Fix SFR_DATA access, make internal switch work

This commit is contained in:
logicog
2025-06-09 11:22:52 +02:00
parent c5d7628ea0
commit c54227f057
+420 -231
View File
@@ -34,6 +34,7 @@
#define RTL837X_REG_SMI_CTRL 0x6454 #define RTL837X_REG_SMI_CTRL 0x6454
#define RTL837X_REG_RESET 0x0024 #define RTL837X_REG_RESET 0x0024
#define RTL837X_REG_SEC_COUNTER 0x06f4 #define RTL837X_REG_SEC_COUNTER 0x06f4
#define RTL837X_REG_SDS_MODES 0x7b20
// Blink rate is defined by setAsicRegBits(0x6520,0xe00000,rate); // Blink rate is defined by setAsicRegBits(0x6520,0xe00000,rate);
#define SFR_EXEC_READ_REG 1 #define SFR_EXEC_READ_REG 1
@@ -52,12 +53,18 @@ __xdata signed char cmd_words_b[N_WORDS];
#define SBUF_SIZE 32 #define SBUF_SIZE 32
__xdata char sbuf_ptr; __xdata char sbuf_ptr;
__xdata unsigned sbuf[SBUF_SIZE]; __xdata unsigned sbuf[SBUF_SIZE];
__xdata unsigned char sfr_data[4];
__code unsigned char * __code greeting = "HI! This is a minimal prompt to explore the RTL8372!\r\n"; __code unsigned char * __code greeting = "A minimal prompt to explore the RTL8372!\r\n";
__code unsigned char * __code hex = "0123456789abcdef"; __code unsigned char * __code hex = "0123456789abcdef";
__xdata uint8_t flash_buf[256]; __xdata uint8_t flash_buf[256];
__code unsigned short bit_mask[16] = {
0x0001, 0x0002, 0x0004,0x0008,0x0010,0x0020,0x0040, 0x0080,
0x0100, 0x0200, 0x0400,0x0800,0x1000,0x2000,0x4000, 0x8000
};
#define N_COMMANDS 1 #define N_COMMANDS 1
struct command { struct command {
unsigned char *cmd; unsigned char *cmd;
@@ -70,20 +77,10 @@ void isr_timer0(void) __interrupt(1)
TR0 = 0; // Stop timer 0 TR0 = 0; // Stop timer 0
TH0 = (0x10000 - (CLOCK_HZ / SYS_TICK_HZ / 32)) >> 8; TH0 = (0x10000 - (CLOCK_HZ / SYS_TICK_HZ / 32)) >> 8;
TL0 = (0x10000 - (CLOCK_HZ / SYS_TICK_HZ / 32)) % 0xff; TL0 = (0x10000 - (CLOCK_HZ / SYS_TICK_HZ / 32)) % 0xff;
ticks++; ticks++;
sec_counter++; sec_counter++;
/*
SFR_DATA_24 = 0x00;
SFR_DATA_16 = 0x23;
SFR_DATA_8 = 0xe0;
SFR_DATA_0 = 0xf0;
SFR_REG_ADDRH = RTL837X_REG_LED_MODE >> 8;
SFR_REG_ADDRL = RTL837X_REG_LED_MODE & 0xff;
SFR_EXEC_GO = SFR_EXEC_WRITE_REG;
do {
} while (SFR_EXEC_STATUS != 0);
*/
TR0 = 1; // Re-start timer 0 TR0 = 1; // Re-start timer 0
} }
@@ -148,7 +145,7 @@ void isr_ext0(void) __interrupt(0)
EX0 = 0; EX0 = 0;
write_char('X'); write_char('X');
IT0 = 1; IT0 = 1;
EX0 = 1; EX0 = 1; // TODO: we should handle this here
} }
/* /*
@@ -211,6 +208,20 @@ void reg_read(uint16_t reg_addr)
} }
void reg_read_m(uint16_t reg_addr)
{
SFR_REG_ADDRH = reg_addr >> 8;
SFR_REG_ADDRL = reg_addr;
SFR_EXEC_GO = SFR_EXEC_READ_REG;
do {
} while (SFR_EXEC_STATUS != 0);
sfr_data[0] = SFR_DATA_24;
sfr_data[1] = SFR_DATA_16;
sfr_data[2] = SFR_DATA_8;
sfr_data[3] = SFR_DATA_0;
}
void reg_write(uint16_t reg_addr) void reg_write(uint16_t reg_addr)
{ {
/* Data to write must be in SFR A4, A5, A6, A7 */ /* Data to write must be in SFR A4, A5, A6, A7 */
@@ -222,52 +233,58 @@ void reg_write(uint16_t reg_addr)
} }
/* This sets a bit in the 32bit wide switch register reg_addr void reg_write_m(uint16_t reg_addr)
{
