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v6.13.7
   1// SPDX-License-Identifier: GPL-2.0-only
   2/*
   3 * AT86RF230/RF231 driver
   4 *
   5 * Copyright (C) 2009-2012 Siemens AG
   6 *
 
 
 
 
 
 
 
 
 
   7 * Written by:
   8 * Dmitry Eremin-Solenikov <dbaryshkov@gmail.com>
   9 * Alexander Smirnov <alex.bluesman.smirnov@gmail.com>
  10 * Alexander Aring <aar@pengutronix.de>
  11 */
  12#include <linux/kernel.h>
  13#include <linux/module.h>
  14#include <linux/gpio/consumer.h>
  15#include <linux/hrtimer.h>
  16#include <linux/jiffies.h>
  17#include <linux/interrupt.h>
  18#include <linux/irq.h>
 
  19#include <linux/delay.h>
  20#include <linux/property.h>
  21#include <linux/spi/spi.h>
 
  22#include <linux/regmap.h>
  23#include <linux/skbuff.h>
 
  24#include <linux/ieee802154.h>
 
  25
  26#include <net/mac802154.h>
  27#include <net/cfg802154.h>
  28
  29#include "at86rf230.h"
  30
  31struct at86rf230_local;
  32/* at86rf2xx chip depend data.
  33 * All timings are in us.
  34 */
  35struct at86rf2xx_chip_data {
  36	u16 t_sleep_cycle;
  37	u16 t_channel_switch;
  38	u16 t_reset_to_off;
  39	u16 t_off_to_aack;
  40	u16 t_off_to_tx_on;
  41	u16 t_off_to_sleep;
  42	u16 t_sleep_to_off;
  43	u16 t_frame;
  44	u16 t_p_ack;
  45	int rssi_base_val;
  46
  47	int (*set_channel)(struct at86rf230_local *, u8, u8);
  48	int (*set_txpower)(struct at86rf230_local *, s32);
  49};
  50
  51#define AT86RF2XX_MAX_BUF		(127 + 3)
  52/* tx retries to access the TX_ON state
  53 * if it's above then force change will be started.
  54 *
  55 * We assume the max_frame_retries (7) value of 802.15.4 here.
  56 */
  57#define AT86RF2XX_MAX_TX_RETRIES	7
  58/* We use the recommended 5 minutes timeout to recalibrate */
  59#define AT86RF2XX_CAL_LOOP_TIMEOUT	(5 * 60 * HZ)
  60
  61struct at86rf230_state_change {
  62	struct at86rf230_local *lp;
  63	int irq;
  64
  65	struct hrtimer timer;
  66	struct spi_message msg;
  67	struct spi_transfer trx;
  68	u8 buf[AT86RF2XX_MAX_BUF];
  69
  70	void (*complete)(void *context);
  71	u8 from_state;
  72	u8 to_state;
  73	int trac;
  74
  75	bool free;
  76};
  77
 
 
 
 
 
 
 
 
 
  78struct at86rf230_local {
  79	struct spi_device *spi;
  80
  81	struct ieee802154_hw *hw;
  82	struct at86rf2xx_chip_data *data;
  83	struct regmap *regmap;
  84	struct gpio_desc *slp_tr;
  85	bool sleep;
  86
  87	struct completion state_complete;
  88	struct at86rf230_state_change state;
  89
  90	unsigned long cal_timeout;
  91	bool is_tx;
  92	bool is_tx_from_off;
  93	bool was_tx;
  94	u8 tx_retry;
  95	struct sk_buff *tx_skb;
  96	struct at86rf230_state_change tx;
 
