Files
RTLPlayground/httpd/page_impl.c
T
diijkstra 7d62b24a42 Advanced I2C pin definition
RTL has up to 3 SCL pins and up to 4 SDA pins. Lets allow configuring
I2C with individual BUS numbers instead of 0/1 I2C.

This enables support for devices where SCL line is not shared between
SFP modules. MUX registry is now initialized depending on needed
pin function.

More over, some SFP pins require special MUX settings, lets initialize
those depending on SFP configuration. This adds TX Disable pin,
which right now is set to low at startup.

Caveats:
 - We may still override MUX registry later
 - Not sure how to handle invalid bus definitions
 - Without SFP is it fine to *not* initialize anything?
 - Do to RAM limitation we do inititalize output GPIO to low
2026-02-01 12:58:16 +01:00

705 lines
20 KiB
C

// #define REGDBG 1
#include "rtl837x_sfr.h"
#include "rtl837x_common.h"
#include "rtl837x_regs.h"
#include "rtl837x_port.h"
#include "rtl837x_flash.h"
#include "uip.h"
#include "html_data.h"
#include <stdint.h>
#include "phy.h"
#include "version.h"
#include "machine.h"
#include "page_impl.h"
// #define DEBUG
#include "debug.h"
#define L2_MAX_TRANSFER 30
#pragma codeseg BANK1
#pragma constseg BANK1
extern __code const struct machine machine;
extern __xdata uint8_t outbuf[TCP_OUTBUF_SIZE];
extern __xdata uint16_t slen;
extern __xdata uint16_t cont_len;
extern __xdata uint32_t cont_addr;
extern __code uint8_t * __code hex;
extern __xdata uip_ipaddr_t uip_hostaddr, uip_draddr, uip_netmask;
extern __code struct uip_eth_addr uip_ethaddr;
extern __xdata uint8_t sfr_data[4];
extern __xdata uint8_t sfp_pins_last;
extern __xdata uint8_t vlan_names[VLAN_NAMES_SIZE];
extern __xdata uint8_t cmd_history[CMD_HISTORY_SIZE];
extern __xdata uint16_t cmd_history_ptr;
extern __xdata struct flash_region_t flash_region;
extern __xdata char sfp_module_vendor[2][17];
extern __xdata char sfp_module_model[2][17];
extern __xdata char sfp_module_serial[2][17];
extern __xdata uint8_t sfp_options[2];
__code uint8_t * __code HTTP_RESPONCE_JSON = "HTTP/1.1 200 OK\r\nContent-Type: application/json\r\n\r\n";
__code uint8_t * __code HTTP_RESPONCE_TXT = "HTTP/1.1 200 OK\r\nContent-Type: text/plain\r\n\r\n";
// Convert uint8_t to ascii HEX char push on html-buffer.
void charhex_to_html(char c)
{
outbuf[slen++] = itohex(c);
}
// Convert (uint8_t) bool to ascii '0' or '1' char push on html-buffer.
void bool_to_html(char c)
{
outbuf[slen++] = c ? '1' : '0';
}
void char_to_html(char c)
{
outbuf[slen++] = c;
}
// Convert uint8_t to ascii HEX char.
void byte_to_html(uint8_t val)
{
uint8_t cnt = 2;
do {
val = (val >> 4) | (val << 4);
charhex_to_html(val);
cnt -= 1;
} while(cnt);
}
/* Converts a uint8_t to raw string.
Suppress leading zeros.
*/
void itoa_html(uint8_t v)
{
uint8_t t = (v / 100);
// when print_zeros is not zero, we know that a non-zero number has printed.
// That have to print all the next numbers.
uint8_t print_zeros = t;
if (print_zeros)
char_to_html('0' + t);
t = (v / 10) % 10;
print_zeros |= t;
if (print_zeros)
char_to_html('0' + t);
char_to_html('0' + (v % 10));
}
uint16_t stat_content(void)
{
dbg_string("stat_content called\n");
return 0;
}
uint16_t port_status(void)
{
dbg_string("port_status called\n");
return 0;
}
/* Converts sfr_data[] into raw hex string.
Suppress leading zeros.