SFR_REG_ADDRH = reg_addr >> 8;
SFR_REG_ADDRL = reg_addr;
SFR_DATA_24 = sfr_data[0] ;
SFR_DATA_16 = sfr_data[1];
SFR_DATA_8 = sfr_data[2];
SFR_DATA_0 = sfr_data[3];
SFR_EXEC_GO = SFR_EXEC_WRITE_REG;
do {
} while (SFR_EXEC_STATUS != 0);
}
/*
* This sets a bit in the 32bit wide switch register reg_addr
*/ */
void reg_bit_set(uint16_t reg_addr, char bit) void reg_bit_set(uint16_t reg_addr, char bit)
{ {
reg_read(reg_addr); unsigned char bit_mask = 1 << (bit & 0x7);
unsigned char bit_mask = 1 << (bit & 0x3);
switch (bit >> 3) { bit >>= 3;
case 0: reg_read_m(reg_addr);
SFR_DATA_0 |= bit_mask; sfr_data[3-bit] |= bit_mask;
break; reg_write_m(reg_addr);
case 1:
SFR_DATA_8 |= bit_mask;
break;
case 2:
SFR_DATA_16 |= bit_mask;
break;
case 3:
SFR_DATA_24 |= bit_mask;
break;
}
reg_write(reg_addr);
} }
/* This sets a bit in the 32bit wide switch register reg_addr /*
* This sets a bit in the 32bit wide switch register reg_addr
*/ */
void reg_bit_clear(uint16_t reg_addr, char bit) void reg_bit_clear(uint16_t reg_addr, char bit)
{ {
reg_read(reg_addr); unsigned char bit_mask = 1 << (bit & 0x7);
unsigned char bit_mask = 1 << (bit & 0x3);
bit >>= 3;
reg_read_m(reg_addr);
bit_mask = ~bit_mask; bit_mask = ~bit_mask;
switch (bit >> 3) { sfr_data[3-bit] &= bit_mask;
case 0: reg_write_m(reg_addr);
SFR_DATA_0 &= bit_mask;
break;
case 1:
SFR_DATA_8 &= bit_mask;
break;
case 2:
SFR_DATA_16 &= bit_mask;
break;
case 3:
SFR_DATA_24 &= bit_mask;
break;
} }
reg_write(reg_addr);
/*
* This masks the sfr data fields, first &-ing with ~mask, the setting the bits in set
*/
void sfr_mask_data(unsigned char n, unsigned char mask, unsigned char set)
{
unsigned char b = sfr_data[3-n];
b &= ~mask;
b |= set;
sfr_data[3-n] = b;
} }
@@ -288,32 +305,34 @@ unsigned char read_flash(unsigned char bank, __code unsigned char *addr)
return v; return v;
} }
//
// An idle function that sleeps for 1 tick and does all the house-keeping
//
void idle(void) void idle(void)
{ {
PCON |= 1; PCON |= 1;
if (sec_counter >= 60) { if (sec_counter >= 60) {
sec_counter -= 60; sec_counter -= 60;
reg_read(RTL837X_REG_SEC_COUNTER); reg_read_m(RTL837X_REG_SEC_COUNTER);
unsigned char v = SFR_DATA_0; unsigned char v = sfr_data[3];
v++; v++;
SFR_DATA_0 = v; sfr_data[3] = v;
if (!v) { if (!v) {
v = SFR_DATA_8; v = sfr_data[2];
v++; v++;
SFR_DATA_8 = v; sfr_data[2] = v;
if (!v) { if (!v) {
v = SFR_DATA_16; v = sfr_data[1];
v++; v++;
SFR_DATA_16 = v; sfr_data[1] = v;
if (!v) { if (!v) {
v = SFR_DATA_24; v = sfr_data[0];
v++; v++;
SFR_DATA_24 = v; sfr_data[0] = v;
} }
} }
} }
reg_write(RTL837X_REG_SEC_COUNTER); reg_write_m(RTL837X_REG_SEC_COUNTER);
} }
} }
@@ -372,18 +391,19 @@ void reset_rtl8224(void)
*/ */
void setup_clock(void) void setup_clock(void)
{ {
reg_read(0x6040); reg_read_m(0x6040);
SFR_DATA_0 &= ~0x30; sfr_mask_data(0, 0x30, 0);
#if CLOCK_DIV != 0 #if CLOCK_DIV != 0
SFR_DATA_0 |= CLOCK_DIV << 4; // Divider in bits 4 & 5 // Divider in bits 4 & 5
sfr_mask_data(0, 0, CLOCK_DIV << 4);
#endif #endif
SFR_DATA_8 |= 0x01; // This is set in managed mode 125MHz // This is set in managed mode 125MHz
