// license:BSD-3-Clause
// copyright-holders:Lukasz Markowski
/***************************************************************************
HUMAX HDCI-2000 ( Conexant CX2417x )
http://www.humaxdigital.com/global/products/product_stb_satellite_hdci2000.asp
Running on Nucleus PLUS - ARM7TDMI ADS v. 1.14
some Conexant/Nucleus goodies may be found at http://code.google.com/p/cherices/
runs up to frame 280 or so...
****************************************************************************/
#include "emu.h"
#include "includes/cxhumax.h"
#include "emupal.h"
#include "screen.h"
#define VERBOSE_LEVEL ( 0 )
static inline void ATTR_PRINTF(3,4) verboselog( device_t &device, int n_level, const char *s_fmt, ...)
{
if (VERBOSE_LEVEL >= n_level)
{
va_list v;
char buf[32768];
va_start( v, s_fmt);
vsprintf( buf, s_fmt, v);
va_end( v);
device.logerror( "%s: %s", device.machine().describe_context( ), buf);
}
}
READ32_MEMBER ( cxhumax_state::cx_gxa_r )
{
uint32_t res = m_gxa_cmd_regs[offset];
verboselog(*this, 9, "(GXA) %08X -> %08X\n", 0xE0600000 + (offset << 2), res);
/* uint8_t gxa_command_number = (offset >> 9) & 0x7F;
verboselog(*this, 9, " Command: %08X\n", gxa_command_number);
switch (gxa_command_number) {
case GXA_CMD_RW_REGISTER:
switch(offset) {
case GXA_CFG2_REG:
break;
default:
verboselog(*this, 9, " Unimplemented register - TODO?\n");
break;
}
break;
default:
// do we need it?
verboselog(*this, 9, " Unimplemented read command - TODO?\n");
break;
}*/
return res;
}
WRITE32_MEMBER( cxhumax_state::cx_gxa_w )
{
verboselog(*this, 9, "(GXA) %08X <- %08X\n", 0xE0600000 + (offset << 2), data);
uint8_t gxa_command_number = (offset >> 9) & 0x7F;
verboselog(*this, 9, " Command: %08X\n", gxa_command_number);
/* Clear non persistent data */
m_gxa_cmd_regs[GXA_CMD_REG] &= 0xfffc0000;
if (gxa_command_number == GXA_CMD_RW_REGISTER) {
verboselog(*this, 9, " Register Number: %08X\n", offset & 0xff);
} else {
m_gxa_cmd_regs[GXA_CMD_REG] |= (offset << 2) & 0x3ffff;
verboselog(*this, 9, " Source Bitmap Selector: %08X\n", (offset >> 6) & 0x7);
verboselog(*this, 9, " Destination Bitmap Selector: %08X\n", (offset >> 3) & 0x7);
verboselog(*this, 9, " Parameter Count: %08X\n", offset & 0x7);
}
switch (gxa_command_number) {
case GXA_CMD_RW_REGISTER:
switch(offset) {
case GXA_CFG2_REG:
// clear IRQ_STAT bits if requested
m_gxa_cmd_regs[GXA_CFG2_REG] = (m_gxa_cmd_regs[GXA_CFG2_REG]&(0xfff00000 & ~(data&0x00300000))) | (data & 0x000fffff);
break;
default:
verboselog(*this, 9, " Unimplemented register - TODO?\n");
COMBINE_DATA(&m_gxa_cmd_regs[offset]);
break;
}
break;
case GXA_CMD_QMARK:
verboselog(*this, 9, " QMARK - TODO?\n");
/* Set value and copy of WAIT4_VERTICAL bit written by QMARK */
m_gxa_cmd_regs[GXA_CMD_REG] = (m_gxa_cmd_regs[GXA_CMD_REG] & 0x3ffff) | (data<<24) | ((data&0x10)?1<<23:0);
/* QMARK command has completed */
m_gxa_cmd_regs[GXA_CFG2_REG] |= (1<<IRQ_STAT_QMARK);
// Interrupt
if (m_gxa_cmd_regs[GXA_CFG2_REG] & (1<<IRQ_EN_QMARK)) {
m_intctrl_regs[INTREG(INTGROUP2, INTIRQ)] |= 1<<18;
m_intctrl_regs[INTREG(INTGROUP2, INTSTATCLR)] |= 1<<18;
m_intctrl_regs[INTREG(INTGROUP2, INTSTATSET)] |= 1<<18;
verboselog(*this, 9, " QMARK INT - TODO?\n");
}
if((m_intctrl_regs[INTREG(INTGROUP2, INTIRQ)] & m_intctrl_regs[INTREG(INTGROUP2, INTENABLE)])
|| (m_intctrl_regs[INTREG(INTGROUP1, INTIRQ)] & m_intctrl_regs[INTREG(INTGROUP1, INTENABLE)]))
m_maincpu->set_input_line(ARM7_IRQ_LINE, ASSERT_LINE);
break;
default:
verboselog(*this, 9, " Unimplemented command - TODO?\n");
break;
}
}
WRITE32_MEMBER ( cxhumax_state::flash_w )
{
offset *= 2;
if(ACCESSING_BITS_0_15)
m_flash->write(space, offset, data);
if(ACCESSING_BITS_16_31)
m_flash->write(space, offset+1, data >> 16);
verboselog(*this, 9, "(FLASH) %08X <- %08X\n", 0xF0000000 + (offset << 2), data);
}
READ32_MEMBER ( cxhumax_state::flash_r )
{
uint32_t res = 0;
offset *= 2;
if(ACCESSING_BITS_0_15)
res |= m_flash->read(space, offset);
if(ACCESSING_BITS_16_31)
res |= m_flash->read(space, offset+1) << 16;
//if(m_flash->m_flash_mode!=FM_NORMAL) verboselog(*this, 9, "(FLASH) %08X -> %08X\n", 0xF0000000 + (offset << 2), res);
return res;
}
READ32_MEMBER ( cxhumax_state::dummy_flash_r )
{
return 0xFFFFFFFF;
}
WRITE32_MEMBER ( cxhumax_state::cx_remap_w )
{
if(!(data&1)) {
verboselog(*this, 9, "(REMAP) %08X -> %08X\n", 0xE0400014 + (offset << 2), data);
memset(m_ram, 0, 0x400000); // workaround :P
}
}
READ32_MEMBER( cxhumax_state::cx_scratch_r )
{
uint32_t data = m_scratch_reg;
verboselog(*this, 9, "(SCRATCH) %08X -> %08X\n", 0xE0400024 + (offset << 2), data);
if((m_maincpu->pc()==0xF0003BB8) || (m_maincpu->pc()==0x01003724) || (m_maincpu->pc()==0x00005d8c)) { // HDCI-2000
//we're in disabled debug_printf
unsigned char* buf = (unsigned char *)alloca(200);
unsigned char temp;
address_space &program = m_maincpu->space(AS_PROGRAM);
memset(buf,0,200);
int i = 0;
while ((temp=program.read_byte(m_maincpu->state_int(ARM7_R0)+i))) {
