Skip to main content

mx_remote/wire/
enums.rs

1// Author: Lars Op den Kamp (lars@opdenkamp-it.nl)
2// Copyright (c) 2026 Op den Kamp IT Solutions
3
4//! Wire enumerations and bitmasks.
5//!
6//! Each type is a newtype over the integer that travels on the wire, with
7//! named constants rather than a closed set of variants. A value this library
8//! has no name for reaches the caller as it arrived: zero is a valid value for
9//! most of these, so a confidently wrong reading is worse than an unrecognised
10//! one.
11
12use core::fmt;
13use core::ops::{BitAnd, BitOr, BitOrAssign};
14
15/// Declares a bitmask newtype with the given named bit constants.
16///
17/// The representation defaults to `u32`; give it explicitly as `Name: u64` for
18/// a mask whose wire field is wider.
19macro_rules! bitmask {
20    (
21        $(#[$meta:meta])*
22        $name:ident { $( $(#[$cmeta:meta])* $cname:ident = $value:expr; )* }
23    ) => {
24        bitmask! {
25            $(#[$meta])*
26            $name: u32 { $( $(#[$cmeta])* $cname = $value; )* }
27        }
28    };
29    (
30        $(#[$meta:meta])*
31        $name:ident: $repr:ty { $( $(#[$cmeta:meta])* $cname:ident = $value:expr; )* }
32    ) => {
33        $(#[$meta])*
34        #[derive(Clone, Copy, Debug, Default, PartialEq, Eq, PartialOrd, Ord, Hash)]
35        pub struct $name($repr);
36
37        impl $name {
38            /// No bits set.
39            pub const NONE: Self = Self(0);
40
41            $( $(#[$cmeta])* pub const $cname: Self = Self($value); )*
42
43            /// Wraps a raw wire value, including bits this library has no name for.
44            pub const fn from_bits(bits: $repr) -> Self {
45                Self(bits)
46            }
47
48            /// Returns the raw wire value.
49            pub const fn bits(self) -> $repr {
50                self.0
51            }
52
53            /// Reports whether every bit in `other` is set.
54            pub const fn has(self, other: Self) -> bool {
55                self.0 & other.0 == other.0
56            }
57
58            /// Reports whether no bit is set.
59            pub const fn is_empty(self) -> bool {
60                self.0 == 0
61            }
62        }
63
64        impl BitOr for $name {
65            type Output = Self;
66            fn bitor(self, rhs: Self) -> Self {
67                Self(self.0 | rhs.0)
68            }
69        }
70
71        impl BitOrAssign for $name {
72            fn bitor_assign(&mut self, rhs: Self) {
73                self.0 |= rhs.0;
74            }
75        }
76
77        impl BitAnd for $name {
78            type Output = Self;
79            fn bitand(self, rhs: Self) -> Self {
80                Self(self.0 & rhs.0)
81            }
82        }
83
84        impl fmt::Display for $name {
85            fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
86                // Two hex digits per byte of the wire field, plus "0x".
87                write!(
88                    f,
89                    "{:#0width$x}",
90                    self.0,
91                    width = core::mem::size_of::<$repr>() * 2 + 2
92                )
93            }
94        }
95    };
96}
97
98/// Declares an enumeration newtype over `$repr` with the given named constants.
99macro_rules! wire_enum {
100    (
101        $(#[$meta:meta])*
102        $name:ident: $repr:ty { $( $(#[$cmeta:meta])* $cname:ident = $value:expr; )* }
103    ) => {
104        $(#[$meta])*
105        #[derive(Clone, Copy, Debug, Default, PartialEq, Eq, PartialOrd, Ord, Hash)]
106        pub struct $name($repr);
107
108        impl $name {
109            $( $(#[$cmeta])* pub const $cname: Self = Self($value); )*
110
111            /// Wraps a raw wire value, including one this library has no name for.
112            pub const fn from_wire(value: $repr) -> Self {
113                Self(value)
114            }
115
116            /// Returns the raw wire value.
117            pub const fn to_wire(self) -> $repr {
118                self.0
119            }
120        }
121    };
122}
123
124bitmask! {
125    /// Capabilities a device reports in its hello frame.
126    DeviceFeature {
127        /// Receives infrared.
128        IR_RX = 1 << 0;
129        /// Transmits infrared.
130        IR_TX = 1 << 1;
131        /// Speaks CEC.
132        CEC = 1 << 2;
133        /// Acts as a V2IP stream source.
