611 lines
19 KiB
C
611 lines
19 KiB
C
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/***************************************************************************
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* __________ __ ___.
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* Open \______ \ ____ ____ | | _\_ |__ _______ ___
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* Source | _// _ \_/ ___\| |/ /| __ \ / _ \ \/ /
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* Jukebox | | ( <_> ) \___| < | \_\ ( <_> > < <
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* Firmware |____|_ /\____/ \___ >__|_ \|___ /\____/__/\_ \
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* \/ \/ \/ \/ \/
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* $Id$
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*
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* Copyright (C) 2005 by Richard S. La Charit<EFBFBD> III
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*
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* All files in this archive are subject to the GNU General Public License.
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* See the file COPYING in the source tree root for full license agreement.
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*
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* This software is distributed on an "AS IS" basis, WITHOUT WARRANTY OF ANY
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* KIND, either express or implied.
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*
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****************************************************************************/
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#include "config.h"
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#include "system.h"
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#include "kernel.h"
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#include "lcd-remote.h"
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/*** definitions ***/
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#define LCD_REMOTE_CNTL_ADC_NORMAL 0xa0
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#define LCD_REMOTE_CNTL_ADC_REVERSE 0xa1
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#define LCD_REMOTE_CNTL_SHL_NORMAL 0xc0
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#define LCD_REMOTE_CNTL_SHL_REVERSE 0xc8
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#define LCD_REMOTE_CNTL_DISPLAY_ON_OFF 0xae
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#define LCD_REMOTE_CNTL_ENTIRE_ON_OFF 0xa4
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#define LCD_REMOTE_CNTL_REVERSE_ON_OFF 0xa6
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#define LCD_REMOTE_CNTL_NOP 0xe3
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#define LCD_REMOTE_CNTL_POWER_CONTROL 0x2b
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#define LCD_REMOTE_CNTL_SELECT_REGULATOR 0x20
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#define LCD_REMOTE_CNTL_SELECT_BIAS 0xa2
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#define LCD_REMOTE_CNTL_SELECT_VOLTAGE 0x81
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#define LCD_REMOTE_CNTL_INIT_LINE 0x40
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#define LCD_REMOTE_CNTL_SET_PAGE_ADDRESS 0xB0
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#define LCD_REMOTE_CNTL_HIGHCOL 0x10 /* Upper column address */
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#define LCD_REMOTE_CNTL_LOWCOL 0x00 /* Lower column address */
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#define CS_LO and_l(~0x00000004, &GPIO1_OUT)
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#define CS_HI or_l(0x00000004, &GPIO1_OUT)
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#define CLK_LO and_l(~0x10000000, &GPIO_OUT)
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#define CLK_HI or_l(0x10000000, &GPIO_OUT)
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#define DATA_LO and_l(~0x00040000, &GPIO1_OUT)
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#define DATA_HI or_l(0x00040000, &GPIO1_OUT)
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#define RS_LO and_l(~0x00010000, &GPIO_OUT)
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#define RS_HI or_l(0x00010000, &GPIO_OUT)
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static int xoffset; /* needed for flip */
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/* timeout counter for deasserting /CS after access, <0 means not counting */
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static int cs_countdown IDATA_ATTR = 0;
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#define CS_TIMEOUT (HZ/10)
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#ifdef HAVE_REMOTE_LCD_TICKING
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/* If set to true, will prevent "ticking" to headphones. */
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static bool emireduce = false;
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static int byte_delay = 0;
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#endif
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bool remote_initialized = false;
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static int _remote_type = REMOTETYPE_UNPLUGGED;
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/* cached settings values */
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static bool cached_invert = false;
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static bool cached_flip = false;
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static int cached_contrast = DEFAULT_REMOTE_CONTRAST_SETTING;
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static void remote_tick(void);
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#ifdef HAVE_REMOTE_LCD_TICKING
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static inline void _byte_delay(int delay)
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{
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asm (
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"move.l %[dly], %%d0 \n"
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"ble.s 2f \n"
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"1: \n"
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"subq.l #1, %%d0 \n"
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"bne.s 1b \n"