buf[i++]=temp;
//m_terminal->write(space, 0, temp);
}
osd_printf_debug("%s", buf);
verboselog(*this, 9, "(DEBUG) %s", buf);
}
return data;
}
WRITE32_MEMBER( cxhumax_state::cx_scratch_w )
{
verboselog(*this, 9, "(SCRATCH) %08X <- %08X\n", 0xE0400024 + (offset << 2), data);
COMBINE_DATA(&m_scratch_reg);
}
READ32_MEMBER( cxhumax_state::cx_hsx_r )
{
uint32_t data = 0; // dummy
verboselog(*this, 9, "(HSX) %08X -> %08X\n", 0xE0000000 + (offset << 2), data);
return data;
}
WRITE32_MEMBER( cxhumax_state::cx_hsx_w )
{
verboselog(*this, 9, "(HSX) %08X <- %08X\n", 0xE0000000 + (offset << 2), data);
}
READ32_MEMBER( cxhumax_state::cx_romdescr_r )
{
uint32_t data = m_romdescr_reg;
verboselog(*this, 9, "(ROMDESC0) %08X -> %08X\n", 0xE0010000 + (offset << 2), data);
return data;
}
WRITE32_MEMBER( cxhumax_state::cx_romdescr_w )
{
verboselog(*this, 9, "(ROMDESC0) %08X <- %08X\n", 0xE0010000 + (offset << 2), data);
COMBINE_DATA(&m_romdescr_reg);
}
READ32_MEMBER( cxhumax_state::cx_isaromdescr_r )
{
uint32_t data = m_isaromdescr_regs[offset];
verboselog(*this, 9, "(ISAROMDESC%d) %08X -> %08X\n", offset+1, 0xE0010004 + (offset << 2), data);
return data;
}
WRITE32_MEMBER( cxhumax_state::cx_isaromdescr_w )
{
verboselog(*this, 9, "(ISAROMDESC%d) %08X <- %08X\n", offset+1, 0xE0010004 + (offset << 2), data);
COMBINE_DATA(&m_isaromdescr_regs[offset]);
}
READ32_MEMBER( cxhumax_state::cx_isadescr_r )
{
uint32_t data = m_isaromdescr_regs[offset];
verboselog(*this, 9, "(ISA_DESC%d) %08X -> %08X\n", offset+4, 0xE0010010 + (offset << 2), data);
return data;
}
WRITE32_MEMBER( cxhumax_state::cx_isadescr_w )
{
verboselog(*this, 9, "(ISA_DESC%d) %08X <- %08X\n", offset+4, 0xE0010010 + (offset << 2), data);
COMBINE_DATA(&m_isaromdescr_regs[offset]);
}
READ32_MEMBER( cxhumax_state::cx_rommap_r )
{
uint32_t data = 0;
verboselog(*this, 9, "(ROM%d_MAP) %08X -> %08X\n", offset, 0xE0010020 + (offset << 2), data);
return data;
}
WRITE32_MEMBER( cxhumax_state::cx_rommap_w )
{
verboselog(*this, 9, "(ROM%d_MAP) %08X <- %08X\n", offset, 0xE0010020 + (offset << 2), data);
}
READ32_MEMBER( cxhumax_state::cx_rommode_r )
{
uint32_t data = m_rommode_reg;
verboselog(*this, 9, "(ROMMODE) %08X -> %08X\n", 0xE0010034 + (offset << 2), data);
return data;
}
WRITE32_MEMBER( cxhumax_state::cx_rommode_w )
{
verboselog(*this, 9, "(ROMMODE) %08X <- %08X\n", 0xE0010034 + (offset << 2), data);
COMBINE_DATA(&m_rommode_reg);
}
READ32_MEMBER( cxhumax_state::cx_xoemask_r )
{
uint32_t data = m_xoemask_reg;
verboselog(*this, 9, "(XOEMASK) %08X -> %08X\n", 0xE0010034 + (offset << 2), data);
return data;
}
WRITE32_MEMBER( cxhumax_state::cx_xoemask_w )
{
verboselog(*this, 9, "(XOEMASK) %08X <- %08X\n", 0xE0010034 + (offset << 2), data);
COMBINE_DATA(&m_xoemask_reg);
}
READ32_MEMBER( cxhumax_state::cx_pci_r )
{
uint32_t data = 0;
switch (offset) {
case PCI_CFG_ADDR_REG:
data = m_pci_regs[offset]; break;
case PCI_CFG_DATA_REG:
{
switch (m_pci_regs[PCI_CFG_ADDR_REG]) {
case 0: data = (0x4170<<16) /*Device ID*/ | 0x14f1 /* Vendor ID */; break;
case 8: data = (0x060000 << 8) /* Class Code */ | 0x1f /* Revision ID */; break;
}
} break;
}
verboselog(*this, 9, "(PCI) %08X -> %08X\n", 0xE0010040 + (offset << 2), data);
return data;
}
WRITE32_MEMBER( cxhumax_state::cx_pci_w )
{
verboselog(*this, 9, "(PCI) %08X <- %08X\n", 0xE0010040 + (offset << 2), data);
COMBINE_DATA(&m_pci_regs[offset]);
}
READ32_MEMBER( cxhumax_state::cx_extdesc_r )
{
uint32_t data = m_extdesc_regs[offset];
verboselog(*this, 9, "(EXTDESC) %08X -> %08X\n", 0xE0010080 + (offset << 2), data);
return data;
}
WRITE32_MEMBER( cxhumax_state::cx_extdesc_w )
{
verboselog(*this, 9, "(EXTDESC) %08X <- %08X\n", 0xE0010080 + (offset << 2), data);
COMBINE_DATA(&m_extdesc_regs[offset]);
}
TIMER_CALLBACK_MEMBER(cxhumax_state::timer_tick)
{
m_timer_regs.timer[param].value++;
if(m_timer_regs.timer[param].value==m_timer_regs.timer[param].limit) {
/* Reset counter when reaching limit and RESET_CNTR bit is cleared */
if(!(m_timer_regs.timer[param].mode & 2))
m_timer_regs.timer[param].value=0;
/* Indicate interrupt request if EN_INT bit is set */
if (m_timer_regs.timer[param].mode & 8) {
//printf( "IRQ on Timer %d\n", param );
verboselog(*this, 9, "(TIMER%d) Interrupt\n", param);
m_intctrl_regs[INTREG(INTGROUP2, INTIRQ)] |= INT_TIMER_BIT; /* Timer interrupt */
m_intctrl_regs[INTREG(INTGROUP2, INTSTATCLR)] |= INT_TIMER_BIT; /* Timer interrupt */
m_intctrl_regs[INTREG(INTGROUP2, INTSTATSET)] |= INT_TIMER_BIT; /* Timer interrupt */
m_timer_regs.timer_irq |= 1<<param; /* Indicate which timer interrupted */
/* Interrupt if Timer interrupt is not masked in ITC_INTENABLE_REG */
if (m_intctrl_regs[INTREG(INTGROUP2, INTENABLE)] & INT_TIMER_BIT)
m_maincpu->set_input_line(ARM7_IRQ_LINE, ASSERT_LINE);
}
}
attotime period = attotime::from_hz(XTAL(54'000'000))*m_timer_regs.timer[param].timebase;
m_timer_regs.timer[param].timer->adjust(period,param);
