Files
herdr/src/input/encode.rs
T
Can Celik 3397e1ce29 feat: add persistent server-client sessions
Make herdr persistent by default.

   Launching herdr now starts or reattaches to a background session
   server. Clients can detach and reattach while panes and agent
   processes keep running. Session mode now supports multi-client attach,
   auto-detect startup, and a thin-client/headless-server split.

   This also refactors the large app, ui, input, pane, config,
   workspace, and persistence modules into smaller focused submodules,
   while preserving behavior and colocating tests with the code they
   exercise.

   Upgrade notes:
   - persistence mode is now the default
   - in-app quit detaches the current client instead of stopping the server
   - use `herdr server stop` to stop the background session
   - use `--no-session` for the old single-process behavior
   - default socket paths now live under the config directory
2026-04-21 16:30:04 +03:00

808 lines
27 KiB
Rust

use crossterm::event::{KeyCode, KeyEvent, KeyModifiers, MouseButton, MouseEventKind};
use super::{KeyboardProtocol, MouseProtocolEncoding, TerminalKey};
const KITTY_FLAG_REPORT_EVENT_TYPES: u16 = 0b0000_0010;
const KITTY_FLAG_REPORT_ALTERNATE_KEYS: u16 = 0b0000_0100;
/// Encode a key event for a PTY child using the pane's negotiated keyboard protocol.
#[allow(dead_code)] // exercised in input unit tests; production uses PaneRuntime helpers
pub fn encode_key(key: KeyEvent, protocol: KeyboardProtocol) -> Vec<u8> {
encode_terminal_key(key.into(), protocol)
}
pub fn encode_terminal_key(key: TerminalKey, protocol: KeyboardProtocol) -> Vec<u8> {
if let Some(bytes) = encode_text_input(&key) {
return bytes;
}
if let KeyboardProtocol::Kitty { flags } = protocol {
if let Some(bytes) = try_encode_csi_u(&key, flags) {
return bytes;
}
}
encode_legacy(key.as_key_event())
}
#[allow(dead_code)] // exercised in input unit tests; production uses PaneRuntime helpers
pub fn encode_cursor_key(code: KeyCode, application_cursor: bool) -> Vec<u8> {
match (code, application_cursor) {
(KeyCode::Up, true) => b"\x1bOA".to_vec(),
(KeyCode::Down, true) => b"\x1bOB".to_vec(),
(KeyCode::Right, true) => b"\x1bOC".to_vec(),
(KeyCode::Left, true) => b"\x1bOD".to_vec(),
(KeyCode::Up, false) => b"\x1b[A".to_vec(),
(KeyCode::Down, false) => b"\x1b[B".to_vec(),
(KeyCode::Right, false) => b"\x1b[C".to_vec(),
(KeyCode::Left, false) => b"\x1b[D".to_vec(),
_ => encode_legacy(KeyEvent::new(code, KeyModifiers::empty())),
}
}
#[allow(dead_code)] // exercised in input unit tests; pane runtime uses backend helpers
pub fn encode_mouse_scroll(
kind: MouseEventKind,
column: u16,
row: u16,
modifiers: KeyModifiers,
encoding: MouseProtocolEncoding,
) -> Option<Vec<u8>> {
let button = match kind {
MouseEventKind::ScrollUp => 64u16,
MouseEventKind::ScrollDown => 65u16,
MouseEventKind::ScrollLeft => 66u16,
MouseEventKind::ScrollRight => 67u16,
_ => return None,
};
encode_mouse_cb(button, false, column, row, modifiers, encoding)
}