*/
void sfr_data_to_html(void)
{
uint8_t print_zeros = 0;
uint8_t val = 0;
for (uint8_t nibble = 0; nibble < 8; nibble++) {
if (!(nibble & 1))
val = sfr_data[nibble>>1];
// force the swap instruction, itohex() ignores the upper nibble.
val = (val << 4) | (val >> 4);
// when print_zeros is not zero, we know that a non-zero number has printed.
// That have to print all the next numbers.
print_zeros |= val;
// only care about lower nibble, that is what is printed.
print_zeros &= 0x0f;
if (print_zeros)
charhex_to_html(val);
}
if (print_zeros == 0) {
char_to_html('0');
}
}
void reg_to_html(register uint16_t reg)
{
reg_read_m(reg);
sfr_data_to_html();
}
void reg_to_html_long(register uint16_t reg)
{
reg_read_m(reg);
byte_to_html(sfr_data[0]);
byte_to_html(sfr_data[1]);
byte_to_html(sfr_data[2]);
byte_to_html(sfr_data[3]);
}
void send_sfp_info(uint8_t sfp)
{
// This loops over the Vendor-name, Vendor OUI, Vendor PN and Vendor rev ASCII fields
for (uint8_t i = 20; i < 60; i++) {
if (i >= 36 && i < 40) // Skip Non-ASCII codes
continue;
uint8_t c = sfp_read_reg(sfp, i);
if (c && c != 0xa0) // a0 is the byte read from a non-existant I2C EEPROM
char_to_html(c);
}
}
void sfp_send_data(uint8_t slot, uint8_t reg, uint8_t len)
{
if (reg & 0x80) { // Configure SFP readings address (0x51) as I2C device address
reg &= 0x7f;
REG_WRITE(RTL837X_REG_I2C_CTRL, 0x00, 0x1 << (I2C_MEM_ADDR_WIDTH-16) | len & 0xf, 0x51 >> 5, (0x51 << 3) & 0xff);
} else {
REG_WRITE(RTL837X_REG_I2C_CTRL, 0x00, 0x1 << (I2C_MEM_ADDR_WIDTH-16) | len & 0xf, 0x50 >> 5, (0x50 << 3) & 0xff);
}
reg_read_m(RTL837X_REG_I2C_CTRL);
sfr_mask_data(1, 0xfc, machine.sfp_port[slot].i2c_bus.scl << 5 | machine.sfp_port[slot].i2c_bus.sda << 2);
reg_write_m(RTL837X_REG_I2C_CTRL);
REG_WRITE(RTL837X_REG_I2C_IN, 0, 0, 0, reg);
// Execute I2C Read
reg_bit_set(RTL837X_REG_I2C_CTRL, 0);
// Wait for execution to finish
do {
reg_read_m(RTL837X_REG_I2C_CTRL);
} while (sfr_data[3] & 0x1);
for (uint8_t i = 0; i < len & 0xf; i++) {
if (!(i & 0x3))
reg_read_m(RTL837X_REG_I2C_OUT + (i >> 2));
if (len & 0x80)
char_to_html(sfr_data[3 - (i & 0x3)]);
else
byte_to_html(sfr_data[3 - (i & 0x3)]);
}
}
void send_basic_info(void)
{
slen = strtox(outbuf, HTTP_RESPONCE_JSON);
dbg_string("send_basic_info called\n");
slen += strtox(outbuf + slen, "{\"ip_address\":\"");
itoa_html(uip_hostaddr[0]); char_to_html('.');
itoa_html(uip_hostaddr[0] >> 8); char_to_html('.');
itoa_html(uip_hostaddr[1]); char_to_html('.');
itoa_html(uip_hostaddr[1] >> 8);
slen += strtox(outbuf + slen, "\",\"ip_gateway\":\"");
itoa_html(uip_draddr[0]); char_to_html('.');
itoa_html(uip_draddr[0] >> 8); char_to_html('.');
itoa_html(uip_draddr[1]); char_to_html('.');
itoa_html(uip_draddr[1] >> 8);
slen += strtox(outbuf + slen, "\",\"ip_netmask\":\"");
itoa_html(uip_netmask[0]); char_to_html('.');
itoa_html(uip_netmask[0] >> 8); char_to_html('.');