}
READ32_MEMBER( cxhumax_state::cx_timers_r )
{
uint32_t data = 0;
uint8_t index = offset>>2;
if(index==16) {
data = m_timer_regs.timer_irq;
//m_timer_regs.timer_irq=0;
verboselog(*this, 9, "(TIMERIRQ) %08X -> %08X\n", 0xE0430000 + (offset << 2), data);
}
else {
switch (offset&3) {
case TIMER_VALUE:
data = m_timer_regs.timer[index].value; break;
case TIMER_LIMIT:
data = m_timer_regs.timer[index].limit; break;
case TIMER_MODE:
data = m_timer_regs.timer[index].mode; break;
case TIMER_TIMEBASE:
data = m_timer_regs.timer[index].timebase; break;
}
verboselog(*this, 9, "(TIMER%d) %08X -> %08X\n", offset>>2, 0xE0430000 + (offset << 2), data);
}
return data;
}
WRITE32_MEMBER( cxhumax_state::cx_timers_w )
{
uint8_t index = offset>>2;
if(index==16) {
verboselog(*this, 9, "(TIMERIRQ) %08X <- %08X\n", 0xE0430000 + (offset << 2), data);
COMBINE_DATA(&m_timer_regs.timer_irq);
}
else {
verboselog(*this, 9, "(TIMER%d) %08X <- %08X\n", index, 0xE0430000 + (offset << 2), data);
switch(offset&3) {
case TIMER_VALUE:
COMBINE_DATA(&m_timer_regs.timer[index].value); break;
case TIMER_LIMIT:
COMBINE_DATA(&m_timer_regs.timer[index].limit); break;
case TIMER_MODE:
COMBINE_DATA(&m_timer_regs.timer[index].mode);
if(data&1) {
attotime period = attotime::from_hz(XTAL(54'000'000))*m_timer_regs.timer[index].timebase;
m_timer_regs.timer[index].timer->adjust(period,index);
} else {
m_timer_regs.timer[index].timer->adjust(attotime::never,index);
} break;
case TIMER_TIMEBASE:
COMBINE_DATA(&m_timer_regs.timer[index].timebase); break;
}
/* A timer will hold an interrupt active until any one of that timer?s registers is written. */
if(m_timer_regs.timer_irq & (1<<index)) {
m_timer_regs.timer_irq &= ~(1<<index);
}
}
}
READ32_MEMBER( cxhumax_state::cx_uart2_r )
{
uint32_t data;
switch (offset) {
case UART_STAT_REG:
/* Transmitter Idle */
data = UART_STAT_TID_BIT | UART_STAT_TSR_BIT; break;
default:
data = m_uart2_regs[offset]; break;
}
verboselog(*this, 9, "(UART2) %08X -> %08X\n", 0xE0411000 + (offset << 2), data);
return data;
}
WRITE32_MEMBER( cxhumax_state::cx_uart2_w )
{
verboselog(*this, 9, "(UART2) %08X <- %08X\n", 0xE0411000 + (offset << 2), data);
switch (offset) {
case UART_FIFO_REG:
if(!(m_uart2_regs[UART_FRMC_REG]&UART_FRMC_BDS_BIT)) {
/* Sending byte... add logging */
m_terminal->write(space, 0, data);
/* Transmitter Idle Interrupt Enable */
if(m_uart2_regs[UART_IRQE_REG]&UART_IRQE_TIDE_BIT) {
/* Signal pending INT */
m_intctrl_regs[INTREG(INTGROUP1, INTIRQ)] |= INT_UART2_BIT;
m_intctrl_regs[INTREG(INTGROUP1, INTSTATCLR)] |= INT_UART2_BIT;
m_intctrl_regs[INTREG(INTGROUP1, INTSTATSET)] |= INT_UART2_BIT;
/* If INT is enabled at INT Ctrl raise it */
if(m_intctrl_regs[INTREG(INTGROUP1, INTENABLE)]&INT_UART2_BIT) {
m_maincpu->set_input_line(ARM7_IRQ_LINE, ASSERT_LINE);
}
}
}
default:
COMBINE_DATA(&m_uart2_regs[offset]); break;
}
}
READ32_MEMBER( cxhumax_state::cx_pll_r )
{
uint32_t data = m_pll_regs[offset];
verboselog(*this, 9, "(PLL) %08X -> %08X\n", 0xE0440000 + (offset << 2), data);
return data;
}
WRITE32_MEMBER( cxhumax_state::cx_pll_w )
{
verboselog(*this, 9, "(PLL) %08X <- %08X\n", 0xE0440000 + (offset << 2), data);
COMBINE_DATA(&m_pll_regs[offset]);
}
READ32_MEMBER( cxhumax_state::cx_pllprescale_r )
{
uint32_t data = m_pllprescale_reg;
verboselog(*this, 9, "(PLLPRESCALE) %08X -> %08X\n", 0xE0440094 + (offset << 2), data);
return data;
}
WRITE32_MEMBER( cxhumax_state::cx_pllprescale_w )
{
verboselog(*this, 9, "(PLLPRESCALE) %08X <- %08X\n", 0xE0440094 + (offset << 2), data);
COMBINE_DATA(&m_pllprescale_reg);
}
READ32_MEMBER( cxhumax_state::cx_clkdiv_r )
{
uint32_t data = m_clkdiv_regs[offset];
verboselog(*this, 9, "(CLKDIV) %08X -> %08X\n", 0xE0440020 + (offset << 2), data);
return data;
}
WRITE32_MEMBER( cxhumax_state::cx_clkdiv_w )
{
verboselog(*this, 9, "(CLKDIV) %08X <- %08X\n", 0xE0440020 + (offset << 2), data);
COMBINE_DATA(&m_clkdiv_regs[offset]);
}
READ32_MEMBER( cxhumax_state::cx_chipcontrol_r )
{
uint32_t data = m_chipcontrol_regs[offset];
verboselog(*this, 9, "(CHIPCONTROL) %08X -> %08X\n", 0xE0440100 + (offset << 2), data);
return data;
}
WRITE32_MEMBER( cxhumax_state::cx_chipcontrol_w )
{
verboselog(*this, 9, "(CHIPCONTROL) %08X <- %08X\n", 0xE0440100 + (offset << 2), data);
COMBINE_DATA(&m_chipcontrol_regs[offset]);
}
READ32_MEMBER( cxhumax_state::cx_intctrl_r )
{
uint32_t data = m_intctrl_regs[offset];
verboselog(*this, 9, "(INTCTRL) %08X -> %08X\n", 0xE0450000 + (offset << 2), data);
return data;
}
WRITE32_MEMBER( cxhumax_state::cx_intctrl_w )
{
verboselog(*this, 9, "(INTCTRL) %08X <- %08X\n", 0xE0450000 + (offset << 2), data);
switch (offset >> 3) { // Decode the group
case 0: // Group 1
switch(offset & 7) {
case INTSTATCLR: // ITC_INTSTATCLR_REG Group 1
/*
Bits 15 (PWM), 14 (PIO103) of Group 1 are the logical OR of their lower level interrupt
status bits down within the interrupting module and are not registered.