134        V2IP_SOURCE = 1 << 3;
135        /// Acts as a V2IP stream sink.
136        V2IP_SINK = 1 << 4;
137        /// Routes video.
138        VIDEO_ROUTING = 1 << 5;
139        /// Routes audio.
140        AUDIO_ROUTING = 1 << 6;
141        /// Controls volume.
142        VOLUME_CONTROL = 1 << 7;
143        /// Supports audio return.
144        AUDIO_RETURN = 1 << 8;
145        /// Passes remote-control commands through.
146        REMOTE_CONTROL = 1 << 9;
147        /// Installer setup has been completed.
148        SETUP_COMPLETED = 1 << 10;
149        /// Is the master of its mesh.
150        MESH_MASTER = 1 << 11;
151        /// Has a notification pending.
152        STATUS_NOTIFY = 1 << 12;
153        /// Has a warning pending.
154        STATUS_WARNING = 1 << 13;
155        /// Has an error pending.
156        STATUS_ERROR = 1 << 14;
157        /// Is about to reboot.
158        STATUS_REBOOT = 1 << 15;
159        /// Is a member of a mesh.
160        MESH_MEMBER = 1 << 16;
161        /// Is an audio amplifier.
162        AUDIO_AMPLIFIER = 1 << 17;
163        /// Is still booting.
164        BOOTING = 1 << 18;
165        /// Is a management client rather than a device.
166        MANAGER = 1 << 19;
167        /// Is in power-save mode.
168        STATUS_POWER_SAVE = 1 << 20;
169        /// Supports meshing.
170        MESH = 1 << 21;
171        /// Is a multiviewer.
172        MULTIVIEWER = 1 << 22;
173        /// Has crashed since it last booted.
174        STATUS_CRASHED = 1 << 23;
175        /// Supports video walls.
176        VIDEO_WALL = 1 << 24;
177        /// Initialises the configuration it broadcasts.
178        ///
179        /// Firmware without this bit sends a device configuration built over
180        /// uninitialised memory, so fields it did not mean to write carry junk.
181        CONFIG_INITIALISED = 1 << 25;
182        /// Set while the device is in its boot loader.
183        BOOT_BIT = 1 << 31;
184    }
185}
186
187bitmask! {
188    /// What a V2IP device's video processor supports, as the device reports it
189    /// in its configuration.
190    ///
191    /// Read-only, and a device's own: it fills the field in only on the frame
192    /// describing itself, and leaves it zero on one it sends to configure
193    /// another device. There is no write path.
194    ///
195    /// Bits are assigned by the video processor and only ever appended, so a
196    /// bit this library has no name for is a later capability rather than an
197    /// error. A device reports no features at all until its processor answers,
198    /// and an older processor answers with none of the optional commands, so an
199    /// empty mask is never reported as a capability set - see
200    /// [`crate::Remote::v2ip_features`], which reports it as unknown instead.
201    V2ipFpgaFeature: u64 {
202        /// Applies a DSCP marking to the streams it sources.
203        SOURCE_DSCP = 1 << 0;
204        /// Reports the audio format arriving at its sink.
205        SINK_AUDIO_FORMAT = 1 << 1;
206        /// Places a tiling window on its sink.
207        SINK_TILING_WINDOW = 1 << 2;
208        /// Reports the state of its sink's overlay.
209        SINK_OVERLAY_STATE = 1 << 3;
210        /// Reports its sink's state.
211        SINK_STATE = 1 << 4;
212        /// Reports information about the stream its sink receives.
213        SINK_STREAM_INFO = 1 << 5;
214    }
215}
216
217bitmask! {
218    /// Capabilities of a single bay.
219    BayFeatures {
220        /// HDMI output.
221        HDMI_OUT = 1 << 0;
222        /// HDMI input.
223        HDMI_IN = 1 << 1;
224        /// Digital audio output.
225        AUDIO_DIG_OUT = 1 << 2;
226        /// Digital audio input.
227        AUDIO_DIG_IN = 1 << 3;
228        /// Analogue audio output.
229        AUDIO_ANA_OUT = 1 << 4;
230        /// Analogue audio input.
231        AUDIO_ANA_IN = 1 << 5;
232        /// Infrared input.
233        IR_IN = 1 << 6;
234        /// Infrared output.
235        IR_OUT = 1 << 7;
236        /// Amplified audio output.
237        AUDIO_AMP_OUT = 1 << 8;
238        /// Remote-control output.
239        RC_OUT = 1 << 9;
240        /// Remote-control input.
241        RC_IN = 1 << 10;
242        /// Dolby decoding.