#[allow(dead_code)] // exercised in input unit tests; pane runtime uses backend helpers
pub fn encode_mouse_button(
kind: MouseEventKind,
column: u16,
row: u16,
modifiers: KeyModifiers,
encoding: MouseProtocolEncoding,
) -> Option<Vec<u8>> {
let (button, release) = match kind {
MouseEventKind::Down(MouseButton::Left) => (0u16, false),
MouseEventKind::Down(MouseButton::Middle) => (1u16, false),
MouseEventKind::Down(MouseButton::Right) => (2u16, false),
MouseEventKind::Up(MouseButton::Left) => (0u16, true),
MouseEventKind::Up(MouseButton::Middle) => (1u16, true),
MouseEventKind::Up(MouseButton::Right) => (2u16, true),
MouseEventKind::Drag(MouseButton::Left) => (32u16, false),
MouseEventKind::Drag(MouseButton::Middle) => (33u16, false),
MouseEventKind::Drag(MouseButton::Right) => (34u16, false),
_ => return None,
};
encode_mouse_cb(button, release, column, row, modifiers, encoding)
}
#[allow(dead_code)] // only reached through mouse encoding helpers above
fn encode_mouse_cb(
base_button: u16,
release: bool,
column: u16,
row: u16,
modifiers: KeyModifiers,
encoding: MouseProtocolEncoding,
) -> Option<Vec<u8>> {
let mut cb = match (encoding, release) {
(MouseProtocolEncoding::Sgr, true) => base_button,
(_, true) => 3,
(_, false) => base_button,
};
if modifiers.contains(KeyModifiers::SHIFT) {
cb += 4;
}
if modifiers.contains(KeyModifiers::ALT) {
cb += 8;
}
if modifiers.contains(KeyModifiers::CONTROL) {
cb += 16;
}
let column = column as u32 + 1;
let row = row as u32 + 1;
match encoding {
MouseProtocolEncoding::Sgr => Some(
format!(
"\x1b[<{cb};{column};{row}{}",
if release { 'm' } else { 'M' }
)
.into_bytes(),
),
MouseProtocolEncoding::Default => {
let cb = u8::try_from(cb + 32).ok()?;
let column = u8::try_from(column + 32).ok()?;
let row = u8::try_from(row + 32).ok()?;
Some(vec![0x1b, b'[', b'M', cb, column, row])
}
MouseProtocolEncoding::Utf8 => {
let mut bytes = Vec::with_capacity(16);
bytes.extend_from_slice(b"\x1b[M");
push_mouse_codepoint(&mut bytes, cb as u32 + 32)?;
push_mouse_codepoint(&mut bytes, column + 32)?;
push_mouse_codepoint(&mut bytes, row + 32)?;
Some(bytes)
}
}
}
#[allow(dead_code)] // only reached through mouse encoding helpers above
fn push_mouse_codepoint(bytes: &mut Vec<u8>, value: u32) -> Option<()> {
let ch = char::from_u32(value)?;
let mut buf = [0u8; 4];
bytes.extend_from_slice(ch.encode_utf8(&mut buf).as_bytes());
Some(())
}
/// CSI u encoding: \e[{codepoint};{modifiers}u
/// Used when the child has pushed Kitty keyboard enhancement.
/// Returns None if the key doesn't need CSI u (unmodified basic keys).
fn try_encode_csi_u(key: &TerminalKey, flags: u16) -> Option<Vec<u8>> {
let mods = key.modifiers;
// Unmodified keys use legacy encoding (more compatible)
if mods.is_empty() {
return None;
}
// Special keys (arrows, F-keys, etc.) have well-established legacy
// xterm modified formats (\x1b[1;3A for Alt+Up, etc.) that are universally
// understood. Even Ghostty sends these in legacy format with kitty mode on.
// Only use CSI u for character keys and keys without legacy representations.