 
  97};
  98
  99#define AT86RF2XX_NUMREGS 0x3F
 100
 101static void
 102at86rf230_async_state_change(struct at86rf230_local *lp,
 103			     struct at86rf230_state_change *ctx,
 104			     const u8 state, void (*complete)(void *context));
 105
 106static inline void
 107at86rf230_sleep(struct at86rf230_local *lp)
 108{
 109	if (lp->slp_tr) {
 110		gpiod_set_value(lp->slp_tr, 1);
 111		usleep_range(lp->data->t_off_to_sleep,
 112			     lp->data->t_off_to_sleep + 10);
 113		lp->sleep = true;
 114	}
 115}
 116
 117static inline void
 118at86rf230_awake(struct at86rf230_local *lp)
 119{
 120	if (lp->slp_tr) {
 121		gpiod_set_value(lp->slp_tr, 0);
 122		usleep_range(lp->data->t_sleep_to_off,
 123			     lp->data->t_sleep_to_off + 100);
 124		lp->sleep = false;
 125	}
 126}
 127
 128static inline int
 129__at86rf230_write(struct at86rf230_local *lp,
 130		  unsigned int addr, unsigned int data)
 131{
 132	bool sleep = lp->sleep;
 133	int ret;
 134
 135	/* awake for register setting if sleep */
 136	if (sleep)
 137		at86rf230_awake(lp);
 138
 139	ret = regmap_write(lp->regmap, addr, data);
 140
 141	/* sleep again if was sleeping */
 142	if (sleep)
 143		at86rf230_sleep(lp);
 144
 145	return ret;
 146}
 147
 148static inline int
 149__at86rf230_read(struct at86rf230_local *lp,
 150		 unsigned int addr, unsigned int *data)
 151{
 152	bool sleep = lp->sleep;
 153	int ret;
 154
 155	/* awake for register setting if sleep */
 156	if (sleep)
 157		at86rf230_awake(lp);
 158
 159	ret = regmap_read(lp->regmap, addr, data);
 160
 161	/* sleep again if was sleeping */
 162	if (sleep)
 163		at86rf230_sleep(lp);
 164
 165	return ret;
 166}
 167
 168static inline int
 169at86rf230_read_subreg(struct at86rf230_local *lp,
 170		      unsigned int addr, unsigned int mask,
 171		      unsigned int shift, unsigned int *data)
 172{
 173	int rc;
 174
 175	rc = __at86rf230_read(lp, addr, data);
 176	if (!rc)
 177		*data = (*data & mask) >> shift;
 178
 179	return rc;
 180}
 181
 182static inline int
 183at86rf230_write_subreg(struct at86rf230_local *lp,
 184		       unsigned int addr, unsigned int mask,
 185		       unsigned int shift, unsigned int data)
 186{
 187	bool sleep = lp->sleep;
 188	int ret;
 189
 190	/* awake for register setting if sleep */
 191	if (sleep)
 192		at86rf230_awake(lp);
 193
 194	ret = regmap_update_bits(lp->regmap, addr, mask, data << shift);
 195
 196	/* sleep again if was sleeping */
 197	if (sleep)
 198		at86rf230_sleep(lp);
 199
 200	return ret;
 201}
 202
 203static inline void
 204at86rf230_slp_tr_rising_edge(struct at86rf230_local *lp)
 205{
 206	gpiod_set_value(lp->slp_tr, 1);
 207	udelay(1);
 208	gpiod_set_value(lp->slp_tr, 0);
 209}
 210
 211static bool
 212at86rf230_reg_writeable(struct device *dev, unsigned int reg)
 213{
 214	switch (reg) {
 215	case RG_TRX_STATE:
 216	case RG_TRX_CTRL_0:
 217	case RG_TRX_CTRL_1:
 218	case RG_PHY_TX_PWR:
 219	case RG_PHY_ED_LEVEL:
 220	case RG_PHY_CC_CCA:
 221	case RG_CCA_THRES:
 222	case RG_RX_CTRL:
 223	case RG_SFD_VALUE:
 224	case RG_TRX_CTRL_2:
 225	case RG_ANT_DIV:
 226	case RG_IRQ_MASK:
 227	case RG_VREG_CTRL:
 228	case RG_BATMON:
 229	case RG_XOSC_CTRL:
 230	case RG_RX_SYN:
 231	case RG_XAH_CTRL_1:
 232	case RG_FTN_CTRL:
 233	case RG_PLL_CF:
 234	case RG_PLL_DCU:
 235	case RG_SHORT_ADDR_0:
 236	case RG_SHORT_ADDR_1:
 237	case RG_PAN_ID_0:
 238	case RG_PAN_ID_1:
 239	case RG_IEEE_ADDR_0:
 240	case RG_IEEE_ADDR_1:
 241	case RG_IEEE_ADDR_2:
 242	case RG_IEEE_ADDR_3:
 243	case RG_IEEE_ADDR_4:
 244	case RG_IEEE_ADDR_5:
 245	case RG_IEEE_ADDR_6:
 246	case RG_IEEE_ADDR_7:
 247	case RG_XAH_CTRL_0:
 248	case RG_CSMA_SEED_0:
 249	case RG_CSMA_SEED_1:
 250	case RG_CSMA_BE:
 251		return true;
 252	default:
 253		return false;
 254	}
 255}
 256
 257static bool
 258at86rf230_reg_readable(struct device *dev, unsigned int reg)
 259{
 260	bool rc;
 261
 262	/* all writeable are also readable */
 263	rc = at86rf230_reg_writeable(dev, reg);
 264	if (rc)
 265		return rc;
 266
 267	/* readonly regs */
 268	switch (reg) {
 269	case RG_TRX_STATUS:
 270	case RG_PHY_RSSI:
 271	case RG_IRQ_STATUS:
 272	case RG_PART_NUM:
 273	case RG_VERSION_NUM:
 274	case RG_MAN_ID_1:
 275	case RG_MAN_ID_0:
 276		return true;
 277	default:
 278		return false;
 279	}
 280}
 281
 282static bool
 283at86rf230_reg_volatile(struct device *dev, unsigned int reg)
 284{
 285	/* can be changed during runtime */
 286	switch (reg) {
 287	case RG_TRX_STATUS:
 288	case RG_TRX_STATE:
 289	case RG_PHY_RSSI:
 290	case RG_PHY_ED_LEVEL:
 291	case RG_IRQ_STATUS:
 292	case RG_VREG_CTRL:
 293	case RG_PLL_CF:
 294	case RG_PLL_DCU:
 295		return true;
 296	default:
 297		return false;
 298	}
 299}
 300
 301static bool
 302at86rf230_reg_precious(struct device *dev, unsigned int reg)
 303{
 304	/* don't clear irq line on read */
 305	switch (reg) {
 306	case RG_IRQ_STATUS:
 307		return true;
 308	default:
 309		return false;
 310	}
 311}
 312
 313static const struct regmap_config at86rf230_regmap_spi_config = {
 314	.reg_bits = 8,
 315	.val_bits = 8,
 316	.write_flag_mask = CMD_REG | CMD_WRITE,
 317	.read_flag_mask = CMD_REG,
 318	.cache_type = REGCACHE_MAPLE,
 319	.max_register = AT86RF2XX_NUMREGS,
 320	.writeable_reg = at86rf230_reg_writeable,
 321	.readable_reg = at86rf230_reg_readable,