itoa_html(uip_netmask[1]); char_to_html('.');
itoa_html(uip_netmask[1] >> 8);
slen += strtox(outbuf + slen, "\",\"mac_address\":\"");
byte_to_html(uip_ethaddr.addr[0]); char_to_html(':');
byte_to_html(uip_ethaddr.addr[1]); char_to_html(':');
byte_to_html(uip_ethaddr.addr[2]); char_to_html(':');
byte_to_html(uip_ethaddr.addr[3]); char_to_html(':');
byte_to_html(uip_ethaddr.addr[4]); char_to_html(':');
byte_to_html(uip_ethaddr.addr[5]);
slen += strtox(outbuf + slen, "\",\"sw_ver\":\"");
slen += strtox(outbuf + slen, VERSION_SW);
slen += strtox(outbuf + slen, "\",\"hw_ver\":\"");
slen += strtox(outbuf + slen, machine.machine_name);
slen += strtox(outbuf + slen, "\",\"sfp_slot_0\":\"");
send_sfp_info(0);
char_to_html('"');
if (machine.n_sfp == 2) {
slen += strtox(outbuf + slen, ",\"sfp_slot_1\":\"");
send_sfp_info(1);
char_to_html('"');
}
char_to_html('}');
}
void send_vlan(uint16_t vlan)
{
slen = strtox(outbuf, HTTP_RESPONCE_JSON);
dbg_string("sending VLAN\n");
//{"members":"0x00060011"}
slen += strtox(outbuf + slen, "{\"members\":\"0x");
vlan_get(vlan);
sfr_data_to_html();
slen += strtox(outbuf + slen, "\",\"name\":\"");
__xdata uint16_t n = vlan_name(vlan);
if (n== 0xffff) {
dbg_string("VLAN has no name\n");
} else {
while(vlan_names[n] && vlan_names[n] != ' ')
char_to_html(vlan_names[n++]);
}
slen += strtox(outbuf + slen, "\"}");
}
void send_counters(char port)
{
dbg_string("send_counters called: "); dbg_byte(port); dbg_char('\n');
slen = strtox(outbuf, HTTP_RESPONCE_JSON);
dbg_string("sending counters\n");
dbg_byte(port);
uint8_t i = machine.phys_to_log_port[port];
slen += strtox(outbuf + slen, "[");
for (uint8_t counter = 0; counter < 0x37; counter++) {
STAT_GET(counter, i);
slen += strtox(outbuf + slen, "\"0x");
reg_to_html(RTL837X_STAT_V_HIGH);
reg_to_html_long(RTL837X_STAT_V_LOW);
char_to_html('\"');
if (counter != 0x36)
char_to_html(',');
}
char_to_html(']');
}
void send_l2(uint16_t idx)
{
slen = strtox(outbuf, HTTP_RESPONCE_JSON);
dbg_string("sending L2\n");
dbg_short(idx);
__xdata uint8_t entries_left = L2_MAX_TRANSFER;
do {
reg_read_m(RTL837X_TBL_CTRL);
} while (sfr_data[3] & TBL_EXECUTE);
/* The L2 table in the ASIC can hold up to 4096 (0x1000) entries, which
* are accessed using an index. The index is the hash of the MAC address
* and forwarding ID (basically VID). The hash-table is 4-way associative,
* i.e. for a given hash value, 4 entries with that same hash can be stored
* (i.e. the hash points to a bucket with up to 4 entries).
* When the table or a hash bucket is full, further entries will lead to
* L2 flooding.
* To find all entries, we start with entry-index 0 and iteratively search for
* the next entry (with the next higher index), until we arrive again at the first
* entry. The indices are sorted, so if an entry has a smaller index than
* the previous one, we know that we have wrapped around the entire table.
