true" tabindex="-1"></a><span class="co">#> [1] '1.3.0'</span></span>
<span id="cb2-3"><a href="#cb2-3" aria-hidden="true" tabindex="-1"></a></span>
<span id="cb2-4"><a href="#cb2-4" aria-hidden="true" tabindex="-1"></a>mini_iris <span class="ot"><-</span> <span class="fu">as_tibble</span>(iris)[<span class="fu">c</span>(<span class="dv">1</span>, <span class="dv">2</span>, <span class="dv">51</span>, <span class="dv">52</span>, <span class="dv">101</span>, <span class="dv">102</span>), ]</span>
<span id="cb2-5"><a href="#cb2-5" aria-hidden="true" tabindex="-1"></a>mini_iris</span>
<span id="cb2-6"><a href="#cb2-6" aria-hidden="true" tabindex="-1"></a><span class="co">#> # A tibble: 6 × 5</span></span>
<span id="cb2-7"><a href="#cb2-7" aria-hidden="true" tabindex="-1"></a><span class="co">#> Sepal.Length Sepal.Width Petal.Length Petal.Width Species </span></span>
<span id="cb2-8"><a href="#cb2-8" aria-hidden="true" tabindex="-1"></a><span class="co">#> <dbl> <dbl> <dbl> <dbl> <fct> </span></span>
<span id="cb2-9"><a href="#cb2-9" aria-hidden="true" tabindex="-1"></a><span class="co">#> 1 5.1 3.5 1.4 0.2 setosa </span></span>
<span id="cb2-10"><a href="#cb2-10" aria-hidden="true" tabindex="-1"></a><span class="co">#> 2 4.9 3 1.4 0.2 setosa </span></span>
<span id="cb2-11"><a href="#cb2-11" aria-hidden="true" tabindex="-1"></a><span class="co">#> 3 7 3.2 4.7 1.4 versicolor</span></span>
<span id="cb2-12"><a href="#cb2-12" aria-hidden="true" tabindex="-1"></a><span class="co">#> 4 6.4 3.2 4.5 1.5 versicolor</span></span>
<span id="cb2-13"><a href="#cb2-13" aria-hidden="true" tabindex="-1"></a><span class="co">#> 5 6.3 3.3 6 2.5 virginica </span></span>
<span id="cb2-14"><a href="#cb2-14" aria-hidden="true" tabindex="-1"></a><span class="co">#> 6 5.8 2.7 5.1 1.9 virginica</span></span></code></pre></div>
</div>
<div id="tidy-selection" class="section level2">
<h2>Tidy selection</h2>
<p>Underneath all functions that use tidy selection is the <a href="https://tidyselect.r-lib.org/">tidyselect</a> package. It provides
a miniature domain specific language that makes it easy to select
columns by name, position, or type. For example:</p>
<ul>
<li><p><code>select(df, 1)</code> selects the first column;
<code>select(df, last_col())</code> selects the last column.</p></li>
<li><p><code>select(df, c(a, b, c))</code> selects columns
<code>a</code>, <code>b</code>, and <code>c</code>.</p></li>
<li><p><code>select(df, starts_with("a"))</code> selects all columns
whose name starts with “a”; <code>select(df, ends_with("z"))</code>
selects all columns whose name ends with “z”.</p></li>
<li><p><code>select(df, where(is.numeric))</code> selects all numeric
columns.</p></li>
</ul>
<p>You can see more details in <code>?tidyr_tidy_select</code>.</p>
<div id="indirection" class="section level3">
<h3>Indirection</h3>
<p>Tidy selection makes a common task easier at the cost of making a
less common task harder. When you want to use tidy select indirectly
with the column specification stored in an intermediate variable, you’ll
need to learn some new tools. There are three main cases where this
comes up:</p>
<ul>
<li><p>When you have the tidy-select specification in a function
argument, you must <strong>embrace</strong> the argument by surrounding
it in doubled braces.</p>
<div class="sourceCode" id="cb3"><pre class="sourceCode r"><code class="sourceCode r"><span id="cb3-1"><a href="#cb3-1" aria-hidden="true" tabindex="-1"></a>nest_egg <span class="ot"><-</span> <span class="cf">function</span>(df, cols) {</span>
<span id="cb3-2"><a href="#cb3-2" aria-hidden="true" tabindex="-1"></a> <span class="fu">nest</span>(df, <span class="at">egg =</span> {{ cols }})</span>
<span id="cb3-3"><a href="#cb3-3" aria-hidden="true" tabindex="-1"></a>}</span>
<span id="cb3-4"><a href="#cb3-4" aria-hidden="true" tabindex="-1"></a></span>
<span id="cb3-5"><a href="#cb3-5" aria-hidden="true" tabindex="-1"></a><span class="fu">nest_egg</span>(mini_iris, <span class="sc">!</span>Species)</span>
<span id="cb3-6"><a href="#cb3-6" aria-hidden="true" tabindex="-1"></a><span class="co">#> # A tibble: 3 × 2</span></span>
<span id="cb3-7"><a href="#cb3-7" aria-hidden="true" tabindex="-1"></a><span class="co">#> Species egg </span></span>
