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path: root/drivers/net/can/dev/calc_bittiming.c
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Diffstat (limited to 'drivers/net/can/dev/calc_bittiming.c')
-rw-r--r--drivers/net/can/dev/calc_bittiming.c114
1 files changed, 88 insertions, 26 deletions
diff --git a/drivers/net/can/dev/calc_bittiming.c b/drivers/net/can/dev/calc_bittiming.c
index 394d6974f481..cc4022241553 100644
--- a/drivers/net/can/dev/calc_bittiming.c
+++ b/drivers/net/can/dev/calc_bittiming.c
@@ -2,6 +2,7 @@
/* Copyright (C) 2005 Marc Kleine-Budde, Pengutronix
* Copyright (C) 2006 Andrey Volkov, Varma Electronics
* Copyright (C) 2008-2009 Wolfgang Grandegger <wg@grandegger.com>
+ * Copyright (C) 2021-2025 Vincent Mailhol <mailhol@kernel.org>
*/
#include <linux/units.h>
@@ -9,6 +10,33 @@
#define CAN_CALC_MAX_ERROR 50 /* in one-tenth of a percent */
+/* CiA recommended sample points for Non Return to Zero encoding. */
+static int can_calc_sample_point_nrz(const struct can_bittiming *bt)
+{
+ if (bt->bitrate > 800 * KILO /* BPS */)
+ return 750;
+
+ if (bt->bitrate > 500 * KILO /* BPS */)
+ return 800;
+
+ return 875;
+}
+
+/* Sample points for Pulse-Width Modulation encoding. */
+static int can_calc_sample_point_pwm(const struct can_bittiming *bt)
+{
+ if (bt->bitrate > 15 * MEGA /* BPS */)
+ return 625;
+
+ if (bt->bitrate > 9 * MEGA /* BPS */)
+ return 600;
+
+ if (bt->bitrate > 4 * MEGA /* BPS */)
+ return 560;
+
+ return 520;
+}
+
/* Bit-timing calculation derived from:
*
* Code based on LinCAN sources and H8S2638 project
@@ -23,7 +51,7 @@
*/
static int
can_update_sample_point(const struct can_bittiming_const *btc,
- const unsigned int sample_point_nominal, const unsigned int tseg,
+ const unsigned int sample_point_reference, const unsigned int tseg,
unsigned int *tseg1_ptr, unsigned int *tseg2_ptr,
unsigned int *sample_point_error_ptr)
{
@@ -34,7 +62,7 @@ can_update_sample_point(const struct can_bittiming_const *btc,
for (i = 0; i <= 1; i++) {
tseg2 = tseg + CAN_SYNC_SEG -
- (sample_point_nominal * (tseg + CAN_SYNC_SEG)) /
+ (sample_point_reference * (tseg + CAN_SYNC_SEG)) /
1000 - i;
tseg2 = clamp(tseg2, btc->tseg2_min, btc->tseg2_max);
tseg1 = tseg - tseg2;
@@ -45,9 +73,9 @@ can_update_sample_point(const struct can_bittiming_const *btc,
sample_point = 1000 * (tseg + CAN_SYNC_SEG - tseg2) /
(tseg + CAN_SYNC_SEG);
- sample_point_error = abs(sample_point_nominal - sample_point);
+ sample_point_error = abs(sample_point_reference - sample_point);
- if (sample_point <= sample_point_nominal &&
+ if (sample_point <= sample_point_reference &&
sample_point_error < best_sample_point_error) {
best_sample_point = sample_point;
best_sample_point_error = sample_point_error;
@@ -67,28 +95,24 @@ int can_calc_bittiming(const struct net_device *dev, struct can_bittiming *bt,
{
struct can_priv *priv = netdev_priv(dev);
unsigned int bitrate; /* current bitrate */
- unsigned int bitrate_error; /* difference between current and nominal value */
+ unsigned int bitrate_error; /* diff between calculated and reference value */
unsigned int best_bitrate_error = UINT_MAX;
- unsigned int sample_point_error; /* difference between current and nominal value */
+ unsigned int sample_point_error; /* diff between calculated and reference value */
unsigned int best_sample_point_error = UINT_MAX;
- unsigned int sample_point_nominal; /* nominal sample point */
+ unsigned int sample_point_reference; /* reference sample point */
unsigned int best_tseg = 0; /* current best value for tseg */