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"2: \n"
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: /* outputs */
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: /* inputs */
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[dly]"d"(delay)
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: /* clobbers */
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"d0"
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);
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}
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#endif /* HAVE_REMOTE_LCD_TICKING */
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/* Standard low-level byte writer. Requires CLK low on entry */
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static inline void _write_byte(unsigned data)
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{
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asm volatile (
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"move.l (%[gpo1]), %%d0 \n" /* Get current state of data line */
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"and.l %[dbit], %%d0 \n"
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"beq.s 1f \n" /* and set it as previous-state bit */
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"bset #8, %[data] \n"
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"1: \n"
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"move.l %[data], %%d0 \n" /* Compute the 'bit derivative', i.e. a value */
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"lsr.l #1, %%d0 \n" /* with 1's where the data changes from the */
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"eor.l %%d0, %[data] \n" /* previous state, and 0's where it doesn't */
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"swap %[data] \n" /* Shift data to upper byte */
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"lsl.l #8, %[data] \n"
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"lsl.l #1,%[data] \n" /* Shift out MSB */
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"bcc.s 1f \n"
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"eor.l %[dbit], (%[gpo1]) \n" /* 1: flip DATA */
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"1: \n"
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"eor.l %[cbit], (%[gpo0]) \n" /* Flip CLK */
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"eor.l %[cbit], (%[gpo0]) \n" /* Flip CLK */
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"lsl.l #1,%[data] \n" /* ..unrolled.. */
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"bcc.s 1f \n"
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"eor.l %[dbit], (%[gpo1]) \n"
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"1: \n"
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"eor.l %[cbit], (%[gpo0]) \n"
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"eor.l %[cbit], (%[gpo0]) \n"
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"lsl.l #1,%[data] \n"
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"bcc.s 1f \n"
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"eor.l %[dbit], (%[gpo1]) \n"
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"1: \n"
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"eor.l %[cbit], (%[gpo0]) \n"
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"eor.l %[cbit], (%[gpo0]) \n"
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"lsl.l #1,%[data] \n"
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"bcc.s 1f \n"
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"eor.l %[dbit], (%[gpo1]) \n"
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"1: \n"
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"eor.l %[cbit], (%[gpo0]) \n"
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"eor.l %[cbit], (%[gpo0]) \n"
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"lsl.l #1,%[data] \n"
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"bcc.s 1f \n"
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"eor.l %[dbit], (%[gpo1]) \n"
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"1: \n"
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"eor.l %[cbit], (%[gpo0]) \n"
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"eor.l %[cbit], (%[gpo0]) \n"
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"lsl.l #1,%[data] \n"
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"bcc.s 1f \n"
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"eor.l %[dbit], (%[gpo1]) \n"
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"1: \n"
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"eor.l %[cbit], (%[gpo0]) \n"
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"eor.l %[cbit], (%[gpo0]) \n"
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"lsl.l #1,%[data] \n"
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"bcc.s 1f \n"
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"eor.l %[dbit], (%[gpo1]) \n"
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"1: \n"
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"eor.l %[cbit], (%[gpo0]) \n"
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"eor.l %[cbit], (%[gpo0]) \n"
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"lsl.l #1,%[data] \n"
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"bcc.s 1f \n"
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"eor.l %[dbit], (%[gpo1]) \n"
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"1: \n"
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"eor.l %[cbit], (%[gpo0]) \n"
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"eor.l %[cbit], (%[gpo0]) \n"
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: /* outputs */
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[data]"+d"(data)
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: /* inputs */
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[gpo0]"a"(&GPIO_OUT),
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[cbit]"d"(0x10000000),
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[gpo1]"a"(&GPIO1_OUT),
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[dbit]"d"(0x00040000)
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: /* clobbers */
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"d0"
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);
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}
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/* Fast low-level byte writer. Don't use with high CPU clock.
