This is a port of Henning Kralsen's UTFT library for Arduino/chipKIT to mbed, refactored to make full use of C++ inheritance and access control, in order to reduce work when implementing new drivers and at the same time make the code more readable and easier to maintain. As of now supported are SSD1289 (16-bit interface), HX8340-B (serial interface) and ST7735 (serial interface). Drivers for other controllers will be added as time and resources to acquire the displays to test the code permit.

Dependents:   test SDCard capstone_display capstone_display_2 ... more

TFTLCD Library

NOTE (2013-03-25) Tested with both mbed LPC1768 and Freedom KL25Z. -todor

A TFT LCD driver library, which at the moment provides support for the following display controllers: HX8340-B (serial interface), SSD1289 (16-bit interface), ST7735-R (serial interface), ILI9325/ILI9328 (16-bit interface).

As I am acquiring and testing out new displays, I decided to combine all ported drivers into one library as with the original work done by Henning. However I also had as a goal to make the code maintenance and readability easier/better, so the code has been heavily refactored to make full use of C++ facilities as inheritance and access control. I extracted the common pieces of code into a base class, which every driver inherits and only the controller-specific side is provided in the actual driver - things like initialization, addressing, data transfer, etc.

Another nice extension is that the display's backlight can now be controlled through the driver. Either a simple on/off method of control could be selected, or the brightness can be set through use of PWM (the latter placing some restrictions on which pins can be used for this, as mbed offers hardware PWM on only 6 pins).

I also plan to add support for touch screens as part of the library. The goal is to grow this piece of software into a lightweight graphics widgets library, which can be used to construct control screens with buttons or menus in a speedy and intuitive way.

Changes

2013-07-21

  • Fixed the sleep/wake-up functions of the ILI9328 driver.

2013-06-15

  • Added driver for ILI9328 (works with ILI9325) controller, 16-bit data bus. Screen rotation works as usual with the TFTLCD library, but for now only RGB565 color depth is working and you can use both 65K and 262K color space with this driver. But for some reason the sleep function is not behaving as expected; I am working on this.
  • This is only on my to-do list for now - haven't really had the time yet - but I am going to refactor the library a bit to allow use of GPIO ports for data transfers instead of DigitalOut: faster and cleaner that way. For those who are using it already in a working design and cannot repurpose the pins anymore, the current way it's working will still be available; I am hoping not to tear up the public interfaces of the library (... too much). Anyway, since I am at it, I will also try to add support for multiple bus interfaces to drivers that support it (i.e. both 8bit and 16bit use of ILI932x or SSD1289). Thought this might be a good place to give you guys the heads-up.

2013-01-25

  • Replaced all existing fonts from the UTFT library with the free Terminus font. Two different sizes are provided: 8x12 pixels and 16x28 pixels. I found the old fonts not so good looking and then they supported only the ASCII codes in the range 30 (space) to 126 (the tilde ). The 7segment font didn't even implement anything else than the numbers from 0 to 9 - so it was unusable for anything (one couldn't even display the time or date as it lacked the colon [:] or the period [.] or the slash [/] or the space [ ] characters). So I completely revamped the fonts and added Terminus as the new default with its 2 sizes. Further more I added in both sizes most of the characters up to ASCII code 255. For any code not in there, the space character is substituted. In the case, when you already have provided your own fonts, please have a look at the API changes in the files <terminus.h> and <terminus.cpp>: I promise you whatever time you spent designing your own font, it is not wasted; you merely need to add a second array, which describes which ASCII codes are available in your font, and their byte offset in the original character bitmap array; and a struct to tie all parts together and describe the character size. I am sorry for breaking the old API, but you will like the change and new options it brings you. Now you can insert any char above 127 up to code 255 (if available, of course) with its hex representation, e.g displaying the current temperature would look something like 85\xB0 F or 26\xB0 C (the space in between degree and F or C is needed because both F and C are used in hex numbers, so \xB0F is interpreted as ASCII code 2831 instead of ASCII code 176, followed by the temperature scale denomination; if you insist on avoiding the space, you could write 85\xB0\x46 which will be displayed correctly as 85°F). You can either look up the ASCII code you need on Google or Bing, or just look at what's available - how it looks and its hex value - in the comments in <terminus.cpp>.
  • Added PWM backlight control. If you intend to use this, please make sure that control pin is either one of p21, p22, p23, p24, p25, or p26, as only they support hardware PWM. Please be aware that the mbed pins do not have much juice behind them, so if your display's backlight requires a lot of current, you are better off interfacing through as small signal transistor or a MOSFET. For the rest please consult the updated Doxygen documentation. NOTE The addition of PWM-controlled backlight will not break your existing code, the new options have default values, which initialize the used driver to behave as prior to PWM. Only if you want to use the new feature, some changes need to be made. The PWM is configured to be 120Hz (period of 8.33 milliseconds), in order to avoid noticeable flicker in the backlight. If in your opinion this value is too fine, then you can reduce the frequency in the LCD constructor in <lcd_base.cpp> by increasing the period value. My recommendation is to avoid frequencies lower than 60Hz.