*/
__xdata uint16_t entry = idx & 0xfff;
__xdata uint16_t first_entry = 0xffff; // An illegal entry index
char_to_html('[');
while (1) {
entries_left--;
uint8_t port = 0;
reg_read_m(RTL837x_TBL_DATA_0);
REG_WRITE(RTL837x_TBL_DATA_0, sfr_data[0], sfr_data[1] & 0xfc, sfr_data[2] | (TBL_LUTREAD_NEXT_L2UC << 6), sfr_data[3]);
REG_WRITE(RTL837X_TBL_CTRL, entry >> 8, entry, TBL_L2_UNICAST, TBL_EXECUTE);
do {
reg_read_m(RTL837X_TBL_CTRL);
} while (sfr_data[3] & TBL_EXECUTE);
reg_read_m(RTL837x_L2_DATA_OUT_B);
if ((sfr_data[0] & 0x20)) { // Check entry is valid
// MAC
slen += strtox(outbuf + slen, "{\"mac\":\"");
byte_to_html(sfr_data[2]); char_to_html(':');
byte_to_html(sfr_data[3]); char_to_html(':');
port = (sfr_data[0] >> 6) & 0x3;
reg_read_m(RTL837x_L2_DATA_OUT_A);
byte_to_html(sfr_data[0]); char_to_html(':');
byte_to_html(sfr_data[1]); char_to_html(':');
byte_to_html(sfr_data[2]); char_to_html(':');
byte_to_html(sfr_data[3]);
// VLAN
slen += strtox(outbuf + slen, "\",\"vlan\":\"");
reg_read_m(RTL837x_L2_DATA_OUT_B);
charhex_to_html(sfr_data[0] & 0x0f);
byte_to_html(sfr_data[1]);
// type
reg_read_m(RTL837x_L2_DATA_OUT_C);
if (sfr_data[2] & 0x1)
slen += strtox(outbuf + slen, "\",\"type\":\"s\",\"port\":");
else
slen += strtox(outbuf + slen, "\",\"type\":\"l\",\"port\":");
port |= (sfr_data[3] & 0x3) << 2;
itoa_html(port);
// Index
reg_read_m(RTL837x_TBL_DATA_0);
entry = (((uint16_t)sfr_data[2] & 0x0f) << 8) | sfr_data[3];
slen += strtox(outbuf + slen, ",\"idx\":\"");
byte_to_html(entry >> 8);
byte_to_html(entry);
char_to_html('"');
char_to_html('}');
entry += 1; // We want the next entry following after the current entry
} else {
reg_read_m(RTL837x_TBL_DATA_0);
entry = (((uint16_t)sfr_data[2] & 0x0f) << 8) | sfr_data[3] + 1;
}
if (first_entry == 0xffff) {
char_to_html(',');
first_entry = entry;
} else {
if (first_entry == entry || !entries_left) {
char_to_html(']');
break;
} else {
char_to_html(',');
}
}
}
}
void l2_delete(uint16_t idx)
{
slen = strtox(outbuf, HTTP_RESPONCE_JSON);
dbg_string("L2 DELETE\n");
dbg_short(idx);
__xdata uint8_t entries_left = L2_MAX_TRANSFER;
do {
reg_read_m(RTL837X_TBL_CTRL);
} while (sfr_data[3] & TBL_EXECUTE);
slen += strtox(outbuf + slen, "{\"result\":");
// First, search for the entry based on the index
reg_read_m(RTL837x_TBL_DATA_0);
REG_WRITE(RTL837x_TBL_DATA_0, sfr_data[0], sfr_data[1] & 0xfc, sfr_data[2] | (TBL_LUTREAD_NEXT_L2UC << 6), sfr_data[3]);
REG_WRITE(RTL837X_TBL_CTRL, (idx >> 8) & 0xf, idx, TBL_L2_UNICAST, TBL_EXECUTE);
do {
reg_read_m(RTL837X_TBL_CTRL);
} while (sfr_data[3] & 0x1);
reg_read_m(RTL837x_L2_DATA_OUT_B);
if (!(sfr_data[0] & 0x20)) {
char_to_html('0');
} else {
sfr_data[0] &= 0x3f; // Clear SPA
reg_write_m(RTL837x_TBL_DATA_IN_B);
// Second half of MAC is copied
reg_read_m(RTL837x_L2_DATA_OUT_A);