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* Requires CLK low on entry */
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static inline void _write_fast(unsigned data)
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{
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asm volatile (
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"move.w %%sr,%%d3 \n" /* Get current interrupt level */
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"move.w #0x2700,%%sr \n" /* Disable interrupts */
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"move.l (%[gpo1]), %%d0 \n" /* Get current state of data port */
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"move.l %%d0, %%d1 \n"
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"and.l %[dbit], %%d1 \n" /* Check current state of data line */
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"beq.s 1f \n" /* and set it as previous-state bit */
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"bset #8, %[data] \n"
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"1: \n"
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"move.l %[data], %%d1 \n" /* Compute the 'bit derivative', i.e. a value */
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"lsr.l #1, %%d1 \n" /* with 1's where the data changes from the */
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"eor.l %%d1, %[data] \n" /* previous state, and 0's where it doesn't */
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"swap %[data] \n" /* Shift data to upper byte */
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"lsl.l #8, %[data] \n"
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"move.l (%[gpo0]), %%d1 \n" /* Get current state of clock port */
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"move.l %[cbit], %%d2 \n" /* Precalculate opposite state of clock line */
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"eor.l %%d1, %%d2 \n"
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"lsl.l #1,%[data] \n" /* Shift out MSB */
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"bcc.s 1f \n"
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"eor.l %[dbit], %%d0 \n" /* 1: flip data bit */
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"move.l %%d0, (%[gpo1]) \n" /* and output new DATA state */
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"1: \n"
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"move.l %%d2, (%[gpo0]) \n" /* Set CLK */
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"move.l %%d1, (%[gpo0]) \n" /* Reset CLK */
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"lsl.l #1,%[data] \n" /* ..unrolled.. */
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"bcc.s 1f \n"
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"eor.l %[dbit], %%d0 \n"
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"move.l %%d0, (%[gpo1]) \n"
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"1: \n"
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"move.l %%d2, (%[gpo0]) \n"
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"move.l %%d1, (%[gpo0]) \n"
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"lsl.l #1,%[data] \n"
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"bcc.s 1f \n"
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"eor.l %[dbit], %%d0 \n"
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"move.l %%d0, (%[gpo1]) \n"
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"1: \n"
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"move.l %%d2, (%[gpo0]) \n"
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"move.l %%d1, (%[gpo0]) \n"
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"lsl.l #1,%[data] \n"
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"bcc.s 1f \n"
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"eor.l %[dbit], %%d0 \n"
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"move.l %%d0, (%[gpo1]) \n"
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"1: \n"
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"move.l %%d2, (%[gpo0]) \n"
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"move.l %%d1, (%[gpo0]) \n"
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"lsl.l #1,%[data] \n"
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"bcc.s 1f \n"
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"eor.l %[dbit], %%d0 \n"
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"move.l %%d0, (%[gpo1]) \n"
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"1: \n"