2012-12-21

  • Internal-only changes in the way drivers transmit colors - done to simplify the bitmap drawing routines; client API remains unchanged.

2012-12-12

  • Added the driver for the ST7735 display controller.
  • Added the RGB18 color mode: choose between 16-bit (65K distinct colors) and 18-bit (262K distinct colors) color space [supported by all drivers]. NOTE This feature requires the image drawing functions to be changed, in order to account for differences between configured display color depth and the color depth of the image. Please review the API docs, in particular the new type bitmap_t and the DrawBitmap functions.
  • Changed display rotation to be achieved through the correspondent settings in the respective controller registers: no more software translation between width and height in different display orientations.
  • Extended the orientation options: PORTRAIT (top line to 12 o'clock/upright) and LANDSCAPE (top line to 9 o'clock) positions are the old options, PORTRAIT_REV (top line to 6 o'clock/upside-down) and LANDSCAPE_REV (top line to 3 o'clock) are the new orientations.
  • Added more pre-defined colors: available now are COLOR_BLACK, COLOR_WHITE, COLOR_RED, COLOR_GREEN, COLOR_BLUE, COLOR_CYAN, COLOR_MAGENTA and COLOR_YELLOW.

TODO

  • Finish implementing PWM-controlled backlight (current-sink configuration).
  • Add a driver for the HX8352-A controller (ITDB02-3.2WD 16:9 240x400 pixel resolution display).

How to Use

The code is documented, so please review the API docs. There is a simple example to get you started...

Committer:
ttodorov
Date:
Fri Dec 21 06:05:15 2012 +0000
Revision:
20:4bdca8d8dadc
Parent:
15:af3cd35886fb
Child:
22:4c169297f374
- changed internals of SetPixelColor to allow more general and simple implementation of the bitmap drawing functions

Who changed what in which revision?