The source registers must be cleared to clear these interrupt bits.
*/
data &= ~(INT_PWM_BIT|INT_PIO103_BIT);
m_intctrl_regs[INTREG(INTGROUP1, INTSTATCLR)] &= ~data;
m_intctrl_regs[INTREG(INTGROUP1, INTSTATSET)] &= ~data;
m_intctrl_regs[INTREG(INTGROUP1, INTIRQ)] &= ~data;
break;
default:
COMBINE_DATA(&m_intctrl_regs[offset]);
break;
}
break;
case 1: // Group 2
switch(offset & 7) {
case INTSTATCLR: // ITC_INTSTATCLR_REG Group 2
/*
The timer interrupt service routine must write to one of the timer
registers before clearing the corresponding Interrupt Controller ISR timer
interrupt bit.
Bit 7 (Timers) of Group 2 is the logical OR of its lower level interrupt
status bits down within the interrupting module and are not registered.
The source registers must be cleared to clear these interrupt bits.
*/
if(m_timer_regs.timer_irq) data &= ~INT_TIMER_BIT;
m_intctrl_regs[INTREG(INTGROUP2, INTSTATCLR)] &= ~data;
m_intctrl_regs[INTREG(INTGROUP2, INTSTATSET)] &= ~data;
m_intctrl_regs[INTREG(INTGROUP2, INTIRQ)] &= ~data;
break;
default:
COMBINE_DATA(&m_intctrl_regs[offset]);
break;
}
break;
default:
break;
}
if(m_i2c1_regs[I2C_STAT_REG]&I2C_INT_BIT)
{
m_intctrl_regs[INTREG(INTGROUP1, INTIRQ)] |= 1<<7;
m_intctrl_regs[INTREG(INTGROUP1, INTSTATCLR)] |= 1<<7;
m_intctrl_regs[INTREG(INTGROUP1, INTSTATSET)] |= 1<<7;
}
/* check if */
if((m_intctrl_regs[INTREG(INTGROUP2, INTIRQ)] & m_intctrl_regs[INTREG(INTGROUP2, INTENABLE)])
|| (m_intctrl_regs[INTREG(INTGROUP1, INTIRQ)] & m_intctrl_regs[INTREG(INTGROUP1, INTENABLE)]))
m_maincpu->set_input_line(ARM7_IRQ_LINE, ASSERT_LINE);
else
m_maincpu->set_input_line(ARM7_IRQ_LINE, CLEAR_LINE);
}
READ32_MEMBER( cxhumax_state::cx_ss_r )
{
uint32_t data = 0;
switch(offset) {
case SS_FIFC_REG:
data = m_ss_regs[offset] & 0xFFF0;
break;
default:
data = m_ss_regs[offset];
break;
}
verboselog(*this, 9, "(SS) %08X -> %08X\n", 0xE0490000 + (offset << 2), data);
return data;
}
WRITE32_MEMBER( cxhumax_state::cx_ss_w )
{
verboselog(*this, 9, "(SS) %08X <- %08X\n", 0xE0490000 + (offset << 2), data);
switch(offset) {
case SS_CNTL_REG:
if (data&1) {
// "Send" pending data
uint8_t tfd = (m_ss_regs[SS_STAT_REG]>>4) & 0xF;
if ((tfd>1) && (m_ss_tx_fifo[0] == 0) && (m_ss_tx_fifo[1] != 0xFF)) {
// ASCII
printf("%s\n", &m_ss_tx_fifo[1]);
} else {
// UNKNOWN
for (int i=0; i<tfd; i++) {
printf("%02X ", m_ss_tx_fifo[i]);
}
printf("\n");
}
// Clear TX FIFO
memset(m_ss_tx_fifo,0,sizeof(m_ss_tx_fifo));
m_ss_regs[SS_STAT_REG] &= 0xFF0F;
}
COMBINE_DATA(&m_ss_regs[offset]);
break;
case SS_FIFO_REG:
{
// Push data into TX FIFO (if it's not full) and adjust transmit FIFO depth
uint8_t tfd = (m_ss_regs[SS_STAT_REG]>>4) & 0xF;
if (tfd<8) {
m_ss_tx_fifo[tfd++] = data;
m_ss_regs[SS_STAT_REG] = (m_ss_regs[SS_STAT_REG] & 0xFF0F) | (tfd<<4);
}
}
break;
case SS_STAT_REG:
// read-only
break;
default:
COMBINE_DATA(&m_ss_regs[offset]);
break;
};
}
READ32_MEMBER( cxhumax_state::cx_i2c0_r )
{
uint32_t data = m_i2c0_regs[offset];
verboselog(*this, 9, "(I2C0) %08X -> %08X\n", 0xE04E0000 + (offset << 2), data);
return data;
}
WRITE32_MEMBER( cxhumax_state::cx_i2c0_w )
{
verboselog(*this, 9, "(I2C0) %08X <- %08X\n", 0xE04E0000 + (offset << 2), data);
COMBINE_DATA(&m_i2c0_regs[offset]);
}
uint8_t cxhumax_state::i2cmem_read_byte(int last)
{
uint8_t data = 0;
int i;
m_i2cmem->write_sda(1);
for (i = 0; i < 8; i++)
{
m_i2cmem->write_scl(1);
data = (data << 1) + (m_i2cmem->read_sda() ? 1 : 0);
m_i2cmem->write_scl(0);
}
m_i2cmem->write_sda(last);
m_i2cmem->write_scl(1);
m_i2cmem->write_scl(0);
return data;
}
void cxhumax_state::i2cmem_write_byte(uint8_t data)
{
int i;
for (i = 0; i < 8; i++)
{
m_i2cmem->write_sda((data & 0x80) ? 1 : 0);
data = data << 1;
m_i2cmem->write_scl(1);
m_i2cmem->write_scl(0);
}
m_i2cmem->write_sda(1); // ack bit
m_i2cmem->write_scl(1);
m_i2cmem->write_scl(0);
}
void cxhumax_state::i2cmem_start()
{
m_i2cmem->write_sda(1);
m_i2cmem->write_scl(1);
m_i2cmem->write_sda(0);
m_i2cmem->write_scl(0);
}
void cxhumax_state::i2cmem_stop()
{
m_i2cmem->write_sda(0);
m_i2cmem->write_scl(1);
m_i2cmem->write_sda(1);
m_i2cmem->write_scl(0);
}
READ32_MEMBER( cxhumax_state::cx_i2c1_r )
{
uint32_t data=0;
switch(offset) {