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"move.l %%d2, (%[gpo0]) \n"
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"move.l %%d1, (%[gpo0]) \n"
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"lsl.l #1,%[data] \n"
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"bcc.s 1f \n"
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"eor.l %[dbit], %%d0 \n"
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"move.l %%d0, (%[gpo1]) \n"
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"1: \n"
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"move.l %%d2, (%[gpo0]) \n"
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"move.l %%d1, (%[gpo0]) \n"
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"lsl.l #1,%[data] \n"
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"bcc.s 1f \n"
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"eor.l %[dbit], %%d0 \n"
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"move.l %%d0, (%[gpo1]) \n"
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"1: \n"
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"move.l %%d2, (%[gpo0]) \n"
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"move.l %%d1, (%[gpo0]) \n"
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"lsl.l #1,%[data] \n"
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"bcc.s 1f \n"
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"eor.l %[dbit], %%d0 \n"
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"move.l %%d0, (%[gpo1]) \n"
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"1: \n"
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"move.l %%d2, (%[gpo0]) \n"
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"move.l %%d1, (%[gpo0]) \n"
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"move.w %%d3, %%sr \n" /* Restore interrupt level */
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: /* outputs */
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[data]"+d"(data)
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: /* inputs */
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[gpo0]"a"(&GPIO_OUT),
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[cbit]"i"(0x10000000),
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[gpo1]"a"(&GPIO1_OUT),
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[dbit]"d"(0x00040000)
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: /* clobbers */
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"d0", "d1", "d2", "d3"
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);
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}
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void lcd_remote_write_command(int cmd)
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{
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cs_countdown = 0;
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RS_LO;
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CS_LO;
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_write_byte(cmd);
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#ifdef HAVE_REMOTE_LCD_TICKING
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_byte_delay(byte_delay - 148);
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#endif
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cs_countdown = CS_TIMEOUT;
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}
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void lcd_remote_write_command_ex(int cmd, int data)
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{
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cs_countdown = 0;
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RS_LO;
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CS_LO;
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_write_byte(cmd);
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#ifdef HAVE_REMOTE_LCD_TICKING
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_byte_delay(byte_delay - 148);
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#endif
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_write_byte(data);
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#ifdef HAVE_REMOTE_LCD_TICKING
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_byte_delay(byte_delay - 148);
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#endif
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cs_countdown = CS_TIMEOUT;
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}
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void lcd_remote_write_data(const unsigned char* p_bytes, int count) ICODE_ATTR;