match key.code {
KeyCode::Up
| KeyCode::Down
| KeyCode::Left
| KeyCode::Right
| KeyCode::Home
| KeyCode::End
| KeyCode::PageUp
| KeyCode::PageDown
| KeyCode::Insert
| KeyCode::Delete
| KeyCode::F(_) => {
return None; // let legacy handle these
}
_ => {}
}
let (codepoint, alternate_shifted) = match key.code {
KeyCode::Char(c) => {
let base = canonical_kitty_char(c, mods);
let shifted = alternate_shifted_codepoint(key, flags);
(base as u32, shifted)
}
KeyCode::Enter => (13, None),
KeyCode::Tab => (9, None),
KeyCode::Backspace => (127, None),
KeyCode::Esc => (27, None),
_ => return None, // fall back to legacy for unhandled keys
};
let modifier = kitty_modifier(mods);
let event_suffix = kitty_event_suffix(key, flags);
let sequence = match (alternate_shifted, event_suffix) {
(Some(shifted), Some(event)) => format!("\x1b[{codepoint}:{shifted};{modifier}:{event}u"),
(Some(shifted), None) => format!("\x1b[{codepoint}:{shifted};{modifier}u"),
(None, Some(event)) => format!("\x1b[{codepoint};{modifier}:{event}u"),
(None, None) => format!("\x1b[{codepoint};{modifier}u"),
};
Some(sequence.into_bytes())
}
/// Legacy terminal encoding (standard escape sequences).
fn encode_legacy(key: KeyEvent) -> Vec<u8> {
let mods = key.modifiers;
// Modified special keys (arrows, home, end, etc.) use xterm format:
// \x1b[1;{modifier}A for arrows/home/end
// \x1b[{n};{modifier}~ for insert/delete/pgup/pgdn
// The ESC-prefix hack doesn't work for these since they're already escape sequences.
if !mods.is_empty() {
if let Some(bytes) = encode_modified_special(key.code, mods) {
return bytes;
}
}
// Alt modifier on character keys: prefix with ESC
if mods.contains(KeyModifiers::ALT) {
let inner = KeyEvent::new(key.code, mods.difference(KeyModifiers::ALT));
let mut bytes = vec![0x1b];
bytes.extend(encode_legacy_inner(inner));
return bytes;
}
encode_legacy_inner(key)
}
/// xterm-style encoding for modified special keys.
/// Modifier value: 1 + (shift?1:0) + (alt?2:0) + (ctrl?4:0)
fn encode_modified_special(code: KeyCode, mods: KeyModifiers) -> Option<Vec<u8>> {
let modifier = xterm_modifier(mods);
if modifier <= 1 {
return None; // no modifiers to encode
}
match code {
// CSI 1;{mod}{letter} format
KeyCode::Up => Some(format!("\x1b[1;{modifier}A").into_bytes()),
KeyCode::Down => Some(format!("\x1b[1;{modifier}B").into_bytes()),
KeyCode::Right => Some(format!("\x1b[1;{modifier}C").into_bytes()),
KeyCode::Left => Some(format!("\x1b[1;{modifier}D").into_bytes()),
KeyCode::Home => Some(format!("\x1b[1;{modifier}H").into_bytes()),
KeyCode::End => Some(format!("\x1b[1;{modifier}F").into_bytes()),
// CSI {n};{mod}~ format
KeyCode::Insert => Some(format!("\x1b[2;{modifier}~").into_bytes()),
KeyCode::Delete => Some(format!("\x1b[3;{modifier}~").into_bytes()),
KeyCode::PageUp => Some(format!("\x1b[5;{modifier}~").into_bytes()),
KeyCode::PageDown => Some(format!("\x1b[6;{modifier}~").into_bytes()),
// F1-F4: CSI 1;{mod}{P-S}
KeyCode::F(1) => Some(format!("\x1b[1;{modifier}P").into_bytes()),
KeyCode::F(2) => Some(format!("\x1b[1;{modifier}Q").into_bytes()),
KeyCode::F(3) => Some(format!("\x1b[1;{modifier}R").into_bytes()),
KeyCode::F(4) => Some(format!("\x1b[1;{modifier}S").into_bytes()),
// F5-F12: CSI {n};{mod}~
KeyCode::F(n @ 5..=12) => {
let code = match n {
5 => 15,
6 => 17,
7 => 18,
8 => 19,
9 => 20,
10 => 21,
11 => 23,
12 => 24,
_ => unreachable!(),
};
Some(format!("\x1b[{code};{modifier}~").into_bytes())
}
_ => None,
}
}
/// xterm modifier encoding: 1 + shift(1) + alt(2) + ctrl(4)
/// Used for legacy modified special keys (arrows, function keys, etc.)
