Rust's lexical grammar is not context-free. Raw string literals are the source of the problem. Informally, a raw string literal is an `r`, followed by `N` hashes (where N can be zero), a quote, any characters, then a quote followed by `N` hashes. Critically, once inside the first pair of quotes, another quote cannot be followed by `N` consecutive hashes. e.g. `r###""###"###` is invalid. This grammar describes this as best possible: R -> 'r' S S -> '"' B '"' S -> '#' S '#' B -> . B B -> ε Where `.` represents any character, and `ε` the empty string. Consider the string `r#""#"#`. This string is not a valid raw string literal, but can be accepted as one by the above grammar, using the derivation: R : #""#"# S : ""#" S : "# B : # B : ε (Where `T : U` means the rule `T` is applied, and `U` is the remainder of the string.) The difficulty arises from the fact that it is fundamentally context-sensitive. In particular, the context needed is the number of hashes. To prove that Rust's string literals are not context-free, we will use the fact that context-free languages are closed under intersection with regular languages, and the [pumping lemma for context-free languages](https://en.wikipedia.org/wiki/Pumping_lemma_for_context-free_languages). Consider the regular language `R = r#+""#*"#+`. If Rust's raw string literals are context-free, then their intersection with `R`, `R'`, should also be context-free. Therefore, to prove that raw string literals are not context-free, it is sufficient to prove that `R'` is not context-free. The language `R'` is `{r#^n""#^m"#^n | m < n}`. Assume `R'` *is* context-free. Then `R'` has some pumping length `p > 0` for which the pumping lemma applies. Consider the following string `s` in `R'`: `r#^p""#^{p-1}"#^p` e.g. for `p = 2`: `s = r##""#"##` Then `s = uvwxy` for some choice of `uvwxy` such that `vx` is non-empty, `|vwx| < p+1`, and `uv^iwx^iy` is in `R'` for all `i >= 0`. Neither `v` nor `x` can contain a `"` or `r`, as the number of these characters in any string in `R'` is fixed. So `v` and `x` contain only hashes. Consequently, of the three sequences of hashes, `v` and `x` combined can only pump two of them. If we ever choose the central sequence of hashes, then one of the outer sequences will not grow when we pump, leading to an imbalance between the outer sequences. Therefore, we must pump both outer sequences of hashes. However, there are `p+2` characters between these two sequences of hashes, and `|vwx|` must be less than `p+1`. Therefore we have a contradiction, and `R'` must not be context-free. Since `R'` is not context-free, it follows that the Rust's raw string literals must not be context-free.