case I2C_STAT_REG:
data |= m_i2cmem->read_sda()<<3;
// fall
default:
data |= m_i2c1_regs[offset]; break;
}
verboselog(*this, 9, "(I2C1) %08X -> %08X\n", 0xE04E1000 + (offset << 2), data);
return data;
}
WRITE32_MEMBER( cxhumax_state::cx_i2c1_w )
{
verboselog(*this, 9, "(I2C1) %08X <- %08X\n", 0xE04E1000 + (offset << 2), data);
switch(offset) {
case I2C_CTRL_REG:
if(data&0x10) {// START
i2cmem_start();
}
if((data&0x4) || ((data&3)==3)) // I2C READ
{
m_i2c1_regs[I2C_RDATA_REG] = 0;
if(data&0x10) i2cmem_write_byte((data>>24)&0xFF);
if(m_i2c1_regs[I2C_MODE_REG]&(1<<5)) // BYTE_ORDER
{
for(int i=0; i<(data&3); i++) {
m_i2c1_regs[I2C_RDATA_REG] |= i2cmem_read_byte(0) << (i*8);
}
m_i2c1_regs[I2C_RDATA_REG] |= i2cmem_read_byte((data&0x20)?1:0) << ((data&3)*8);
}
else
{
for(int i=0; i<(data&3); i++) {
m_i2c1_regs[I2C_RDATA_REG] |= i2cmem_read_byte(0);
m_i2c1_regs[I2C_RDATA_REG] <<= 8;
}
m_i2c1_regs[I2C_RDATA_REG] |= i2cmem_read_byte((data&0x20)?1:0);
}
}
else
{
for(int i=0; i<=(data&3); i++) {
i2cmem_write_byte((data>>(24-(i*8))&0xFF));
}
}
if(data&0x20) {// STOP
i2cmem_stop();
}
/* The interrupt status bit is set at the end of an I2C read or write operation. */
m_i2c1_regs[I2C_STAT_REG] |= I2C_INT_BIT;
m_i2c1_regs[I2C_STAT_REG] |= I2C_WACK_BIT;
m_intctrl_regs[INTREG(INTGROUP1, INTIRQ)] |= 1<<7;
m_intctrl_regs[INTREG(INTGROUP1, INTSTATCLR)] |= 1<<7;
m_intctrl_regs[INTREG(INTGROUP1, INTSTATSET)] |= 1<<7;
if (m_intctrl_regs[INTREG(INTGROUP1, INTENABLE)] & (1<<7)) {
verboselog(*this, 9, "(I2C1) Int\n" );
m_maincpu->set_input_line(ARM7_IRQ_LINE, ASSERT_LINE);
}
break;
case I2C_STAT_REG:
/* The interrupt status bit may be cleared by writing (anything) to the status register, which also clears the acknowledge status. */
data&=~(I2C_WACK_BIT|I2C_INT_BIT);
// fall
default:
COMBINE_DATA(&m_i2c1_regs[offset]);
}
}
READ32_MEMBER( cxhumax_state::cx_i2c2_r )
{
uint32_t data = m_i2c2_regs[offset];
verboselog(*this, 9, "(I2C2) %08X -> %08X\n", 0xE04E2000 + (offset << 2), data);
return data;
}
WRITE32_MEMBER( cxhumax_state::cx_i2c2_w )
{
verboselog(*this, 9, "(I2C2) %08X <- %08X\n", 0xE04E2000 + (offset << 2), data);
COMBINE_DATA(&m_i2c2_regs[offset]);
}
READ32_MEMBER( cxhumax_state::cx_mc_cfg_r )
{
uint32_t data = m_mccfg_regs[offset];
verboselog(*this, 9, "(MC_CFG) %08X -> %08X\n", 0xE0500300 + (offset << 2), data);
return data;
}
WRITE32_MEMBER( cxhumax_state::cx_mc_cfg_w )
{
verboselog(*this, 9, "(MC_CFG) %08X <- %08X\n", 0xE0500300 + (offset << 2), data);
COMBINE_DATA(&m_mccfg_regs[offset]);
}
READ32_MEMBER( cxhumax_state::cx_drm0_r )
{
uint32_t data = m_drm0_regs[offset];
verboselog(*this, 9, "(DRM0) %08X -> %08X\n", 0xE0560000 + (offset << 2), data);
switch(offset) {
case 0x14/4: // DRM_STATUS_REG
data |= 1<<21;
data |= 1<<20;
}
return data;
}
WRITE32_MEMBER( cxhumax_state::cx_drm0_w )
{
verboselog(*this, 9, "(DRM0) %08X <- %08X\n", 0xE0560000 + (offset << 2), data);
COMBINE_DATA(&m_drm0_regs[offset]);
}
READ32_MEMBER( cxhumax_state::cx_drm1_r )
{
uint32_t data = m_drm1_regs[offset];
verboselog(*this, 9, "(DRM1) %08X -> %08X\n", 0xE0570000 + (offset << 2), data);
return data;
}
WRITE32_MEMBER( cxhumax_state::cx_drm1_w )
{
verboselog(*this, 9, "(DRM1) %08X <- %08X\n", 0xE0570000 + (offset << 2), data);
COMBINE_DATA(&m_drm1_regs[offset]);
}
READ32_MEMBER( cxhumax_state::cx_hdmi_r )
{
uint32_t data = m_hdmi_regs[offset];
verboselog(*this, 9, "(HDMI) %08X -> %08X\n", 0xE05D0800 + (offset << 2), data);
return data;
}
WRITE32_MEMBER( cxhumax_state::cx_hdmi_w )
{
verboselog(*this, 9, "(HDMI) %08X <- %08X\n", 0xE05D0800 + (offset << 2), data);
switch(offset) {
case 0x40/4: // HDMI_CONFIG_REG
if(data&8) m_hdmi_regs[0xc0/4] |= 0x80;
}
COMBINE_DATA(&m_hdmi_regs[offset]);
}
void cxhumax_state::video_start()
{
}
/* copy from emu/rendersw.inc */
/*------------------------------------------------------------------------
ycc_to_rgb - convert YCC to RGB; the YCC pixel
contains Y in the LSB, Cb << 8, and Cr << 16
This actually a YCbCr conversion,
details my be found in chapter 6.4 ff of
http://softwarecommunity.intel.com/isn/downloads/softwareproducts/pdfs/346495.pdf
The document also contains the constants below as floats.