reg_write_m(RTL837x_TBL_DATA_IN_A);
reg_read_m(RTL837x_L2_DATA_OUT_C);
sfr_data[3] &= 0xc0; // Clear age, auth and second part of ports
sfr_data[1] &= 0xfe; // Clear nosalearn
reg_write_m(RTL837x_TBL_DATA_IN_C);
reg_read_m(RTL837x_TBL_DATA_0);
REG_WRITE(RTL837x_TBL_DATA_0, sfr_data[0], sfr_data[1], TBL_L2_UNICAST, sfr_data[3]);
REG_WRITE(RTL837X_TBL_CTRL, idx >> 8, idx, TBL_L2_UNICAST, TBL_WRITE | TBL_EXECUTE);
do {
reg_read_m(RTL837X_TBL_CTRL);
} while (sfr_data[3] & TBL_EXECUTE);
char_to_html('1');
}
char_to_html('}');
}
void send_mirror(void)
{
dbg_string("send_mirror called\n");
slen = strtox(outbuf, HTTP_RESPONCE_JSON);
reg_read_m(RTL837x_MIRROR_CTRL);
uint8_t mPort = sfr_data[3];
if (mPort & 1) {
slen += strtox(outbuf + slen, "{\"enabled\":1,\"mPort\":");
} else {
slen += strtox(outbuf + slen, "{\"enabled\":0,\"mPort\":");
}
itoa_html(machine.log_to_phys_port[mPort >> 1]);
reg_read_m(RTL837x_MIRROR_CONF);
uint16_t m = sfr_data[0];
m = (m << 8) | sfr_data[1];
slen += strtox(outbuf + slen, ",\"mirror_rx\":\"");
for (uint8_t i = 0; i < 16; i++) {
bool_to_html(!!(m & 0x8000));
m <<= 1;
}
m = sfr_data[2];
m = (m << 8) | sfr_data[3];
slen += strtox(outbuf + slen, "\",\"mirror_tx\":\"");
for (uint8_t i = 0; i < 16; i++) {
bool_to_html(!!(m & 0x8000));
m <<= 1;
}
char_to_html('\"');
char_to_html('}');
}
void send_lag(void)
{
dbg_string("send_lag called\n");
slen = strtox(outbuf, HTTP_RESPONCE_JSON);
char_to_html('[');
for (uint8_t l=0; l < 4; l++) {
slen += strtox(outbuf + slen, "{\"lagNum\":");
itoa_html(l);
slen += strtox(outbuf + slen, ",\"members\":\"");
reg_read_m(RTL837X_TRK_MBR_CTRL_BASE + (l << 2));
uint16_t ports = ((uint16_t)sfr_data[2] << 8) | sfr_data[3];
for (uint8_t i = 0; i < 16; i++) {
bool_to_html(!!(ports & 0x8000));
ports <<= 1;
}
slen += strtox(outbuf + slen, "\",\"hash\":\"");
reg_read_m(RTL837X_TRK_HASH_CTRL_BASE + (l << 2));
sfr_data_to_html();
slen += strtox(outbuf + slen, "\"},");
}
slen -=1; // remove comma
char_to_html(']');
}
void send_eee(void)
{
dbg_string("send_eee called\nsending EEE status\n");
slen = strtox(outbuf, HTTP_RESPONCE_JSON);
reg_read_m(RTL8373_PHY_EEE_ABLTY);
uint8_t eee_ablty = sfr_data[3];
char_to_html('[');
for (uint8_t i = machine.min_port; i <= machine.max_port; i++) {
slen += strtox(outbuf + slen, "{\"portNum\":");
itoa_html(machine.log_to_phys_port[i]);
if (machine.is_sfp[i]) {
slen += strtox(outbuf + slen, ",\"isSFP\":1");
} else {
slen += strtox(outbuf + slen, ",\"isSFP\":0,\"eee\":\"");
uint16_t v;
phy_read(i, PHY_MMD_AN, PHY_EEE_ADV2);
v = SFR_DATA_U16;
bool_to_html(v & PHY_EEE_BIT_2G5);
phy_read(i, PHY_MMD_AN, PHY_EEE_ADV);
v = SFR_DATA_U16;
bool_to_html(v & PHY_EEE_BIT_1G);
bool_to_html(v & PHY_EEE_BIT_100M);
phy_read(i, PHY_MMD_AN, PHY_EEE_LP_ABILITY2);
v = SFR_DATA_U16;