243        DOLBY = 1 << 11;
244        /// Switches itself off when idle.
245        AUTO_OFF = 1 << 12;
246        /// Is a remote V2IP source.
247        V2IP_SOURCE_REMOTE = 1 << 13;
248        /// Is a remote V2IP sink.
249        V2IP_SINK_REMOTE = 1 << 14;
250        /// Is a local V2IP source.
251        V2IP_SOURCE_LOCAL = 1 << 15;
252        /// Is a local V2IP sink.
253        V2IP_SINK_LOCAL = 1 << 16;
254    }
255}
256
257bitmask! {
258    /// Live status flags of a single bay.
259    ///
260    /// Bits 16-19 and 22-23 are bit-fields rather than flags; read them with
261    /// [`BayStatus::rc_type`] and [`BayStatus::hdcp`].
262    BayStatus {
263        /// The bay reports a fault.
264        FAULT = 1 << 0;
265        /// The bay is hidden from the user interface.
266        HIDDEN = 1 << 1;
267        /// The bay has power.
268        POWERED = 1 << 2;
269        /// A signal is present.
270        SIGNAL_DETECTED = 1 << 3;
271        /// Hot-plug detect is asserted.
272        HPD_DETECTED = 1 << 4;
273        /// The signal is scrambled.
274        SIGNAL_SCRAMBLE = 1 << 5;
275        /// An HDBaseT link is up.
276        HDBT_CONNECTED = 1 << 6;
277        /// A CEC device answered.
278        CEC_DETECTED = 1 << 7;
279        /// The attached device was powered on.
280        POWERED_ON = 1 << 8;
281        /// The attached device was powered off.
282        POWERED_OFF = 1 << 9;
283        /// Audio return over HDMI is active.
284        AUDIO_ARC_HDMI = 1 << 10;
285        /// Audio return over optical is active.
286        AUDIO_ARC_OPTIC = 1 << 11;
287        /// Audio return over analogue is active.
288        AUDIO_ARC_ANALOG = 1 << 12;
289        /// The bay is offline.
290        OFFLINE = 1 << 13;
291        /// The V2IP decoder is disabled.
292        DECODER_DISABLE = 1 << 14;
293        /// The V2IP encoder is disabled.
294        ENCODER_DISABLE = 1 << 15;
295        /// CEC is switched off for this bay.
296        CEC_DISABLED = 1 << 20;
297        /// The V2IP encoder reports an error.
298        ENCODER_ERROR = 1 << 21;
299    }
300}
301
302impl BayStatus {
303    const RC_TYPE_SHIFT: u32 = 16;
304    const RC_TYPE_MASK: u32 = 0xF << Self::RC_TYPE_SHIFT;
305    const HDCP_SHIFT: u32 = 22;
306    const HDCP_MASK: u32 = 0x3 << Self::HDCP_SHIFT;
307
308    /// Extracts the remote-control type carried in bits 16-19.
309    pub const fn rc_type(self) -> RcType {
310        RcType(((self.0 & Self::RC_TYPE_MASK) >> Self::RC_TYPE_SHIFT) as u8)
311    }
312
313    /// Extracts the HDCP version carried in bits 22-23.
314    pub const fn hdcp(self) -> u8 {
315        ((self.0 & Self::HDCP_MASK) >> Self::HDCP_SHIFT) as u8
316    }
317}
318
319bitmask! {
320    /// Media carried by a virtual link.
321    LinkFeature {
322        /// Video over HDMI.
323        VIDEO_HDMI = 1 << 0;
324        /// Audio over optical.
325        AUDIO_OPTICAL = 1 << 1;
326        /// Audio over analogue.
327        AUDIO_ANALOG = 1 << 2;
328        /// Infrared.
329        IR = 1 << 3;
330        /// Remote control.
331        RC = 1 << 4;
332    }
333}
334
335wire_enum! {
336    /// A remote-control action.
337    RcAction: u16 {
338        /// Toggle power.
339        POWER_TOGGLE = 0;
340        /// Power on.
341        POWER_ON = 1;
342        /// Power off.
343        POWER_OFF = 2;
344        /// Volume down.
345        VOLUME_DOWN = 3;
346        /// Volume up.
347        VOLUME_UP = 4;
348        /// Toggle mute.
349        VOLUME_MUTE = 5;
350    }
351}
352
353wire_enum! {
354    /// A remote-control key code (CEC or IR).
355    RcKey: u16 {
356        /// Digit 0.