UserRevisionLine numberNew contents of line
ttodorov 4:3ac4239f6c9c 1 /*
ttodorov 4:3ac4239f6c9c 2 * Copyright (C)2010-2012 Henning Karlsen. All right reserved.
ttodorov 4:3ac4239f6c9c 3 * Copyright (C)2012 Todor Todorov.
ttodorov 4:3ac4239f6c9c 4 *
ttodorov 4:3ac4239f6c9c 5 * This library is free software; you can redistribute it and/or
ttodorov 4:3ac4239f6c9c 6 * modify it under the terms of the GNU Lesser General Public
ttodorov 4:3ac4239f6c9c 7 * License as published by the Free Software Foundation; either
ttodorov 4:3ac4239f6c9c 8 * version 2.1 of the License, or (at your option) any later version.
ttodorov 4:3ac4239f6c9c 9 *
ttodorov 4:3ac4239f6c9c 10 * This library is distributed in the hope that it will be useful,
ttodorov 4:3ac4239f6c9c 11 * but WITHOUT ANY WARRANTY; without even the implied warranty of
ttodorov 4:3ac4239f6c9c 12 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
ttodorov 4:3ac4239f6c9c 13 * Lesser General Public License for more details.
ttodorov 4:3ac4239f6c9c 14 *
ttodorov 4:3ac4239f6c9c 15 * You should have received a copy of the GNU Lesser General Public
ttodorov 4:3ac4239f6c9c 16 * License along with this library; if not, write to:
ttodorov 4:3ac4239f6c9c 17 *
ttodorov 4:3ac4239f6c9c 18 * Free Software Foundation, Inc.
ttodorov 4:3ac4239f6c9c 19 * 51 Franklin St, 5th Floor, Boston, MA 02110-1301, USA
ttodorov 4:3ac4239f6c9c 20 *
ttodorov 4:3ac4239f6c9c 21 *********************************************************************/
ttodorov 4:3ac4239f6c9c 22 #include "hx8340bs.h"
ttodorov 4:3ac4239f6c9c 23 #include "helpers.h"
ttodorov 4:3ac4239f6c9c 24
ttodorov 4:3ac4239f6c9c 25 HX8340S_LCD::HX8340S_LCD( PinName CS, PinName RESET, PinName SCL, PinName SDI, PinName BL )
ttodorov 4:3ac4239f6c9c 26 : LCD( 176, 220, CS, NC, RESET ), _lcd_pin_scl( SCL ), _lcd_pin_sdi( SDI )
ttodorov 4:3ac4239f6c9c 27 {
ttodorov 4:3ac4239f6c9c 28 if ( BL != NC ) _lcd_pin_bl = new DigitalOut( BL );
ttodorov 4:3ac4239f6c9c 29 else _lcd_pin_bl = 0;
ttodorov 4:3ac4239f6c9c 30 }
ttodorov 9:58b328831d0a 31
ttodorov 12:d0978272a340 32 void HX8340S_LCD::Initialize( orientation_t orientation, colordepth_t colors )
ttodorov 4:3ac4239f6c9c 33 {
ttodorov 4:3ac4239f6c9c 34 _orientation = orientation;
ttodorov 12:d0978272a340 35 _colorDepth = colors;
ttodorov 4:3ac4239f6c9c 36
ttodorov 4:3ac4239f6c9c 37 wait_ms( 100 );
ttodorov 4:3ac4239f6c9c 38 _lcd_pin_reset = HIGH;
ttodorov 4:3ac4239f6c9c 39 wait_ms( 5 );
ttodorov 4:3ac4239f6c9c 40 _lcd_pin_reset = LOW;
ttodorov 4:3ac4239f6c9c 41 wait_ms( 15 );