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void lcd_remote_write_data(const unsigned char* p_bytes, int count)
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{
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const unsigned char *p_end = p_bytes + count;
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cs_countdown = 0;
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RS_HI;
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CS_LO;
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/* This is safe as long as lcd_remote_write_data() isn't called from within
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* an ISR. */
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if (cpu_frequency < 50000000)
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{
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while (p_bytes < p_end)
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{
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_write_fast(*p_bytes++);
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#ifdef HAVE_REMOTE_LCD_TICKING
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_byte_delay(byte_delay - 87);
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#endif
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}
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}
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else
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{
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while (p_bytes < p_end)
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{
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_write_byte(*p_bytes++);
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#ifdef HAVE_REMOTE_LCD_TICKING
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_byte_delay(byte_delay - 148);
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#endif
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}
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}
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cs_countdown = CS_TIMEOUT;
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}
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/*** hardware configuration ***/
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int lcd_remote_default_contrast(void)
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{
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return DEFAULT_REMOTE_CONTRAST_SETTING;
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}
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#ifdef HAVE_REMOTE_LCD_TICKING
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void lcd_remote_emireduce(bool state)
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{
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emireduce = state;
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}
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#endif
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void lcd_remote_powersave(bool on)
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{
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if (remote_initialized)
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{
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lcd_remote_write_command(LCD_REMOTE_CNTL_DISPLAY_ON_OFF | (on ? 0 : 1));
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lcd_remote_write_command(LCD_REMOTE_CNTL_ENTIRE_ON_OFF | (on ? 1 : 0));
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}
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}
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void lcd_remote_set_contrast(int val)
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{
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|||
|
cached_contrast = val;
|
|||
|
if (remote_initialized)
|
|||
|
lcd_remote_write_command_ex(LCD_REMOTE_CNTL_SELECT_VOLTAGE, val);
|
|||
|
}
|
|||
|
|
|||
|
void lcd_remote_set_invert_display(bool yesno)
|
|||
|
{
|
|||
|
cached_invert = yesno;
|
|||
|
if (remote_initialized)
|
|||
|
lcd_remote_write_command(LCD_REMOTE_CNTL_REVERSE_ON_OFF | (yesno?1:0));
|
|||
|
}
|
|||
|
|
|||
|
/* turn the display upside down (call lcd_remote_update() afterwards) */
|
|||
|
void lcd_remote_set_flip(bool yesno)
|
|||
|
{
|
|||
|
cached_flip = yesno;
|
|||
|
if (yesno)
|
|||
|
{
|
|||
|
xoffset = 0;
|
|||
|
if (remote_initialized)
|
|||
|
{
|
|||
|
lcd_remote_write_command(LCD_REMOTE_CNTL_ADC_NORMAL);
|
|||
|