--------------------------------------------------------------------------*/
static inline uint8_t clamp16_shift8(uint32_t x)
{
return (((int32_t) x < 0) ? 0 : (x > 65535 ? 255: x >> 8));
}
static inline uint32_t ycc_to_rgb(uint32_t ycc)
{
/* original equations:
C = Y - 16
D = Cb - 128
E = Cr - 128
R = clip(( 298 * C + 409 * E + 128) >> 8)
G = clip(( 298 * C - 100 * D - 208 * E + 128) >> 8)
B = clip(( 298 * C + 516 * D + 128) >> 8)
R = clip(( 298 * (Y - 16) + 409 * (Cr - 128) + 128) >> 8)
G = clip(( 298 * (Y - 16) - 100 * (Cb - 128) - 208 * (Cr - 128) + 128) >> 8)
B = clip(( 298 * (Y - 16) + 516 * (Cb - 128) + 128) >> 8)
R = clip(( 298 * Y - 298 * 16 + 409 * Cr - 409 * 128 + 128) >> 8)
G = clip(( 298 * Y - 298 * 16 - 100 * Cb + 100 * 128 - 208 * Cr + 208 * 128 + 128) >> 8)
B = clip(( 298 * Y - 298 * 16 + 516 * Cb - 516 * 128 + 128) >> 8)
R = clip(( 298 * Y - 298 * 16 + 409 * Cr - 409 * 128 + 128) >> 8)
G = clip(( 298 * Y - 298 * 16 - 100 * Cb + 100 * 128 - 208 * Cr + 208 * 128 + 128) >> 8)
B = clip(( 298 * Y - 298 * 16 + 516 * Cb - 516 * 128 + 128) >> 8)
Now combine constants:
R = clip(( 298 * Y + 409 * Cr - 56992) >> 8)
G = clip(( 298 * Y - 100 * Cb - 208 * Cr + 34784) >> 8)
B = clip(( 298 * Y + 516 * Cb - 70688) >> 8)
Define common = 298 * y - 56992. This will save one addition
R = clip(( common + 409 * Cr - 0) >> 8)
G = clip(( common - 100 * Cb - 208 * Cr + 91776) >> 8)
B = clip(( common + 516 * Cb - 13696) >> 8)
*/
uint8_t y = ycc;
uint8_t cb = ycc >> 8;
uint8_t cr = ycc >> 16;
uint32_t r, g, b, common;
common = 298 * y - 56992;
r = (common + 409 * cr);
g = (common - 100 * cb - 208 * cr + 91776);
b = (common + 516 * cb - 13696);
/* Now clamp and shift back */
return rgb_t(clamp16_shift8(r), clamp16_shift8(g), clamp16_shift8(b));
}
uint32_t cxhumax_state::screen_update_cxhumax(screen_device &screen, bitmap_rgb32 &bitmap, const rectangle &cliprect)
{
int i, j;
uint32_t osd_pointer = m_drm1_regs[DRM_OSD_PTR_REG];
if(osd_pointer)
{
uint32_t *ram = m_ram;
uint32_t *osd_header = &ram[osd_pointer/4];
uint8_t *vbuf = (uint8_t*)(&ram[osd_header[3]/4]);
uint32_t *palette = &ram[osd_header[7]/4];
uint32_t x_disp_start_and_width = osd_header[1];
uint32_t xdisp_width = (x_disp_start_and_width >> 16) & 0x1fff;
uint32_t xdisp_start = x_disp_start_and_width & 0xfff;
uint32_t image_height_and_width = osd_header[2];
uint32_t yimg_height = (image_height_and_width >> 16) & 0x7ff;
uint32_t ximg_width = image_height_and_width & 0x7ff;
uint32_t y_position_and_region_alpha = osd_header[5];
uint32_t ydisp_last = (y_position_and_region_alpha >> 12) & 0x7ff;
uint32_t ydisp_start = y_position_and_region_alpha & 0x7ff;
/* uint32_t first_x = m_drm0_regs[DRM_ACTIVE_X_REG] & 0xffff;
uint32_t last_x = (m_drm0_regs[DRM_ACTIVE_X_REG] >> 16) & 0xffff;
uint32_t first_y = m_drm0_regs[DRM_ACTIVE_Y_REG] & 0xfff;
uint32_t last_y = (m_drm0_regs[DRM_ACTIVE_Y_REG] >> 16) & 0xfff;*/
for (j=ydisp_start; j <= ydisp_last; j++)
{
uint32_t *bmp = &bitmap.pix32(j);
for (i=xdisp_start; i <= (xdisp_start + xdisp_width); i++)
{
if ((i <= (xdisp_start + ximg_width)) && (j <= (ydisp_start + yimg_height))) {
bmp[i] = palette[vbuf[i+((j-ydisp_start)*ximg_width)]];
} else {
bmp[i] = ycc_to_rgb(m_drm1_regs[DRM_BCKGND_REG]);
}
}
}
}
return 0;
}
void cxhumax_state::cxhumax_map(address_map &map)
{
map(0x00000000, 0x03ffffff).ram().share("ram").mirror(0x40000000); // 64?MB RAM
map(0xe0000000, 0xe000ffff).rw(FUNC(cxhumax_state::cx_hsx_r), FUNC(cxhumax_state::cx_hsx_w)); // HSX