357        NUM0 = 0;
358        /// Digit 1.
359        NUM1 = 1;
360        /// Digit 2.
361        NUM2 = 2;
362        /// Digit 3.
363        NUM3 = 3;
364        /// Digit 4.
365        NUM4 = 4;
366        /// Digit 5.
367        NUM5 = 5;
368        /// Digit 6.
369        NUM6 = 6;
370        /// Digit 7.
371        NUM7 = 7;
372        /// Digit 8.
373        NUM8 = 8;
374        /// Digit 9.
375        NUM9 = 9;
376        /// Confirm the highlighted item.
377        SELECT = 10;
378        /// Go back one step.
379        BACK = 11;
380        /// Navigate up.
381        UP = 12;
382        /// Navigate down.
383        DOWN = 13;
384        /// Navigate left.
385        LEFT = 14;
386        /// Navigate right.
387        RIGHT = 15;
388        /// Open the main menu.
389        MENU = 16;
390        /// Open the content menu.
391        CONTENT_MENU = 17;
392        /// Next channel.
393        CHANNEL_UP = 18;
394        /// Previous channel.
395        CHANNEL_DOWN = 19;
396        /// Start playback.
397        PLAY = 20;
398        /// Pause playback.
399        PAUSE = 21;
400        /// Stop playback.
401        STOP = 22;
402        /// Start recording.
403        RECORD = 23;
404        /// Fast forward.
405        FAST_FORWARD = 24;
406        /// Rewind.
407        REWIND = 25;
408        /// Red colour key.
409        RED = 26;
410        /// Green colour key.
411        GREEN = 27;
412        /// Yellow colour key.
413        YELLOW = 28;
414        /// Blue colour key.
415        BLUE = 29;
416        /// Open help.
417        HELP = 30;
418        /// Show information.
419        INFORMATION = 31;
420        /// Open teletext.
421        TEXT = 32;
422        /// Open the programme guide.
423        GUIDE = 33;
424        /// Open video on demand.
425        VIDEO_ON_DEMAND = 34;
426        /// Return to the previous channel.
427        PREVIOUS_CHANNEL = 80;
428        /// Toggle 3D mode.
429        MODE_3D = 81;
430        /// Toggle subtitles.
431        SUBTITLE = 82;
432        /// Select an audio track.
433        SOUND_SELECT = 83;
434        /// Select an input.
435        INPUT_SELECT = 84;
436        /// Eject the medium.
437        EJECT = 85;
438        /// Next chapter.
439        NEXT_CHAPTER = 86;
440        /// Previous chapter.
441        PREV_CHAPTER = 87;
442        /// Open interactive services.
443        INTERACTIVE = 128;
444        /// Open search.
445        SEARCH = 129;
446        /// Sky home key.
447        SKY = 130;
448        /// Base of the range carrying a raw CEC user-control code.
449        CUSTOM_CEC = 1280;
450        /// Base of the range carrying a raw Sky key code.
451        CUSTOM_SKY = 2048;
452    }
453}
454
455wire_enum! {
456    /// The remote-control protocol of a connected sink or source.
457    RcType: u8 {
458        /// Infrared.
459        IR = 0;
460        /// HDMI CEC.
461        CEC = 1;
462        /// Sky UK over IP.
463        SKY_UK = 2;
464        /// TiVo.
465        TIVO = 3;
466        /// Kodi.
467        KODI = 4;
468        /// Dish.
469        DISH = 5;
470        /// DirecTV.
471        DIRECTV = 6;
472        /// Another MX Remote device.
473        MX_REMOTE = 7;
474    }
475}
476
477impl fmt::Display for RcType {
478    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
479        let name = match *self {
480            Self::IR => "IR",
481            Self::CEC => "CEC",
482            Self::SKY_UK => "Sky",
483            Self::TIVO => "TiVo",
484            Self::KODI => "Kodi",
485            Self::DISH => "Dish",
486            Self::DIRECTV => "DirecTV",
487            Self::MX_REMOTE => "MX-Remote",
488            _ => "Unknown",
489        };
490        f.write_str(name)
491    }
492}
493
494wire_enum! {
495    /// An EDID preset selectable on an HDMI input.
496    EdidProfile: u16 {
497        /// 1080p with stereo audio.
498        STEREO_1080P = 0;
499        /// A fixed EDID stored on the device.
500        FIXED = 1;
501        /// 4K.
502        UHD_4K = 2;
503        /// 1080p with 5.1 audio.
504        SURROUND51_1080P = 3;
505        /// 720p.