reg_write(0x6040); sfr_mask_data(1, 0, 0x01);
reg_write_m(0x6040);
reg_read(0x7f90); reg_read_m(0x7f90);
SFR_DATA_0 &= 0xfd; sfr_mask_data(0, 0x1, 0x1);
SFR_DATA_0 |= 0x01; reg_write_m(0x7f90);
reg_write(0x7f90);
} }
@@ -427,38 +447,6 @@ void phy_write(unsigned short phy_mask, unsigned char dev_id, unsigned short reg
} while (SFR_EXEC_STATUS != 0); } while (SFR_EXEC_STATUS != 0);
} }
void setmasked_data_0(unsigned char mask, unsigned char set)
{
unsigned char b = SFR_DATA_0;
b &= ~mask;
b |= set;
SFR_DATA_0 = b;
}
void setmasked_data_8(unsigned char mask, unsigned char set)
{
unsigned char b = SFR_DATA_8;
b &= ~mask;
b |= set;
SFR_DATA_8 = b;
}
void setmasked_data_16(unsigned char mask, unsigned char set)
{
unsigned char b = SFR_DATA_16;
b &= ~mask;
b |= set;
SFR_DATA_16 = b;
}
void setmasked_data_24(unsigned char mask, unsigned char set)
{
unsigned char b = SFR_DATA_24;
b &= ~mask;
b |= set;
SFR_DATA_24 = b;
}
/* /*
* Read a phy register via MDIO clause 45 * Read a phy register via MDIO clause 45
@@ -478,16 +466,6 @@ void phy_read(unsigned char phy_id, unsigned char device, unsigned short reg)
} }
void phy_read_raw(unsigned char phy_id, unsigned char device, unsigned short reg)
{
SFR_SMI_REG_H = reg >> 8; // c3
SFR_SMI_REG_L = reg; // c2
SFR_SMI_PHY = phy_id; // a5
// SFR_SMI_DEV = device << 3 | 2; // c4
SFR_SMI_DEV = device;
}
void phy22_read(unsigned char phy_id, unsigned short reg, unsigned char opt) void phy22_read(unsigned char phy_id, unsigned short reg, unsigned char opt)
{ {
SFR_93 = phy_id; // 93 SFR_93 = phy_id; // 93
@@ -505,196 +483,407 @@ void print_reg(unsigned short reg)
} }
void sds_init(void)
{
/*
p001e.000d:9535
R02f8-00009535 R02f4-0000953a
P000001.1e00000d:953a
p001e.000d:953a p001e.000d:953a
R02f8-0000953a R02f4-00009530
P000001.1e00000d:9530
*/
print_string(", phy-reg read: ");
phy_read(0, 0x1e, 0xd);
unsigned short pval = SFR_DATA_8;
pval <<= 8;
pval |= SFR_DATA_0;
print_short(pval);
print_string("\r\n");
// PHY Initialization:
SFR_DATA_24 = 0;
SFR_DATA_16 = 0;
SFR_DATA_8 = pval >> 8;
SFR_DATA_0 = pval;
reg_write(0x2f8);
print_string("\r\nA Reg 0x2f8: ");
print_reg(0x2f8);
sleep(10);
pval &= 0xfff0;
pval |= 0x0a;
SFR_DATA_24 = 0;
SFR_DATA_16 = 0;
SFR_DATA_8 = pval >> 8;
SFR_DATA_0 = pval;
reg_write(0x2f4);
print_string("\r\nA Reg 0x2f4: ");
print_reg(0x2f4);
phy_write(0x1, 0x1e, 0xd, pval);
print_string("\r\n 2: phy-reg read: ");
phy_read(0, 0x1e, 0xd);
pval = SFR_DATA_8;
pval <<= 8;
pval |= SFR_DATA_0;
print_short(pval);
print_string("\r\n");
// PHY Initialization:
SFR_DATA_24 = 0;
SFR_DATA_16 = 0;
SFR_DATA_8 = pval >> 8;
SFR_DATA_0 = pval;
reg_write(0x2f8);
print_string("\r\nA Reg 0x2f8: ");
print_reg(0x2f8);
sleep(10);
pval &= 0xfff0;
SFR_DATA_24 = 0;
SFR_DATA_16 = 0;
SFR_DATA_8 = pval >> 8;
SFR_DATA_0 = pval;
reg_write(0x2f4);
print_string("\r\nA Reg 0x2f4: ");
print_reg(0x2f4);
phy_write(0x1, 0x1e, 0xd, pval);
}
void phy_config(unsigned char phy)
{
unsigned short pval;
print_string("\r\nphy_config: ");
write_char('0' + phy);
sleep(20);
// PHY configuration: External 8221B?