ttodorov 4:3ac4239f6c9c 42 _lcd_pin_reset = HIGH;
ttodorov 4:3ac4239f6c9c 43 _lcd_pin_cs = HIGH;
ttodorov 4:3ac4239f6c9c 44 _lcd_pin_scl = HIGH;
ttodorov 4:3ac4239f6c9c 45 _lcd_pin_sdi = HIGH;
ttodorov 4:3ac4239f6c9c 46 if ( _lcd_pin_bl != 0 )
ttodorov 4:3ac4239f6c9c 47 *_lcd_pin_bl = HIGH;
ttodorov 4:3ac4239f6c9c 48 wait_ms( 55 );
ttodorov 4:3ac4239f6c9c 49
ttodorov 4:3ac4239f6c9c 50 Activate();
ttodorov 12:d0978272a340 51 WriteCmd( 0xC1 ); // SETEXTCMD
ttodorov 4:3ac4239f6c9c 52 WriteByteData( 0xFF );
ttodorov 4:3ac4239f6c9c 53 WriteByteData( 0x83 );
ttodorov 4:3ac4239f6c9c 54 WriteByteData( 0x40 );
ttodorov 12:d0978272a340 55
ttodorov 12:d0978272a340 56 WriteCmd( 0x11 ); // SLPOUT
ttodorov 4:3ac4239f6c9c 57 wait_ms( 160 );
ttodorov 12:d0978272a340 58
ttodorov 4:3ac4239f6c9c 59 WriteCmd( 0xCA );
ttodorov 4:3ac4239f6c9c 60 WriteByteData( 0x70 );
ttodorov 4:3ac4239f6c9c 61 WriteByteData( 0x00 );
ttodorov 4:3ac4239f6c9c 62 WriteByteData( 0xD9 );
ttodorov 12:d0978272a340 63
ttodorov 12:d0978272a340 64 WriteCmd( 0xB0 ); // SETOSC
ttodorov 4:3ac4239f6c9c 65 WriteByteData( 0x01 );
ttodorov 4:3ac4239f6c9c 66 WriteByteData( 0x11 );
ttodorov 4:3ac4239f6c9c 67
ttodorov 4:3ac4239f6c9c 68 WriteCmd( 0xC9 );
ttodorov 4:3ac4239f6c9c 69 WriteByteData( 0x90 );
ttodorov 4:3ac4239f6c9c 70 WriteByteData( 0x49 );
ttodorov 4:3ac4239f6c9c 71 WriteByteData( 0x10 );
ttodorov 4:3ac4239f6c9c 72 WriteByteData( 0x28 );
ttodorov 4:3ac4239f6c9c 73 WriteByteData( 0x28 );
ttodorov 4:3ac4239f6c9c 74 WriteByteData( 0x10 );
ttodorov 4:3ac4239f6c9c 75 WriteByteData( 0x00 );
ttodorov 4:3ac4239f6c9c 76 WriteByteData( 0x06 );
ttodorov 4:3ac4239f6c9c 77 wait_ms( 20 );
ttodorov 12:d0978272a340 78
ttodorov 12:d0978272a340 79 WriteCmd( 0xC2 ); // SETGAMMAP
ttodorov 4:3ac4239f6c9c 80 WriteByteData( 0x60 );
ttodorov 4:3ac4239f6c9c 81 WriteByteData( 0x71 );
ttodorov 4:3ac4239f6c9c 82 WriteByteData( 0x01 );
ttodorov 4:3ac4239f6c9c 83 WriteByteData( 0x0E );
ttodorov 4:3ac4239f6c9c 84 WriteByteData( 0x05 );
ttodorov 4:3ac4239f6c9c 85 WriteByteData( 0x02 );
ttodorov 4:3ac4239f6c9c 86 WriteByteData( 0x09 );
ttodorov 4:3ac4239f6c9c 87 WriteByteData( 0x31 );
ttodorov 4:3ac4239f6c9c 88 WriteByteData( 0x0A );
ttodorov 4:3ac4239f6c9c 89
ttodorov 12:d0978272a340 90 WriteCmd( 0xc3 ); // SETGAMMAN
ttodorov 4:3ac4239f6c9c 91 WriteByteData( 0x67 );
ttodorov 4:3ac4239f6c9c 92 WriteByteData( 0x30 );
ttodorov 4:3ac4239f6c9c 93 WriteByteData( 0x61 );
ttodorov 4:3ac4239f6c9c 94 WriteByteData( 0x17 );