map(0xe0010000, 0xe0010003).rw(FUNC(cxhumax_state::cx_romdescr_r), FUNC(cxhumax_state::cx_romdescr_w)); // ROM Descriptor
map(0xe0010004, 0xe001000f).rw(FUNC(cxhumax_state::cx_isaromdescr_r), FUNC(cxhumax_state::cx_isaromdescr_w)); // ISA/ROM Descriptors
map(0xe0010010, 0xe001001f).rw(FUNC(cxhumax_state::cx_isadescr_r), FUNC(cxhumax_state::cx_isadescr_w)); // ISA Descriptors
map(0xe0010020, 0xe001002f).rw(FUNC(cxhumax_state::cx_rommap_r), FUNC(cxhumax_state::cx_rommap_w)); // ROM Mapping
map(0xe0010030, 0xe0010033).rw(FUNC(cxhumax_state::cx_rommode_r), FUNC(cxhumax_state::cx_rommode_w)); // ISA Mode
map(0xe0010034, 0xe0010037).rw(FUNC(cxhumax_state::cx_xoemask_r), FUNC(cxhumax_state::cx_xoemask_w)); // XOE Mask
map(0xe0010040, 0xe0010047).rw(FUNC(cxhumax_state::cx_pci_r), FUNC(cxhumax_state::cx_pci_w)); // PCI
map(0xe0010080, 0xe00100ff).rw(FUNC(cxhumax_state::cx_extdesc_r), FUNC(cxhumax_state::cx_extdesc_w)); // Extended Control
map(0xe0400014, 0xe0400017).w(FUNC(cxhumax_state::cx_remap_w)); // RST_REMAP_REG
map(0xe0400024, 0xe0400027).rw(FUNC(cxhumax_state::cx_scratch_r), FUNC(cxhumax_state::cx_scratch_w)); // RST_SCRATCH_REG - System Scratch Register
map(0xe0430000, 0xe0430103).rw(FUNC(cxhumax_state::cx_timers_r), FUNC(cxhumax_state::cx_timers_w)); // Timers
map(0xe0411000, 0xe0411033).rw(FUNC(cxhumax_state::cx_uart2_r), FUNC(cxhumax_state::cx_uart2_w)); // UART2
map(0xe0440000, 0xe0440013).rw(FUNC(cxhumax_state::cx_pll_r), FUNC(cxhumax_state::cx_pll_w)); // PLL Registers
map(0xe0440020, 0xe0440037).rw(FUNC(cxhumax_state::cx_clkdiv_r), FUNC(cxhumax_state::cx_clkdiv_w)); // Clock Divider Registers
map(0xe0440094, 0xe0440097).rw(FUNC(cxhumax_state::cx_pllprescale_r), FUNC(cxhumax_state::cx_pllprescale_w)); // PLL Prescale
map(0xe0440100, 0xe0440173).rw(FUNC(cxhumax_state::cx_chipcontrol_r), FUNC(cxhumax_state::cx_chipcontrol_w)); // Chip Control Registers
map(0xe0450000, 0xe0450037).rw(FUNC(cxhumax_state::cx_intctrl_r), FUNC(cxhumax_state::cx_intctrl_w)); // Interrupt Controller Registers
map(0xe0490000, 0xe0490017).rw(FUNC(cxhumax_state::cx_ss_r), FUNC(cxhumax_state::cx_ss_w)); // Synchronous Serial Port
map(0xe04e0000, 0xe04e001f).rw(FUNC(cxhumax_state::cx_i2c0_r), FUNC(cxhumax_state::cx_i2c0_w)); // I2C0
map(0xe04e1000, 0xe04e101f).rw(FUNC(cxhumax_state::cx_i2c1_r), FUNC(cxhumax_state::cx_i2c1_w)); // I2C1
map(0xe04e2000, 0xe04e201f).rw(FUNC(cxhumax_state::cx_i2c2_r), FUNC(cxhumax_state::cx_i2c2_w)); // I2C2
map(0xe0500300, 0xe050030b).rw(FUNC(cxhumax_state::cx_mc_cfg_r), FUNC(cxhumax_state::cx_mc_cfg_w)); // Memory Controller configuration
map(0xe0560000, 0xe05600fb).rw(FUNC(cxhumax_state::cx_drm0_r), FUNC(cxhumax_state::cx_drm0_w)); // DRM0
map(0xe0570000, 0xe05700fb).rw(FUNC(cxhumax_state::cx_drm1_r), FUNC(cxhumax_state::cx_drm1_w)); // DRM1
map(0xe05d0800, 0xe05d0bff).rw(FUNC(cxhumax_state::cx_hdmi_r), FUNC(cxhumax_state::cx_hdmi_w)); // HDMI
map(0xe0600000, 0xe063ffff).rw(FUNC(cxhumax_state::cx_gxa_r), FUNC(cxhumax_state::cx_gxa_w)); // GXA
map(0xe4017000, 0xe40173ff).ram(); // HSX - BSP - 1K Video Shared Dual Port RAM (shared with MVP)
map(0xe4080000, 0xe4083fff).ram(); // HSX - TSP 0 - 16K Private Instructions/Data and Host-Shared Data
map(0xf0000000, 0xf03fffff).rw(FUNC(cxhumax_state::flash_r), FUNC(cxhumax_state::flash_w)).mirror(0x08000000); // 4MB FLASH (INTEL 28F320J3D)
map(0xf4000000, 0xf43fffff).r(FUNC(cxhumax_state::dummy_flash_r)); // do we need it?