// p081e.75f3:ffff P000100.1e0075f3:fffe
phy_read(phy, 0x1e, 0x75f3);
pval = SFR_DATA_8;
pval <<= 8;
pval |= SFR_DATA_0 & 0xfe;
phy_write(bit_mask[phy], 0x1e, 0x75f3, pval);
sleep(20);
// p081e.697a:ffff P000100.1e00697a:ffc1 / p031e.697a:0003 P000008.1e00697a:0001
// SERDES OPTION 1 Register (MMD 30.0x6) bits 0-5: 0x01: Set HiSGMII+SGMII
phy_read(phy, 0x1e, 0x697a);
pval = SFR_DATA_8;
pval <<= 8;
pval |= SFR_DATA_0 & 0xc0 | 0x01;
phy_write(bit_mask[phy], 0x1e, 0x697a, pval);
sleep(20);
// p031f.a432:0811 P000008.1f00a432:0831
// PHYCR2 PHY Specific Control Register 2, MMD 31. 0xA432), set bit 5: enable EEE
phy_read(phy, 0x1f, 0xa432);
pval = SFR_DATA_8;
pval <<= 8;
pval |= SFR_DATA_0 | 0x20;
phy_write(bit_mask[phy], 0x1f, 0xa432, pval);
// p0307.003e:0000 P000008.0700003e:0001
// EEE avertisment 2 register MMMD 7.0x003e, set bit 0: 2.5G has EEE capability
phy_read(phy, 0x7, 0x3e);
pval = SFR_DATA_8;
pval <<= 8;
pval |= SFR_DATA_0 | 0x1;
phy_write(bit_mask[phy], 0x7, 0x3e, pval);
sleep(20);
// p031f.a442:043c P000008.1f00a442:0430
// Unknown, but clear bits 2/3
phy_read(phy, 0x1f, 0xa442);
pval = SFR_DATA_8;
pval <<= 8;
pval |= SFR_DATA_0 & 0xf3;
phy_write(bit_mask[phy], 0x1f, 0xa442, pval);
sleep(20);
// P000100.1e0075b5:e084
phy_write(bit_mask[phy], 0x1e, 0x75b5, 0xe084);
sleep(20);
// p031e.75b2:0000 P000008.1e0075b2:0060
// set bits 5/6
phy_read(phy, 0x1e, 0x75b2);
pval = SFR_DATA_8;
pval <<= 8;
pval |= SFR_DATA_0 | 0x60;
phy_write(bit_mask[phy], 0x1e, 0x75b2, pval);
sleep(20);
// p081f.d040:ffff P000100.1f00d040:feff
// LCR6 (LED Control Register 6, MMD 31.D040), set bits 8/9 to 0b10
phy_read(phy, 0x1e, 0xd040);
pval = (SFR_DATA_8 & 0xfc) | 0x02;
pval <<= 8;
pval |= SFR_DATA_0;
phy_write(bit_mask[phy], 0x1e, 0xd040, pval);
sleep(20);
// p081f.a400:ffff P000100.1f00a400:ffff, then: p081f.a400:ffff P000100.1f00a400:bfff
// p031f.a400:1040 P000008.1f00a400:5040, then: p031f.a400:5040 P000008.1f00a400:1040
// FEDCR (Fast Ethernet Duplex Control Register, MMD 31.0xA400)
// Set bit 14, sleep, then clear again, according to the datasheet these bits are reserved
phy_read(phy, 0x1f, 0xa400);
pval = SFR_DATA_8 | 0x40;
pval <<= 8;
pval |= SFR_DATA_0;
phy_write(bit_mask[phy], 0x1f, 0xa400, pval);
sleep(20);
phy_read(phy, 0x1f, 0xa400);
pval = SFR_DATA_8 & 0xbf;
pval <<= 8;
pval |= SFR_DATA_0;
phy_write(bit_mask[phy], 0x1f, 0xa400, pval);
sleep(20);
print_string("\r\n phy config done\r\n");
}
void rtl8372_init(void) void rtl8372_init(void)
{ {
// From run, set bits 0-1 to 1 // From run, set bits 0-1 to 1
