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- //
- // Remember using if/else statements as expressions like this?
- //
- // var foo: u8 = if (true) 5 else 0;
- //
- // Zig also lets you use for and while loops as expressions.
- //
- // Like 'return' for functions, you can return a value from a
- // loop block with break:
- //
- // break true; // return boolean value from block
- //
- // But what value is returned from a loop if a break statement is
- // never reached? We need a default expression. Thankfully, Zig
- // loops also have 'else' clauses! As you might have guessed, the
- // else clause is evaluated once a while condition becomes false
- // or a for loop runs out of items.
- //
- // const two: u8 = while (true) break 2 else 0; // 2
- // const three: u8 = for ([1]u8{1}) |f| break 3 else 0; // 3
- //
- // If you do not provide an else clause, an empty one will be
- // provided for you, which will evaluate to the void type, which
- // is probably not what you want. So consider the else clause
- // essential when using loops as expressions.
- //
- // With that in mind, see if you can fix the problem with this
- // program.
- //
- const print = @import("std").debug.print;
- pub fn main() void {
- const langs: [6][]const u8 = .{
- "Erlang",
- "Algol",
- "C",
- "OCaml",
- "Zig",
- "Prolog",
- };
- // Let's find the first language with a three-letter name and
- // return it from the for loop.
- const current_lang: ?[]const u8 = for (langs) |lang| {
- if (lang.len == 3) break lang;
- };
- if (current_lang) |cl| {
- print("Current language: {s}\n", .{cl});
- } else {
- print("Did not find a three-letter language name. :-(\n", .{});
- }
- }
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