ttodorov 4:3ac4239f6c9c 95 WriteByteData( 0x48 );
ttodorov 4:3ac4239f6c9c 96 WriteByteData( 0x07 );
ttodorov 4:3ac4239f6c9c 97 WriteByteData( 0x05 );
ttodorov 4:3ac4239f6c9c 98 WriteByteData( 0x33 );
ttodorov 4:3ac4239f6c9c 99 wait_ms( 10 );
ttodorov 12:d0978272a340 100
ttodorov 12:d0978272a340 101 WriteCmd( 0xB5 ); // SETPWCTR5
ttodorov 4:3ac4239f6c9c 102 WriteByteData( 0x35 );
ttodorov 4:3ac4239f6c9c 103 WriteByteData( 0x20 );
ttodorov 4:3ac4239f6c9c 104 WriteByteData( 0x45 );
ttodorov 4:3ac4239f6c9c 105
ttodorov 12:d0978272a340 106 WriteCmd( 0xB4 ); // SETPWCTR4
ttodorov 4:3ac4239f6c9c 107 WriteByteData( 0x33 );
ttodorov 4:3ac4239f6c9c 108 WriteByteData( 0x25 );
ttodorov 4:3ac4239f6c9c 109 WriteByteData( 0x4c );
ttodorov 4:3ac4239f6c9c 110 wait_ms( 10 );
ttodorov 12:d0978272a340 111
ttodorov 12:d0978272a340 112 WriteCmd( 0x3A ); // COLMOD == color depth: 0x05 => 16bit, 0x06 => 18bit
ttodorov 12:d0978272a340 113 WriteByteData( _colorDepth == RGB16 ? 0x05 : 0x06 );
ttodorov 12:d0978272a340 114
ttodorov 12:d0978272a340 115 WriteCmd( 0x36 ); // MADCTL
ttodorov 12:d0978272a340 116 switch ( _orientation )
ttodorov 12:d0978272a340 117 {
ttodorov 12:d0978272a340 118 case LANDSCAPE: WriteByteData( 0xB8 ); break;
ttodorov 12:d0978272a340 119 case PORTRAIT_REV: WriteByteData( 0xDC ); break;
ttodorov 12:d0978272a340 120 case LANDSCAPE_REV: WriteByteData( 0x6C ); break;
ttodorov 12:d0978272a340 121 case PORTRAIT:
ttodorov 12:d0978272a340 122 default: WriteByteData( 0x08 ); break;
ttodorov 12:d0978272a340 123 }
ttodorov 12:d0978272a340 124
ttodorov 12:d0978272a340 125 WriteCmd( 0x29 ); // DISPON
ttodorov 4:3ac4239f6c9c 126 wait_ms( 10 );
ttodorov 12:d0978272a340 127
ttodorov 12:d0978272a340 128 ClearXY();
ttodorov 4:3ac4239f6c9c 129 Deactivate();
ttodorov 4:3ac4239f6c9c 130 }
ttodorov 4:3ac4239f6c9c 131
ttodorov 4:3ac4239f6c9c 132 void HX8340S_LCD::Sleep( void )
ttodorov 4:3ac4239f6c9c 133 {
ttodorov 4:3ac4239f6c9c 134 Activate();
ttodorov 4:3ac4239f6c9c 135 WriteCmd( 0x28 );
ttodorov 4:3ac4239f6c9c 136 wait_ms( 10 );
ttodorov 4:3ac4239f6c9c 137 WriteCmd( 0x10 );
ttodorov 4:3ac4239f6c9c 138 wait_ms( 125 );
ttodorov 4:3ac4239f6c9c 139 if ( _lcd_pin_bl != 0 )
ttodorov 4:3ac4239f6c9c 140 *_lcd_pin_bl = LOW;
ttodorov 4:3ac4239f6c9c 141 Deactivate();
ttodorov 4:3ac4239f6c9c 142 }
ttodorov 4:3ac4239f6c9c 143
ttodorov 4:3ac4239f6c9c 144 void HX8340S_LCD::WakeUp( void )
ttodorov 4:3ac4239f6c9c 145 {
ttodorov 4:3ac4239f6c9c 146 Activate();
ttodorov 4:3ac4239f6c9c 147 WriteCmd( 0x29 );