lcd_remote_write_command(LCD_REMOTE_CNTL_SHL_NORMAL);
|
|||
|
}
|
|||
|
}
|
|||
|
else
|
|||
|
{
|
|||
|
xoffset = 132 - LCD_REMOTE_WIDTH;
|
|||
|
if (remote_initialized)
|
|||
|
{
|
|||
|
lcd_remote_write_command(LCD_REMOTE_CNTL_ADC_REVERSE);
|
|||
|
lcd_remote_write_command(LCD_REMOTE_CNTL_SHL_REVERSE);
|
|||
|
}
|
|||
|
}
|
|||
|
}
|
|||
|
|
|||
|
bool remote_detect(void)
|
|||
|
{
|
|||
|
return (GPIO_READ & 0x40000000)?false:true;
|
|||
|
}
|
|||
|
|
|||
|
int remote_type(void)
|
|||
|
{
|
|||
|
return _remote_type;
|
|||
|
}
|
|||
|
|
|||
|
void lcd_remote_init_device(void)
|
|||
|
{
|
|||
|
#ifdef IRIVER_H300_SERIES
|
|||
|
or_l(0x10010000, &GPIO_FUNCTION); /* GPIO16: RS
|
|||
|
GPIO28: CLK */
|
|||
|
|
|||
|
or_l(0x00040006, &GPIO1_FUNCTION); /* GPO33: Backlight
|
|||
|
GPIO34: CS
|
|||
|
GPIO50: Data */
|
|||
|
or_l(0x10010000, &GPIO_ENABLE);
|
|||
|
or_l(0x00040006, &GPIO1_ENABLE);
|
|||
|
#else
|
|||
|
or_l(0x10010800, &GPIO_FUNCTION); /* GPIO11: Backlight
|
|||
|
GPIO16: RS
|
|||
|
GPIO28: CLK */
|
|||
|
|
|||
|
or_l(0x00040004, &GPIO1_FUNCTION); /* GPIO34: CS
|
|||
|
GPIO50: Data */
|
|||
|
or_l(0x10010800, &GPIO_ENABLE);
|
|||
|
or_l(0x00040004, &GPIO1_ENABLE);
|
|||
|
#endif
|
|||
|
lcd_remote_clear_display();
|
|||
|
tick_add_task(remote_tick);
|
|||
|
}
|
|||
|
|
|||
|
void lcd_remote_on(void)
|
|||
|
{
|
|||
|
CS_HI;
|
|||
|
CLK_LO;
|
|||
|
lcd_remote_write_command(LCD_REMOTE_CNTL_SELECT_BIAS | 0x0);
|
|||
|
|
|||
|
lcd_remote_write_command(LCD_REMOTE_CNTL_POWER_CONTROL | 0x5);
|
|||
|
sleep(1);
|
|||
|
lcd_remote_write_command(LCD_REMOTE_CNTL_POWER_CONTROL | 0x6);
|
|||
|
sleep(1);
|
|||
|
lcd_remote_write_command(LCD_REMOTE_CNTL_POWER_CONTROL | 0x7);
|
|||
|
|
|||
|
lcd_remote_write_command(LCD_REMOTE_CNTL_SELECT_REGULATOR | 0x4); // 0x4 Select regulator @ 5.0 (default);
|
|||
|
|
|||
|
sleep(1);
|
|||
|
|
|||
|
lcd_remote_write_command(LCD_REMOTE_CNTL_INIT_LINE | 0x0); // init line
|
|||
|
lcd_remote_write_command(LCD_REMOTE_CNTL_SET_PAGE_ADDRESS | 0x0); // page address
|
|||
|
lcd_remote_write_command_ex(0x10, 0x00); // Column MSB + LSB
|
|||
|
|
|||
|
lcd_remote_write_command(LCD_REMOTE_CNTL_DISPLAY_ON_OFF | 1);
|
|||
|
|
|||
|
remote_initialized = true;
|
|||
|
|
|||
|
lcd_remote_set_flip(cached_flip);
|
|||
|
lcd_remote_set_contrast(cached_contrast);
|
|||
|
lcd_remote_set_invert_display(cached_invert);
|
|||
|
}
|
|||
|
|
|||
|
void lcd_remote_off(void)
|
|||
|
{
|
|||
|
remote_initialized = false;
|
|||
|
CLK_LO;
|
|||
|
CS_HI;
|
|||
|
}
|
|||
|
|
|||
|
/* Monitor remote hotswap */
|
|||
|
static void remote_tick(void)
|
|||
|
{
|
|||
|
static bool last_status = false;
|
|||
|
static int countdown = 0;
|
|||
|
static int init_delay = 0;
|
|||
|
bool current_status;
|
|||
|
int val;
|
|||
|
int level;
|
|||
|
|
|||
|
current_status = remote_detect();
|
|||
|
/* Only report when the status has changed */
|
|||
|
if (current_status != last_status)
|
|||
|
{
|
|||
|
last_status = current_status;
|
|||
|
countdown = current_status ? 20*HZ : 1;
|
|||
|
}
|
|||
|
else
|
|||
|
{
|
|||
|
/* Count down until it gets negative */
|
|||
|
if (countdown >= 0)
|
|||
|
countdown--;
|
|||
|
|
|||
|
if (current_status)
|
|||
|
{
|
|||
|
if (!(countdown % 8))
|
|||
|
{
|
|||
|
/* Determine which type of remote it is */
|
|||
|
level = set_irq_level(HIGHEST_IRQ_LEVEL);
|
|||
|
val = adc_scan(ADC_REMOTEDETECT);
|
|||
|
set_irq_level(level);
|
|||
|
|
|||
|
if (val < ADCVAL_H100_LCD_REMOTE_HOLD)
|
|||
|
{
|
|||
|
if (val < ADCVAL_H100_LCD_REMOTE)
|
|||
|
if (val < ADCVAL_H300_LCD_REMOTE)
|
|||
|
_remote_type = REMOTETYPE_H300_LCD; /* hold off */
|
|||
|
else
|
|||
|
_remote_type = REMOTETYPE_H100_LCD; /* hold off */
|
|||
|
else
|
|||
|
if (val < ADCVAL_H300_LCD_REMOTE_HOLD)
|
|||
|
_remote_type = REMOTETYPE_H300_LCD; /* hold on */
|
|||
|
else
|
|||
|
_remote_type = REMOTETYPE_H100_LCD; /* hold on */
|
|||
|
|
|||
|
if (--init_delay <= 0)
|
|||
|
{
|
|||
|
queue_post(&remote_scroll_queue, REMOTE_INIT_LCD, 0);
|
|||
|
init_delay = 6;
|
|||
|
}
|
|||
|
}
|
|||
|
else
|
|||
|
{
|
|||
|
_remote_type = REMOTETYPE_H300_NONLCD; /* hold on or off */
|
|||
|
}
|
|||
|
}
|
|||
|
}
|
|||
|
else
|
|||
|
{
|
|||
|
if (countdown == 0)
|
|||
|
{
|
|||
|
_remote_type = REMOTETYPE_UNPLUGGED;
|
|||
|
|
|||
|
queue_post(&remote_scroll_queue, REMOTE_DEINIT_LCD, 0);
|
|||
|
}
|
|||
|
}
|
|||
|
}
|
|||
|
|
|||
|
/* handle chip select timeout */
|
|||
|
if (cs_countdown >= 0)
|
|||
|
cs_countdown--;
|
|||
|
if (cs_countdown == 0)
|
|||
|
CS_HI;
|
|||
|
}
|
|||
|
|
|||
|
/* Update the display.