 322	.volatile_reg = at86rf230_reg_volatile,
 323	.precious_reg = at86rf230_reg_precious,
 324};
 325
 326static void
 327at86rf230_async_error_recover_complete(void *context)
 328{
 329	struct at86rf230_state_change *ctx = context;
 330	struct at86rf230_local *lp = ctx->lp;
 331
 332	if (ctx->free)
 333		kfree(ctx);
 334
 335	if (lp->was_tx) {
 336		lp->was_tx = 0;
 337		ieee802154_xmit_hw_error(lp->hw, lp->tx_skb);
 338	}
 339}
 340
 341static void
 342at86rf230_async_error_recover(void *context)
 343{
 344	struct at86rf230_state_change *ctx = context;
 345	struct at86rf230_local *lp = ctx->lp;
 346
 347	if (lp->is_tx) {
 348		lp->was_tx = 1;
 349		lp->is_tx = 0;
 350	}
 351
 352	at86rf230_async_state_change(lp, ctx, STATE_RX_AACK_ON,
 353				     at86rf230_async_error_recover_complete);
 354}
 355
 356static inline void
 357at86rf230_async_error(struct at86rf230_local *lp,
 358		      struct at86rf230_state_change *ctx, int rc)
 359{
 360	dev_err(&lp->spi->dev, "spi_async error %d\n", rc);
 361
 362	at86rf230_async_state_change(lp, ctx, STATE_FORCE_TRX_OFF,
 363				     at86rf230_async_error_recover);
 364}
 365
 366/* Generic function to get some register value in async mode */
 367static void
 368at86rf230_async_read_reg(struct at86rf230_local *lp, u8 reg,
 369			 struct at86rf230_state_change *ctx,
 370			 void (*complete)(void *context))
 371{
 372	int rc;
 373
 374	u8 *tx_buf = ctx->buf;
 375
 376	tx_buf[0] = (reg & CMD_REG_MASK) | CMD_REG;
 377	ctx->msg.complete = complete;
 378	rc = spi_async(lp->spi, &ctx->msg);
 379	if (rc)
 380		at86rf230_async_error(lp, ctx, rc);
 381}
 382
 383static void
 384at86rf230_async_write_reg(struct at86rf230_local *lp, u8 reg, u8 val,
 385			  struct at86rf230_state_change *ctx,
 386			  void (*complete)(void *context))
 387{
 388	int rc;
 389
 390	ctx->buf[0] = (reg & CMD_REG_MASK) | CMD_REG | CMD_WRITE;
 391	ctx->buf[1] = val;
 392	ctx->msg.complete = complete;
 393	rc = spi_async(lp->spi, &ctx->msg);
 394	if (rc)
 395		at86rf230_async_error(lp, ctx, rc);
 396}
 397
 398static void
 399at86rf230_async_state_assert(void *context)
 400{
 401	struct at86rf230_state_change *ctx = context;
 402	struct at86rf230_local *lp = ctx->lp;
 403	const u8 *buf = ctx->buf;
 404	const u8 trx_state = buf[1] & TRX_STATE_MASK;
 405
 406	/* Assert state change */
 407	if (trx_state != ctx->to_state) {
 408		/* Special handling if transceiver state is in
 409		 * STATE_BUSY_RX_AACK and a SHR was detected.
 410		 */
 411		if  (trx_state == STATE_BUSY_RX_AACK) {
 412			/* Undocumented race condition. If we send a state
 413			 * change to STATE_RX_AACK_ON the transceiver could
 414			 * change his state automatically to STATE_BUSY_RX_AACK
 415			 * if a SHR was detected. This is not an error, but we
 416			 * can't assert this.
 417			 */
 418			if (ctx->to_state == STATE_RX_AACK_ON)
 419				goto done;
 420
 421			/* If we change to STATE_TX_ON without forcing and
 422			 * transceiver state is STATE_BUSY_RX_AACK, we wait
 423			 * 'tFrame + tPAck' receiving time. In this time the
 424			 * PDU should be received. If the transceiver is still
 425			 * in STATE_BUSY_RX_AACK, we run a force state change
 426			 * to STATE_TX_ON. This is a timeout handling, if the
 427			 * transceiver stucks in STATE_BUSY_RX_AACK.
 428			 *
 429			 * Additional we do several retries to try to get into
 430			 * TX_ON state without forcing. If the retries are
 431			 * higher or equal than AT86RF2XX_MAX_TX_RETRIES we
 432			 * will do a force change.
 433			 */
 434			if (ctx->to_state == STATE_TX_ON ||
 435			    ctx->to_state == STATE_TRX_OFF) {
 436				u8 state = ctx->to_state;
 437
 438				if (lp->tx_retry >= AT86RF2XX_MAX_TX_RETRIES)
 439					state = STATE_FORCE_TRX_OFF;
 440				lp->tx_retry++;
 441
 442				at86rf230_async_state_change(lp, ctx, state,
 443							     ctx->complete);
 444				return;
 445			}
 446		}
 447
 448		dev_warn(&lp->spi->dev, "unexcept state change from 0x%02x to 0x%02x. Actual state: 0x%02x\n",
 449			 ctx->from_state, ctx->to_state, trx_state);
 450	}
 451
 452done:
 453	if (ctx->complete)
 454		ctx->complete(context);
 455}
 456
 457static enum hrtimer_restart at86rf230_async_state_timer(struct hrtimer *timer)
 458{
 459	struct at86rf230_state_change *ctx =
 460		container_of(timer, struct at86rf230_state_change, timer);
 461	struct at86rf230_local *lp = ctx->lp;
 462
 463	at86rf230_async_read_reg(lp, RG_TRX_STATUS, ctx,
 464				 at86rf230_async_state_assert);
 465
 466	return HRTIMER_NORESTART;
 467}
 468
 469/* Do state change timing delay. */
 470static void
 471at86rf230_async_state_delay(void *context)
 472{
 473	struct at86rf230_state_change *ctx = context;
 474	struct at86rf230_local *lp = ctx->lp;
 475	struct at86rf2xx_chip_data *c = lp->data;
 476	bool force = false;
 477	ktime_t tim;
 478
 479	/* The force state changes are will show as normal states in the
 480	 * state status subregister. We change the to_state to the
 481	 * corresponding one and remember if it was a force change, this
 482	 * differs if we do a state change from STATE_BUSY_RX_AACK.
 483	 */
 484	switch (ctx->to_state) {
 485	case STATE_FORCE_TX_ON:
 486		ctx->to_state = STATE_TX_ON;
 487		force = true;
 488		break;
 489	case STATE_FORCE_TRX_OFF:
 490		ctx->to_state = STATE_TRX_OFF;