506        HD_720P = 4;
507        /// 1080p with 7.1 audio.
508        SURROUND71_1080P = 5;
509        /// 4K with 7.1 audio.
510        SURROUND71_4K = 6;
511        /// 4K HDR with stereo audio.
512        HDR_STEREO_4K = 7;
513        /// 4K HDR with 7.1 audio.
514        HDR_SURROUND71_4K = 8;
515        /// 4K HDR, audio to the AVR only.
516        HDR_AVR_ONLY_4K = 9;
517        /// The lowest common denominator of the connected sinks.
518        LOWEST_COMMON = 10;
519        /// The lowest common denominator of every sink, connected or not.
520        LOWEST_COMMON_ALL = 11;
521        /// 4K HDR with Dolby Atmos.
522        HDR_ATMOS_4K = 12;
523        /// Copy the EDID of sink 1; the range runs to [`EdidProfile::SINK_32`].
524        SINK_1 = 101;
525        /// Copy the EDID of sink 32; the range starts at [`EdidProfile::SINK_1`].
526        SINK_32 = 132;
527        /// Base of the range carrying a user-supplied EDID.
528        CUSTOM_0 = 500;
529        /// The device reports no profile.
530        UNKNOWN = 0xFFF;
531    }
532}
533
534impl fmt::Display for EdidProfile {
535    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
536        let name = match *self {
537            Self::STEREO_1080P => "1080p stereo",
538            Self::FIXED => "fixed",
539            Self::UHD_4K => "4K",
540            Self::SURROUND51_1080P => "1080p 5.1",
541            Self::HD_720P => "720p",
542            Self::SURROUND71_1080P => "1080p 7.1",
543            Self::SURROUND71_4K => "4K 7.1",
544            Self::HDR_STEREO_4K => "4K HDR Stereo",
545            Self::HDR_SURROUND71_4K => "4K HDR 7.1",
546            Self::HDR_AVR_ONLY_4K => "4K HDR AVR",
547            Self::LOWEST_COMMON => "lowest common denominator",
548            Self::LOWEST_COMMON_ALL => "lowest common denominator (all sinks)",
549            Self::HDR_ATMOS_4K => "4K HDR Dolby Atmos",
550            _ => {
551                if self.0 >= Self::SINK_1.0 && self.0 <= Self::SINK_32.0 {
552                    return write!(f, "copy from sink #{}", self.0 - Self::SINK_1.0 + 1);
553                }
554                return write!(f, "custom #{}", self.0);
555            }
556        };
557        f.write_str(name)
558    }
559}
560
561wire_enum! {
562    /// A firmware component.
563    FirmwareType: u8 {
564        /// The component is not known.
565        UNKNOWN = 0;
566        /// The FPGA bitstream.
567        FPGA = 1;
568        /// The Linux system image.
569        LINUX = 2;
570        /// A loadable overlay.
571        LOADING_OVERLAY = 3;
572    }
573}
574
575impl fmt::Display for FirmwareType {
576    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
577        let name = match *self {
578            Self::FPGA => "FPGA",
579            Self::LINUX => "Linux",
580            Self::LOADING_OVERLAY => "Loading Overlay",
581            _ => "Unknown",
582        };
583        f.write_str(name)
584    }
585}
586
587wire_enum! {
588    /// The negotiated speed of a network port.
589    UtpLinkSpeed: u8 {
590        /// The device reports no speed.
591        UNKNOWN = 0;
592        /// 10Mbit/s.
593        SPEED_10M = 1;
594        /// 100Mbit/s.
595        SPEED_100M = 2;
596        /// 200Mbit/s.
597        SPEED_200M = 3;
598        /// 1Gbit/s.
599        SPEED_1G = 4;
600    }
601}
602
603impl fmt::Display for UtpLinkSpeed {
604    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
605        let name = match *self {
606            Self::SPEED_10M => "10Mbit/s",
607            Self::SPEED_100M => "100Mbit/s",
608            Self::SPEED_200M => "200Mbit/s",
609            Self::SPEED_1G => "1Gbit/s",
610            _ => "Unknown",
611        };
612        f.write_str(name)
613    }
614}
615
616wire_enum! {
617    /// The window layout of a multiviewer.
618    MultiviewerViewMode: u8 {
619        /// The device reports no layout.
620        UNKNOWN = 0;
621        /// One full-screen window.
622        SINGLE = 1;
623        /// Picture in picture.
624        PIP = 2;
625        /// Two windows, large.
626        TWO_SCREEN_LARGE = 3;
627        /// Two windows, small.
