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Hardware features supported: - SPI communication with optional D/C GPIO (4-wire mode) or 9-bit SPI with embedded D/C# bit (3-wire mode) command/data signaling - BUSY GPIO polling with configurable timeout - Hardware reset via dedicated reset GPIO - Internal temperature sensor readout - Border waveform control with 10 configurable modes: LUT0-3 (GS transition waveforms), fixed voltage levels (VSS/VSH1/VSL/ VSH2), VCOM follow, and HiZ (floating, default) - Deep sleep modes: Mode 1 (RAM retained) and Mode 2 (RAM lost) - Data entry modes for all four orientations - Dual display RAM planes: BW RAM (primary image) and RED RAM (partial refresh baseline / 3-color BWR red pixels) Refresh modes: Three independently selectable refresh waveforms: - Partial (~300-500 ms): low-latency BW update using RED RAM as waveform transition baseline - Full (~1.5-2 s): complete pixel-cycle reset with temperature- compensated LUT reload - Fast (~1.0-1.5 s): abbreviated waveform using a pre-loaded LUT Pixel format conversions: The driver accepts all common DRM formats and converts to 1bpp: - R1 (native 1bpp), color formats (XRGB8888), - 3-color BWR: classifies pixels as black, white, or red by dominant channel; writes separate 1bpp BW and RED buffers Orientation / rotation: - Full 4-way rotation: 0° (landscape), 90° (portrait CW), 180° (landscape inverted), 270° (portrait CCW) - Implemented via the Data Entry Mode register — no GPU or memory rotation overhead - Configurable via device tree 'rotation' property DRM framework integration: - drm_atomic_helper-based modesetting with damage tracking - Single primary plane, CRTC, simple encoder, SPI connector - drm_gem_shmem backend for display buffers - fbdev fallback via drm_fbdev_shmem_setup Links: [1] : https://www.crystalfontz.com/controllers/SolomonSystech/SSD1683 [2] : https://files.seeedstudio.com/wiki/Other_Display/42-epaper/GDEY042T81.pdf [3] : https://www.crystalfontz.com/controllers/SolomonSystech/SSD1673 [4] : https://www.crystalfontz.com/controllers/SolomonSystech/SSD1680 [5] : https://www.crystalfontz.com/controllers/SolomonSystech/SSD1681 Signed-off-by: Devarsh Thakkar --- Changes from v1: - Converted from drm/tiny/panel-ssd16xx.c to drm/solomon/ssd16xx.c - Reorganized code for better maintainability - Improved hardware abstraction for multi-controller support - Enhanced initialization sequence with better power state management - Switch to using GEM_SHMEM helpers - Refactored data entry mode implementation - Removed drm properties for runtime rotation, border waveforms - Removed module params for each of the drm properties - Improved SPDX license header formatting - Better separation of concerns between hardware and DRM integration drivers/gpu/drm/solomon/Kconfig | 13 + drivers/gpu/drm/solomon/Makefile | 1 + drivers/gpu/drm/solomon/ssd16xx.c | 1849 +++++++++++++++++++++++++++++ 3 files changed, 1863 insertions(+) create mode 100644 drivers/gpu/drm/solomon/ssd16xx.c diff --git a/drivers/gpu/drm/solomon/Kconfig b/drivers/gpu/drm/solomon/Kconfig index 400a6cab3a67..de2b14819f81 100644 --- a/drivers/gpu/drm/solomon/Kconfig +++ b/drivers/gpu/drm/solomon/Kconfig @@ -30,3 +30,16 @@ config DRM_SSD130X_SPI Say Y here if the SSD13xx OLED display is connected via SPI bus. If M is selected the module will be called ssd130x-spi. + +config DRM_SSD16XX + tristate "DRM support for Solomon SSD16xx e-ink display controllers" + depends on DRM && SPI + select DRM_CLIENT_SELECTION + select DRM_KMS_HELPER + select DRM_GEM_SHMEM_HELPER + help + DRM driver for Solomon SSD16xx family e-paper display controllers + (SSD1673, SSD1680, SSD1681, SSD1683, SSD1677). Supports panels + such as the GDEY042T81 4.2" 400x300. + + If M is selected the module will be called ssd16xx. diff --git a/drivers/gpu/drm/solomon/Makefile b/drivers/gpu/drm/solomon/Makefile index b5fc792257d7..72384620785b 100644 --- a/drivers/gpu/drm/solomon/Makefile +++ b/drivers/gpu/drm/solomon/Makefile @@ -1,3 +1,4 @@ obj-$(CONFIG_DRM_SSD130X) += ssd130x.o obj-$(CONFIG_DRM_SSD130X_I2C) += ssd130x-i2c.o obj-$(CONFIG_DRM_SSD130X_SPI) += ssd130x-spi.o +obj-$(CONFIG_DRM_SSD16XX) += ssd16xx.o diff --git a/drivers/gpu/drm/solomon/ssd16xx.c b/drivers/gpu/drm/solomon/ssd16xx.c new file mode 100644 index 000000000000..d3af055c6739 --- /dev/null +++ b/drivers/gpu/drm/solomon/ssd16xx.c @@ -0,0 +1,1849 @@ +// SPDX-License-Identifier: GPL-2.0-only +/* + * DRM driver for e-paper display panels using Solomon SSD16xx family controllers + * + * Copyright (C) 2026 Texas Instruments Incorporated - https://www.ti.com/ + * + * Author: Devarsh Thakkar + * + * References: https://github.com/Lesords/epaper + */ + +#include +#include +#include +#include +#include + +#include +#include +#include +#include +#include +#include +#include +#include +#include +#include +#include +#include +#include +#include +#include + +/* ----------------------------------------------------------------------- + * SSD16xx family common: commands, data values, and bit definitions. + * These apply equally to SSD1673, SSD1680, and SSD1683. + * ----------------------------------------------------------------------- + */ + +/* SPI command codes (common) */ +#define SSD16XX_CMD_DRIVER_OUTPUT_CONTROL 0x01 +#define SSD16XX_CMD_DATA_ENTRY_MODE 0x11 +#define SSD16XX_CMD_SW_RESET 0x12 +#define SSD16XX_CMD_MASTER_ACTIVATION 0x20 +#define SSD16XX_CMD_DISPLAY_UPDATE_CONTROL1 0x21 +#define SSD16XX_CMD_DISPLAY_UPDATE_CONTROL2 0x22 +#define SSD16XX_CMD_WRITE_RAM_BW 0x24 +#define SSD16XX_CMD_BORDER_WAVEFORM_CONTROL 0x3C +#define SSD16XX_CMD_SET_RAM_X_ADDRESS_START_END 0x44 +#define SSD16XX_CMD_SET_RAM_Y_ADDRESS_START_END 0x45 +#define SSD16XX_CMD_SET_RAM_X_ADDRESS_COUNTER 0x4E +#define SSD16XX_CMD_SET_RAM_Y_ADDRESS_COUNTER 0x4F + +/* + * Data Entry Mode (command 0x11) AM/IDY/IDX bit encoding (common). + * + * Bit 2 (AM): Address update direction: 0 = X direction, 1 = Y direction + * ID[1:0] when AM=0 (X-direction modes, address counter advances in X): + * 00 = X decrement, Y decrement 01 = X increment, Y decrement + * 10 = X decrement, Y increment 11 = X increment, Y increment (default) + * + * Rotation to data entry mode mapping (actual implementation uses two modes, + * with scan direction controlled via RAM cursor positioning and manual tweaking): + * 0°/270° → 0x03 (X++, Y++) Landscape/Portrait-CW: cursor at (0, 0) + * 90°/180° → 0x00 (X--, Y--) Portrait-CCW/Upside-down: cursor at (max, max) + * + * The pixel packing in convert_fb_to_1bpp is grouped by physical layout: + * - Portrait (90°/270°): column-major packing, rightmost column first + * - Landscape (0°/180°): row-major packing, top to bottom, left to right + * Hardware cursor position and scan mode handle the final orientation. + */ +#define SSD16XX_DATA_ENTRY_XDEC_YDEC 0x00 /* X--, Y-- (X-mode) */ +#define SSD16XX_DATA_ENTRY_XINC_YINC 0x03 /* X++, Y++ (X-mode, default) */ + +/* POR reset value: GD=0 (G0 first), SM=0 (interlaced), TB=0 (G0->G299) */ +#define SSD16XX_DRIVER_OUTPUT_CTRL_DEFAULT 0x00 + +/* Display Update Control 1 (0x21) byte 2 default (common) */ +#define SSD16XX_CTRL1_BYTE2_DEFAULT 0x00 + +/* + * Display Update Control 2 (0x22) individual bit definitions (common). + * NOTE: BIT(3) is NOT common — see SSD1683_CTRL2_MODE2 in the SSD1683 + * section below; it has a completely different meaning in SSD1673. + */ +#define SSD16XX_CTRL2_ENABLE_CLK BIT(7) +#define SSD16XX_CTRL2_ENABLE_ANALOG BIT(6) +#define SSD16XX_CTRL2_LOAD_TEMPERATURE BIT(5) +#define SSD16XX_CTRL2_LOAD_LUT BIT(4) +#define SSD16XX_CTRL2_DISPLAY BIT(2) +#define SSD16XX_CTRL2_DISABLE_ANALOG BIT(1) +#define SSD16XX_CTRL2_DISABLE_CLK BIT(0) + +#define SSD16XX_SPI_BITS_PER_WORD 8 +#define SSD16XX_SPI_SPEED_DEFAULT 1000000 + +/* Maximum time to wait for the BUSY pin to deassert after a display update */ +#define SSD16XX_BUSY_WAIT_TIMEOUT_MS 6000 + +/* ----------------------------------------------------------------------- + * SSD1683 / SSD1680 specific: commands, data values, and bit definitions. + * ----------------------------------------------------------------------- + */ + +/* + * Deep Sleep Mode values (command 0x10). + */ +#define SSD1683_DEEP_SLEEP_MODE_1 0x01 /* RAM retained */ +#define SSD1683_DEEP_SLEEP_MODE_2 0x03 /* RAM lost (max power) */ + +/* + * Temperature Sensor Selection (command 0x18). + */ +#define SSD1683_CMD_TEMPERATURE_SENSOR_CONTROL 0x18 +#define SSD1683_TEMP_SENSOR_INTERNAL 0x80 /* Bit 7: use internal sensor */ + +/* + * Write RED RAM (command 0x26). + */ +#define SSD1683_CMD_WRITE_RAM_RED 0x26 + +/* + * Border Waveform Control (command 0x3C) byte values. + */ +#define SSD1683_BORDER_WAVEFORM_LUT0 0x00 /* GS Transition LUT0 (black) */ +#define SSD1683_BORDER_WAVEFORM_LUT1 0x01 /* GS Transition LUT1 (white) */ +#define SSD1683_BORDER_WAVEFORM_LUT2 0x02 /* GS Transition LUT2 (black) */ +#define SSD1683_BORDER_WAVEFORM_LUT3 0x03 /* GS Transition LUT3 (gray) */ +#define SSD1683_BORDER_WAVEFORM_FIXLVL_VSS 0x40 /* Fix Level VSS (0V, black) */ +#define SSD1683_BORDER_WAVEFORM_FIXLVL_VSH1 0x50 /* Fix Level VSH1 (+15V, black) */ +#define SSD1683_BORDER_WAVEFORM_FIXLVL_VSL 0x60 /* Fix Level VSL (-15V, white) */ +#define SSD1683_BORDER_WAVEFORM_FIXLVL_VSH2 0x70 /* Fix Level VSH2 (+15V alt, black) */ +#define SSD1683_BORDER_WAVEFORM_VCOM 0x80 /* Follow VCOM (-2V~-3V, preserve) */ +#define SSD1683_BORDER_WAVEFORM_HIZ 0xC0 /* HiZ (floating, default) */ + +/* + * Display Update Control 1 (0x21) byte 1 — RED RAM control. + */ +#define SSD1683_CTRL1_NORMAL 0x00 /* Both BW and RED RAMs enabled */ +#define SSD1683_CTRL1_BYPASS_RED_RAM 0x40 /* Bypass RED RAM (force RED=0) */ + +/* + * Display Update Control 2 (0x22) BIT(3) — "Display Mode 2" (partial/BW). + */ +#define SSD1683_CTRL2_MODE2 BIT(3) + +/* Composite CTRL2 sequences for each refresh mode */ +#define SSD1683_CTRL2_FULL_REFRESH (SSD16XX_CTRL2_ENABLE_CLK | \ + SSD16XX_CTRL2_ENABLE_ANALOG | \ + SSD16XX_CTRL2_LOAD_TEMPERATURE | \ + SSD16XX_CTRL2_LOAD_LUT | \ + SSD16XX_CTRL2_DISPLAY | \ + SSD16XX_CTRL2_DISABLE_ANALOG | \ + SSD16XX_CTRL2_DISABLE_CLK) /* 0xF7, ~1.5-2s */ + +#define SSD1683_CTRL2_FAST_REFRESH (SSD16XX_CTRL2_ENABLE_CLK | \ + SSD16XX_CTRL2_ENABLE_ANALOG | \ + SSD16XX_CTRL2_DISPLAY | \ + SSD16XX_CTRL2_DISABLE_ANALOG | \ + SSD16XX_CTRL2_DISABLE_CLK) /* 0xC7, ~1.0-1.5s */ + +#define SSD1683_CTRL2_PARTIAL_REFRESH (SSD16XX_CTRL2_ENABLE_CLK | \ + SSD16XX_CTRL2_ENABLE_ANALOG | \ + SSD16XX_CTRL2_LOAD_TEMPERATURE | \ + SSD16XX_CTRL2_LOAD_LUT | \ + SSD1683_CTRL2_MODE2 | \ + SSD16XX_CTRL2_DISPLAY | \ + SSD16XX_CTRL2_DISABLE_ANALOG | \ + SSD16XX_CTRL2_DISABLE_CLK) /* 0xFF, ~300-500ms */ + +/* + * Standalone LUT pre-load sequence (0x91 = ENABLE_CLK | LOAD_LUT | LOAD_TEMPERATURE | + * DISABLE_CLK). + * Pre-loads the OTP LUT without triggering a display update. Required for + * FAST refresh mode (0xC7) which omits LOAD_LUT from each update cycle. + */ +#define SSD1683_CTRL2_LOAD_TEMP_LUT (SSD16XX_CTRL2_ENABLE_CLK | \ + SSD16XX_CTRL2_LOAD_LUT | \ + SSD16XX_CTRL2_LOAD_TEMPERATURE | \ + SSD16XX_CTRL2_DISABLE_CLK) /* 0xB1 */ + +enum ssd16xx_controller { + SSD1683 = 1, +}; + +enum ssd16xx_model { + GDEY042T81 = 1, +}; + +enum ssd16xx_refresh_mode { + SSD16XX_REFRESH_PARTIAL = 0, /* Partial refresh (~300-500ms) */ + SSD16XX_REFRESH_FULL, /* Full refresh (~1.5-2s) */ + SSD16XX_REFRESH_FAST, /* Fast refresh, skip temp load (~1.0-1.5s) */ +}; + +enum ssd16xx_color_mode { + SSD16XX_COLOR_MODE_BW = 0, /* Black/white only; RED RAM always bypassed */ + SSD16XX_COLOR_MODE_3COLOR = 1, /* 3-colour BWR; RED RAM used for red pixels */ +}; + +/* Border waveform enum indices (0-9); mapped to HW bytes via + * controller_cfg->border_waveform_table[] + */ +enum ssd16xx_border_waveform { + SSD16XX_BORDER_LUT0 = 0, /* GS Transition LUT0 (black) */ + SSD16XX_BORDER_LUT1, /* GS Transition LUT1 (white) */ + SSD16XX_BORDER_LUT2, /* GS Transition LUT2 (black) */ + SSD16XX_BORDER_LUT3, /* GS Transition LUT3 (gray) */ + SSD16XX_BORDER_VSS, /* Fix Level VSS (black) */ + SSD16XX_BORDER_VSH1, /* Fix Level VSH1 (black) */ + SSD16XX_BORDER_VSL, /* Fix Level VSL (white) */ + SSD16XX_BORDER_VSH2, /* Fix Level VSH2 (black) */ + SSD16XX_BORDER_VCOM, /* Follow VCOM (preserve) */ + SSD16XX_BORDER_HIZ, /* HiZ (floating, default) */ +}; + +/* SSD1683/SSD1680 border waveform byte encoding for command 0x3C */ +static const u8 ssd1683_border_waveform_table[] = { + [SSD16XX_BORDER_LUT0] = SSD1683_BORDER_WAVEFORM_LUT0, + [SSD16XX_BORDER_LUT1] = SSD1683_BORDER_WAVEFORM_LUT1, + [SSD16XX_BORDER_LUT2] = SSD1683_BORDER_WAVEFORM_LUT2, + [SSD16XX_BORDER_LUT3] = SSD1683_BORDER_WAVEFORM_LUT3, + [SSD16XX_BORDER_VSS] = SSD1683_BORDER_WAVEFORM_FIXLVL_VSS, + [SSD16XX_BORDER_VSH1] = SSD1683_BORDER_WAVEFORM_FIXLVL_VSH1, + [SSD16XX_BORDER_VSL] = SSD1683_BORDER_WAVEFORM_FIXLVL_VSL, + [SSD16XX_BORDER_VSH2] = SSD1683_BORDER_WAVEFORM_FIXLVL_VSH2, + [SSD16XX_BORDER_VCOM] = SSD1683_BORDER_WAVEFORM_VCOM, + [SSD16XX_BORDER_HIZ] = SSD1683_BORDER_WAVEFORM_HIZ, +}; + +struct ssd16xx_controller_config { + u16 max_width; + u16 max_height; + u8 ram_x_address_bits; + u8 ram_y_address_bits; + + /* + * has_temp_sensor_ctrl: controller supports command 0x18 (Temperature + * Sensor Selection). Present in SSD1683/SSD1680; absent in SSD1673 + * which uses command 0x1A (direct temperature write) instead. + */ + bool has_temp_sensor_ctrl; + + /* + * Deep sleep mode byte values for command 0x10. + * deep_sleep_mode_level1: lower-power sleep, RAM content retained + * (MODE_1 on SSD1683/SSD1680; used for runtime idle / app-close). + * deep_sleep_mode_level2: maximum power savings, RAM may be lost + * (MODE_2 on SSD1683/SSD1680; used for system suspend). + * Chips with a single sleep mode set both fields to the same value. + */ + u8 deep_sleep_mode_level1; + u8 deep_sleep_mode_level2; + + /* + * border_waveform_table: chip-specific byte values for the 10 logical + * border waveform modes (indexed by enum ssd16xx_border_waveform). + * The encoding of command 0x3C differs between SSD1683/SSD1680 and + * SSD1673, so each controller provides its own translation table. + */ + const u8 *border_waveform_table; + + /* + * Display Update Control 1 (cmd 0x21) byte 1 values. + * ctrl1_normal: both BW and RED RAMs participate in the waveform. + * ctrl1_bypass_red_ram: RED RAM bypassed; waveform driven from BW RAM only. + * SSD1673 has no RED RAM so both fields carry the same value. + */ + u8 ctrl1_normal; + u8 ctrl1_bypass_red_ram; + + /* + * Display Update Control 2 (cmd 0x22) composite sequences for each + * refresh mode (indexed by enum ssd16xx_refresh_mode) and the + * standalone LUT pre-load sequence used before fast refresh. + * Values differ between SSD1683/SSD1680 and SSD1673 (MODE2 bit, etc.). + */ + u8 ctrl2_refresh[3]; /* indexed by SSD16XX_REFRESH_PARTIAL/FULL/FAST */ + u8 ctrl2_load_temp_lut; /* standalone LUT pre-load (no display update) */ +}; + +struct ssd16xx_device_config { + /* Data Entry Mode - controls X/Y increment direction for landscape (0°) */ + u8 data_entry_mode; + + /* Driver Output Control - third byte (scan direction) */ + u8 driver_output_ctrl_byte3; + + /* Default refresh mode for this panel */ + enum ssd16xx_refresh_mode default_refresh_mode; + + /* Default border waveform during clear/init (enum index 0-9) */ + enum ssd16xx_border_waveform default_border_waveform_init; + + /* Default border waveform during display updates (enum index 0-9) */ + enum ssd16xx_border_waveform default_border_waveform_update; + + /* Whether to re-send border waveform command before each display update */ + bool default_border_refresh_on_every_update; + + /* + * Default refresh-mode-init: -1=disabled, else skip baseline establishment + * and start directly in this refresh mode. + */ + int default_refresh_mode_init; + + /* + * Whether this panel has a physical red colour plane (3-colour BWR). + * false: 2-colour black/white only; the RED RAM is always bypassed. + * true: 3-colour panel; full-refresh writes to the RED RAM so that + * red pixels are driven through the red waveform. + */ + bool red_supported; + + /* + * Default colour mode for this panel. + * For BW-only panels this must be SSD16XX_COLOR_MODE_BW. + * For BWR panels this can