fn xterm_modifier(mods: KeyModifiers) -> u32 {
let mut m = 1u32;
if mods.contains(KeyModifiers::SHIFT) {
m += 1;
}
if mods.contains(KeyModifiers::ALT) {
m += 2;
}
if mods.contains(KeyModifiers::CONTROL) {
m += 4;
}
m
}
/// Kitty protocol modifier encoding: 1 + shift(1) + alt(2) + ctrl(4) + super(8) + hyper(16) + meta(32)
/// Superset of xterm — adds Super/Hyper/Meta bits.
fn kitty_modifier(mods: KeyModifiers) -> u32 {
let mut m = xterm_modifier(mods);
if mods.contains(KeyModifiers::SUPER) {
m += 8;
}
if mods.contains(KeyModifiers::HYPER) {
m += 16;
}
if mods.contains(KeyModifiers::META) {
m += 32;
}
m
}
fn encode_text_input(key: &TerminalKey) -> Option<Vec<u8>> {
let ch = match key.code {
KeyCode::Char(ch) => ch,
_ => return None,
};
if key.modifiers.is_empty() {
match key.kind {
crossterm::event::KeyEventKind::Press | crossterm::event::KeyEventKind::Repeat => {
let mut buf = [0u8; 4];
return Some(ch.encode_utf8(&mut buf).as_bytes().to_vec());
}
crossterm::event::KeyEventKind::Release => return Some(Vec::new()),
}
}
if key.modifiers != KeyModifiers::SHIFT {
return None;
}
let shifted_ch = shifted_text_char(key, ch)?;
match key.kind {
crossterm::event::KeyEventKind::Press | crossterm::event::KeyEventKind::Repeat => {
let mut buf = [0u8; 4];
Some(shifted_ch.encode_utf8(&mut buf).as_bytes().to_vec())
}
crossterm::event::KeyEventKind::Release => Some(Vec::new()),
}
}
fn shifted_text_char(key: &TerminalKey, ch: char) -> Option<char> {
if let Some(shifted) = key.shifted_codepoint.and_then(char::from_u32) {
return Some(shifted);
}
if ch.is_ascii_uppercase() {
return Some(ch);
}
if ch.is_ascii_lowercase() {
return Some(ch.to_ascii_uppercase());
}
None
}
fn canonical_kitty_char(ch: char, mods: KeyModifiers) -> char {
if mods.contains(KeyModifiers::SHIFT) && ch.is_ascii_uppercase() {
ch.to_ascii_lowercase()
} else {
ch
}
}
fn alternate_shifted_codepoint(key: &TerminalKey, flags: u16) -> Option<u32> {
if flags & KITTY_FLAG_REPORT_ALTERNATE_KEYS == 0 {
return None;
}
if let Some(shifted) = key.shifted_codepoint {
return Some(shifted);
}
match key.code {
KeyCode::Char(ch)
if key.modifiers.contains(KeyModifiers::SHIFT) && ch.is_ascii_uppercase() =>
{
Some(ch as u32)
}
_ => None,
}
}
fn kitty_event_suffix(key: &TerminalKey, flags: u16) -> Option<u8> {
if flags & KITTY_FLAG_REPORT_EVENT_TYPES == 0 {
return None;
}
Some(match key.kind {
crossterm::event::KeyEventKind::Press => 1,
crossterm::event::KeyEventKind::Repeat => 2,
crossterm::event::KeyEventKind::Release => 3,
})
}
fn encode_legacy_inner(key: KeyEvent) -> Vec<u8> {
match key.code {
KeyCode::Char(ch) => {
if key.modifiers.contains(KeyModifiers::CONTROL) {
let upper = ch.to_ascii_uppercase();