628        TWO_SCREEN_SMALL = 4;
629        /// Three windows, large.
630        THREE_SCREEN_LARGE = 5;
631        /// Three windows, small.
632        THREE_SCREEN_SMALL = 6;
633        /// Four windows, equal size.
634        FOUR_SCREEN_EQUAL = 7;
635        /// Four windows, small.
636        FOUR_SCREEN_SMALL = 8;
637    }
638}
639
640wire_enum! {
641    /// The corner a multiviewer places its picture-in-picture window in.
642    MultiviewerPipPosition: u8 {
643        /// The device reports no position.
644        UNKNOWN = 0;
645        /// Top left.
646        LEFT_TOP = 1;
647        /// Bottom left.
648        LEFT_BOTTOM = 2;
649        /// Top right.
650        RIGHT_TOP = 3;
651        /// Bottom right.
652        RIGHT_BOTTOM = 4;
653    }
654}
655
656wire_enum! {
657    /// The size of a multiviewer's picture-in-picture window.
658    MultiviewerPipSize: u8 {
659        /// The device reports no size.
660        UNKNOWN = 0;
661        /// Small.
662        SMALL = 1;
663        /// Medium.
664        MEDIUM = 2;
665        /// Large.
666        LARGE = 3;
667    }
668}
669
670wire_enum! {
671    /// The resolution and refresh rate a multiviewer drives its output at.
672    MultiviewerOutputMode: u8 {
673        /// The device reports no output mode.
674        UNKNOWN = 0;
675        /// 4096x2160p60.
676        DCI4K_P60 = 1;
677        /// 4096x2160p50.
678        DCI4K_P50 = 2;
679        /// 3840x2160p60.
680        UHD_P60 = 3;
681        /// 3840x2160p50.
682        UHD_P50 = 4;
683        /// 3840x2160p30.
684        UHD_P30 = 5;
685        /// 3840x2160p25.
686        UHD_P25 = 6;
687        /// 1920x1200p60, reduced blanking.
688        WUXGA_P60_RB = 7;
689        /// 1920x1080p60.
690        HD1080_P60 = 8;
691        /// 1920x1080p50.
692        HD1080_P50 = 9;
693        /// 1360x768p60.
694        WXGA_P60 = 10;
695        /// 1280x800p60.
696        WXGA800_P60 = 11;
697        /// 1280x720p60.
698        HD720_P60 = 12;
699        /// 1280x720p50.
700        HD720_P50 = 13;
701        /// 1024x768p60.
702        XGA_P60 = 14;
703    }
704}
705
706wire_enum! {
707    /// The HDCP version a multiviewer output negotiates.
708    MultiviewerHdcpMode: u8 {
709        /// The device reports no HDCP mode.
710        UNKNOWN = 0;
711        /// HDCP 1.4.
712        V14 = 1;
713        /// HDCP 2.2.
714        V22 = 2;
715        /// Content protection off.
716        OFF = 3;
717    }
718}
719
720wire_enum! {
721    /// The IT-content flag a multiviewer sets on its output.
722    MultiviewerItcMode: u8 {
723        /// The device reports no IT-content mode.
724        UNKNOWN = 0;
725        /// Video content.
726        VIDEO = 1;
727        /// PC content.
728        PC = 2;
729    }
730}
731
732wire_enum! {
733    /// The EDID template a multiviewer presents to its sources.
734    ///
735    /// A template's name is the largest resolution it advertises and the audio
736    /// format it declares support for.
737    MultiviewerEdidTemplate: u8 {
738        /// The device reports no template.
739        EDID_UNKNOWN = 0;
740        /// 4K2K60 4:4:4, stereo 2.0.
741        EDID_4K2K60_444_STEREO = 1;
742        /// 4K2K60 4:4:4, Dolby/DTS 5.1.
743        EDID_4K2K60_444_DOLBY_DTS_51 = 2;
744        /// 4K2K60 4:4:4, HD audio 7.1.
745        EDID_4K2K60_444_HD_AUDIO_71 = 3;
746        /// 4K2K30 4:4:4, stereo 2.0.
747        EDID_4K2K30_444_STEREO = 4;
748        /// 4K2K30 4:4:4, Dolby/DTS 5.1.
749        EDID_4K2K30_444_DOLBY_DTS_51 = 5;
750        /// 4K2K30 4:4:4, HD audio 7.1.
751        EDID_4K2K30_444_HD_AUDIO_71 = 6;
752        /// 1080p, stereo 2.0.