|
|||
|
This must be called after all other LCD functions that change the display. */
|
|||
|
void lcd_remote_update(void) ICODE_ATTR;
|
|||
|
void lcd_remote_update(void)
|
|||
|
{
|
|||
|
int y;
|
|||
|
|
|||
|
if (!remote_initialized)
|
|||
|
return;
|
|||
|
|
|||
|
#ifdef HAVE_REMOTE_LCD_TICKING
|
|||
|
/* Adjust byte delay for emi reduction. */
|
|||
|
byte_delay = emireduce ? cpu_frequency / 197600 + 28: 0;
|
|||
|
#endif
|
|||
|
|
|||
|
/* Copy display bitmap to hardware */
|
|||
|
for (y = 0; y < LCD_REMOTE_FBHEIGHT; y++)
|
|||
|
{
|
|||
|
lcd_remote_write_command(LCD_REMOTE_CNTL_SET_PAGE_ADDRESS | y);
|
|||
|
lcd_remote_write_command(LCD_REMOTE_CNTL_HIGHCOL | ((xoffset >> 4) & 0xf));
|
|||
|
lcd_remote_write_command(LCD_REMOTE_CNTL_LOWCOL | (xoffset & 0xf));
|
|||
|
lcd_remote_write_data(lcd_remote_framebuffer[y], LCD_REMOTE_WIDTH);
|
|||
|
}
|
|||
|
}
|
|||
|
|
|||
|
/* Update a fraction of the display. */
|
|||
|
void lcd_remote_update_rect(int, int, int, int) ICODE_ATTR;
|
|||
|
void lcd_remote_update_rect(int x, int y, int width, int height)
|
|||
|
{
|
|||
|
int ymax;
|
|||
|
|
|||
|
if (!remote_initialized)
|
|||
|
return;
|
|||
|
|
|||
|
/* The Y coordinates have to work on even 8 pixel rows */
|
|||
|
ymax = (y + height-1) >> 3;
|
|||
|
y >>= 3;
|
|||
|
|
|||
|
if(x + width > LCD_REMOTE_WIDTH)
|
|||
|
width = LCD_REMOTE_WIDTH - x;
|
|||
|
if (width <= 0)
|
|||
|
return; /* nothing left to do, 0 is harmful to lcd_write_data() */
|
|||
|
if(ymax >= LCD_REMOTE_FBHEIGHT)
|
|||
|
ymax = LCD_REMOTE_FBHEIGHT-1;
|
|||
|
|
|||
|
#ifdef HAVE_REMOTE_LCD_TICKING
|
|||
|
/* Adjust byte delay for emi reduction */
|
|||
|
byte_delay = emireduce ? cpu_frequency / 197600 + 28: 0;
|
|||
|
#endif
|
|||
|
|
|||
|
/* Copy specified rectange bitmap to hardware */
|
|||
|
for (; y <= ymax; y++)
|
|||
|
{
|
|||
|
lcd_remote_write_command(LCD_REMOTE_CNTL_SET_PAGE_ADDRESS | y);
|
|||
|
lcd_remote_write_command(LCD_REMOTE_CNTL_HIGHCOL | (((x+xoffset) >> 4) & 0xf));
|
|||
|
lcd_remote_write_command(LCD_REMOTE_CNTL_LOWCOL | ((x+xoffset) & 0xf));
|
|||
|
lcd_remote_write_data(&lcd_remote_framebuffer[y][x], width);
|
|||
|
}
|
|||
|
}
|