unsigned int best_brp = 0; /* current best value for brp */
unsigned int brp, tsegall, tseg, tseg1 = 0, tseg2 = 0;
u64 v64;
int err;
- /* Use CiA recommended sample points */
- if (bt->sample_point) {
- sample_point_nominal = bt->sample_point;
- } else {
- if (bt->bitrate > 800 * KILO /* BPS */)
- sample_point_nominal = 750;
- else if (bt->bitrate > 500 * KILO /* BPS */)
- sample_point_nominal = 800;
- else
- sample_point_nominal = 875;
- }
+ if (bt->sample_point)
+ sample_point_reference = bt->sample_point;
+ else if (btc == priv->xl.data_bittiming_const &&
+ (priv->ctrlmode & CAN_CTRLMODE_XL_TMS))
+ sample_point_reference = can_calc_sample_point_pwm(bt);
+ else
+ sample_point_reference = can_calc_sample_point_nrz(bt);
/* tseg even = round down, odd = round up */
for (tseg = (btc->tseg1_max + btc->tseg2_max) * 2 + 1;
@@ -114,7 +138,7 @@ int can_calc_bittiming(const struct net_device *dev, struct can_bittiming *bt,
if (bitrate_error < best_bitrate_error)
best_sample_point_error = UINT_MAX;
- can_update_sample_point(btc, sample_point_nominal, tseg / 2,
+ can_update_sample_point(btc, sample_point_reference, tseg / 2,
&tseg1, &tseg2, &sample_point_error);
if (sample_point_error >= best_sample_point_error)
continue;
@@ -129,23 +153,26 @@ int can_calc_bittiming(const struct net_device *dev, struct can_bittiming *bt,
}
if (best_bitrate_error) {
- /* Error in one-tenth of a percent */
- v64 = (u64)best_bitrate_error * 1000;
+ /* Error in one-hundredth of a percent */
+ v64 = (u64)best_bitrate_error * 10000;
do_div(v64, bt->bitrate);
bitrate_error = (u32)v64;
+ /* print at least 0.01% if the error is smaller */
+ bitrate_error = max(bitrate_error, 1U);
if (bitrate_error > CAN_CALC_MAX_ERROR) {
NL_SET_ERR_MSG_FMT(extack,
- "bitrate error: %u.%u%% too high",
- bitrate_error / 10, bitrate_error % 10);
+ "bitrate error: %u.%02u%% too high",
+ bitrate_error / 100,
+ bitrate_error % 100);
return -EINVAL;
}
NL_SET_ERR_MSG_FMT(extack,
- "bitrate error: %u.%u%%",
- bitrate_error / 10, bitrate_error % 10);
+ "bitrate error: %u.%02u%%",
+ bitrate_error / 100, bitrate_error % 100);
}
/* real sample point */
- bt->sample_point = can_update_sample_point(btc, sample_point_nominal,
+ bt->sample_point = can_update_sample_point(btc, sample_point_reference,
best_tseg, &tseg1, &tseg2,
NULL);
@@ -198,3 +225,38 @@ void can_calc_tdco(struct can_tdc *tdc, const struct can_tdc_const *tdc_const,
*ctrlmode |= tdc_auto;
}
}
+
+int can_calc_pwm(struct net_device *dev, struct netlink_ext_ack *extack)
+{
+ struct can_priv *priv = netdev_priv(dev);
+ const struct can_pwm_const *pwm_const = priv->xl.pwm_const;
+ struct can_pwm *pwm = &priv->xl.pwm;
+ u32 xl_tqmin = can_bit_time_tqmin(&priv->xl.data_bittiming);
+ u32 xl_ns = can_tqmin_to_ns(xl_tqmin, priv->clock.freq);
+ u32 nom_tqmin = can_bit_time_tqmin(&priv->bittiming);
+ int pwm_per_bit_max = xl_tqmin / (pwm_const->pwms_min + pwm_const->pwml_min);
+ int pwm_per_bit;
+ u32 pwm_tqmin;
+
+ /* For 5 MB/s databitrate or greater, xl_ns < CAN_PWM_NS_MAX
+ * giving us a pwm_per_bit of 1 and the loop immediately breaks
+ */
+ for (pwm_per_bit = DIV_ROUND_UP(xl_ns, CAN_PWM_NS_MAX);
+ pwm_per_bit <= pwm_per_bit_max; pwm_per_bit++)
+ if (xl_tqmin % pwm_per_bit == 0)
+ break;
+
+ if (pwm_per_bit > pwm_per_bit_max) {
+ NL_SET_ERR_MSG_FMT(extack,
+ "Can not divide the XL data phase's bit time: %u tqmin into multiple PWM symbols",
+ xl_tqmin);
+ return -EINVAL;
+ }
+
+ pwm_tqmin = xl_tqmin / pwm_per_bit;
+ pwm->pwms = DIV_ROUND_UP_POW2(pwm_tqmin, 4);
+ pwm->pwml = pwm_tqmin - pwm->pwms;
+ pwm->pwmo = nom_tqmin % pwm_tqmin;
+
+ return 0;
+}