 491		force = true;
 492		break;
 493	default:
 494		break;
 495	}
 496
 497	switch (ctx->from_state) {
 498	case STATE_TRX_OFF:
 499		switch (ctx->to_state) {
 500		case STATE_RX_AACK_ON:
 501			tim = c->t_off_to_aack * NSEC_PER_USEC;
 502			/* state change from TRX_OFF to RX_AACK_ON to do a
 503			 * calibration, we need to reset the timeout for the
 504			 * next one.
 505			 */
 506			lp->cal_timeout = jiffies + AT86RF2XX_CAL_LOOP_TIMEOUT;
 507			goto change;
 508		case STATE_TX_ARET_ON:
 509		case STATE_TX_ON:
 510			tim = c->t_off_to_tx_on * NSEC_PER_USEC;
 511			/* state change from TRX_OFF to TX_ON or ARET_ON to do
 512			 * a calibration, we need to reset the timeout for the
 513			 * next one.
 514			 */
 515			lp->cal_timeout = jiffies + AT86RF2XX_CAL_LOOP_TIMEOUT;
 516			goto change;
 517		default:
 518			break;
 519		}
 520		break;
 521	case STATE_BUSY_RX_AACK:
 522		switch (ctx->to_state) {
 523		case STATE_TRX_OFF:
 524		case STATE_TX_ON:
 525			/* Wait for worst case receiving time if we
 526			 * didn't make a force change from BUSY_RX_AACK
 527			 * to TX_ON or TRX_OFF.
 528			 */
 529			if (!force) {
 530				tim = (c->t_frame + c->t_p_ack) * NSEC_PER_USEC;
 531				goto change;
 532			}
 533			break;
 534		default:
 535			break;
 536		}
 537		break;
 538	/* Default value, means RESET state */
 539	case STATE_P_ON:
 540		switch (ctx->to_state) {
 541		case STATE_TRX_OFF:
 542			tim = c->t_reset_to_off * NSEC_PER_USEC;
 543			goto change;
 544		default:
 545			break;
 546		}
 547		break;
 548	default:
 549		break;
 550	}
 551
 552	/* Default delay is 1us in the most cases */
 553	udelay(1);
 554	at86rf230_async_state_timer(&ctx->timer);
 555	return;
 556
 557change:
 558	hrtimer_start(&ctx->timer, tim, HRTIMER_MODE_REL);
 559}
 560
 561static void
 562at86rf230_async_state_change_start(void *context)
 563{
 564	struct at86rf230_state_change *ctx = context;
 565	struct at86rf230_local *lp = ctx->lp;
 566	u8 *buf = ctx->buf;
 567	const u8 trx_state = buf[1] & TRX_STATE_MASK;
 568
 569	/* Check for "possible" STATE_TRANSITION_IN_PROGRESS */
 570	if (trx_state == STATE_TRANSITION_IN_PROGRESS) {
 571		udelay(1);
 572		at86rf230_async_read_reg(lp, RG_TRX_STATUS, ctx,
 573					 at86rf230_async_state_change_start);
 574		return;
 575	}
 576
 577	/* Check if we already are in the state which we change in */
 578	if (trx_state == ctx->to_state) {
 579		if (ctx->complete)
 580			ctx->complete(context);
 581		return;
 582	}
 583
 584	/* Set current state to the context of state change */
 585	ctx->from_state = trx_state;
 586
 587	/* Going into the next step for a state change which do a timing
 588	 * relevant delay.
 589	 */
 590	at86rf230_async_write_reg(lp, RG_TRX_STATE, ctx->to_state, ctx,
 591				  at86rf230_async_state_delay);
 592}
 593
 594static void
 595at86rf230_async_state_change(struct at86rf230_local *lp,
 596			     struct at86rf230_state_change *ctx,
 597			     const u8 state, void (*complete)(void *context))
 598{
 599	/* Initialization for the state change context */
 600	ctx->to_state = state;
 601	ctx->complete = complete;
 602	at86rf230_async_read_reg(lp, RG_TRX_STATUS, ctx,
 603				 at86rf230_async_state_change_start);
 604}
 605
 606static void
 607at86rf230_sync_state_change_complete(void *context)
 608{
 609	struct at86rf230_state_change *ctx = context;
 610	struct at86rf230_local *lp = ctx->lp;
 611
 612	complete(&lp->state_complete);
 613}
 614
 615/* This function do a sync framework above the async state change.
 616 * Some callbacks of the IEEE 802.15.4 driver interface need to be
 617 * handled synchronously.
 618 */
 619static int
 620at86rf230_sync_state_change(struct at86rf230_local *lp, unsigned int state)
 621{
 622	unsigned long rc;
 623
 624	at86rf230_async_state_change(lp, &lp->state, state,
 625				     at86rf230_sync_state_change_complete);
 626
 627	rc = wait_for_completion_timeout(&lp->state_complete,
 628					 msecs_to_jiffies(100));
 629	if (!rc) {
 630		at86rf230_async_error(lp, &lp->state, -ETIMEDOUT);
 631		return -ETIMEDOUT;
 632	}
 633
 634	return 0;
 635}
 636
 637static void
 638at86rf230_tx_complete(void *context)
 639{
 640	struct at86rf230_state_change *ctx = context;
 641	struct at86rf230_local *lp = ctx->lp;
 642
 643	if (ctx->trac == IEEE802154_SUCCESS)
 644		ieee802154_xmit_complete(lp->hw, lp->tx_skb, false);
 645	else
 646		ieee802154_xmit_error(lp->hw, lp->tx_skb, ctx->trac);
 647
 648	kfree(ctx);
 649}
 650
 651static void
 652at86rf230_tx_on(void *context)
 653{
 654	struct at86rf230_state_change *ctx = context;
 655	struct at86rf230_local *lp = ctx->lp;
 656
 657	at86rf230_async_state_change(lp, ctx, STATE_RX_AACK_ON,
 658				     at86rf230_tx_complete);
 659}
 660
 661static void
 662at86rf230_tx_trac_check(void *context)
 663{
 664	struct at86rf230_state_change *ctx = context;
 665	struct at86rf230_local *lp = ctx->lp;
 666	u8 trac = TRAC_MASK(ctx->buf[1]);
 667
 668	switch (trac) {
 669	case TRAC_SUCCESS:
 670	case TRAC_SUCCESS_DATA_PENDING:
 671		ctx->trac = IEEE802154_SUCCESS;
 672		break;
 673	case TRAC_CHANNEL_ACCESS_FAILURE:
 674		ctx->trac = IEEE802154_CHANNEL_ACCESS_FAILURE;
 675		break;
 676	case TRAC_NO_ACK:
 677		ctx->trac = IEEE802154_NO_ACK;
 678		break;
 679	default:
 680		ctx->trac = IEEE802154_SYSTEM_ERROR;
 