753        EDID_1080P_STEREO = 7;
754        /// 1080p, Dolby/DTS 5.1.
755        EDID_1080P_DOLBY_DTS_51 = 8;
756        /// 1080p, HD audio 7.1.
757        EDID_1080P_HD_AUDIO_71 = 9;
758        /// 1920x1200, stereo 2.0.
759        EDID_1920X1200_STEREO = 10;
760        /// 1680x1050, stereo 2.0.
761        EDID_1680X1050_STEREO = 11;
762        /// 1600x1200, stereo 2.0.
763        EDID_1600X1200_STEREO = 12;
764        /// 1440x900, stereo 2.0.
765        EDID_1440X900_STEREO = 13;
766        /// 1360x768, stereo 2.0.
767        EDID_1360X768_STEREO = 14;
768        /// 1280x1024, stereo 2.0.
769        EDID_1280X1024_STEREO = 15;
770        /// 1024x768, stereo 2.0.
771        EDID_1024X768_STEREO = 16;
772        /// 720p, stereo 2.0.
773        EDID_720P_STEREO = 17;
774        /// Whatever the display connected to the HDMI output presents. The
775        /// template a multiviewer leaves the factory with.
776        EDID_COPY_OUTPUT = 18;
777        /// The EDID loaded onto the device.
778        EDID_CUSTOM = 19;
779    }
780}
781
782wire_enum! {
783    /// The aspect ratio a multiviewer scales its windows to.
784    MultiviewerAspectRatio: u8 {
785        /// The device reports no aspect ratio.
786        UNKNOWN = 0;
787        /// Fill the window.
788        FULL = 1;
789        /// 16:9.
790        RATIO_16_9 = 2;
791    }
792}
793
794wire_enum! {
795    /// A multiviewer setting that is on, off, or not reported.
796    MultiviewerBool: u8 {
797        /// Off.
798        OFF = 0;
799        /// On.
800        ON = 1;
801        /// The device reports no value.
802        UNKNOWN = 0xFF;
803    }
804}
805
806wire_enum! {
807    /// One of a multiviewer's four inputs.
808    ///
809    /// The wire numbers the inputs from zero and this type from one, so that
810    /// zero can mean "not reported" the way it does for every other
811    /// multiviewer setting. So `to_wire` and `from_wire` carry this type's
812    /// numbering rather than the wire's, and neither is the conversion to
813    /// reach for when a raw multiviewer byte is what is in hand.
814    MultiviewerSource: u8 {
815        /// The device reports no source.
816        UNKNOWN = 0;
817        /// Input 1.
818        INPUT_1 = 1;
819        /// Input 2.
820        INPUT_2 = 2;
821        /// Input 3.
822        INPUT_3 = 3;
823        /// Input 4.
824        INPUT_4 = 4;
825    }
826}
827
828impl MultiviewerSource {
829    /// Reads a zero-based wire value, mapping anything past input 4 to
830    /// [`MultiviewerSource::UNKNOWN`].
831    ///
832    /// The firmware spells "not known" as 0xFF, which lands past input 4 and
833    /// so needs no case of its own.
834    pub(crate) const fn from_zero_based(value: u8) -> Self {
835        if value > 3 {
836            Self::UNKNOWN
837        } else {
838            Self(value + 1)
839        }
840    }
841
842    /// The zero-based value the wire carries, or `None` for a source naming no
843    /// input.
844    ///
845    /// A multiviewer reads zero as its first input, so there is no value that
846    /// says "leave this alone": a request that cannot name an input has to be
847    /// refused rather than sent.
848    pub(crate) const fn to_zero_based(self) -> Option<u8> {
849        match self.0 {
850            1..=4 => Some(self.0 - 1),
851            _ => None,
852        }
853    }
854}
855
856impl MultiviewerBool {
857    /// Reads a wire value, mapping anything but 0 and 1 to
858    /// [`MultiviewerBool::UNKNOWN`].
859    pub(crate) const fn from_wire_tristate(value: u8) -> Self {
860        if value > 1 {
861            Self::UNKNOWN
862        } else {
863            Self(value)
864        }
865    }
866}
867
868wire_enum! {
869    /// The colour space a V2IP output scales to.
870    ///
871    /// The field is four bits wide and only these four values are defined. A
872    /// receiver passes the whole nibble to its validator, so a fifth value is
873    /// dropped without a word rather than clamped to one of these.
874    V2ipColourSpace: u8 {
875        /// RGB.
876        RGB = 0;
877        /// YCbCr 4:4:4.