match upper {
'A'..='Z' => vec![upper as u8 - 64],
' ' | '@' | '2' => vec![0],
'[' | '3' => vec![27],
'\\' | '4' => vec![28],
']' | '5' => vec![29],
'^' | '6' => vec![30],
'_' | '7' | '-' => vec![31],
_ => vec![ch as u8],
}
} else {
let mut buf = [0u8; 4];
ch.encode_utf8(&mut buf).as_bytes().to_vec()
}
}
KeyCode::Enter => vec![b'\r'],
KeyCode::Backspace => vec![127],
KeyCode::Tab => vec![9],
KeyCode::BackTab => vec![27, 91, 90],
KeyCode::Esc => vec![27],
KeyCode::Left => vec![27, 91, 68],
KeyCode::Right => vec![27, 91, 67],
KeyCode::Up => vec![27, 91, 65],
KeyCode::Down => vec![27, 91, 66],
KeyCode::Home => vec![27, 91, 72],
KeyCode::End => vec![27, 91, 70],
KeyCode::PageUp => vec![27, 91, 53, 126],
KeyCode::PageDown => vec![27, 91, 54, 126],
KeyCode::Delete => vec![27, 91, 51, 126],
KeyCode::Insert => vec![27, 91, 50, 126],
KeyCode::F(n) => encode_f_key(n),
_ => vec![],
}
}
fn encode_f_key(n: u8) -> Vec<u8> {
match n {
1 => vec![27, 79, 80],
2 => vec![27, 79, 81],
3 => vec![27, 79, 82],
4 => vec![27, 79, 83],
5 => vec![27, 91, 49, 53, 126],
6 => vec![27, 91, 49, 55, 126],
7 => vec![27, 91, 49, 56, 126],
8 => vec![27, 91, 49, 57, 126],
9 => vec![27, 91, 50, 48, 126],
10 => vec![27, 91, 50, 49, 126],
11 => vec![27, 91, 50, 51, 126],
12 => vec![27, 91, 50, 52, 126],
_ => vec![],
}
}
#[cfg(test)]
mod tests {
use crossterm::event::{KeyCode, KeyEvent, KeyModifiers};
use super::*;
use crate::input::parse_terminal_key_sequence;
fn assert_terminal_key_eq(
actual: TerminalKey,
code: KeyCode,
modifiers: KeyModifiers,
kind: crossterm::event::KeyEventKind,
shifted_codepoint: Option<u32>,
) {
assert_eq!(actual.code, code);
assert_eq!(actual.modifiers, modifiers);
assert_eq!(actual.kind, kind);
assert_eq!(actual.shifted_codepoint, shifted_codepoint);
}
#[test]
fn legacy_enter() {
let key = KeyEvent::new(KeyCode::Enter, KeyModifiers::empty());
assert_eq!(encode_key(key, KeyboardProtocol::Legacy), vec![b'\r']);
}
#[test]
fn legacy_ctrl_c() {
let key = KeyEvent::new(KeyCode::Char('c'), KeyModifiers::CONTROL);
assert_eq!(encode_key(key, KeyboardProtocol::Legacy), vec![3]);
}
#[test]
fn legacy_shift_enter_is_just_cr() {
let key = KeyEvent::new(KeyCode::Enter, KeyModifiers::SHIFT);
assert_eq!(encode_key(key, KeyboardProtocol::Legacy), vec![b'\r']);
}
#[test]
fn legacy_alt_up() {
let key = KeyEvent::new(KeyCode::Up, KeyModifiers::ALT);
assert_eq!(encode_key(key, KeyboardProtocol::Legacy), b"\x1b[1;3A");
}
#[test]
fn legacy_shift_right() {
let key = KeyEvent::new(KeyCode::Right, KeyModifiers::SHIFT);
assert_eq!(encode_key(key, KeyboardProtocol::Legacy), b"\x1b[1;2C");
}
#[test]
fn legacy_ctrl_left() {
let key = KeyEvent::new(KeyCode::Left, KeyModifiers::CONTROL);