print_string("rtl8372_init called\r\n"); print_string("\r\ntl8372_init called\r\n");
reg_read(0x7f90); print_string("\r\nB Reg 0x7f90: ");
setmasked_data_0(3, 1); // This register also concerns the clock frequency
reg_write(0x7f90); print_reg(0x7f90);
/* reg_read_m(0x7f90);
sfr_mask_data(0, 0, 3);
reg_write_m(0x7f90);
print_string("\r\nA Reg 0x7f90: ");
print_reg(0x7f90);
*/
reg_read(0x6330); // 6330:00015555 R6330-00005555 r6330:00005555 R6330-00005555
setmasked_data_0(0, 0xc0); // Set Bits 6, 7 print_string("\r\nB Reg 0x6330: ");
setmasked_data_16(3, 0); // Delete bits 16, 17 print_reg(0x6330);
reg_write(0x6330); reg_read_m(0x6330);
reg_read(0x6334); // Also in sdsMode_set // sfr_mask_data(0, 0, 0xc0); // Set Bits 6, 7
setmasked_data_8(0, 0x01); // Set bits 3-8, On RTL8373+8224 set bits 0-7 sfr_mask_data(2, 3, 0); // Delete bits 16, 17
setmasked_data_0(0, 0xf8); reg_write_m(0x6330);
reg_write(0x6334); print_string("\r\nA Reg 0x6330: ");
print_reg(0x6330);
// r6334:00000000 R6334-000001f8
print_string("\r\nB Reg 0x6334: ");
print_reg(0x6334);
reg_read_m(0x6334); // Also in sdsMode_set
sfr_mask_data(1, 0, 0x01); // Set bits 3-8, On RTL8373+8224 set bits 0-7
sfr_mask_data(0, 0, 0xf8);
reg_write_m(0x6334);
print_string("\r\nA Reg 0x6334: ");
print_reg(0x6334);
// Enable MDC // Enable MDC
reg_read(RTL837X_REG_SMI_CTRL); // r6454:00000000 R6454-00007000 RTL837X_REG_SMI_CTRL
setmasked_data_8(0, 0x70); // Set bits 0xc-0xe to enable MDC for SMI0-SMI2 print_string("\r\nB Reg RTL837X_REG_SMI_CTRL: ");
reg_write(RTL837X_REG_SMI_CTRL); print_reg(RTL837X_REG_SMI_CTRL);
reg_read_m(RTL837X_REG_SMI_CTRL);
sfr_mask_data(1, 0, 0x70); // Set bits 0xc-0xe to enable MDC for SMI0-SMI2
reg_write_m(RTL837X_REG_SMI_CTRL);
print_string("\r\nA Reg RTL837X_REG_SMI_CTRL: ");
print_reg(RTL837X_REG_SMI_CTRL);
sleep(10);
print_string("SMI_CTRL: "); print_string("SMI_CTRL: ");
print_reg(0x6454); print_reg(RTL837X_REG_SMI_CTRL);
// p001e.000d:9535 // get_chip_version
print_string(", phy-reg read: ");
phy_read(0, 0x1e, 0xd);
print_phy_data();
print_string("\r\n");
/* FUN_CODE_2023(); sds_init();
FUN_CODE_01a6();
*/ // LED initialization
reg_read(RTL837X_REG_LED_MODE); // r6520:0021fdb0 R6520-0021e7b0 r6520:0021e7b0 R6520-0021e6b0
setmasked_data_16(0xe0, 0x23); // Mask blink rate field (0xe0), set blink rate and LED to solid (set bit 1 = bit 17 overall) reg_read_m(RTL837X_REG_LED_MODE);
sfr_mask_data(2, 0xe0, 0x23); // Mask blink rate field (0xe0), set blink rate and LED to solid (set bit 1 = bit 17 overall)
// Configure led-mode (serial?) // Configure led-mode (serial?)