 
 
 
 
 
 
 
 
 
 681	}
 682
 683	at86rf230_async_state_change(lp, ctx, STATE_TX_ON, at86rf230_tx_on);
 684}
 685
 686static void
 687at86rf230_rx_read_frame_complete(void *context)
 688{
 689	struct at86rf230_state_change *ctx = context;
 690	struct at86rf230_local *lp = ctx->lp;
 691	const u8 *buf = ctx->buf;
 692	struct sk_buff *skb;
 693	u8 len, lqi;
 694
 695	len = buf[1];
 696	if (!ieee802154_is_valid_psdu_len(len)) {
 697		dev_vdbg(&lp->spi->dev, "corrupted frame received\n");
 698		len = IEEE802154_MTU;
 699	}
 700	lqi = buf[2 + len];
 701
 702	skb = dev_alloc_skb(IEEE802154_MTU);
 703	if (!skb) {
 704		dev_vdbg(&lp->spi->dev, "failed to allocate sk_buff\n");
 705		kfree(ctx);
 706		return;
 707	}
 708
 709	skb_put_data(skb, buf + 2, len);
 710	ieee802154_rx_irqsafe(lp->hw, skb, lqi);
 711	kfree(ctx);
 712}
 713
 714static void
 715at86rf230_rx_trac_check(void *context)
 716{
 717	struct at86rf230_state_change *ctx = context;
 718	struct at86rf230_local *lp = ctx->lp;
 719	u8 *buf = ctx->buf;
 720	int rc;
 721
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 722	buf[0] = CMD_FB;
 723	ctx->trx.len = AT86RF2XX_MAX_BUF;
 724	ctx->msg.complete = at86rf230_rx_read_frame_complete;
 725	rc = spi_async(lp->spi, &ctx->msg);
 726	if (rc) {
 727		ctx->trx.len = 2;
 728		at86rf230_async_error(lp, ctx, rc);
 729	}
 730}
 731
 732static void
 733at86rf230_irq_trx_end(void *context)
 734{
 735	struct at86rf230_state_change *ctx = context;
 736	struct at86rf230_local *lp = ctx->lp;
 737
 738	if (lp->is_tx) {
 739		lp->is_tx = 0;
 740		at86rf230_async_read_reg(lp, RG_TRX_STATE, ctx,
 741					 at86rf230_tx_trac_check);
 742	} else {
 743		at86rf230_async_read_reg(lp, RG_TRX_STATE, ctx,
 744					 at86rf230_rx_trac_check);
 745	}
 746}
 747
 748static void
 749at86rf230_irq_status(void *context)
 750{
 751	struct at86rf230_state_change *ctx = context;
 752	struct at86rf230_local *lp = ctx->lp;
 753	const u8 *buf = ctx->buf;
 754	u8 irq = buf[1];
 755
 756	enable_irq(lp->spi->irq);
 757
 758	if (irq & IRQ_TRX_END) {
 759		at86rf230_irq_trx_end(ctx);
 760	} else {
 761		dev_err(&lp->spi->dev, "not supported irq %02x received\n",
 762			irq);
 763		kfree(ctx);
 764	}
 765}
 766
 767static void
 768at86rf230_setup_spi_messages(struct at86rf230_local *lp,
 769			     struct at86rf230_state_change *state)
 770{
 771	state->lp = lp;
 772	state->irq = lp->spi->irq;
 773	spi_message_init(&state->msg);
 774	state->msg.context = state;
 775	state->trx.len = 2;
 776	state->trx.tx_buf = state->buf;
 777	state->trx.rx_buf = state->buf;
 778	spi_message_add_tail(&state->trx, &state->msg);
 779	hrtimer_init(&state->timer, CLOCK_MONOTONIC, HRTIMER_MODE_REL);
 780	state->timer.function = at86rf230_async_state_timer;
 781}
 782
 783static irqreturn_t at86rf230_isr(int irq, void *data)
 784{
 785	struct at86rf230_local *lp = data;
 786	struct at86rf230_state_change *ctx;
 787	int rc;
 788
 789	disable_irq_nosync(irq);
 790
 791	ctx = kzalloc(sizeof(*ctx), GFP_ATOMIC);
 792	if (!ctx) {
 793		enable_irq(irq);
 794		return IRQ_NONE;
 795	}
 796
 797	at86rf230_setup_spi_messages(lp, ctx);
 798	/* tell on error handling to free ctx */
 799	ctx->free = true;
 800
 801	ctx->buf[0] = (RG_IRQ_STATUS & CMD_REG_MASK) | CMD_REG;
 802	ctx->msg.complete = at86rf230_irq_status;
 803	rc = spi_async(lp->spi, &ctx->msg);
 804	if (rc) {
 805		at86rf230_async_error(lp, ctx, rc);
 806		enable_irq(irq);
 807		return IRQ_NONE;
 808	}
 809
 810	return IRQ_HANDLED;
 811}
 812
 813static void
 814at86rf230_write_frame_complete(void *context)
 815{
 816	struct at86rf230_state_change *ctx = context;
 817	struct at86rf230_local *lp = ctx->lp;
 818
 819	ctx->trx.len = 2;
 820
 821	if (lp->slp_tr)
 822		at86rf230_slp_tr_rising_edge(lp);
 823	else
 824		at86rf230_async_write_reg(lp, RG_TRX_STATE, STATE_BUSY_TX, ctx,
 825					  NULL);
 826}
 827
 828static void
 829at86rf230_write_frame(void *context)
 830{
 831	struct at86rf230_state_change *ctx = context;
 832	struct at86rf230_local *lp = ctx->lp;
 833	struct sk_buff *skb = lp->tx_skb;
 834	u8 *buf = ctx->buf;
 835	int rc;
 836
 837	lp->is_tx = 1;
 838
 839	buf[0] = CMD_FB | CMD_WRITE;
 840	buf[1] = skb->len + 2;
 841	memcpy(buf + 2, skb->data, skb->len);
 842	ctx->trx.len = skb->len + 2;
 843	ctx->msg.complete = at86rf230_write_frame_complete;
 844	rc = spi_async(lp->spi, &ctx->msg);
 845	if (rc) {
 846		ctx->trx.len = 2;
 847		at86rf230_async_error(lp, ctx, rc);
 848	}
 849}
 850
 851static void
 852at86rf230_xmit_tx_on(void *context)
 853{
 854	struct at86rf230_state_change *ctx = context;
 855	struct at86rf230_local *lp = ctx->lp;
 856
 857	at86rf230_async_state_change(lp, ctx, STATE_TX_ARET_ON,
 858				     at86rf230_write_frame);
 859}
 860
 861static void
 862at86rf230_xmit_start(void *context)
 863{
 864	struct at86rf230_state_change *ctx = context;
 865	struct at86rf230_local *lp = ctx->lp;
 866
 867	/* check if we change from off state */
 868	if (lp->is_tx_from_off)
 869		at86rf230_async_state_change(lp, ctx, STATE_TX_ARET_ON,
 870					     at86rf230_write_frame);
 871	else
 872		at86rf230_async_state_change(lp, ctx, STATE_TX_ON,
 873					     at86rf230_xmit_tx_on);
 874}
 875
 876static int
 877at86rf230_xmit(struct ieee802154_hw *hw, struct sk_buff *skb)
 878{
 879	struct at86rf230_local *lp = hw->priv;
 880	struct at86rf230_state_change *ctx = &lp->tx;
 881
 882	lp->tx_skb = skb;
 883	lp->tx_retry = 0;
 884
 885	/* After 5 minutes in PLL and the same frequency we run again the
 886	 * calibration loops which is recommended by at86rf2xx datasheets.
 887	 *
 888	 * The calibration is initiate by a state change from TRX_OFF
 889	 * to TX_ON, the lp->cal_timeout should be reinit by state_delay
 890	 * function then to start in the next 5 minutes.
 891	 */
 892	if (time_is_before_jiffies(lp->cal_timeout)) {
 893		lp->is_tx_from_off = true;
 894		at86rf230_async_state_change(lp, ctx, STATE_TRX_OFF,
 895					     at86rf230_xmit_start);
 896	} else {
 897		lp->is_tx_from_off = false;
 898		at86rf230_xmit_start(ctx);
 899	}
 900
 901	return 0;
 902}
 903
 904static int
 905at86rf230_ed(struct ieee802154_hw *hw, u8 *level)
 906{
 907	WARN_ON(!level);
 908	*level = 0xbe;
 909	return 0;
 910}
 911
 912static int
 913at86rf230_start(struct ieee802154_hw *hw)
 914{
 915	struct at86rf230_local *lp = hw->priv;
 916
 