be set to SSD16XX_COLOR_MODE_3COLOR to + * enable red ink by default; + */ + enum ssd16xx_color_mode default_color_mode; + + /* Panel-specific display mode (resolution and physical dimensions) */ + const struct drm_display_mode *mode; +}; + +struct ssd16xx_device { + struct drm_device drm; + + struct drm_plane primary_plane; + struct drm_crtc crtc; + struct drm_encoder encoder; + struct drm_connector connector; + + struct spi_device *spi; + struct gpio_desc *reset; + struct gpio_desc *busy; + struct gpio_desc *dc; + + enum ssd16xx_model model; + enum ssd16xx_controller controller; + const struct ssd16xx_controller_config *controller_cfg; + const struct ssd16xx_device_config *device_cfg; + struct drm_display_mode *mode; + u32 width; + u32 height; + + bool initialized; + bool init_refresh_pending; /* First frame after refresh_mode_init enable */ + + int orientation; /* Display orientation in degrees: 0/90/180/270 */ + enum ssd16xx_refresh_mode refresh_mode; /* Active refresh mode */ + enum ssd16xx_color_mode color_mode; /* Active color mode (BW or 3-color) */ + bool fast_lut_pending; /* LUT pre-load needed before next fast refresh */ + + /* Border waveform (as enum indices) */ + int border_waveform_init_idx; /* Border waveform during clear/init */ + int border_waveform_update_idx; /* Border waveform during display updates */ + bool border_refresh_on_every_update; /* Re-send border cmd each display update */ + bool border_waveform_pending; /* One-shot: send border cmd on next update */ + + /* Display control */ + int refresh_mode_init; /* -1=disabled, else use this mode for the first frame */ + + u8 *tx_buf; /* 1bpp frame buffer (mono + white) */ + u8 *tx_red_buf; /* 1bpp red-channel buffer (3-color panels only) */ + u16 *tx_buf9; /* 9-bit SPI expansion buffer (3-wire mode only) */ + + struct drm_framebuffer *last_fb; /* Last drawn FB for reinit redraws */ +}; + +static inline struct ssd16xx_device *to_ssd16xx_device(struct drm_device *drm) +{ + return container_of(drm, struct ssd16xx_device, drm); +} + +static inline struct ssd16xx_device *crtc_to_ssd16xx_device(struct drm_crtc *crtc) +{ + return container_of(crtc, struct ssd16xx_device, crtc); +} + +static inline struct ssd16xx_device *plane_to_ssd16xx_device(struct drm_plane *plane) +{ + return container_of(plane, struct ssd16xx_device, primary_plane); +} + +static const struct ssd16xx_controller_config ssd16xx_controller_configs[] = { + [SSD1683] = { + .max_width = 400, + .max_height = 300, + .ram_x_address_bits = 8, + .ram_y_address_bits = 16, + .has_temp_sensor_ctrl = true, + .deep_sleep_mode_level1 = SSD1683_DEEP_SLEEP_MODE_1, + .deep_sleep_mode_level2 = SSD1683_DEEP_SLEEP_MODE_2, + .border_waveform_table = ssd1683_border_waveform_table, + .ctrl1_normal = SSD1683_CTRL1_NORMAL, + .ctrl1_bypass_red_ram = SSD1683_CTRL1_BYPASS_RED_RAM, + .ctrl2_refresh = { + [SSD16XX_REFRESH_PARTIAL] = SSD1683_CTRL2_PARTIAL_REFRESH, + [SSD16XX_REFRESH_FULL] = SSD1683_CTRL2_FULL_REFRESH, + [SSD16XX_REFRESH_FAST] = SSD1683_CTRL2_FAST_REFRESH, + }, + .ctrl2_load_temp_lut = SSD1683_CTRL2_LOAD_TEMP_LUT, + }, +}; + +/* GDEY042T81: 4.2" 400x300 panel, 84.8x63.6mm active area */ +static const struct drm_display_mode gdey042t81_mode = { + DRM_SIMPLE_MODE(400, 300, 85, 64), +}; + +static const struct ssd16xx_device_config ssd16xx_device_configs[] = { + [GDEY042T81] = { + .data_entry_mode = SSD16XX_DATA_ENTRY_XINC_YINC, + .driver_output_ctrl_byte3 = SSD16XX_DRIVER_OUTPUT_CTRL_DEFAULT, + .default_refresh_mode = SSD16XX_REFRESH_PARTIAL, + .default_border_waveform_init = SSD16XX_BORDER_LUT1, + .default_border_waveform_update = SSD16XX_BORDER_VCOM, + .default_border_refresh_on_every_update = true, + .default_refresh_mode_init = SSD16XX_REFRESH_FULL, + .red_supported = false, /* 2-colour black/white panel */ + .default_color_mode = SSD16XX_COLOR_MODE_BW, + .mode = &gdey042t81_mode, + }, +}; + +static void ssd16xx_wait_for_device(struct ssd16xx_device *device, + int *err) +{ + unsigned long timeout_jiffies = jiffies + + msecs_to_jiffies(SSD16XX_BUSY_WAIT_TIMEOUT_MS); + unsigned long start_ms = jiffies_to_msecs(jiffies); + int busy_val; + + if (*err) + return; + + busy_val = gpiod_get_value_cansleep(device->busy); + drm_dbg(&device->drm, "BUSY initial value: %d\n", busy_val); + + while (gpiod_get_value_cansleep(device->busy) == 1) { + if (time_after(jiffies, timeout_jiffies)) { + drm_err(&device->drm, "Busy wait timed out after %lums\n", + jiffies_to_msecs(jiffies) - start_ms); + *err = -ETIMEDOUT; + return; + } + usleep_range(1000, 2000); + } + + drm_dbg(&device->drm, "BUSY became ready after %lums\n", + jiffies_to_msecs(jiffies) - start_ms); +} + +static void ssd16xx_spi_sync(struct spi_device *spi, struct spi_message *msg, + int *err) +{ + int ret; + + if (*err) + return; + + ret = spi_sync(spi, msg); + if (ret < 0) + *err = ret; +} + +static void ssd16xx_send_cmd(struct ssd16xx_device *device, u8 cmd, + int *err) +{ + u16 word; + struct spi_transfer xfer = {}; + struct spi_message msg; + + if (*err) + return; + + spi_message_init(&msg); + spi_message_add_tail(&xfer, &msg); + + if (device->dc) { + /* 4-wire SPI: D/C# GPIO low selects command mode */ + xfer.tx_buf = &cmd; + xfer.len = 1; + gpiod_set_value_cansleep(device->dc, 0); + } else { + /* + * 3-wire SPI (9-bit): bit 8 is the D/C# bit. + * D/C# = 0 means the following 8 bits are a command. + */ + word = cmd; /* bit 8 = 0 for command */ + xfer.tx_buf = &word; + xfer.len = sizeof(u16); + xfer.bits_per_word = 9; + } + + ssd16xx_spi_sync(device->spi, &msg, err); +} + +static void ssd16xx_send_data(struct ssd16xx_device *device, u8 data, + int *err) +{ + u16 word; + struct spi_transfer xfer = {}; + struct spi_message msg; + + if (*err) + return; + + spi_message_init(&msg); + spi_message_add_tail(&xfer, &msg); + + if (device->dc) { + /* 4-wire SPI: D/C# GPIO high selects data mode */ + xfer.tx_buf = &data; + xfer.len = 1; + gpiod_set_value_cansleep(device->dc, 1); + } else { + /* + * 3-wire SPI (9-bit): bit 8 is the D/C# bit. + * D/C# = 1 means the following 8 bits are data. + */ + word = 0x100 | data; + xfer.tx_buf = &word; + xfer.len = sizeof(u16); + xfer.bits_per_word = 9; + } + + ssd16xx_spi_sync(device->spi, &msg, err); +} + +static void ssd16xx_send_x_param(struct ssd16xx_device *device, u16 x, + int *err) +{ + if (*err) + return; + + if (device->controller_cfg->ram_x_address_bits == 8) { + ssd16xx_send_data(device, (u8)x, err); + } else { + ssd16xx_send_data(device, x & 0xFF, err); + ssd16xx_send_data(device, (x >> 8) & 0xFF, err); + } +} + +static void ssd16xx_send_y_param(struct ssd16xx_device *device, u16 y, + int *err) +{ + if (*err) + return; + + if (device->controller_cfg->ram_y_address_bits == 8) { + ssd16xx_send_data(device, (u8)y, err); + } else { + ssd16xx_send_data(device, y & 0xFF, err); + ssd16xx_send_data(device, (y >> 8) & 0xFF, err); + } +} + +static void ssd16xx_send_data_bulk(struct ssd16xx_device *device, + const u8 *data, size_t len, + int *err) +{ + struct spi_transfer xfer = {}; + struct spi_message msg; + + if (*err) + return; + + if (!data || !len) + return; + + spi_message_init(&msg); + spi_message_add_tail(&xfer, &msg); + + if (device->dc) { + /* 4-wire SPI: D/C# GPIO high selects data mode */ + xfer.tx_buf = data; + xfer.len = len; + gpiod_set_value_cansleep(device->dc, 1); + ssd16xx_spi_sync(device->spi, &msg, err); + } else { + /* 3-wire (9-bit): expand u8 → u16 with D/C#=1 in bit 8. */ + size_t i; + u16 *buf = device->tx_buf9; + + for (i = 0; i < len; i++) + buf[i] = 0x100 | data[i]; + + xfer.tx_buf = buf; + xfer.len = len * sizeof(u16); + xfer.bits_per_word = 9; + ssd16xx_spi_sync(device->spi, &msg, err); + } +} + +static void ssd16xx_display_update(struct ssd16xx_device *device, + u8 ctrl1_byte1, u8 ctrl1_byte2, u8 ctrl2_mode, + int *err) +{ + if (*err) + return; + + drm_dbg(&device->drm, + "display_update: Setting ctrl1=0x%02x,0x%02x mode=0x%02x\n", + ctrl1_byte1, ctrl1_byte2, ctrl2_mode); + + ssd16xx_send_cmd(device, SSD16XX_CMD_DISPLAY_UPDATE_CONTROL1, err); + ssd16xx_send_data(device, ctrl1_byte1, err); + ssd16xx_send_data(device, ctrl1_byte2, err); + + ssd16xx_send_cmd(device, SSD16XX_CMD_DISPLAY_UPDATE_CONTROL2, err); + ssd16xx_send_data(device, ctrl2_mode, err); + ssd16xx_send_cmd(device, SSD16XX_CMD_MASTER_ACTIVATION, err); + + drm_dbg(&device->drm, + "display_update: Master activation sent, waiting...