slen += strtox(outbuf + slen, "\",\"eee_lp\":\"");
bool_to_html (v & PHY_EEE_BIT_2G5);
phy_read(i, PHY_MMD_AN, PHY_EEE_LP_ABILITY);
v = SFR_DATA_U16;
bool_to_html(v & PHY_EEE_BIT_1G);
bool_to_html(v & PHY_EEE_BIT_100M);
slen += strtox(outbuf + slen, "\",\"active\":");
bool_to_html(eee_ablty & (1 << i));
}
char_to_html('}');
if (i < machine.max_port)
char_to_html(',');
else
char_to_html(']');
}
}
void send_mtu(void)
{
dbg_string("send_mtu called\n");
slen = strtox(outbuf, HTTP_RESPONCE_JSON);
char_to_html('[');
for (uint8_t i = machine.min_port; i <= machine.max_port; i++) {
slen += strtox(outbuf + slen, "{\"portNum\":");
itoa_html(machine.log_to_phys_port[i]);
slen += strtox(outbuf + slen, ",\"mtu\":\"0x");
reg_read_m(RTL8373_REG_MAC_L2_PORT_MAX_LEN + ((uint16_t) i << 8));
uint16_t mtu = SFR_DATA_U16 & 0x3fff;
byte_to_html(mtu >> 8);
byte_to_html(mtu & 0xff);
char_to_html('"');
char_to_html('}');
if (i < machine.max_port)
char_to_html(',');
else
char_to_html(']');
}
}
void send_status(void)
{
slen = strtox(outbuf, HTTP_RESPONCE_JSON);
dbg_string("sending status\n");
char_to_html('[');
for (uint8_t i = machine.min_port; i <= machine.max_port; i++) {
slen += strtox(outbuf + slen, "{\"portNum\":");
itoa_html(machine.log_to_phys_port[i]);
slen += strtox(outbuf + slen, ",\"logPort\":");
itoa_html(i);
if (machine.is_sfp[i]) {
slen += strtox(outbuf + slen, ",\"isSFP\":1,\"enabled\":");
if (!(sfp_pins_last & (0x1 << ((machine.is_sfp[i] - 1) << 2)))) {
bool_to_html(1);
slen += strtox(outbuf + slen,",\"sfp_options\":\"0x");
byte_to_html(sfp_options[machine.is_sfp[i]-1]);
if (sfp_options[machine.is_sfp[i]-1] & 0x40) {
sfp_send_data(machine.is_sfp[i] - 1, 92, 1);
slen += strtox(outbuf + slen,"\",\"sfp_temp\":\"0x");
sfp_send_data(machine.is_sfp[i] - 1, 224, 2);
slen += strtox(outbuf + slen,"\",\"sfp_vcc\":\"0x");
sfp_send_data(machine.is_sfp[i] - 1, 226, 2);
slen += strtox(outbuf + slen,"\",\"sfp_txbias\":\"0x");
sfp_send_data(machine.is_sfp[i] - 1, 228, 2);
slen += strtox(outbuf + slen,"\",\"sfp_txpower\":\"0x");
sfp_send_data(machine.is_sfp[i] - 1, 230, 2);
slen += strtox(outbuf + slen,"\",\"sfp_rxpower\":\"0x");
sfp_send_data(machine.is_sfp[i] - 1, 232, 2);
slen += strtox(outbuf + slen,"\",\"sfp_state\":\"0x");
sfp_send_data(machine.is_sfp[i] - 1, 238, 1);
}
slen += strtox(outbuf + slen,"\",\"sfp_vendor\":\"");
for (register uint8_t s = 0; s < 16; s++)
outbuf[slen++] = sfp_module_vendor[machine.is_sfp[i]-1][s];
slen += strtox(outbuf + slen,"\",\"sfp_model\":\"");
for (register uint8_t s = 0; s < 16; s++)
outbuf[slen++] = sfp_module_model[machine.is_sfp[i]-1][s];
slen += strtox(outbuf + slen,"\",\"sfp_serial\":\"");
for (register uint8_t s = 0; s < 16; s++)
outbuf[slen++] = sfp_module_serial[machine.is_sfp[i]-1][s];
char_to_html('"');
} else {