assert_eq!(encode_key(key, KeyboardProtocol::Legacy), b"\x1b[1;5D");
}
#[test]
fn legacy_ctrl_shift_end() {
let key = KeyEvent::new(KeyCode::End, KeyModifiers::CONTROL | KeyModifiers::SHIFT);
assert_eq!(encode_key(key, KeyboardProtocol::Legacy), b"\x1b[1;6F");
}
#[test]
fn legacy_alt_delete() {
let key = KeyEvent::new(KeyCode::Delete, KeyModifiers::ALT);
assert_eq!(encode_key(key, KeyboardProtocol::Legacy), b"\x1b[3;3~");
}
#[test]
fn legacy_shift_f5() {
let key = KeyEvent::new(KeyCode::F(5), KeyModifiers::SHIFT);
assert_eq!(encode_key(key, KeyboardProtocol::Legacy), b"\x1b[15;2~");
}
#[test]
fn legacy_alt_char_still_esc_prefix() {
let key = KeyEvent::new(KeyCode::Char('a'), KeyModifiers::ALT);
assert_eq!(encode_key(key, KeyboardProtocol::Legacy), b"\x1ba");
}
#[test]
fn application_cursor_keys_use_ss3_sequences() {
assert_eq!(encode_cursor_key(KeyCode::Up, true), b"\x1bOA");
assert_eq!(encode_cursor_key(KeyCode::Down, true), b"\x1bOB");
}
#[test]
fn normal_cursor_keys_use_csi_sequences() {
assert_eq!(encode_cursor_key(KeyCode::Up, false), b"\x1b[A");
assert_eq!(encode_cursor_key(KeyCode::Down, false), b"\x1b[B");
}
#[test]
fn sgr_mouse_scroll_encodes_wheel_button_and_coordinates() {
let encoded = encode_mouse_scroll(
crossterm::event::MouseEventKind::ScrollDown,
4,
6,
KeyModifiers::SHIFT,
MouseProtocolEncoding::Sgr,
)
.expect("mouse scroll should encode");
assert_eq!(encoded, b"\x1b[<69;5;7M");
}
#[test]
fn sgr_mouse_release_keeps_button_code() {
let encoded = encode_mouse_button(
crossterm::event::MouseEventKind::Up(crossterm::event::MouseButton::Left),
11,
9,
KeyModifiers::empty(),
MouseProtocolEncoding::Sgr,
)
.expect("mouse release should encode");
assert_eq!(encoded, b"\x1b[<0;12;10m");
}
#[test]
fn kitty_shift_enter() {
let key = KeyEvent::new(KeyCode::Enter, KeyModifiers::SHIFT);
assert_eq!(
encode_key(key, KeyboardProtocol::Kitty { flags: 1 }),
b"\x1b[13;2u"
);
}
#[test]
fn kitty_ctrl_shift_a() {
let key = KeyEvent::new(
KeyCode::Char('a'),
KeyModifiers::CONTROL | KeyModifiers::SHIFT,
);
assert_eq!(
encode_key(key, KeyboardProtocol::Kitty { flags: 1 }),
b"\x1b[97;6u"
);
}
#[test]
fn kitty_shift_uppercase_letter_sends_text() {
let key = KeyEvent::new(KeyCode::Char('L'), KeyModifiers::SHIFT);
assert_eq!(encode_key(key, KeyboardProtocol::Kitty { flags: 1 }), b"L");
}
#[test]
fn kitty_shift_uppercase_letter_ignores_alternate_key_reporting_for_text() {
let key = KeyEvent::new(KeyCode::Char('L'), KeyModifiers::SHIFT);
assert_eq!(encode_key(key, KeyboardProtocol::Kitty { flags: 7 }), b"L");
}
#[test]
fn kitty_shift_lowercase_letter_sends_uppercase_text() {
let key = KeyEvent::new(KeyCode::Char('l'), KeyModifiers::SHIFT);