\n"); + + ssd16xx_wait_for_device(device, err); +} + +static void ssd16xx_hw_reset(struct ssd16xx_device *device) +{ + gpiod_set_value_cansleep(device->reset, 1); + usleep_range(10000, 11000); + gpiod_set_value_cansleep(device->reset, 0); + usleep_range(10000, 11000); +} + +/* + * ssd16xx_preload_fast_lut() - pre-load the OTP LUT for fast refresh mode. + * + * Fast refresh (CTRL2 = 0xC7) omits the LOAD_LUT step on every update to save + * time. It relies on the LUT being loaded upfront via this standalone sequence + * (CTRL2 = 0xB1: ENABLE_CLK | LOAD_LUT | SSD16XX_CTRL2_LOAD_TEMPERATURE | DISABLE_CLK, + * no display update). + * + * Must be called when: + * a) hw_init runs with refresh_mode == FAST, and + * b) switching to fast refresh from a mode that did not leave a valid Mode1 + * LUT in the controller (i.e. previous mode was not FULL refresh, which + * carries LOAD_LUT in its own CTRL2 sequence). + */ +static int ssd16xx_preload_fast_lut(struct ssd16xx_device *device) +{ + int err = 0; + + ssd16xx_send_cmd(device, SSD16XX_CMD_DISPLAY_UPDATE_CONTROL1, &err); + ssd16xx_send_data(device, device->controller_cfg->ctrl1_bypass_red_ram, &err); + ssd16xx_send_data(device, SSD16XX_CTRL1_BYTE2_DEFAULT, &err); + + ssd16xx_send_cmd(device, SSD16XX_CMD_DISPLAY_UPDATE_CONTROL2, &err); + ssd16xx_send_data(device, device->controller_cfg->ctrl2_load_temp_lut, &err); + + ssd16xx_send_cmd(device, SSD16XX_CMD_MASTER_ACTIVATION, &err); + ssd16xx_wait_for_device(device, &err); + + return err; +} + +static int ssd16xx_hw_init(struct ssd16xx_device *device) +{ + int err = 0; + u8 data_entry_mode; + /* + * Driver Output Control MUX ratio = (gate lines - 1). + * Use the actual device height, not the controller maximum — + * a smaller device must only drive its own gate lines. + */ + + ssd16xx_hw_reset(device); + + /* Software reset */ + ssd16xx_send_cmd(device, SSD16XX_CMD_SW_RESET, &err); + ssd16xx_wait_for_device(device, &err); + + /* Driver output control (0x01): MUX ratio and scan direction. */ + ssd16xx_send_cmd(device, SSD16XX_CMD_DRIVER_OUTPUT_CONTROL, &err); + ssd16xx_send_y_param(device, device->height - 1, &err); + ssd16xx_send_data(device, device->device_cfg->driver_output_ctrl_byte3, &err); + + /* Internal temperature sensor (SSD1683/SSD1680 only; not present in SSD1673) */ + if (device->controller_cfg->has_temp_sensor_ctrl) { + ssd16xx_send_cmd(device, SSD1683_CMD_TEMPERATURE_SENSOR_CONTROL, &err); + ssd16xx_send_data(device, SSD1683_TEMP_SENSOR_INTERNAL, &err); + } + + /* + * For FAST refresh mode, pre-load the LUT once here during initialization. + * FAST mode ctrl2 (0xC7) omits LOAD_LUT on every update for speed, so the + * LUT must be loaded upfront. FULL (0xF7) and PARTIAL (0xFF) load LUT on + * every update, so no preload is needed for those modes. + */ + if (device->refresh_mode == SSD16XX_REFRESH_FAST) { + ssd16xx_send_cmd(device, SSD16XX_CMD_DISPLAY_UPDATE_CONTROL1, &err); + ssd16xx_send_data(device, device->controller_cfg->ctrl1_bypass_red_ram, &err); + ssd16xx_send_data(device, SSD16XX_CTRL1_BYTE2_DEFAULT, &err); + + ssd16xx_send_cmd(device, SSD16XX_CMD_DISPLAY_UPDATE_CONTROL2, &err); + ssd16xx_send_data(device, device->controller_cfg->ctrl2_load_temp_lut, &err); + + ssd16xx_send_cmd(device, SSD16XX_CMD_MASTER_ACTIVATION, &err); + ssd16xx_wait_for_device(device, &err); + } + + /* + * Set Data Entry Mode (0x11) based on orientation. This controls + * how the RAM address counter auto-advances after each byte write. + * + * Implementation uses two data entry modes: + * - 90°/180° use XDEC_YDEC (0x00): X--, Y-- with cursor at (max, max) + * - 0°/270° use XINC_YINC (0x03): X++, Y++ with cursor at (0, 0) + * + * The convert_fb_to_1bpp packing is grouped by physical layout: + * - Portrait orientations (90°/270°): column-major packing + * - Landscape orientations (0°/180°): row-major packing + * + * Final scan direction and image orientation are controlled by the + * combination of data entry mode and RAM cursor position set in fb_dirty. + * + * The RAM address window and cursor are NOT set here; fb_dirty + * always programmes them (with the correct end-before-start order + * for decrement modes) immediately before writing frame data. + */ + switch (device->orientation) { + case 90: + case 180: + data_entry_mode = SSD16XX_DATA_ENTRY_XDEC_YDEC; + break; + default: /* 0°/270° */ + data_entry_mode = SSD16XX_DATA_ENTRY_XINC_YINC; + break; + } + + ssd16xx_send_cmd(device, SSD16XX_CMD_DATA_ENTRY_MODE, &err); + ssd16xx_send_data(device, data_entry_mode, &err); + drm_dbg(&device->drm, "hw_init: orientation=%u° data_entry=0x%02x\n", + device->orientation, data_entry_mode); + + ssd16xx_wait_for_device(device, &err); + + if (err) + drm_err(&device->drm, "Hardware initialization failed: %d\n", err); + + return err; +} + +/* + * ssd16xx_pixel_luma() - return ITU-R BT.601 luminance (0-255) for one pixel. + * + * Currently only XRGB8888 is supported. The function is retained as a named + * helper to make it straightforward to add further formats in the future. + * R1 is never passed here — it is already 1bpp and handled directly by callers. + */ +static u8 ssd16xx_pixel_luma(struct iosys_map *src, + struct drm_framebuffer *fb, + unsigned int x, unsigned int y) +{ + u32 *line = (u32 *)(src->vaddr + y * fb->pitches[0]); + u32 px = line[x]; + u8 r = (px >> 16) & 0xFF, g = (px >> 8) & 0xFF, b = px & 0xFF; + + return (u8)((299u * r + 587u * g + 114u * b) / 1000u); +} + +/* + * ssd16xx_pixel_is_white() - test whether an XRGB8888 or R1 pixel is white. + * + * For XRGB8888: ITU-R BT.601 luminance > 127 maps to white. + * For R1: the pixel's bit value directly encodes white (1) or black (0). + */ +static bool ssd16xx_pixel_is_white(struct iosys_map *src, + struct drm_framebuffer *fb, + unsigned int x, unsigned int y) +{ + if (fb->format->format == DRM_FORMAT_R1) { + u8 *line = (u8 *)(src->vaddr + y * fb->pitches[0]); + + return !!(line[x / 8] & (1 << (7 - (x % 8)))); + } + return ssd16xx_pixel_luma(src, fb, x, y) > 127; +} + +/* + * ssd16xx_pixel_is_red() - test whether an XRGB8888 pixel is dominated by red. + * + * Returns true when red exceeds 50% intensity and is strictly greater than + * both green and blue (dominant red hue). R1 carries no colour information + * and always returns false. + */ +static bool ssd16xx_pixel_is_red(struct iosys_map *src, + struct drm_framebuffer *fb, + unsigned int x, unsigned int y) +{ + u32 *line; + u32 px; + u8 r, g, b; + + if (fb->format->format != DRM_FORMAT_XRGB8888) + return false; + + line = (u32 *)(src->vaddr + y * fb->pitches[0]); + px = line[x]; + r = (px >> 16) & 0xFF; + g = (px >> 8) & 0xFF; + b = px & 0xFF; + + return r > 127 && r > g && r > b; +} + +/* + * ssd16xx_convert_fb_to_3color() - split a framebuffer into BW and RED planes. + * @bw_dst: output buffer for the black/white RAM plane (1=white, 0=black) + * @red_dst: output buffer for the red RAM plane (1=red, 0=not red) + * + * Supports XRGB8888 and R1 formats. + * + * XRGB8888: pixels with a dominant red channel (r > 127 && r > g && r > b) + * map to red ink; remaining pixels threshold to white/black via BT.601 luma. + * + * R1 on a 3-color panel: the 1-bits are interpreted as red ink on a white + * background. BW RAM is set to all-white and RED RAM receives the R1 data + * directly (1=red, 0=no red). This matches the behaviour of a user who + * explicitly selects color_mode=3-color and submits a 1-bit mask to place + * red ink. + */ +static void ssd16xx_convert_fb_to_3color(u8 *bw_dst, u8 *red_dst, + struct iosys_map *src, + struct drm_framebuffer *fb, + struct drm_rect *rect) +{ + unsigned int x, y; + u8 bw_byte = 0, red_byte = 0; + unsigned int bit_pos = 0; + unsigned int dst_idx = 0; + + if (fb->format->format == DRM_FORMAT_R1) { + unsigned int src_pitch = fb->pitches[0]; + unsigned int width_bytes = drm_rect_width(rect) / 8; + unsigned int data_size = width_bytes * drm_rect_height(rect); + + /* White background — no black pixels, only red ink shows */ + memset(bw_dst, 0xFF, data_size); + /* RED RAM: copy R1 data directly (1=red ink, 0=no red) */ + for (y = rect->y1; y < rect->y2; y++) { + u8 *line = src->vaddr + y * src_pitch + (rect->x1 / 8); + + memcpy(red_dst + dst_idx, line, width_bytes); + dst_idx += width_bytes; + } + return; + } + + /* XRGB8888 */ + for (y = rect->y1; y < rect->y2; y++) { + for (x = rect->x1; x < rect->x2; x++) { + bool is_red = ssd16xx_pixel_is_red(src, fb, x, y); + + if (is_red) + red_byte |= (1 << (7 - bit_pos)); + else if (ssd16xx_pixel_is_white(src, fb, x, y)) + bw_byte |= (1 << (7 - bit_pos)); + if (++bit_pos == 8) { + bw_dst[dst_idx] = bw_byte; + red_dst[dst_idx] = red_byte; + dst_idx++; + bw_byte = 0; + red_byte = 0; + bit_pos = 0; + } + } + if (bit_pos > 0) { + bw_dst[dst_idx] = bw_byte; + red_dst[dst_idx] = red_byte; + dst_idx++; + bw_byte = 0; + red_byte = 0; + bit_pos = 0; + } + } +} + +/* + * Convert framebuffer to 1-bit monochrome for e-paper display. + * + * Supports XRGB8888 (thresholded via ITU-R BT.601 luma at 127) and R1 + * (native 1bpp, zero-copy fast path for aligned landscape frames). + * + * Output layout: + * 0°/180° landscape: row-major, left-to-right, top-to-bottom + * 90°/270° CW portrait: column-major, rightmost column first + */ +static void ssd16xx_convert_fb_to_1bpp(u8 *dst, struct iosys_map *src, + struct drm_framebuffer *fb, + struct drm_rect *rect, + unsigned int orientation) +{ + u32 format = fb->format->format; + int x, y; + u8 byte = 0; + unsigned int bit_pos = 0; + unsigned int dst_idx = 0; + + /* Use fixed threshold of 127 for grayscale to monochrome conversion. */ + drm_dbg(fb->dev, + "convert_1bpp: fmt=%p4cc rect=(%d,%d)-(%d,%d) orient=%u° path=%s\n", + &fb->format->format, + rect->x1, rect->y1, rect->x2, rect->y2, + orientation, + (format == DRM_FORMAT_R1 && orientation == 0 && rect->x1 % 8 == 0) ? "R1-fast" : + (orientation == 90 || orientation == 270) ? "portrait" : "landscape"); + + /* + * R1 fast path: 0° landscape with byte-aligned rect. + * R1 is already 1bpp so landscape rows map directly to output bytes via + * memcpy — no per-pixel computation needed. rect->x1 must be a + * multiple of 8 so that (rect->x1 / 8) gives the correct byte offset; + * if not, the generic pixel-by-pixel loop below handles non-aligned + * rects safely. + */ + if (format == DRM_FORMAT_R1 && orientation == 0 && rect->x1 % 8 == 0) { + unsigned int src_pitch = fb->pitches[0]; + unsigned int width_bytes = drm_rect_width(rect) / 8; + + for (y = rect->y1; y < rect->y2; y++) { + u8 *src_line = src->vaddr + y * src_pitch + (rect->x1 / 8); + + memcpy(dst + dst_idx, src_line, width_bytes); + dst_idx += width_bytes; + } + return; + } + + switch (orientation) { + case 90: + case 270: + /* + * Portrait (90° or 270°): column-major packing. + * Each portrait source column becomes one physical RAM row. + * The data entry mode and cursor position control scan direction. + */ + for (x = rect->x2 - 1; x >= (int)rect->x1; x--) { + for (y = rect->y1; y < rect->y2; y++) { + if (ssd16xx_pixel_is_white(src, fb, x, y)) + byte |= (1 << (7 - bit_pos)); + if (++bit_pos == 8) { + dst[dst_idx++] = byte; + byte = 0; + bit_pos = 0; + } + } + if (bit_pos > 0) { + dst[dst_idx++] = byte; + byte = 0; + bit_pos = 0; + } + } + break; + + case 0: + case 180: + default: + /* + * Landscape (0° or 180°): row-major packing. + * Each landscape source row becomes one physical RAM row. + * The data entry mode and cursor position control scan direction. + */ + for (y = rect->y1; y < rect->y2; y++) { + for (x = rect->x1; x < rect->x2; x++) { + if (ssd16xx_pixel_is_white(src, fb, x, y)) + byte |= (1 << (7 - bit_pos)); + if (++bit_pos == 8) { + dst[dst_idx++] = byte; + byte = 0; + bit_pos = 0; + } + } + if (bit_pos > 0) { + dst[dst_idx++] = byte; + byte = 0; + bit_pos = 0; + } + } + break; + } +} + +static int ssd16xx_fb_dirty(struct drm_framebuffer *fb, struct drm_rect *rect, + struct ssd16xx_device *device, + const struct iosys_map *src_map) +{ + const u8 *ctrl2_tbl = device->controller_cfg->ctrl2_refresh; + struct iosys_map map = *src_map; + int err = 0; + unsigned int data_size = (device->width * device->height) / 8; + u8 *mono_buffer = NULL; + u8 *red_buffer = NULL; + u16 ram_x_start, ram_x_end, ram_y_start, ram_y_end; + + /* + * Process full display area. The rect for convert_fb_to_1bpp uses + * the framebuffer (logical) dimensions - the pixel iteration walks + * the source fb coordinate space. RAM window registers below use + * the physical panel dimensions (device->width/height). + */ + rect->x1 = 0; + rect->y1 = 0; + rect->x2 = fb->width; + rect->y2 = fb->height; + + drm_dbg(&device->drm, + "fb_dirty: fb=%dx%d, refresh_mode=%d, orientation=%d\n", + fb->width, fb->height, device->refresh_mode, device->orientation); + + mono_buffer = device->tx_buf; + memset(mono_buffer, 0, data_size); + + /* 3-colour FULL/FAST: populate red channel. */ + if (device->color_mode == SSD16XX_COLOR_MODE_3COLOR && + (device->refresh_mode == SSD16XX_REFRESH_FULL || + device->refresh_mode == SSD16XX_REFRESH_FAST)) { + red_buffer = device->tx_red_buf; + memset(red_buffer, 0, data_size); + } + + /* + * R1 format interpretation depends on color_mode: + * + * color_mode = 3-color (red_buffer != NULL): + * R1 bits are treated as red ink — 1 = red pixel on a white + * background, 0 = no red. This allows applications to submit a + * 1-bit mask to place red ink on a BWR panel. + * Handled by the R1 path in ssd16xx_convert_fb_to_3color(). + * + * color_mode = BW (red_buffer == NULL): + * R1 bits are treated as luma — 1 = white, 0 = black. + * Handled by the native fast path in ssd16xx_convert_fb_to_1bpp(). + */ + if (red_buffer) + ssd16xx_convert_fb_to_3color(mono_buffer, red_buffer, &map, fb, rect); + else + ssd16xx_convert_fb_to_1bpp(mono_buffer, &map, fb, rect, device->orientation); + + drm_dbg(&device->drm, + "fb_dirty: mono[0..3]=0x%02x 0x%02x 0x%02x 0x%02x (data_size=%u)\n", + mono_buffer[0], mono_buffer[1], mono_buffer[2], mono_buffer[3], + data_size); + + /* Set RAM window and cursor for current orientation. */ + ram_x_start = 0; + /* + * X end depends on the controller's addressing model: + * Byte-addressed (ram_x_address_bits == 8, e.g. SSD1683): + * XEnd = device_width/8 - 1 (byte offset into RAM row) + * Pixel-addressed (ram_x_address_bits != 8, e.g. SSD1677): + * XEnd = device_width - 1 (direct pixel index) + * The model is controller-specific; the value is device-specific. + */ + if (device->controller_cfg->ram_x_address_bits == 8) + ram_x_end = (device->width / 8) - 1; + else + ram_x_end = device->width - 1; + ram_y_start = 0; + ram_y_end = device->height - 1; + + switch (device->orientation) { + case 90: + case 180: + /* 90°/180°: XDEC_YDEC mode, send end-before-start; cursor at (max, max). */ + ssd16xx_send_cmd(device, SSD16XX_CMD_SET_RAM_X_ADDRESS_START_END, &err); + ssd16xx_send_x_param(device, ram_x_end, &err); + ssd16xx_send_x_param(device, ram_x_start, &err); + + ssd16xx_send_cmd(device, SSD16XX_CMD_SET_RAM_Y_ADDRESS_START_END, &err); + ssd16xx_send_y_param(device, ram_y_end, &err); + ssd16xx_send_y_param(device, ram_y_start, &err); + + ssd16xx_send_cmd(device, SSD16XX_CMD_SET_RAM_X_ADDRESS_COUNTER, &err); + ssd16xx_send_x_param(device, ram_x_end, &err); + + ssd16xx_send_cmd(device, SSD16XX_CMD_SET_RAM_Y_ADDRESS_COUNTER, &err); + ssd16xx_send_y_param(device, ram_y_end, &err); + break; + + default: /* 0°/270° */ + /* 0°/270°: XINC_YINC mode, cursor at (0, 0). */ + ssd16xx_send_cmd(device, SSD16XX_CMD_SET_RAM_X_ADDRESS_START_END, &err); + ssd16xx_send_x_param(device, ram_x_start, &err); + ssd16xx_send_x_param(device, ram_x_end, &err); + + ssd16xx_send_cmd(device, SSD16XX_CMD_SET_RAM_Y_ADDRESS_START_END, &err); + ssd16xx_send_y_param(device, ram_y_start, &err); + ssd16xx_send_y_param(device, ram_y_end, &err); + + ssd16xx_send_cmd(device, SSD16XX_CMD_SET_RAM_X_ADDRESS_COUNTER, &err); + ssd16xx_send_x_param(device, ram_x_start, &err); + + ssd16xx_send_cmd(device, SSD16XX_CMD_SET_RAM_Y_ADDRESS_COUNTER, &err); + ssd16xx_send_y_param(device, ram_y_start, &err); + break; + } + + ssd16xx_send_cmd(device, SSD16XX_CMD_WRITE_RAM_BW, &err); + ssd16xx_send_data_bulk(device, mono_buffer, data_size, &err); + + /* Re-send