878        YCBCR444 = 1;
879        /// YCbCr 4:2:2.
880        YCBCR422 = 2;
881        /// YCbCr 4:2:0.
882        YCBCR420 = 3;
883    }
884}
885
886wire_enum! {
887    /// The 2-byte `mxr_signal_type` carried in scaling configs and bay signal
888    /// reports.
889    ///
890    /// Byte 0 is the CTA-861 short video descriptor, 0 when the signal is not
891    /// HDMI. Byte 1 packs `color:4` in the low nibble, then `non_int:1` and
892    /// `bpp:3` above it.
893    MxrSignalType: u16 {
894        /// No signal format was reported.
895        NONE = 0;
896    }
897}
898
899/// The bpp index a sender writes when it has no bit depth to report.
900///
901/// It sits outside the four indices that name a real depth, so an unset
902/// format reads differently from every genuine one.
903const SIG_BPP_UNSET: u16 = 5;
904
905impl MxrSignalType {
906    /// The CTA-861 short video descriptor, 0 when the signal is not HDMI.
907    pub const fn svd(self) -> u8 {
908        (self.0 & 0xFF) as u8
909    }
910
911    /// The colour space.
912    pub const fn colour_space(self) -> u8 {
913        ((self.0 >> 8) & 0xF) as u8
914    }
915
916    /// Whether the frame rate carries a 1000/1001 clock.
917    pub const fn is_non_integer(self) -> bool {
918        self.0 & (1 << 12) != 0
919    }
920
921    /// The raw bpp index as carried on the wire. The field is an index, not a
922    /// bit depth; [`MxrSignalType::bpp`] converts it.
923    pub const fn bpp_index(self) -> u8 {
924        ((self.0 >> 13) & 0x7) as u8
925    }
926
927    /// The bit depth the bpp index stands for, `None` when unknown or unset.
928    pub const fn bpp(self) -> Option<u8> {
929        match self.bpp_index() {
930            1 => Some(8),
931            2 => Some(10),
932            3 => Some(12),
933            4 => Some(16),
934            _ => None,
935        }
936    }
937
938    /// Reports whether the word carries a signal format at all.
939    ///
940    /// A bay with nothing configured says so two ways. A sender that zeroes
941    /// the word and stamps the unset bpp index leaves an index no real depth
942    /// uses, and one that writes a plain zero leaves nothing at all. Neither
943    /// is a format, and the svd and colour space beside them are not answers
944    /// either: both read as zero, which is what this word says for "not HDMI"
945    /// and "RGB" when it *is* set.
946    pub const fn is_set(self) -> bool {
947        self.0 != 0 && self.bpp_index() as u16 != SIG_BPP_UNSET
948    }
949
950    /// Builds the word from the fields a scaling write consumes.
951    ///
952    /// `non_int` is left clear: the receiving struct carries the bit, and the
953    /// apply path does not read it.
954    ///
955    /// Building rather than editing is the point. A sink with no mode
956    /// configured reports the word with the unset bpp index in it, so a caller
957    /// that read that word back and filled in an svd would send an index no
958    /// depth uses - which the receiver decodes to zero and rejects without
959    /// answering.
960    pub(crate) const fn from_parts(svd: u8, colour: u8, bpp_index: u8) -> Self {
961        Self((svd as u16) | (((colour & 0xF) as u16) << 8) | (((bpp_index & 0x7) as u16) << 13))
962    }
963
964    /// The bpp index that stands for a bit depth, `None` for a depth no index
965    /// names.
966    ///
967    /// Only the three depths a V2IP output stage accepts are here. Index 4
968    /// names 16bpp, which [`MxrSignalType::bpp`] reads back from a device, but
969    /// the output stage refuses it - so offering it as something to write would
970    /// send a frame that is decoded cleanly and then dropped in silence.
971    pub(crate) const fn bpp_index_for_depth(depth: u8) -> Option<u8> {
972        match depth {
973            8 => Some(1),
974            10 => Some(2),
975            12 => Some(3),
976            _ => None,
977        }
978    }
979}
980
981impl fmt::Display for MxrSignalType {
982    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
983        if !self.is_set() {
984            return f.write_str("unset");
985        }
986        match self.bpp() {
987            Some(bpp) => write!(
988                f,
989                "svd {}, color {}, {}bpp",
990                self.svd(),
991                self.colour_space(),
992                bpp
993            ),
994            None => write!(f, "svd {}, color {}", self.svd(), self.colour_space()),
995        }
996    }
997}