/* A helper to set/clear a bit in register according to boolean variable */ staticvoid ene_set_clear_reg_mask(struct ene_device *dev, u16 reg, u8 mask, bool set)
{ if (set)
ene_set_reg_mask(dev, reg, mask); else
ene_clear_reg_mask(dev, reg, mask);
}
if (hw_revision == 0xFF) {
pr_warn("device seems to be disabled\n");
pr_warn("send a mail to lirc-list@lists.sourceforge.net\n");
pr_warn("please attach output of acpidump and dmidecode\n"); return -ENODEV;
}
if (dev->hw_learning_and_tx_capable)
dev->hw_fan_input = !!(fw_reg2 & ENE_FW2_FAN_INPUT);
pr_notice("Hardware features:\n");
if (dev->hw_learning_and_tx_capable) {
pr_notice("* Supports transmitting & learning mode\n");
pr_notice(" This feature is rare and therefore,\n");
pr_notice(" you are welcome to test it,\n");
pr_notice(" and/or contact the author via:\n");
pr_notice(" lirc-list@lists.sourceforge.net\n");
pr_notice(" or maximlevitsky@gmail.com\n");
pr_notice("* Uses GPIO %s for IR raw input\n",
dev->hw_use_gpio_0a ? "40" : "0A");
if (dev->hw_fan_input)
pr_notice("* Uses unused fan feedback input as source of demodulated IR data\n");
}
if (!dev->hw_fan_input)
pr_notice("* Uses GPIO %s for IR demodulated input\n",
dev->hw_use_gpio_0a ? "0A" : "40");
if (dev->hw_extra_buffer)
pr_notice("* Uses new style input buffer\n"); return0;
}
/* Restore the pointers to extra buffers - to make module reload work*/ staticvoid ene_rx_restore_hw_buffer(struct ene_device *dev)
{ if (!dev->hw_extra_buffer) return;
/* Gets address of next sample from HW ring buffer */ staticint ene_rx_get_sample_reg(struct ene_device *dev)
{ int r_pointer;
if (dev->r_pointer == dev->w_pointer) {
dbg_verbose("RB: hit end, try update w_pointer");
ene_rx_read_hw_pointer(dev);
}
if (dev->r_pointer == dev->w_pointer) {
dbg_verbose("RB: end of data at %d", dev->r_pointer); return0;
}
dbg_verbose("RB: reading at offset %d", dev->r_pointer);
r_pointer = dev->r_pointer;
dev->r_pointer++; if (dev->r_pointer == dev->buffer_len)
dev->r_pointer = 0;
dbg_verbose("RB: next read will be from offset %d", dev->r_pointer);
if (r_pointer < 8) {
dbg_verbose("RB: read at main buffer at %d", r_pointer); return ENE_FW_SAMPLE_BUFFER + r_pointer;
}
r_pointer -= 8;
if (r_pointer < dev->extra_buf1_len) {
dbg_verbose("RB: read at 1st extra buffer at %d", r_pointer); return dev->extra_buf1_address + r_pointer;
}
r_pointer -= dev->extra_buf1_len;
if (r_pointer < dev->extra_buf2_len) {
dbg_verbose("RB: read at 2nd extra buffer at %d", r_pointer); return dev->extra_buf2_address + r_pointer;
}
dbg("attempt to read beyond ring buffer end"); return0;
}
/* Sense current received carrier */ staticvoid ene_rx_sense_carrier(struct ene_device *dev)
{ int carrier, duty_cycle; int period = ene_read_reg(dev, ENE_CIRCAR_PRD); int hperiod = ene_read_reg(dev, ENE_CIRCAR_HPRD);
if (!(period & ENE_CIRCAR_PRD_VALID)) return;
period &= ~ENE_CIRCAR_PRD_VALID;
if (!period) return;
dbg("RX: hardware carrier period = %02x", period);
dbg("RX: hardware carrier pulse period = %02x", hperiod);
/* This selects RLC input and clears CFG2 settings */
ene_write_reg(dev, ENE_CIRCFG2, 0x00);
/* set sample period*/ if (sample_period == ENE_DEFAULT_SAMPLE_PERIOD)
sample_period_adjust =
dev->pll_freq == ENE_DEFAULT_PLL_FREQ ? 1 : 2;
ene_write_reg(dev, ENE_CIRRLC_CFG,
(sample_period + sample_period_adjust) |
ENE_CIRRLC_CFG_OVERFLOW); /* revB doesn't support inputs */ if (dev->hw_revision < ENE_HW_C) goto select_timeout;
if (learning_mode) {
WARN_ON(!dev->hw_learning_and_tx_capable);
/* Enable the opposite of the normal input ThatmeansthatifGPIO40isnormallyused,useGPIO0A andviceversa. Thisinputwillcarrynondemodulated
signal, and we will tell the hw to demodulate it itself */
ene_rx_select_input(dev, !dev->hw_use_gpio_0a);
dev->rx_fan_input_inuse = false;
select_timeout: if (dev->rx_fan_input_inuse) {
dev->rdev->rx_resolution = ENE_FW_SAMPLE_PERIOD_FAN;
/* Fan input doesn't support timeouts, it just ends the
input with a maximum sample */
dev->rdev->min_timeout = dev->rdev->max_timeout =
ENE_FW_SMPL_BUF_FAN_MSK *
ENE_FW_SAMPLE_PERIOD_FAN;
} else {
dev->rdev->rx_resolution = sample_period;
/* Theoreticly timeout is unlimited, but we cap it *becauseitwasseenthatononedevice,it *wouldstopsendingspacesafteraround250msec. *Besides,thisiscloseto2^32anywayandtimeoutisu32.