bool_to_html(0);
}
} else {
slen += strtox(outbuf + slen, ",\"isSFP\":0,\"enabled\":");
phy_read(i, PHY_MMD31, 0xa610);
bool_to_html(SFR_DATA_8 == 0x20);
slen += strtox(outbuf + slen, ",\"adv\":\"");
phy_read(i, PHY_MMD_AN, PHY_ANEG_MGBASE_CTRL);
uint16_t w = SFR_DATA_U16;
bool_to_html(!!(w & 0x80)); // 2500BaseN-Full
phy_read(i, PHY_MMD31, PHY_MMD31_GBCR);
w = SFR_DATA_U16;
bool_to_html(!!(w & 0x0200)); // 1000Base-Full
phy_read(i, PHY_MMD_AN, PHY_ANEG_ADV);
w = SFR_DATA_U16;
bool_to_html(!!(w & 0x0100)); // 100Base-Full
bool_to_html(!!(w & 0x80)); // 100Base-Half
bool_to_html(!!(w & 0x40)); // 10Base-Full
bool_to_html(!!(w & 0x20)); // 10Base-Half
char_to_html('"');
}
slen += strtox(outbuf + slen, ",\"link\":");
if (i < 8)
reg_read_m(RTL837X_REG_LINKS);
else
reg_read_m(RTL837X_REG_LINKS_89);
uint8_t b = sfr_data[3 - ((i & 7) >> 1)];
b = (i & 1) ? b >> 4 : b & 0xf;
char_to_html('0' + b);
STAT_GET(STAT_COUNTER_TX_PKTS, i);
slen += strtox(outbuf + slen, ",\"txG\":\"0x");
reg_to_html(RTL837X_STAT_V_HIGH);
reg_to_html(RTL837X_STAT_V_LOW);
slen += strtox(outbuf + slen, "\",\"txB\":\"0x");
STAT_GET(STAT_COUNTER_ERR_PKTS, i);
reg_to_html(RTL837X_STAT_V_LOW); // 32 bit Tx Packet errors
slen += strtox(outbuf + slen, "\",\"rxG\":\"0x");
STAT_GET(STAT_COUNTER_RX_PKTS, i);
reg_to_html(RTL837X_STAT_V_HIGH);
reg_to_html(RTL837X_STAT_V_LOW);
slen += strtox(outbuf + slen, "\",\"rxB\":\"0x");
STAT_GET(STAT_COUNTER_ERR_PKTS, i);
reg_to_html(RTL837X_STAT_V_HIGH); // 32bit RX packet errors
slen += strtox(outbuf + slen, "\"}");
if (i < machine.max_port)
char_to_html(',');
else
char_to_html(']');
}
}
void send_config(void)
{
dbg_string("send_config called\n");
__xdata uint32_t pos = CONFIG_START; // 70000 , 6c000 / 0xc000 = 9
extern __xdata uint16_t len_left = CONFIG_LEN;
slen = strtox(outbuf, HTTP_RESPONCE_TXT);
while (read_flash((CONFIG_START-CODE0_SIZE) / CODE_BANK_SIZE + 1,
(__code uint8_t *) (((CONFIG_START + len_left - CODE0_SIZE) % CODE_BANK_SIZE) + CODE0_SIZE + len_left)) == 0xff) {
dbg_short(len_left);
len_left--;
}
len_left++;
if (len_left > (TCP_OUTBUF_SIZE - slen)) {
cont_len = len_left - (TCP_OUTBUF_SIZE - slen);
len_left = TCP_OUTBUF_SIZE - slen;
cont_addr = len_left;
}
flash_region.addr = CONFIG_START;
flash_region.len = len_left;
flash_read_bulk(outbuf + slen);
slen += len_left;
}
void send_cmd_log(void)
{
dbg_string("send_cmd_log called\n");
slen = strtox(outbuf, HTTP_RESPONCE_TXT);
__xdata uint16_t p = (cmd_history_ptr + 1) & CMD_HISTORY_MASK;
__xdata uint8_t found_begin = 0;
dbg_string("History ptr: ");
dbg_short(cmd_history_ptr); dbg_char('\n');
while (p != cmd_history_ptr) {
if (!cmd_history[p] || cmd_history[p] == '\n')
found_begin = 1;
if (found_begin && cmd_history[p])
outbuf[slen++] = cmd_history[p];
p = (p + 1) & CMD_HISTORY_MASK;
}
}