setmasked_data_8(0x1c, 0x0c); sfr_data[2] = 0xe6;
setmasked_data_0(0xe0, 0xe0); sfr_data[3] = 0xb0;
reg_write(RTL837X_REG_LED_MODE); reg_write_m(RTL837X_REG_LED_MODE);
/* print_string("\r\nA Reg LED_MODE: ");
BEFORE: 0x0021fdb0 print_reg(RTL837X_REG_LED_MODE);
AFTER: 0x0021fdf0
CORRECT:0x0023e0f0;
rVar1 = rtl8373_setAsicRegBits(0x6520,0xe0 0000,rate);
write_xmem_32((uint *)0xb1,0xc);
write_xmem_32((uint *)0xb5,9);
write_xmem_32((uint *)0xb9,3);
rtl8373_setAsicRegBits_call_b1(0x6520);
write_xmem_32((uint *)0xb1,8);
write_xmem_32((uint *)0xb5,5);
write_xmem_32((uint *)0xb9,5);
rtl8373_setAsicRegBits_call_b1(0x6520); // LED Enable
*/
// Clear bits 0,1 of 0x65f8 // Clear bits 0,1 of 0x65f8
reg_read(0x65f8); // r65f8:00000018 R65f8-00000018
setmasked_data_0(0x03, 0); reg_read_m(0x65f8);
reg_write(0x65f8); sfr_mask_data(0, 0x03, 0);
reg_write_m(0x65f8);
print_string("\r\nA Reg 0x65f8: ");
print_reg(0x65f8);
// Set 0x65fc to 0xfffff000 // Set 0x65fc to 0xfffff000
// R65fc-fffff000
SFR_DATA_24 = 0xff; SFR_DATA_24 = 0xff;
SFR_DATA_16 = 0xff; SFR_DATA_16 = 0xff;
SFR_DATA_8 = 0xf0; SFR_DATA_8 = 0xf0;
SFR_DATA_0 = 0x00; SFR_DATA_0 = 0x00;
reg_write(0x65fc); reg_write(0x65fc);
print_string("\r\nA Reg 0x65fc: ");
print_reg(0x65fc);
// Set bits 0-3 of 0x6600 to 0xf // Set bits 0-3 of 0x6600 to 0xf
reg_read(0x6600); // r6600:00000000 R6600-0000000f
setmasked_data_0(0, 0x0f); reg_read_m(0x6600);
reg_write(0x6600); sfr_mask_data(0, 0, 0x0f);
reg_write_m(0x6600);
print_string("\r\nA Reg 0x6600: ");
print_reg(0x6600);
// Set bit 0x1d of 0x65dc, clear bit 1b // Set bit 0x1d of 0x65dc, clear bit 1b: r65dc:5fffff00 R65dc-7fffff00 r65dc:7fffff00 R65dc-77ffff00
reg_bit_set(0x65dc, 0x1d); reg_bit_set(0x65dc, 0x1d);
reg_bit_clear(0x65dc, 0x1b); reg_bit_clear(0x65dc, 0x1b);
print_string("\r\nA Reg 0x65dc: ");
print_reg(0x65dc);
// Set bits 1b/1d of 0x7f8c // Set bits 1b/1d of 0x7f8c: r7f8c:30000000 R7f8c-30000000 r7f8c:30000000 R7f8c-38000000
reg_bit_set(0x7f8c, 0x1d); reg_bit_set(0x7f8c, 0x1d);
reg_bit_set(0x7f8c, 0x1b); reg_bit_set(0x7f8c, 0x1b);
print_string("\r\nA Reg 0x7f8c: ");
print_reg(0x7f8c);
// LED setup
// r6520:0021fdb0 R6520-0021e7b0 r6520:0021e7b0 R6520-0021e6b0 r65f8:00000018 R65f8-00000018 R65fc-fffff000 r6600:00000000 R6600-0000000f r65dc:5fffff00 R65dc-7fffff00 r65dc:7fffff00 R65dc-77ffff00
// r7f8c:30000000 R7f8c-30000000 r7f8c:30000000 R7f8c-38000000 R6548-00410175 r6544:01411000 R6544-01410044 r6528:00000000 R6528-00000011 r6450:000020e6 R6450-000000e6 r644c:0a418820 R644c-0a400820
// Configure LED_SET_0, ledid 0/1 // Configure LED_SET_0, ledid 0/1
// R6548-00410175
SFR_DATA_24 = 0x00; SFR_DATA_24 = 0x00;
SFR_DATA_16 = 0x41; SFR_DATA_16 = 0x41;