assert_eq!(encode_key(key, KeyboardProtocol::Kitty { flags: 1 }), b"L");
}
#[test]
fn kitty_alt_shift_uppercase_letter_uses_base_codepoint() {
let key = KeyEvent::new(KeyCode::Char('L'), KeyModifiers::ALT | KeyModifiers::SHIFT);
assert_eq!(
encode_key(key, KeyboardProtocol::Kitty { flags: 1 }),
b"\x1b[108;4u"
);
}
#[test]
fn kitty_ctrl_shift_uppercase_letter_uses_base_codepoint() {
let key = KeyEvent::new(
KeyCode::Char('L'),
KeyModifiers::CONTROL | KeyModifiers::SHIFT,
);
assert_eq!(
encode_key(key, KeyboardProtocol::Kitty { flags: 1 }),
b"\x1b[108;6u"
);
}
#[test]
fn legacy_shift_uppercase_letter_stays_uppercase() {
let key = KeyEvent::new(KeyCode::Char('L'), KeyModifiers::SHIFT);
assert_eq!(encode_key(key, KeyboardProtocol::Legacy), b"L");
}
#[test]
fn kitty_alt_enter() {
let key = KeyEvent::new(KeyCode::Enter, KeyModifiers::ALT);
assert_eq!(
encode_key(key, KeyboardProtocol::Kitty { flags: 1 }),
b"\x1b[13;3u"
);
}
#[test]
fn kitty_plain_ctrl_c_uses_csi_u() {
let key = KeyEvent::new(KeyCode::Char('c'), KeyModifiers::CONTROL);
assert_eq!(
encode_key(key, KeyboardProtocol::Kitty { flags: 1 }),
b"\x1b[99;5u"
);
}
#[test]
fn kitty_plain_ctrl_c_includes_press_event_when_requested() {
let key = KeyEvent::new(KeyCode::Char('c'), KeyModifiers::CONTROL);
assert_eq!(
encode_key(key, KeyboardProtocol::Kitty { flags: 3 }),
b"\x1b[99;5:1u"
);
}
#[test]
fn kitty_unmodified_uses_legacy() {
let key = KeyEvent::new(KeyCode::Char('a'), KeyModifiers::empty());
assert_eq!(encode_key(key, KeyboardProtocol::Kitty { flags: 1 }), b"a");
}
#[test]
fn kitty_shift_tab() {
let key = KeyEvent::new(KeyCode::Tab, KeyModifiers::SHIFT);
assert_eq!(
encode_key(key, KeyboardProtocol::Kitty { flags: 1 }),
b"\x1b[9;2u"
);
}
#[test]
fn kitty_ctrl_shift_enter() {
let key = KeyEvent::new(KeyCode::Enter, KeyModifiers::CONTROL | KeyModifiers::SHIFT);
assert_eq!(
encode_key(key, KeyboardProtocol::Kitty { flags: 1 }),
b"\x1b[13;6u"
);
}
#[test]
fn kitty_repeat_event_type_is_encoded_when_requested() {
let key = KeyEvent::new_with_kind(
KeyCode::Enter,
KeyModifiers::SHIFT,
crossterm::event::KeyEventKind::Repeat,
);
assert_eq!(
encode_key(key, KeyboardProtocol::Kitty { flags: 3 }),
b"\x1b[13;2:2u"
);
}
#[test]
fn kitty_shift_letter_release_does_not_emit_text() {
let key = KeyEvent::new_with_kind(
KeyCode::Char('L'),
KeyModifiers::SHIFT,
crossterm::event::KeyEventKind::Release,
);
assert_eq!(encode_key(key, KeyboardProtocol::Kitty { flags: 7 }), b"");
}
#[test]
fn kitty_shifted_symbol_sends_text() {
let key = TerminalKey::new(KeyCode::Char('1'), KeyModifiers::SHIFT)
.with_shifted_codepoint('!' as u32);
assert_eq!(
encode_terminal_key(key, KeyboardProtocol::Kitty { flags: 7 }),
b"!"