 
 
 
 917	at86rf230_awake(lp);
 918	enable_irq(lp->spi->irq);
 919
 920	return at86rf230_sync_state_change(lp, STATE_RX_AACK_ON);
 921}
 922
 923static void
 924at86rf230_stop(struct ieee802154_hw *hw)
 925{
 926	struct at86rf230_local *lp = hw->priv;
 927	u8 csma_seed[2];
 928
 929	at86rf230_sync_state_change(lp, STATE_FORCE_TRX_OFF);
 930
 931	disable_irq(lp->spi->irq);
 932
 933	/* It's recommended to set random new csma_seeds before sleep state.
 934	 * Makes only sense in the stop callback, not doing this inside of
 935	 * at86rf230_sleep, this is also used when we don't transmit afterwards
 936	 * when calling start callback again.
 937	 */
 938	get_random_bytes(csma_seed, ARRAY_SIZE(csma_seed));
 939	at86rf230_write_subreg(lp, SR_CSMA_SEED_0, csma_seed[0]);
 940	at86rf230_write_subreg(lp, SR_CSMA_SEED_1, csma_seed[1]);
 941
 942	at86rf230_sleep(lp);
 943}
 944
 945static int
 946at86rf23x_set_channel(struct at86rf230_local *lp, u8 page, u8 channel)
 947{
 948	return at86rf230_write_subreg(lp, SR_CHANNEL, channel);
 949}
 950
 951#define AT86RF2XX_MAX_ED_LEVELS 0xF
 952static const s32 at86rf233_ed_levels[AT86RF2XX_MAX_ED_LEVELS + 1] = {
 953	-9400, -9200, -9000, -8800, -8600, -8400, -8200, -8000, -7800, -7600,
 954	-7400, -7200, -7000, -6800, -6600, -6400,
 955};
 956
 957static const s32 at86rf231_ed_levels[AT86RF2XX_MAX_ED_LEVELS + 1] = {
 958	-9100, -8900, -8700, -8500, -8300, -8100, -7900, -7700, -7500, -7300,
 959	-7100, -6900, -6700, -6500, -6300, -6100,
 960};
 961
 962static const s32 at86rf212_ed_levels_100[AT86RF2XX_MAX_ED_LEVELS + 1] = {
 963	-10000, -9800, -9600, -9400, -9200, -9000, -8800, -8600, -8400, -8200,
 964	-8000, -7800, -7600, -7400, -7200, -7000,
 965};
 966
 967static const s32 at86rf212_ed_levels_98[AT86RF2XX_MAX_ED_LEVELS + 1] = {
 968	-9800, -9600, -9400, -9200, -9000, -8800, -8600, -8400, -8200, -8000,
 969	-7800, -7600, -7400, -7200, -7000, -6800,
 970};
 971
 972static inline int
 973at86rf212_update_cca_ed_level(struct at86rf230_local *lp, int rssi_base_val)
 974{
 975	unsigned int cca_ed_thres;
 976	int rc;
 977
 978	rc = at86rf230_read_subreg(lp, SR_CCA_ED_THRES, &cca_ed_thres);
 979	if (rc < 0)
 980		return rc;
 981
 982	switch (rssi_base_val) {
 983	case -98:
 984		lp->hw->phy->supported.cca_ed_levels = at86rf212_ed_levels_98;
 985		lp->hw->phy->supported.cca_ed_levels_size = ARRAY_SIZE(at86rf212_ed_levels_98);
 986		lp->hw->phy->cca_ed_level = at86rf212_ed_levels_98[cca_ed_thres];
 987		break;
 988	case -100:
 989		lp->hw->phy->supported.cca_ed_levels = at86rf212_ed_levels_100;
 990		lp->hw->phy->supported.cca_ed_levels_size = ARRAY_SIZE(at86rf212_ed_levels_100);
 991		lp->hw->phy->cca_ed_level = at86rf212_ed_levels_100[cca_ed_thres];
 992		break;
 993	default:
 994		WARN_ON(1);
 995	}
 996
 997	return 0;
 998}
 999
1000static int
1001at86rf212_set_channel(struct at86rf230_local *lp, u8 page, u8 channel)
1002{
1003	int rc;
1004
1005	if (channel == 0)
1006		rc = at86rf230_write_subreg(lp, SR_SUB_MODE, 0);
1007	else
1008		rc = at86rf230_write_subreg(lp, SR_SUB_MODE, 1);
1009	if (rc < 0)
1010		return rc;
1011
1012	if (page == 0) {
1013		rc = at86rf230_write_subreg(lp, SR_BPSK_QPSK, 0);
1014		lp->data->rssi_base_val = -100;
1015	} else {
1016		rc = at86rf230_write_subreg(lp, SR_BPSK_QPSK, 1);
1017		lp->data->rssi_base_val = -98;
1018	}
1019	if (rc < 0)
1020		return rc;
1021
1022	rc = at86rf212_update_cca_ed_level(lp, lp->data->rssi_base_val);
1023	if (rc < 0)
1024		return rc;
1025
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1026	return at86rf230_write_subreg(lp, SR_CHANNEL, channel);
1027}
1028
1029static int
1030at86rf230_channel(struct ieee802154_hw *hw, u8 page, u8 channel)
1031{
1032	struct at86rf230_local *lp = hw->priv;
1033	int rc;
1034
1035	rc = lp->data->set_channel(lp, page, channel);
1036	/* Wait for PLL */
1037	usleep_range(lp->data->t_channel_switch,
1038		     lp->data->t_channel_switch + 10);
1039
1040	lp->cal_timeout = jiffies + AT86RF2XX_CAL_LOOP_TIMEOUT;
1041	return rc;
1042}
1043
1044static int
1045at86rf230_set_hw_addr_filt(struct ieee802154_hw *hw,
1046			   struct ieee802154_hw_addr_filt *filt,
1047			   unsigned long changed)
1048{
1049	struct at86rf230_local *lp = hw->priv;
1050
1051	if (changed & IEEE802154_AFILT_SADDR_CHANGED) {
1052		u16 addr = le16_to_cpu(filt->short_addr);
1053
1054		dev_vdbg(&lp->spi->dev, "%s called for saddr\n", __func__);
 