<span id="cb3-8"><a href="#cb3-8" aria-hidden="true" tabindex="-1"></a><span class="co">#> <fct> <list> </span></span>
<span id="cb3-9"><a href="#cb3-9" aria-hidden="true" tabindex="-1"></a><span class="co">#> 1 setosa <tibble [2 × 4]></span></span>
<span id="cb3-10"><a href="#cb3-10" aria-hidden="true" tabindex="-1"></a><span class="co">#> 2 versicolor <tibble [2 × 4]></span></span>
<span id="cb3-11"><a href="#cb3-11" aria-hidden="true" tabindex="-1"></a><span class="co">#> 3 virginica <tibble [2 × 4]></span></span></code></pre></div></li>
<li><p>When you have a character vector of variable names, you must use
<code>all_of()</code> or <code>any_of()</code> depending on whether you
want the function to error if a variable is not found. These functions
allow you to write for loops or a function that takes variable names as
a character vector.</p>
<div class="sourceCode" id="cb4"><pre class="sourceCode r"><code class="sourceCode r"><span id="cb4-1"><a href="#cb4-1" aria-hidden="true" tabindex="-1"></a>nest_egg <span class="ot"><-</span> <span class="cf">function</span>(df, cols) {</span>
<span id="cb4-2"><a href="#cb4-2" aria-hidden="true" tabindex="-1"></a> <span class="fu">nest</span>(df, <span class="at">egg =</span> <span class="fu">all_of</span>(cols))</span>
<span id="cb4-3"><a href="#cb4-3" aria-hidden="true" tabindex="-1"></a>}</span>
<span id="cb4-4"><a href="#cb4-4" aria-hidden="true" tabindex="-1"></a></span>
<span id="cb4-5"><a href="#cb4-5" aria-hidden="true" tabindex="-1"></a>vars <span class="ot"><-</span> <span class="fu">c</span>(<span class="st">"Sepal.Length"</span>, <span class="st">"Sepal.Width"</span>, <span class="st">"Petal.Length"</span>, <span class="st">"Petal.Width"</span>)</span>
<span id="cb4-6"><a href="#cb4-6" aria-hidden="true" tabindex="-1"></a><span class="fu">nest_egg</span>(mini_iris, vars)</span>
<span id="cb4-7"><a href="#cb4-7" aria-hidden="true" tabindex="-1"></a><span class="co">#> # A tibble: 3 × 2</span></span>
<span id="cb4-8"><a href="#cb4-8" aria-hidden="true" tabindex="-1"></a><span class="co">#> Species egg </span></span>
<span id="cb4-9"><a href="#cb4-9" aria-hidden="true" tabindex="-1"></a><span class="co">#> <fct> <list> </span></span>
<span id="cb4-10"><a href="#cb4-10" aria-hidden="true" tabindex="-1"></a><span class="co">#> 1 setosa <tibble [2 × 4]></span></span>
<span id="cb4-11"><a href="#cb4-11" aria-hidden="true" tabindex="-1"></a><span class="co">#> 2 versicolor <tibble [2 × 4]></span></span>
<span id="cb4-12"><a href="#cb4-12" aria-hidden="true" tabindex="-1"></a><span class="co">#> 3 virginica <tibble [2 × 4]></span></span></code></pre></div></li>
<li><p>In more complicated cases, you might want to use tidyselect
directly:</p>
<div class="sourceCode" id="cb5"><pre class="sourceCode r"><code class="sourceCode r"><span id="cb5-1"><a href="#cb5-1" aria-hidden="true" tabindex="-1"></a>sel_vars <span class="ot"><-</span> <span class="cf">function</span>(df, cols) {</span>
<span id="cb5-2"><a href="#cb5-2" aria-hidden="true" tabindex="-1"></a> tidyselect<span class="sc">::</span><span class="fu">eval_select</span>(rlang<span class="sc">::</span><span class="fu">enquo</span>(cols), df)</span>
<span id="cb5-3"><a href="#cb5-3" aria-hidden="true" tabindex="-1"></a>}</span>
<span id="cb5-4"><a href="#cb5-4" aria-hidden="true" tabindex="-1"></a><span class="fu">sel_vars</span>(mini_iris, <span class="sc">!</span>Species)</span>
<span id="cb5-5"><a href="#cb5-5" aria-hidden="true" tabindex="-1"></a><span class="co">#> Sepal.Length Sepal.Width Petal.Length Petal.Width </span></span>
<span id="cb5-6"><a href="#cb5-6" aria-hidden="true" tabindex="-1"></a><span class="co">#> 1 2 3 4</span></span></code></pre></div>
<p>Learn more in <code>vignette("tidyselect")</code>.</p></li>
</ul>
<p>Note that many tidyr functions use <code>...</code> so you can easily
select many variables, e.g. <code>fill(df, x, y, z)</code>. I now
believe that the disadvantages of this approach outweigh the benefits,
and that this interface would have been better as
<code>fill(df, c(x, y, z))</code>. For new functions that select
columns, please just use a single argument and not <code>...</code>.</p>
</div>
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