);
}
#[test]
fn legacy_modified_special_roundtrip_matrix() {
let cases = [
KeyEvent::new(KeyCode::Up, KeyModifiers::ALT),
KeyEvent::new(KeyCode::Down, KeyModifiers::ALT),
KeyEvent::new(KeyCode::Right, KeyModifiers::SHIFT),
KeyEvent::new(KeyCode::Left, KeyModifiers::CONTROL),
KeyEvent::new(KeyCode::Home, KeyModifiers::CONTROL),
KeyEvent::new(KeyCode::End, KeyModifiers::CONTROL | KeyModifiers::SHIFT),
KeyEvent::new(KeyCode::PageUp, KeyModifiers::ALT),
KeyEvent::new(KeyCode::PageDown, KeyModifiers::CONTROL),
KeyEvent::new(KeyCode::Insert, KeyModifiers::SHIFT),
KeyEvent::new(KeyCode::Delete, KeyModifiers::ALT),
];
for key in cases {
let encoded = encode_key(key, KeyboardProtocol::Legacy);
let parsed =
parse_terminal_key_sequence(std::str::from_utf8(&encoded).unwrap()).unwrap();
assert_terminal_key_eq(parsed, key.code, key.modifiers, key.kind, None);
}
}
#[test]
fn kitty_shifted_symbol_prefers_text_over_roundtrip_key_identity() {
let key = TerminalKey::new(KeyCode::Char('1'), KeyModifiers::SHIFT)
.with_shifted_codepoint('!' as u32);
let encoded = encode_terminal_key(key, KeyboardProtocol::Kitty { flags: 7 });
assert_eq!(encoded, b"!");
}
#[test]
fn legacy_basic_special_roundtrip_matrix() {
let cases = [
KeyEvent::new(KeyCode::Enter, KeyModifiers::empty()),
KeyEvent::new(KeyCode::Tab, KeyModifiers::empty()),
KeyEvent::new(KeyCode::Backspace, KeyModifiers::empty()),
KeyEvent::new(KeyCode::Esc, KeyModifiers::empty()),
KeyEvent::new(KeyCode::Up, KeyModifiers::empty()),
KeyEvent::new(KeyCode::Down, KeyModifiers::empty()),
KeyEvent::new(KeyCode::Left, KeyModifiers::empty()),
KeyEvent::new(KeyCode::Right, KeyModifiers::empty()),
KeyEvent::new(KeyCode::Home, KeyModifiers::empty()),
KeyEvent::new(KeyCode::End, KeyModifiers::empty()),
KeyEvent::new(KeyCode::PageUp, KeyModifiers::empty()),
KeyEvent::new(KeyCode::PageDown, KeyModifiers::empty()),
KeyEvent::new(KeyCode::Insert, KeyModifiers::empty()),
KeyEvent::new(KeyCode::Delete, KeyModifiers::empty()),
];
for key in cases {
let encoded = encode_key(key, KeyboardProtocol::Legacy);
let parsed =
parse_terminal_key_sequence(std::str::from_utf8(&encoded).unwrap()).unwrap();
assert_terminal_key_eq(parsed, key.code, key.modifiers, key.kind, None);
}
}
#[test]
fn kitty_shifted_symbol_pair_matrix_is_encoded_as_text() {
let cases = [('1', '!'), ('/', '?'), ('[', '{')];
for (base, shifted) in cases {
let key = TerminalKey::new(KeyCode::Char(base), KeyModifiers::SHIFT)
.with_shifted_codepoint(shifted as u32);
let encoded = encode_terminal_key(key, KeyboardProtocol::Kitty { flags: 7 });
assert_eq!(encoded, shifted.to_string().into_bytes(), "base={base}");
}
}
#[test]
fn chinese_char_encodes_as_utf8() {
let key = TerminalKey::new(KeyCode::Char('中'), KeyModifiers::empty());
let encoded = encode_terminal_key(key, KeyboardProtocol::Legacy);
assert_eq!(encoded, "中".as_bytes());
}
#[test]
fn chinese_char_with_kitty_protocol_encodes_as_utf8() {
let key = TerminalKey::new(KeyCode::Char('文'), KeyModifiers::empty());
let encoded = encode_terminal_key(key, KeyboardProtocol::Kitty { flags: 7 });
assert_eq!(encoded, "文".as_bytes());
}
#[test]
fn chinese_char_with_modifiers_falls_back_to_kitty_encoding() {
let key = TerminalKey::new(KeyCode::Char('测'), KeyModifiers::ALT);
let encoded = encode_terminal_key(key, KeyboardProtocol::Kitty { flags: 7 });
assert!(!encoded.is_empty());
assert_ne!(encoded, "测".as_bytes());
}
}