1055		__at86rf230_write(lp, RG_SHORT_ADDR_0, addr);
1056		__at86rf230_write(lp, RG_SHORT_ADDR_1, addr >> 8);
1057	}
1058
1059	if (changed & IEEE802154_AFILT_PANID_CHANGED) {
1060		u16 pan = le16_to_cpu(filt->pan_id);
1061
1062		dev_vdbg(&lp->spi->dev, "%s called for pan id\n", __func__);
 
1063		__at86rf230_write(lp, RG_PAN_ID_0, pan);
1064		__at86rf230_write(lp, RG_PAN_ID_1, pan >> 8);
1065	}
1066
1067	if (changed & IEEE802154_AFILT_IEEEADDR_CHANGED) {
1068		u8 i, addr[8];
1069
1070		memcpy(addr, &filt->ieee_addr, 8);
1071		dev_vdbg(&lp->spi->dev, "%s called for IEEE addr\n", __func__);
 
1072		for (i = 0; i < 8; i++)
1073			__at86rf230_write(lp, RG_IEEE_ADDR_0 + i, addr[i]);
1074	}
1075
1076	if (changed & IEEE802154_AFILT_PANC_CHANGED) {
1077		dev_vdbg(&lp->spi->dev, "%s called for panc change\n", __func__);
 
1078		if (filt->pan_coord)
1079			at86rf230_write_subreg(lp, SR_AACK_I_AM_COORD, 1);
1080		else
1081			at86rf230_write_subreg(lp, SR_AACK_I_AM_COORD, 0);
1082	}
1083
1084	return 0;
1085}
1086
1087#define AT86RF23X_MAX_TX_POWERS 0xF
1088static const s32 at86rf233_powers[AT86RF23X_MAX_TX_POWERS + 1] = {
1089	400, 370, 340, 300, 250, 200, 100, 0, -100, -200, -300, -400, -600,
1090	-800, -1200, -1700,
1091};
1092
1093static const s32 at86rf231_powers[AT86RF23X_MAX_TX_POWERS + 1] = {
1094	300, 280, 230, 180, 130, 70, 0, -100, -200, -300, -400, -500, -700,
1095	-900, -1200, -1700,
1096};
1097
1098#define AT86RF212_MAX_TX_POWERS 0x1F
1099static const s32 at86rf212_powers[AT86RF212_MAX_TX_POWERS + 1] = {
1100	500, 400, 300, 200, 100, 0, -100, -200, -300, -400, -500, -600, -700,
1101	-800, -900, -1000, -1100, -1200, -1300, -1400, -1500, -1600, -1700,
1102	-1800, -1900, -2000, -2100, -2200, -2300, -2400, -2500, -2600,
1103};
1104
1105static int
1106at86rf23x_set_txpower(struct at86rf230_local *lp, s32 mbm)
1107{
1108	u32 i;
1109
1110	for (i = 0; i < lp->hw->phy->supported.tx_powers_size; i++) {
1111		if (lp->hw->phy->supported.tx_powers[i] == mbm)
1112			return at86rf230_write_subreg(lp, SR_TX_PWR_23X, i);
1113	}
1114
1115	return -EINVAL;
1116}
1117
1118static int
1119at86rf212_set_txpower(struct at86rf230_local *lp, s32 mbm)
1120{
1121	u32 i;
1122
1123	for (i = 0; i < lp->hw->phy->supported.tx_powers_size; i++) {
1124		if (lp->hw->phy->supported.tx_powers[i] == mbm)
1125			return at86rf230_write_subreg(lp, SR_TX_PWR_212, i);
1126	}
1127
1128	return -EINVAL;
1129}
1130
1131static int
1132at86rf230_set_txpower(struct ieee802154_hw *hw, s32 mbm)
1133{
1134	struct at86rf230_local *lp = hw->priv;
1135
1136	return lp->data->set_txpower(lp, mbm);
1137}
1138
1139static int
1140at86rf230_set_lbt(struct ieee802154_hw *hw, bool on)
1141{
1142	struct at86rf230_local *lp = hw->priv;
1143
1144	return at86rf230_write_subreg(lp, SR_CSMA_LBT_MODE, on);
1145}
1146
1147static int
1148at86rf230_set_cca_mode(struct ieee802154_hw *hw,
1149		       const struct wpan_phy_cca *cca)
1150{
1151	struct at86rf230_local *lp = hw->priv;
1152	u8 val;
1153
1154	/* mapping 802.15.4 to driver spec */
1155	switch (cca->mode) {
1156	case NL802154_CCA_ENERGY:
1157		val = 1;
1158		break;
1159	case NL802154_CCA_CARRIER:
1160		val = 2;
1161		break;
1162	case NL802154_CCA_ENERGY_CARRIER:
1163		switch (cca->opt) {
1164		case NL802154_CCA_OPT_ENERGY_CARRIER_AND:
1165			val = 3;
1166			break;
1167		case NL802154_CCA_OPT_ENERGY_CARRIER_OR:
1168			val = 0;
1169			break;
1170		default:
1171			return -EINVAL;
1172		}
1173		break;
1174	default:
1175		return -EINVAL;
1176	}
1177
1178	return at86rf230_write_subreg(lp, SR_CCA_MODE, val);
1179}
1180
 