}
static INPUT_PORTS_START( cxhumax )
INPUT_PORTS_END
void cxhumax_state::machine_start()
{
int index = 0;
for(index = 0; index < MAX_CX_TIMERS; index++)
{
m_timer_regs.timer[index].timer = machine().scheduler().timer_alloc(timer_expired_delegate(FUNC(cxhumax_state::timer_tick),this));
m_timer_regs.timer[index].timer->adjust(attotime::never, index);
}
}
void cxhumax_state::machine_reset()
{
m_i2c0_regs[0x08/4] = 0x08; // SDA high
m_i2c2_regs[0x08/4] = 0x08; // SDA high
uint8_t* FLASH = memregion("flash")->base();
memcpy(m_ram,FLASH,0x400000);
m_chipcontrol_regs[PIN_CONFIG_0_REG] =
1 << 0 | /* Short Reset: 0=200ms delay ; 1=1ms delay */
1 << 1 | /* Software config bit. OK */
1 << 4 | /* SDRAM memory controller data width. 0=16bit 1=32bit */
1 << 11 | /* I/O Addr bus width 11=23 bit 10=22bit 01=21bit 00=20bit / PCImode: 0=held in reset 1=normal reset OK? */
0 << 16 | /* 0=PCI mode 1=Standard I/O mode */
1 << 23 | /* 0=PCI device 1=PCI host bridge OK */
1 << 26 | /* 0=SC1 used for NDS 1=SC1 not used for NDS */
1 << 27 | /* 0=8bit ROM 1=16bit ROM */
1 << 28 | /* 0=SC0 used for NDS 1=SC0 not used for NDS */
0 << 29 | /* 0=using SC2 1=not using SC2 */
0 << 30 | /* 0=using SC1 (TDA8004) 1=not using SC1 */
1 << 31; /* 0=Ext clk for boot 1=Int PLL for boot OK */
m_chipcontrol_regs[SREG_MODE_REG] = 0x0000020F;
memset(m_isaromdescr_regs,0,sizeof(m_isaromdescr_regs));
memset(m_isadescr_regs,0,sizeof(m_isadescr_regs));
m_rommode_reg=0;
m_xoemask_reg=0;
memset(m_extdesc_regs,0,sizeof(m_extdesc_regs));
m_pll_regs[SREG_MPG_0_INTFRAC_REG] = (0x1A << 25) /* integer */ | 0x5D1764 /* fraction */;
m_pll_regs[SREG_MPG_1_INTFRAC_REG] = (0x1A << 25) /* integer */ | 0x5D1764 /* fraction */;
m_pll_regs[SREG_ARM_INTFRAC_REG] = (0x28 << 25) /* integer */ | 0xCEDE62 /* fraction */;
m_pll_regs[SREG_MEM_INTFRAC_REG] = (0x13 << 25) /* integer */ | 0xC9B26D /* fraction */;
m_pll_regs[SREG_USB_INTFRAC_REG] = (0x08 << 25) /* integer */ | 0x52BF5B /* fraction */;
m_clkdiv_regs[SREG_DIV_0_REG] = (2<<0)|(1<<6)|(2<<8)|(2<<14)|(10<<16)|(1<<22)|(10<<24)|(1<<30);
m_clkdiv_regs[SREG_DIV_1_REG] = (5<<0)|(0<<6)|(12<<8)|(0<<14)|(4<<16)|(1<<22)|(5<<24)|(1<<30);
m_clkdiv_regs[SREG_DIV_2_REG] = (22<<0)|(0<<6)|(12<<8)|(1<<14)|(4<<16)|(3<<22); //|(5<<24)|(1<<30);???
m_clkdiv_regs[SREG_DIV_3_REG] = (5<<0)|(0<<6)|(5<<8)|(0<<14)|(5<<16)|(0<<22)|(5<<24)|(0<<30);
m_clkdiv_regs[SREG_DIV_4_REG] = (8<<0)|(0<<6)|(5<<8)|(0<<14)|(5<<16)|(0<<22)|(5<<24)|(0<<30);
m_clkdiv_regs[SREG_DIV_5_REG] = (8<<0)|(0<<6)|(5<<8)|(0<<14)|(5<<16)|(0<<22);
m_pllprescale_reg=0xFFF;
m_mccfg_regs[MC_CFG0] = ((m_chipcontrol_regs[PIN_CONFIG_0_REG]>>4)&1)<<16;
m_mccfg_regs[MC_CFG1] = 0;
m_mccfg_regs[MC_CFG2] = (7<<8)|(7<<0);
// UART2
m_uart2_regs[UART_FIFC_REG] = 0x30;
// Clear SS TX FIFO
memset(m_ss_tx_fifo,0,sizeof(m_ss_tx_fifo));
m_ss_regs[SS_BAUD_REG] = 1; // Default SS clock = 13,5MHz
memset(m_intctrl_regs,0,sizeof(m_intctrl_regs));
memset(m_hdmi_regs,0,sizeof(m_hdmi_regs));
memset(m_gxa_cmd_regs,0,sizeof(m_gxa_cmd_regs));
}
MACHINE_CONFIG_START(cxhumax_state::cxhumax)
MCFG_DEVICE_ADD("maincpu", ARM920T, 180000000) // CX24175 (RevC up?)
MCFG_DEVICE_PROGRAM_MAP(cxhumax_map)
INTEL_28F320J3D(config, "flash");
I2CMEM(config, "eeprom", 0).set_data_size(0x2000);
/* video hardware */
MCFG_SCREEN_ADD("screen", RASTER)
MCFG_SCREEN_REFRESH_RATE(50)
MCFG_SCREEN_VBLANK_TIME(ATTOSECONDS_IN_USEC(2500)) /* not accurate */
MCFG_SCREEN_SIZE(1920, 1080)
MCFG_SCREEN_VISIBLE_AREA(0, 1920-1, 0, 1080-1)
MCFG_SCREEN_UPDATE_DRIVER(cxhumax_state, screen_update_cxhumax)
PALETTE(config, "palette", palette_device::MONOCHROME);
GENERIC_TERMINAL(config, m_terminal, 0);
MACHINE_CONFIG_END
ROM_START( hxhdci2k )
ROM_REGION( 0x400000, "flash", 0 )
ROM_SYSTEM_BIOS( 0, "fw10005", "HDCI REV 1.0 RHDXSCI 1.00.05" ) /* 19 AUG 2008 */
ROM_LOAD16_WORD_SWAP( "28f320j3d.bin", 0x000000, 0x400000, BAD_DUMP CRC(63d98942) SHA1(c5b8d701677a3edc25f203854f44953b19c9158d) )
ROM_REGION( 0x2000, "eeprom", 0 )
ROM_LOAD( "24lc64.bin", 0x0000, 0x2000, NO_DUMP)
ROM_END
// YEAR NAME PARENT COMPAT MACHINE INPUT CLASS INIT COMPANY FULLNAME FLAGS
SYST( 2008, hxhdci2k, 0, 0, cxhumax, cxhumax, cxhumax_state, empty_init, "HUMAX", "HUMAX HDCI-2000", MACHINE_NOT_WORKING | MACHINE_NO_SOUND )