SFR_DATA_8 = 0x01; SFR_DATA_8 = 0x01;
SFR_DATA_0 = 0x75; SFR_DATA_0 = 0x75;
reg_write(0x6548); reg_write(0x6548);
print_string("\r\nA Reg 0x6548: ");
print_reg(0x6548);
// Configure LED_SET_0 ledid 2 // Configure LED_SET_0 ledid 2
reg_read(0x6544); // 6544:01411000 R6544-01410044
SFR_DATA_8 = 0x00; reg_read_m(0x6544);
SFR_DATA_0 = 0x44; sfr_data[2] = 0x00;
reg_write(0x6544); sfr_data[3] = 0x44;
reg_write_m(0x6544);
print_string("\r\nReg 0x6544: ");
print_reg(0x6544);
// Further configure LED_SET_0 // Further configure LED_SET_0
reg_read(0x6528); // r6528:00000000 R6528-00000011
SFR_DATA_0 = 0x11; reg_read_m(0x6528);
reg_write(0x6528); sfr_data[3] = 0x11;
reg_write_m(0x6528);
print_string("\r\nReg 0x6528: ");
print_reg(0x6528);
// Part of the SDS configuration, see sdsMode_set, set bits 0xa-0xe to 0 // Part of the SDS configuration, see sdsMode_set, set bits 0xa-0xe to 0
reg_read(0x6450); // r6450:000020e6 R6450-000000e6
setmasked_data_8(0x7c, 0); reg_read_m(0x6450);
reg_write(0x6450); sfr_mask_data(1, 0x7c, 0);
reg_write_m(0x6450);
print_string("\r\nReg 0x6450: ");
print_reg(0x6450);
// SDS bits 10-1f set to 0 // SDS bits f-13 set to 0: r644c:0a418820 R644c-0a400820
reg_read(0x644c); reg_read_m(0x644c);
setmasked_data_8(0x1f, 0); sfr_mask_data(2, 0x0f, 0);
reg_write(0x644c); sfr_mask_data(1, 0x80, 0);
/* reg_write_m(0x644c);
FUN_CODE_018d(0,1,0,8); print_string("\r\nReg 0x644c: ");
FUN_CODE_018d(0,1,0,3); print_reg(0x644c);
*/
// Set the SerDes mode. Bits 0-4: SDS 0, Bits 5-9: SDS 1. Bits set to 1f // PHY configuration: External 8221B?
reg_read(0x7b20); phy_config(8);
setmasked_data_8(0, 0x03); // PHY configuration: all internal PHYs?
setmasked_data_0(0,0xff); phy_config(3);
reg_write(0x7b20);
/*
calll_4464_bank1();
calll_4464_bank1();
calll_4464_bank1();
*/
/* FUN_CODE_2023(); // Set the MAC SerDes mode. Bits 0-4: SDS 0, Bits 5-9: SDS 1. Bits set to 1f
phy_setting_up_somehow(); // r7b20:00000bff R7b20-00000bff r7b20:00000bff R7b20-00000bff r7b20:00000bff R7b20-000003ff r7b20:000003ff R7b20-000003e2 r7b20:000003e2 R7b20-000003e2
FUN_CODE_2023(); reg_read_m(RTL837X_REG_SDS_MODES);
phy_setting_up_somehow(); sfr_mask_data(1, 0, 0x03);
*/ sfr_mask_data(0, 0, 0xe2);
reg_write_m(RTL837X_REG_SDS_MODES);
reg_read(0xa90); // TODO: Setup the SERDES for the external PHYs
setmasked_data_0(0x0f,0x0c);
SFR_DATA_0 &= 0xf0; // SERDES_SGMII/fiber1g 20084,LINE 2049
SFR_DATA_0 |= 0xc;
reg_write(0xa90); // r0b7c:000000d8 R0b7c-000000f8 r6040:00000030 R6040-00000031
// r0a90:000000f3 R0a90-000000fc
reg_read_m(0xa90);
sfr_mask_data(0, 0x0f,0x0c);
reg_write_m(0xa90);
print_string("\r\nReg 0xa90: ");
print_reg(0x644c);
// Disable PHYs for configuration // Disable PHYs for configuration