ttodorov 4:3ac4239f6c9c 148 wait_ms( 10 );
ttodorov 4:3ac4239f6c9c 149 WriteCmd( 0x11 );
ttodorov 4:3ac4239f6c9c 150 wait_ms( 125 );
ttodorov 4:3ac4239f6c9c 151 if ( _lcd_pin_bl != 0 )
ttodorov 4:3ac4239f6c9c 152 *_lcd_pin_bl = HIGH;
ttodorov 4:3ac4239f6c9c 153 Deactivate();
ttodorov 4:3ac4239f6c9c 154 }
ttodorov 4:3ac4239f6c9c 155
ttodorov 4:3ac4239f6c9c 156 void HX8340S_LCD::WriteCmd( unsigned short cmd )
ttodorov 4:3ac4239f6c9c 157 {
ttodorov 4:3ac4239f6c9c 158 _lcd_pin_sdi = LOW;
ttodorov 4:3ac4239f6c9c 159 pulseLow( _lcd_pin_scl );
ttodorov 4:3ac4239f6c9c 160 serializeByte( cmd & 0xFF );
ttodorov 4:3ac4239f6c9c 161 }
ttodorov 4:3ac4239f6c9c 162
ttodorov 4:3ac4239f6c9c 163 void HX8340S_LCD::WriteData( unsigned short data )
ttodorov 4:3ac4239f6c9c 164 {
ttodorov 4:3ac4239f6c9c 165 _lcd_pin_sdi = HIGH;
ttodorov 4:3ac4239f6c9c 166 pulseLow( _lcd_pin_scl );
ttodorov 4:3ac4239f6c9c 167 serializeByte( ( data >> 8 ) & 0xFF );
ttodorov 4:3ac4239f6c9c 168 _lcd_pin_sdi = HIGH;
ttodorov 4:3ac4239f6c9c 169 pulseLow( _lcd_pin_scl );
ttodorov 4:3ac4239f6c9c 170 serializeByte( data & 0xFF );
ttodorov 4:3ac4239f6c9c 171 }
ttodorov 4:3ac4239f6c9c 172
ttodorov 4:3ac4239f6c9c 173 void HX8340S_LCD::WriteByteData( unsigned char data )
ttodorov 4:3ac4239f6c9c 174 {
ttodorov 4:3ac4239f6c9c 175 _lcd_pin_sdi = HIGH;
ttodorov 4:3ac4239f6c9c 176 pulseLow( _lcd_pin_scl );
ttodorov 4:3ac4239f6c9c 177 serializeByte( data );
ttodorov 4:3ac4239f6c9c 178 }
ttodorov 4:3ac4239f6c9c 179
ttodorov 20:4bdca8d8dadc 180 void HX8340S_LCD::SetXY( unsigned short x1, unsigned short y1, unsigned short x2, unsigned short y2 )
ttodorov 4:3ac4239f6c9c 181 {
ttodorov 12:d0978272a340 182 WriteCmdData( 0x2A, x1 ); // CASET
ttodorov 4:3ac4239f6c9c 183 WriteData( x2 );
ttodorov 12:d0978272a340 184 WriteCmdData( 0x2B, y1 ); // PASET
ttodorov 4:3ac4239f6c9c 185 WriteData( y2 );
ttodorov 12:d0978272a340 186 WriteCmd( 0x2C ); // RAMWR
ttodorov 4:3ac4239f6c9c 187 }
ttodorov 4:3ac4239f6c9c 188
ttodorov 20:4bdca8d8dadc 189 void HX8340S_LCD::SetPixelColor( unsigned int color, colordepth_t mode )
ttodorov 10:69571adcfad5 190 {
ttodorov 20:4bdca8d8dadc 191 unsigned char r = 0, g = 0, b = 0;
ttodorov 20:4bdca8d8dadc 192 unsigned short clr;
ttodorov 12:d0978272a340 193 if ( _colorDepth == RGB16 )
ttodorov 12:d0978272a340 194 {
ttodorov 20:4bdca8d8dadc 195 switch ( mode )
ttodorov 20:4bdca8d8dadc 196 {
ttodorov 20:4bdca8d8dadc 197 case RGB16:
ttodorov 20:4bdca8d8dadc 198 WriteData( color & 0xFFFF );
ttodorov 20:4bdca8d8dadc 199 break;
