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<h1 id="trait-solving-new"><a class="header" href="#trait-solving-new">Trait solving (new)</a></h1>
<p>This chapter describes how trait solving works with the new WIP solver located in
<a href="https://doc.rust-lang.org/nightly/nightly-rustc/rustc_trait_selection/solve/index.html"><code>rustc_trait_selection/solve</code></a>. Feel free to also look at the docs for
<a href="../traits/resolution.html">the current solver</a> and <a href="../traits/chalk.html">the chalk solver</a>.</p>
<h2 id="core-concepts"><a class="header" href="#core-concepts">Core concepts</a></h2>
<p>The goal of the trait system is to check whether a given trait bound is satisfied.
Most notably when typechecking the body of - potentially generic - functions.
For example:</p>
<pre><pre class="playground"><code class="language-rust"><span class="boring">#![allow(unused)]
</span><span class="boring">fn main() {
</span>fn uses_vec_clone&lt;T: Clone&gt;(x: Vec&lt;T&gt;) -&gt; (Vec&lt;T&gt;, Vec&lt;T&gt;) {
(x.clone(), x)
}
<span class="boring">}</span></code></pre></pre>
<p>Here the call to <code>x.clone()</code> requires us to prove that <code>Vec&lt;T&gt;</code> implements <code>Clone</code> given
the assumption that <code>T: Clone</code> is true. We can assume <code>T: Clone</code> as that will be proven by
callers of this function.</p>
<p>The concept of "prove the <code>Vec&lt;T&gt;: Clone</code> with the assumption <code>T: Clone</code>" is called a <a href="https://doc.rust-lang.org/nightly/nightly-rustc/rustc_infer/infer/canonical/ir/solve/struct.Goal.html"><code>Goal</code></a>.
Both <code>Vec&lt;T&gt;: Clone</code> and <code>T: Clone</code> are represented using <a href="https://doc.rust-lang.org/nightly/nightly-rustc/rustc_middle/ty/struct.Predicate.html"><code>Predicate</code></a>. There are other
predicates, most notably equality bounds on associated items: <code>&lt;Vec&lt;T&gt; as IntoIterator&gt;::Item == T</code>.
See the <code>PredicateKind</code> enum for an exhaustive list. A <code>Goal</code> is represented as the <code>predicate</code> we
have to prove and the <code>param_env</code> in which this predicate has to hold.</p>
<p>We prove goals by checking whether each possible <a href="https://doc.rust-lang.org/nightly/nightly-rustc/rustc_next_trait_solver/solve/assembly/struct.Candidate.html"><code>Candidate</code></a> applies for the given goal by
recursively proving its nested goals. For a list of possible candidates with examples, look at
<a href="https://doc.rust-lang.org/nightly/nightly-rustc/rustc_infer/infer/canonical/ir/solve/enum.CandidateSource.html"><code>CandidateSource</code></a>. The most important candidates are <code>Impl</code> candidates, i.e. trait implementations
written by the user, and <code>ParamEnv</code> candidates, i.e. assumptions in our current environment.</p>
<p>Looking at the above example, to prove <code>Vec&lt;T&gt;: Clone</code> we first use
<code>impl&lt;T: Clone&gt; Clone for Vec&lt;T&gt;</code>. To use this impl we have to prove the nested
goal that <code>T: Clone</code> holds. This can use the assumption <code>T: Clone</code> from the <code>ParamEnv</code>
which does not have any nested goals. Therefore <code>Vec&lt;T&gt;: Clone</code> holds.</p>
<p>The trait solver can either return success, ambiguity or an error as a <a href="https://doc.rust-lang.org/nightly/nightly-rustc/rustc_trait_selection/traits/solve/type.CanonicalResponse.html"><code>CanonicalResponse</code></a>.
For success and ambiguity it also returns constraints inference and region constraints.</p>
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