phy_write(0xf0,0x1f,0xa610,0x2858); phy_write(0xf0,0x1f,0xa610,0x2858);
// Set bits 0x13 and 0x14 of 0x5fd4 // Set bits 0x13 and 0x14 of 0x5fd4
// r5fd4:0002914a R5fd4-001a914a
reg_bit_set(0x5fd4, 0x13); reg_bit_set(0x5fd4, 0x13);
reg_bit_set(0x5fd4, 0x14); reg_bit_set(0x5fd4, 0x14);
print_string("\r\nReg 0x5fd4: ");
print_reg(0x644c);
// Configure ports 3-8: // Configure ports 3-8:
/*
* r1538:00000e33 R1538-00000e37 r1538:00000e37 R1538-00000e37 r1538:00000e37 R1538-00000f37
* r1638:00000e33 R1638-00000e37 r1638:00000e37 R1638-00000e37 r1638:00000e37 R1638-00000f37
* r1738:00000e33 R1738-00000e37 r1738:00000e37 R1738-00000e37 r1738:00000e37 R1738-00000f37
* r1838:00000e33 R1838-00000e37 r1838:00000e37 R1838-00000e37 r1838:00000e37 R1838-00000f37
* r1938:00000e33 R1938-00000e37 r1938:00000e37 R1938-00000e37 r1938:00000e37 R1938-00000f37
* r1a38:00000e33 R1a38-00000e37 r1a38:00000e37 R1a38-00000e37 r1a38:00000e37 R1a38-00000f37
*/
uint16_t reg = 0x1238 + 0x300; // Port base register for the bits we set uint16_t reg = 0x1238 + 0x300; // Port base register for the bits we set
for (char i = 0; i < 6; i++) { for (char i = 0; i < 6; i++) {
print_string("\r\nRegs: ");
print_reg(reg);
reg_bit_set(reg, 0x2); reg_bit_set(reg, 0x2);
reg_bit_set(reg, 0x4);
reg_bit_set(reg, 0x8); reg_bit_set(reg, 0x8);
reg_bit_set(reg, 0x8); print_string("now: ");
print_reg(reg);
reg += 0x100; reg += 0x100;
} }
print_string("\r\n");
// r0b7c:000000d8 R0b7c-000000f8 r6040:00000030 R6040-00000031
reg_bit_set(0xb7c, 5); reg_bit_set(0xb7c, 5);
print_string("\r\nReg 0x0b7c: ");
print_reg(0x0b7c);
print_string("\r\nB Reg 0x6040: ");
print_reg(0x6040);
reg_bit_set(0x6040, 0); reg_bit_set(0x6040, 0);
print_string("\r\nA Reg 0x6040: ");
print_reg(0x6040);
/* // TODO: patch the PHYs
FUN_CODE_2023();
uVar4 = 1;
FUN_CODE_0617(0x23f);
bVar7 = eql_l(a,uVar4);
if (bVar7 == 0) {
FUN_CODE_019c();
FUN_CODE_01a1();
}
else {
uVar4 = 2;
FUN_CODE_0617(0x23f);
bVar7 = eql_l(a,uVar4);
if (bVar7 == 0) {
FUN_CODE_0192();
FUN_CODE_0197();
}
}
*/
/*
FUN_CODE_01bf();
FUN_CODE_01ab();
FUN_CODE_01b0();
FUN_CODE_01ba();
FUN_CODE_01b5();
*/
// Re-enable PHY after configuration // Re-enable PHY after configuration
phy_write(0xf0,0x1f,0xa610,0x2058);; phy_write(0xf0,0x1f,0xa610,0x2058);;
// Set bits 0xc-0x14 of 0x632c to 0x1f8, see rtl8372_init // Set bits 0xc-0x14 of 0x632c to 0x1f8, see rtl8372_init
reg_read(0x632c); // r632c:00000540 R632c-001f8540
setmasked_data_8(0x70, 0x80); reg_read_m(0x632c);
setmasked_data_16(0x10, 0x1f); sfr_mask_data(1, 0x70, 0x80);
reg_write(0x632c); sfr_mask_data(2, 0x10, 0x1f);
reg_write_m(0x632c);
print_string("\r\nReg 0x632c: ");
print_reg(0x632c);
print_string("\r\ntl8372_init done\r\n");
} }