ttodorov 20:4bdca8d8dadc 200 case RGB18:
ttodorov 20:4bdca8d8dadc 201 r = ( color >> 10 ) & 0xF8;
ttodorov 20:4bdca8d8dadc 202 g = ( color >> 4 ) & 0xFC;
ttodorov 20:4bdca8d8dadc 203 b = ( color >> 1 ) & 0x1F;
ttodorov 20:4bdca8d8dadc 204 clr = ( ( r | ( g >> 5 ) ) << 8 ) | ( ( g << 3 ) | b );
ttodorov 20:4bdca8d8dadc 205 WriteData( clr );
ttodorov 20:4bdca8d8dadc 206 break;
ttodorov 20:4bdca8d8dadc 207 case RGB24:
ttodorov 20:4bdca8d8dadc 208 r = ( color >> 16 ) & 0xF8;
ttodorov 20:4bdca8d8dadc 209 g = ( color >> 8 ) & 0xFC;
ttodorov 20:4bdca8d8dadc 210 b = color & 0xF8;
ttodorov 20:4bdca8d8dadc 211 clr = ( ( r | ( g >> 5 ) ) << 8 ) | ( ( g << 3 ) | ( b >> 3 ) );
ttodorov 20:4bdca8d8dadc 212 WriteData( clr );
ttodorov 20:4bdca8d8dadc 213 break;
ttodorov 20:4bdca8d8dadc 214 }
ttodorov 12:d0978272a340 215 }
ttodorov 15:af3cd35886fb 216 else if ( _colorDepth == RGB18 )
ttodorov 12:d0978272a340 217 {
ttodorov 20:4bdca8d8dadc 218 switch ( mode )
ttodorov 20:4bdca8d8dadc 219 {
ttodorov 20:4bdca8d8dadc 220 case RGB16:
ttodorov 20:4bdca8d8dadc 221 r = ( ( color >> 8 ) & 0xF8 ) | ( ( color & 0x8000 ) >> 13 );
ttodorov 20:4bdca8d8dadc 222 g = ( color >> 3 ) & 0xFC;
ttodorov 20:4bdca8d8dadc 223 b = ( ( color << 3 ) & 0xFC ) | ( ( color >> 3 ) & 0x01 );
ttodorov 20:4bdca8d8dadc 224 break;
ttodorov 20:4bdca8d8dadc 225 case RGB18:
ttodorov 20:4bdca8d8dadc 226 b = ( color << 2 ) & 0xFC;
ttodorov 20:4bdca8d8dadc 227 g = ( color >> 4 ) & 0xFC;
ttodorov 20:4bdca8d8dadc 228 r = ( color >> 10 ) & 0xFC;
ttodorov 20:4bdca8d8dadc 229 break;
ttodorov 20:4bdca8d8dadc 230 case RGB24:
ttodorov 20:4bdca8d8dadc 231 r = ( color >> 16 ) & 0xFC;
ttodorov 20:4bdca8d8dadc 232 g = ( color >> 8 ) & 0xFC;
ttodorov 20:4bdca8d8dadc 233 b = color & 0xFC;
ttodorov 20:4bdca8d8dadc 234 break;
ttodorov 20:4bdca8d8dadc 235 }
ttodorov 20:4bdca8d8dadc 236 WriteByteData( r );
ttodorov 20:4bdca8d8dadc 237 WriteByteData( g );
ttodorov 20:4bdca8d8dadc 238 WriteByteData( b );
ttodorov 12:d0978272a340 239 }
ttodorov 10:69571adcfad5 240 }
ttodorov 10:69571adcfad5 241
ttodorov 4:3ac4239f6c9c 242 void HX8340S_LCD::serializeByte( unsigned char data )
ttodorov 4:3ac4239f6c9c 243 {
ttodorov 4:3ac4239f6c9c 244 for ( int i = 0; i < 8; i++ )
ttodorov 4:3ac4239f6c9c 245 {
ttodorov 4:3ac4239f6c9c 246 if ( data & 0x80 ) _lcd_pin_sdi = HIGH;
ttodorov 4:3ac4239f6c9c 247 else _lcd_pin_sdi = LOW;
ttodorov 4:3ac4239f6c9c 248 pulseLow( _lcd_pin_scl );
ttodorov 4:3ac4239f6c9c 249 data = data << 1;
ttodorov 4:3ac4239f6c9c 250 }
ttodorov 4:3ac4239f6c9c 251 }