border waveform when: every-update mode, init frame + */ + drm_dbg(&device->drm, + "fb_dirty: border check: every_update=%d init_pending=%d border_pending=%d idx=%d hw=0x%02x\n", + device->border_refresh_on_every_update, device->init_refresh_pending, + device->border_waveform_pending, device->border_waveform_update_idx, + device->controller_cfg->border_waveform_table[device->border_waveform_update_idx]); + if (device->border_refresh_on_every_update || device->init_refresh_pending || + device->border_waveform_pending) { + u8 idx = device->border_waveform_update_idx; + u8 border = device->controller_cfg->border_waveform_table[idx]; + + drm_dbg(&device->drm, "fb_dirty: Sending border waveform: 0x%02x\n", + border); + ssd16xx_send_cmd(device, SSD16XX_CMD_BORDER_WAVEFORM_CONTROL, &err); + ssd16xx_send_data(device, border, &err); + device->border_waveform_pending = false; + } + + switch (device->refresh_mode) { + case SSD16XX_REFRESH_FULL: + /* + * BW full refresh: write RED RAM BEFORE display_update + * to avoid a post-BUSY write timing issue on some + * controller revisions that silently corrupts RED RAM. + * RED RAM is then bypassed (CTRL1_BYPASS_RED_RAM) so + * stale RED RAM content does not affect the output. + */ + ssd16xx_send_cmd(device, SSD1683_CMD_WRITE_RAM_RED, &err); + if (red_buffer) { + /* 3-colour: write red channel before activating */ + ssd16xx_send_data_bulk(device, red_buffer, data_size, &err); + ssd16xx_display_update(device, device->controller_cfg->ctrl1_normal, + SSD16XX_CTRL1_BYTE2_DEFAULT, + ctrl2_tbl[SSD16XX_REFRESH_FULL], &err); + } else { + ssd16xx_send_data_bulk(device, mono_buffer, data_size, &err); + ssd16xx_display_update(device, device->controller_cfg->ctrl1_bypass_red_ram, + SSD16XX_CTRL1_BYTE2_DEFAULT, + ctrl2_tbl[SSD16XX_REFRESH_FULL], &err); + } + break; + case SSD16XX_REFRESH_FAST: + /* + * Fast refresh: LUT pre-loaded during hw_init; BYPASS_RED_RAM + * so RED RAM does not affect the current output. + * Write RED RAM BEFORE display_update (same reasoning as FULL) + * so it holds the just-displayed frame as a valid reference for + * any subsequent PARTIAL refresh. + */ + + ssd16xx_send_cmd(device, SSD1683_CMD_WRITE_RAM_RED, &err); + if (red_buffer) { + /* 3-colour: write red channel before activating */ + ssd16xx_send_data_bulk(device, red_buffer, data_size, &err); + ssd16xx_display_update(device, device->controller_cfg->ctrl1_normal, + SSD16XX_CTRL1_BYTE2_DEFAULT, + ctrl2_tbl[SSD16XX_REFRESH_FAST], &err); + } else { + ssd16xx_send_data_bulk(device, mono_buffer, data_size, &err); + ssd16xx_display_update(device, device->controller_cfg->ctrl1_bypass_red_ram, + SSD16XX_CTRL1_BYTE2_DEFAULT, + ctrl2_tbl[SSD16XX_REFRESH_FAST], &err); + } + break; + case SSD16XX_REFRESH_PARTIAL: + default: + /* + * Partial refresh: both RAMs used for transition waveforms. + * RED RAM must hold the PREVIOUS frame (= current display + * content) so the controller can compute pixel transitions. + * Write RED RAM AFTER display_update so it captures the + * just-displayed frame as the reference for the next partial. + */ + drm_dbg(&device->drm, + "fb_dirty: partial pre-update: mono[0]=0x%02x (BW=new, RED=prev)\n", + mono_buffer[0]); + ssd16xx_display_update(device, device->controller_cfg->ctrl1_normal, + SSD16XX_CTRL1_BYTE2_DEFAULT, + ctrl2_tbl[SSD16XX_REFRESH_PARTIAL], &err); + ssd16xx_send_cmd(device, SSD1683_CMD_WRITE_RAM_RED, &err); + ssd16xx_send_data_bulk(device, mono_buffer, data_size, &err); + drm_dbg(&device->drm, + "fb_dirty: partial post-update: wrote RED baseline mono[0]=0x%02x\n", + mono_buffer[0]); + break; + } + + return err; +} + +/* ----------------------------------------------------------------------------- + * Plane Functions + */ + +static void ssd16xx_plane_destroy(struct drm_plane *plane) +{ + drm_plane_cleanup(plane); +} + +static const struct drm_plane_funcs ssd16xx_plane_funcs = { + .update_plane = drm_atomic_helper_update_plane, + .disable_plane = drm_atomic_helper_disable_plane, + .destroy = ssd16xx_plane_destroy, + DRM_GEM_SHADOW_PLANE_FUNCS, +}; + +static int ssd16xx_plane_atomic_check(struct drm_plane *plane, + struct drm_atomic_commit *state) +{ + struct drm_plane_state *new_plane_state = + drm_atomic_get_new_plane_state(state, plane); + struct drm_crtc_state *crtc_state; + + if (!new_plane_state->crtc) + return 0; + + crtc_state = drm_atomic_get_new_crtc_state(state, new_plane_state->crtc); + + return drm_atomic_helper_check_plane_state(new_plane_state, crtc_state, + DRM_PLANE_NO_SCALING, + DRM_PLANE_NO_SCALING, + false, false); +} + +static void ssd16xx_plane_atomic_update(struct drm_plane *plane, + struct drm_atomic_commit *state) +{ + struct drm_plane_state *old_state = drm_atomic_get_old_plane_state(state, plane); + struct drm_plane_state *new_state = drm_atomic_get_new_plane_state(state, plane); + struct drm_shadow_plane_state *shadow_state = to_drm_shadow_plane_state(new_state); + struct ssd16xx_device *device = plane_to_ssd16xx_device(plane); + enum ssd16xx_refresh_mode saved_mode; + u8 saved_border_waveform_idx; + struct drm_framebuffer *fb = new_state->fb; + struct drm_rect rect; + int ret; + + drm_dbg(&device->drm, "plane_atomic_update: fb=%p, initialized=%d\n", + fb, device->initialized); + + if (!fb || !device->initialized) + return; + + if (!drm_atomic_helper_damage_merged(old_state, new_state, &rect)) { + rect.x1 = 0; + rect.y1 = 0; + rect.x2 = fb->width; + rect.y2 = fb->height; + drm_dbg(&device->drm, "plane_atomic_update: no damage, using full screen\n"); + } + + drm_dbg(&device->drm, "plane_atomic_update: calling fb_dirty rect=(%d,%d)-(%d,%d)\n", + rect.x1, rect.y1, rect.x2, rect.y2); + /* + * When refresh_mode_init was set, use the specified mode for this first + * frame only, then restore the user-configured refresh_mode so + * subsequent updates continue with the configured mode. + */ + saved_mode = device->refresh_mode; + saved_border_waveform_idx = device->border_waveform_update_idx; + if (device->init_refresh_pending) { + device->refresh_mode = device->refresh_mode_init; + device->border_waveform_update_idx = device->border_waveform_init_idx; + } + + /* + * Fast refresh (0xC7) omits LOAD_LUT on every update cycle and relies + * on the LUT being pre-loaded upfront. The property setter arms + * fast_lut_pending whenever the user switches into fast mode. Consume + * the flag here (once) before the first fast-refresh frame so the + * controller's LUT is in the correct state. + */ + if (device->fast_lut_pending) { + ret = ssd16xx_preload_fast_lut(device); + if (ret) { + drm_err(&device->drm, + "plane_atomic_update: fast LUT preload failed: %d\n", ret); + } + + device->fast_lut_pending = false; + } + + ret = ssd16xx_fb_dirty(fb, &rect, device, &shadow_state->data[0]); + if (ret) + drm_err(&device->drm, "plane_atomic_update: display update failed: %d\n", ret); + else + device->last_fb = fb; + + device->refresh_mode = saved_mode; + device->border_waveform_update_idx = saved_border_waveform_idx; + + /* + * If this was the init frame (which used border_waveform_init_idx + * inside fb_dirty), arm border_waveform_pending so the normal + * (non-init) border value is sent at the start of the next update. + */ + if (device->init_refresh_pending) { + device->init_refresh_pending = false; + device->border_waveform_pending = true; + } +} + +static const struct drm_plane_helper_funcs ssd16xx_plane_helper_funcs = { + DRM_GEM_SHADOW_PLANE_HELPER_FUNCS, + .atomic_check = ssd16xx_plane_atomic_check, + .atomic_update = ssd16xx_plane_atomic_update, +}; + +/* ----------------------------------------------------------------------------- + * CRTC Functions + */ + +static void ssd16xx_crtc_destroy(struct drm_crtc *crtc) +{ + drm_crtc_cleanup(crtc); +} + +static const struct drm_crtc_funcs ssd16xx_crtc_funcs = { + .atomic_create_state = drm_atomic_helper_crtc_create_state, + .destroy = ssd16xx_crtc_destroy, + .set_config = drm_atomic_helper_set_config, + .page_flip = drm_atomic_helper_page_flip, + .atomic_duplicate_state = drm_atomic_helper_crtc_duplicate_state, + .atomic_destroy_state = drm_atomic_helper_crtc_destroy_state, +}; + +static enum drm_mode_status ssd16xx_crtc_mode_valid(struct drm_crtc *crtc, + const struct drm_display_mode *mode) +{ + struct ssd16xx_device *device = crtc_to_ssd16xx_device(crtc); + + /* Accept only our device's native mode (landscape or portrait) */ + if ((mode->hdisplay == device->mode->hdisplay && + mode->vdisplay == device->mode->vdisplay) || + (mode->hdisplay == device->mode->vdisplay && + mode->vdisplay == device->mode->hdisplay)) + return MODE_OK; + + return MODE_BAD; +} + +static int ssd16xx_crtc_atomic_check(struct drm_crtc *crtc, + struct drm_atomic_commit *state) +{ + return 0; +} + +static void ssd16xx_crtc_atomic_disable(struct drm_crtc *crtc, + struct drm_atomic_commit *state) +{ + struct ssd16xx_device *device = crtc_to_ssd16xx_device(crtc); + int idx; + + if (!drm_dev_enter(&device->drm, &idx)) + return; + + drm_dev_exit(idx); +} + +static void ssd16xx_crtc_atomic_enable(struct drm_crtc *crtc, + struct drm_atomic_commit *state) +{ + struct ssd16xx_device *device = crtc_to_ssd16xx_device(crtc); + int ret, idx; + + if (!drm_dev_enter(&device->drm, &idx)) + return; + + drm_dbg(&device->drm, "atomic_enable: %dx%d orientation=%u°\n", + device->width, device->height, device->orientation); + + ret = ssd16xx_hw_init(device); + if (ret) { + drm_err(&device->drm, "crtc_atomic_enable: HW init failed: %d\n", ret); + goto out; + } + device->initialized = true; + + /* + * If refresh_mode_init is set, arm init_refresh_pending so + * plane_atomic_update uses the specified mode for the first frame + * then restores the user-configured or device default refresh_mode. + */ + if (device->refresh_mode_init >= 0) { + drm_dbg(&device->drm, + "atomic_enable: refresh_mode_init=%d, using for first frame\n", + device->refresh_mode_init); + device->init_refresh_pending = true; + } + +out: + drm_dev_exit(idx); +} + +/* + * Re-initialize hardware and redraw the current framebuffer when the + * display orientation changes at runtime + */ +static void ssd16xx_crtc_atomic_flush(struct drm_crtc *crtc, + struct drm_atomic_commit *state) +{ + struct ssd16xx_device *device = crtc_to_ssd16xx_device(crtc); + struct drm_framebuffer *fb; + struct drm_rect full; + int ret, idx; + + if (!device->initialized) + return; + + if (!drm_dev_enter(&device->drm, &idx)) + return; + + drm_dbg(&device->drm, "atomic_flush: reinit, orientation=%u°\n", + device->orientation); + + ret = ssd16xx_hw_init(device); + if (ret) { + drm_err(&device->drm, "Orientation re-init failed: %d\n", ret); + goto out; + } + + fb = device->primary_plane.state ? device->primary_plane.state->fb + : device->last_fb; + if (fb) { + struct drm_gem_object *obj = drm_gem_fb_get_obj(fb, 0); + struct iosys_map map; + + full.x1 = 0; + full.y1 = 0; + full.x2 = fb->width; + full.y2 = fb->height; + + ret = drm_gem_vmap(obj, &map); + if (!ret) { + ret = ssd16xx_fb_dirty(fb, &full, device, &map); + drm_gem_vunmap(obj, &map); + } + if (ret) + drm_err(&device->drm, "atomic_flush: display update failed: %d\n", ret); + else + device->last_fb = fb; + } + +out: + drm_dev_exit(idx); +} + +static const struct drm_crtc_helper_funcs ssd16xx_crtc_helper_funcs = { + .mode_valid = ssd16xx_crtc_mode_valid, + .atomic_check = ssd16xx_crtc_atomic_check, + .atomic_disable = ssd16xx_crtc_atomic_disable, + .atomic_enable = ssd16xx_crtc_atomic_enable, + .atomic_flush = ssd16xx_crtc_atomic_flush, +}; + +/* ----------------------------------------------------------------------------- + * Connector Functions + */ + +static int ssd16xx_connector_get_modes(struct drm_connector *connector) +{ + struct ssd16xx_device *device = to_ssd16xx_device(connector->dev); + bool mode_is_portrait = (device->mode->hdisplay < device->mode->vdisplay); + bool orient_is_portrait = (device->orientation == 90 || device->orientation == 270); + + drm_dbg(&device->drm, + "connector_get_modes: orientation=%u° mode=%ux%u mode_portrait=%d orient_portrait=%d\n", + device->orientation, device->mode->hdisplay, device->mode->vdisplay, + mode_is_portrait, orient_is_portrait); + + /* For portrait, swap dimensions so clients see logical size. */ + if (mode_is_portrait != orient_is_portrait) { + struct drm_display_mode *mode; + + mode = drm_mode_duplicate(&device->drm, device->mode); + if (!mode) + return 0; + swap(mode->hdisplay, mode->vdisplay); + swap(mode->hsync_start, mode->vsync_start); + swap(mode->hsync_end, mode->vsync_end); + swap(mode->htotal, mode->vtotal); + swap(mode->width_mm, mode->height_mm); + mode->type |= DRM_MODE_TYPE_PREFERRED; + drm_mode_set_name(mode); + drm_mode_probed_add(connector, mode); + return 1; + } + + return drm_connector_helper_get_modes_fixed(connector, device->mode); +} + +static const struct drm_connector_helper_funcs ssd16xx_connector_helper_funcs = { + .get_modes = ssd16xx_connector_get_modes, +}; + +static const struct drm_connector_funcs ssd16xx_connector_funcs = { + .reset = drm_atomic_helper_connector_reset, + .fill_modes = drm_helper_probe_single_connector_modes, + .destroy = drm_connector_cleanup, + .atomic_duplicate_state = drm_atomic_helper_connector_duplicate_state, + .atomic_destroy_state = drm_atomic_helper_connector_destroy_state, +}; + +static const u32 ssd16xx_formats[] = { + DRM_FORMAT_XRGB8888, /* 32-bit RGB with padding (preferred) */ + DRM_FORMAT_R1, /* 1-bit monochrome (native, zero-copy path) */ +}; + +DEFINE_DRM_GEM_FOPS(ssd16xx_fops); + +/* + * ssd16xx_drm_master_set - arm init refresh when a new master takes control. + */ +static void ssd16xx_drm_master_set(struct drm_device *drm, + struct drm_file *file, bool from_open) +{ + struct ssd16xx_device *device = to_ssd16xx_device(drm); + + if (device->refresh_mode_init >= 0) + device->init_refresh_pending = true; +} + +/* + * ssd16xx_drm_master_drop - clear display and disarm init refresh when the + * master client exits. + */ +static void ssd16xx_drm_master_drop(struct drm_device *drm, + struct drm_file *file) +{ + struct ssd16xx_device *device = to_ssd16xx_device(drm); + + device->init_refresh_pending = false; +} + +static struct drm_driver ssd16xx_drm_driver = { + .driver_features = DRIVER_GEM | DRIVER_MODESET | DRIVER_ATOMIC, + .fops = &ssd16xx_fops, + .name = "ssd16xx", + .desc = "DRM driver for SSD16xx e-paper controller family", + .major = 1, + .minor = 0, + .master_set = ssd16xx_drm_master_set, + .master_drop = ssd16xx_drm_master_drop, + DRM_GEM_SHMEM_DRIVER_OPS, + DRM_FBDEV_SHMEM_DRIVER_OPS, +}; + +static const struct drm_mode_config_funcs ssd16xx_mode_config_funcs = { + .fb_create = drm_gem_fb_create_with_dirty, + .atomic_check = drm_atomic_helper_check, + .atomic_commit = drm_atomic_helper_commit, +}; + +/* + * Use the RPM commit-tail variant so that drm_atomic_helper_commit_modeset_enables + * (which calls crtc_atomic_enable) runs before drm_atomic_helper_commit_planes. + * Without this, the standard commit_tail calls commit_planes before + * modeset_enables, so plane_atomic_update would see initialized == false on the + * first commit and silently drop the frame. + */ +static const struct drm_mode_config_helper_funcs ssd16xx_mode_config_helper_funcs = { + .atomic_commit_tail = drm_atomic_helper_commit_tail_rpm, +}; + +static int ssd16xx_alloc_tx_bufs(struct ssd16xx_device *device) +{ + /* + * Allocate for the actual physical panel size (width × height are + * always the physical dimensions, never swapped for orientation). + */ + size_t frame_size = DIV_ROUND_UP(device->width * device->height, 8); + + device->tx_buf = drmm_kmalloc(&device->drm, frame_size, GFP_KERNEL); + if (!device->tx_buf) + return -ENOMEM; + + if (device->device_cfg->red_supported) { + device->tx_red_buf = drmm_kmalloc(&device->drm, frame_size, GFP_KERNEL); + if (!device->tx_red_buf) + return -ENOMEM; + } + + if (!device->dc) { + device->tx_buf9 = drmm_kmalloc_array(&device->drm, frame_size, + sizeof(u16), GFP_KERNEL); + if (!device->tx_buf9) + return -ENOMEM; + } + + return 0; +} + +static int ssd16xx_probe(struct spi_device *spi) +{ + struct device *dev = &spi->dev; + struct ssd16xx_device *device; + struct drm_device *drm; + const struct spi_device_id *spi_id; + struct drm_display_mode *mode; + const void *match; + enum ssd16xx_model model; + u32 dt_rotation = 0; + int ret; + + match = device_get_match_data(dev); + if (match) { + model = (enum ssd16xx_model)(uintptr_t)match; + } else { + spi_id = spi_get_device_id(spi); + model = (enum ssd16xx_model)spi_id->driver_data; + } + + device = devm_drm_dev_alloc(dev, &ssd16xx_drm_driver, + struct ssd16xx_device, drm); + if (IS_ERR(device)) + return PTR_ERR(device); + + drm = &device->drm; + device->spi = spi; + device->model = model; + spi_set_drvdata(spi, device); + + spi->mode = SPI_MODE_0; + spi->bits_per_word = SSD16XX_SPI_BITS_PER_WORD; + + if (!spi->max_speed_hz) { + drm_warn(drm, "spi-max-frequency not specified, using %u Hz\n", + SSD16XX_SPI_SPEED_DEFAULT); + spi->max_speed_hz = SSD16XX_SPI_SPEED_DEFAULT; + } + + ret = spi_setup(spi); + if (ret < 0) { + drm_err(drm, "SPI setup failed: %d\n", ret); + return ret; + } + + switch (model) { + case GDEY042T81: + device->controller = SSD1683; + break; + default: + drm_err(drm, "Unknown panel model: %d\n", model); + return -EINVAL; + } + + if (device->controller >= ARRAY_SIZE(ssd16xx_controller_configs) || + !ssd16xx_controller_configs[device->controller].max_width) + return -EINVAL; + device->controller_cfg = &ssd16xx_controller_configs[device->controller]; + + if (model >= ARRAY_SIZE(ssd16xx_device_configs)) + return -EINVAL; + device->device_cfg = &ssd16xx_device_configs[model]; + + mode = devm_kmemdup(dev, device->device_cfg->mode, + sizeof(*device->device_cfg->mode), GFP_KERNEL); + if (!mode) + return -ENOMEM; + + device->refresh_mode = device->device_cfg->default_refresh_mode; + device->color_mode = device->device_cfg->default_color_mode; + device->border_waveform_init_idx = device->device_cfg->default_border_waveform_init; + device->border_waveform_update_idx = device->device_cfg->default_border_waveform_update; + device->border_refresh_on_every_update = + device->device_cfg->default_border_refresh_on_every_update; + device->refresh_mode_init = device->device_cfg->default_refresh_mode_init; + + /* Parse "rotation" DT property; swap mode dimensions for portrait. */ + device_property_read_u32(dev, "rotation", &dt_rotation); + if (dt_rotation != 0 && dt_rotation != 90 && dt_rotation != 180 && dt_rotation != 270) { + drm_warn(drm, "Invalid DT rotation %u, defaulting to 0°\n", dt_rotation); + dt_rotation = 0; + } + device->orientation = dt_rotation; + + device->width = mode->hdisplay; + device->height = mode->vdisplay; + + drm_dbg(drm, "Using %s orientation (%u°, physical %ux%u)\n", + (device->orientation == 90 || device->orientation == 270) ? + "portrait" : "landscape", device->orientation, device->width, device->height); + + /* Swap mode dimensions for portrait so clients see logical size. */ + if (device->orientation == 90 || device->orientation == 270) { + swap(mode->hdisplay, mode->vdisplay); + swap(mode->hsync_start, mode->vsync_start); + swap(mode->hsync_end, mode->vsync_end); + swap(mode->htotal, mode->vtotal); + swap(mode->width_mm, mode->height_mm); + drm_dbg(drm, "Mode dimensions swapped for portrait: %ux%u\n", + mode->hdisplay, mode->vdisplay); + } else { + drm_dbg(drm, "Mode dimensions unchanged: %ux%u\n", + mode->hdisplay, mode->vdisplay); + } + device->mode = mode; + + /* Validate panel dimensions against controller hardware limits. */ + if (device->width > device->controller_cfg->max_width || + device->height > device->controller_cfg->max_height) { + drm_err(drm, "panel %ux%u exceeds controller max %ux%u\n", + device->width, device->height, + device->controller_cfg->max_width, + device->controller_cfg->max_height); + return -EINVAL; + } + + /* + * For byte-addressed X (SSD1683, ram_x_address_bits == 8), each X + * address covers 8 pixels. The panel width must be a multiple of 8 + * so that (width/8 - 1) gives the correct byte-aligned window end. + */ + if (device->controller_cfg->ram_x_address_bits == 8 && + device->width % 8 != 0) { + drm_err(drm, "panel width %u not a multiple of 8 required for byte-addressed X controller)\n", + device->width); + return -EINVAL; + } + + /* Acquire GPIOs. */ + device->reset = devm_gpiod_get(dev, "reset", GPIOD_OUT_HIGH); + if (IS_ERR(device->reset)) + return dev_err_probe(dev, PTR_ERR(device->reset), "Failed to get RESET GPIO\n"); + + device->busy = devm_gpiod_get(dev, "busy", GPIOD_IN); + if (IS_ERR(device->busy)) + return dev_err_probe(dev, PTR_ERR(device->busy), "Failed to get BUSY GPIO\n"); + + device->dc = devm_gpiod_get_optional(dev, "dc", GPIOD_OUT_LOW); + if (IS_ERR(device->dc)) + return dev_err_probe(dev, PTR_ERR(device->dc), "Failed to get DC GPIO\n"); + if (!device->dc) { + if (!spi_is_bpw_supported(spi, 9)) + return dev_err_probe(dev, -EINVAL, + "3-wire SPI mode requires 9-bit word support\n"); + drm_dbg(drm, "dc-gpios not specified, using 3-wire (9-bit) SPI mode\n"); + } + + ret = ssd16xx_alloc_tx_bufs(device); + if (ret) + return ret; + + ssd16xx_hw_reset(device); + + ret = drmm_mode_config_init(drm); + if (ret) + return ret; + + drm->mode_config.funcs = &ssd16xx_mode_config_funcs; + drm->mode_config.helper_private = &ssd16xx_mode_config_helper_funcs; + drm->mode_config.min_width = min(device->width, device->height); + drm->mode_config.max_width = max(device->width, device->height); + drm->mode_config.min_height = min(device->width, device->height); + drm->mode_config.max_height = max(device->width, device->height); + + drm_connector_helper_add(&device->connector, &ssd16xx_connector_helper_funcs); + ret = drm_connector_init(drm, &device->connector, &ssd16xx_connector_funcs, + DRM_MODE_CONNECTOR_SPI); + if (ret) + return ret; + + ret = drm_universal_plane_init(drm, &device->primary_plane, 0, + &ssd16xx_plane_funcs, + ssd16xx_formats, ARRAY_SIZE(ssd16xx_formats), + NULL, DRM_PLANE_TYPE_PRIMARY, NULL); + if (ret) + return ret; + drm_plane_helper_add(&device->primary_plane, &ssd16xx_plane_helper_funcs); + drm_plane_enable_fb_damage_clips(&device->primary_plane); + + ret = drm_crtc_init_with_planes(drm, &device->crtc, &device->primary_plane, + NULL, &ssd16xx_crtc_funcs, NULL); + if (ret) + return ret; + drm_crtc_helper_add(&device->crtc, &ssd16xx_crtc_helper_funcs); + + ret = drmm_encoder_init(drm, &device->encoder, NULL, DRM_MODE_ENCODER_NONE, NULL); + if (ret) + return ret; + device->encoder.possible_crtcs = drm_crtc_mask(&device->crtc); + + ret = drm_connector_attach_encoder(&device->connector, &device->encoder); + if (ret) + return ret; + + drm_mode_config_reset(drm); + + ret = drm_dev_register(drm, 0); + if (ret) + return ret; + + drm_dbg(drm, "SSD16xx e-paper display initialized (%dx%d, %d° rotation)\n", + device->width, device->height, device->orientation); + + drm_client_setup(drm, NULL); + + return 0; +} + +static void ssd16xx_remove(struct spi_device *spi) +{ + struct ssd16xx_device *device = spi_get_drvdata(spi); + + drm_dev_unplug(&device->drm); + drm_atomic_helper_shutdown(&device->drm); +} + +static void ssd16xx_shutdown(struct spi_device *spi) +{ + struct ssd16xx_device *device = spi_get_drvdata(spi); + + drm_atomic_helper_shutdown(&device->drm); +} + +static const struct of_device_id ssd16xx_of_match[] = { + { .compatible = "gooddisplay,gdey042t81", .data = (void *)GDEY042T81 }, + { } +}; +MODULE_DEVICE_TABLE(of, ssd16xx_of_match); + +static const struct spi_device_id ssd16xx_id[] = { + { "gdey042t81", GDEY042T81 }, + { } +}; +MODULE_DEVICE_TABLE(spi, ssd16xx_id); + +static struct spi_driver ssd16xx_spi_driver = { + .driver = { + .name = "ssd16xx", + .of_match_table = ssd16xx_of_match, + }, + .probe = ssd16xx_probe, + .remove = ssd16xx_remove, + .shutdown = ssd16xx_shutdown, + .id_table = ssd16xx_id, +}; +module_spi_driver(ssd16xx_spi_driver); + +MODULE_AUTHOR("Devarsh Thakkar "); +MODULE_DESCRIPTION("DRM driver for Solomon SSD16xx e-paper display controller family"); +MODULE_LICENSE("GPL"); -- 2.39.1