*/
dev->rdev->min_timeout = 127 * sample_period;
dev->rdev->max_timeout = 200000;
}
if (dev->rdev->timeout > dev->rdev->max_timeout)
dev->rdev->timeout = dev->rdev->max_timeout; if (dev->rdev->timeout < dev->rdev->min_timeout)
dev->rdev->timeout = dev->rdev->min_timeout;
}
/* Enable the device for receive */ staticvoid ene_rx_enable_hw(struct ene_device *dev)
{
u8 reg_value;
/* disable hardware IRQ and firmware flag */
ene_clear_reg_mask(dev, ENE_FW1, ENE_FW1_ENABLE | ENE_FW1_IRQ);
ir_raw_event_set_idle(dev->rdev, true);
}
/* Disable the device receiver - wrapper to track the state */ staticvoid ene_rx_disable(struct ene_device *dev)
{
ene_rx_disable_hw(dev);
dev->rx_enabled = false;
}
/* This resets the receiver. Useful to stop stream of spaces at end of *transmission
*/ staticvoid ene_rx_reset(struct ene_device *dev)
{
ene_clear_reg_mask(dev, ENE_CIRCFG, ENE_CIRCFG_RX_EN);
ene_set_reg_mask(dev, ENE_CIRCFG, ENE_CIRCFG_RX_EN);
}
/* Set up the TX carrier frequency and duty cycle */ staticvoid ene_tx_set_carrier(struct ene_device *dev)
{
u8 tx_puls_width; unsignedlong flags;
/* TX one sample - must be called with dev->hw_lock*/ staticvoid ene_tx_sample(struct ene_device *dev)
{
u8 raw_tx;
u32 sample; bool pulse = dev->tx_sample_pulse;
if (!dev->tx_buffer) {
pr_warn("TX: BUG: attempt to transmit NULL buffer\n"); return;
}
/* Grab next TX sample */ if (!dev->tx_sample) {
if (dev->tx_pos == dev->tx_len) { if (!dev->tx_done) {
dbg("TX: no more data to send");
dev->tx_done = true; gotoexit;
} else {
dbg("TX: last sample sent by hardware");
ene_tx_disable(dev);
complete(&dev->tx_complete); return;
}
}
if (irq_status & ENE_IRQ_TX) {
dbg_verbose("TX interrupt"); if (!dev->hw_learning_and_tx_capable) {
dbg("TX interrupt on unsupported device!"); goto unlock;
}
ene_tx_sample(dev);
}
if (!(irq_status & ENE_IRQ_RX)) goto unlock;
dbg_verbose("RX interrupt");
if (dev->hw_learning_and_tx_capable)
ene_rx_sense_carrier(dev);
/* On hardware that don't support extra buffer we need to trust
the interrupt and not track the read pointer */ if (!dev->hw_extra_buffer)
dev->r_pointer = dev->w_pointer == 0 ? ENE_FW_PACKET_SIZE : 0;
while (1) {
reg = ene_rx_get_sample_reg(dev);
dbg_verbose("next sample to read at: %04x", reg); if (!reg) break;
hw_value = ene_read_reg(dev, reg);
if (dev->rx_fan_input_inuse) {
int offset = ENE_FW_SMPL_BUF_FAN - ENE_FW_SAMPLE_BUFFER;
/* read high part of the sample */
hw_value |= ene_read_reg(dev, reg + offset) << 8;
pulse = hw_value & ENE_FW_SMPL_BUF_FAN_PLS;
/* clear space bit, and other unused bits */
hw_value &= ENE_FW_SMPL_BUF_FAN_MSK;
hw_sample = hw_value * ENE_FW_SAMPLE_PERIOD_FAN;
/* Set reasonable default timeout */
dev->rdev->timeout = MS_TO_US(150);
}
/* Upload all hardware settings at once. Used at load and resume time */ staticvoid ene_setup_hw_settings(struct ene_device *dev)
{ if (dev->hw_learning_and_tx_capable) {
ene_tx_set_carrier(dev);
ene_tx_set_transmitters(dev);
}
ene_rx_setup(dev);
}
/* outside interface: called on first open*/ staticint ene_open(struct rc_dev *rdev)
{ struct ene_device *dev = rdev->priv; unsignedlong flags;
/* enable wake on IR (wakes on specific button on original remote) */ staticvoid ene_enable_wake(struct ene_device *dev, bool enable)
{
dbg("wake on IR %s", enable ? "enabled" : "disabled");
ene_set_clear_reg_mask(dev, ENE_FW1, ENE_FW1_WAKE, enable);
}
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