1181static int
1182at86rf230_set_cca_ed_level(struct ieee802154_hw *hw, s32 mbm)
1183{
1184	struct at86rf230_local *lp = hw->priv;
1185	u32 i;
1186
1187	for (i = 0; i < hw->phy->supported.cca_ed_levels_size; i++) {
1188		if (hw->phy->supported.cca_ed_levels[i] == mbm)
1189			return at86rf230_write_subreg(lp, SR_CCA_ED_THRES, i);
1190	}
1191
1192	return -EINVAL;
1193}
1194
1195static int
1196at86rf230_set_csma_params(struct ieee802154_hw *hw, u8 min_be, u8 max_be,
1197			  u8 retries)
1198{
1199	struct at86rf230_local *lp = hw->priv;
1200	int rc;
1201
1202	rc = at86rf230_write_subreg(lp, SR_MIN_BE, min_be);
1203	if (rc)
1204		return rc;
1205
1206	rc = at86rf230_write_subreg(lp, SR_MAX_BE, max_be);
1207	if (rc)
1208		return rc;
1209
1210	return at86rf230_write_subreg(lp, SR_MAX_CSMA_RETRIES, retries);
1211}
1212
1213static int
1214at86rf230_set_frame_retries(struct ieee802154_hw *hw, s8 retries)
1215{
1216	struct at86rf230_local *lp = hw->priv;
1217
1218	return at86rf230_write_subreg(lp, SR_MAX_FRAME_RETRIES, retries);
1219}
1220
1221static int
1222at86rf230_set_promiscuous_mode(struct ieee802154_hw *hw, const bool on)
1223{
1224	struct at86rf230_local *lp = hw->priv;
1225	int rc;
1226
1227	if (on) {
1228		rc = at86rf230_write_subreg(lp, SR_AACK_DIS_ACK, 1);
1229		if (rc < 0)
1230			return rc;
1231
1232		rc = at86rf230_write_subreg(lp, SR_AACK_PROM_MODE, 1);
1233		if (rc < 0)
1234			return rc;
1235	} else {
1236		rc = at86rf230_write_subreg(lp, SR_AACK_PROM_MODE, 0);
1237		if (rc < 0)
1238			return rc;
1239
1240		rc = at86rf230_write_subreg(lp, SR_AACK_DIS_ACK, 0);
1241		if (rc < 0)
1242			return rc;
1243	}
1244
1245	return 0;
1246}
1247
1248static const struct ieee802154_ops at86rf230_ops = {
1249	.owner = THIS_MODULE,
1250	.xmit_async = at86rf230_xmit,
1251	.ed = at86rf230_ed,
1252	.set_channel = at86rf230_channel,
1253	.start = at86rf230_start,
1254	.stop = at86rf230_stop,
1255	.set_hw_addr_filt = at86rf230_set_hw_addr_filt,
1256	.set_txpower = at86rf230_set_txpower,
1257	.set_lbt = at86rf230_set_lbt,
1258	.set_cca_mode = at86rf230_set_cca_mode,
1259	.set_cca_ed_level = at86rf230_set_cca_ed_level,
1260	.set_csma_params = at86rf230_set_csma_params,
1261	.set_frame_retries = at86rf230_set_frame_retries,
1262	.set_promiscuous_mode = at86rf230_set_promiscuous_mode,
1263};
1264
1265static struct at86rf2xx_chip_data at86rf233_data = {
1266	.t_sleep_cycle = 330,
1267	.t_channel_switch = 11,
1268	.t_reset_to_off = 26,
1269	.t_off_to_aack = 80,
1270	.t_off_to_tx_on = 80,
1271	.t_off_to_sleep = 35,
1272	.t_sleep_to_off = 1000,
1273	.t_frame = 4096,
1274	.t_p_ack = 545,
1275	.rssi_base_val = -94,
1276	.set_channel = at86rf23x_set_channel,
1277	.set_txpower = at86rf23x_set_txpower,
1278};
1279
1280static struct at86rf2xx_chip_data at86rf231_data = {
1281	.t_sleep_cycle = 330,
1282	.t_channel_switch = 24,
1283	.t_reset_to_off = 37,
1284	.t_off_to_aack = 110,
1285	.t_off_to_tx_on = 110,
1286	.t_off_to_sleep = 35,
1287	.t_sleep_to_off = 1000,
1288	.t_frame = 4096,
1289	.t_p_ack = 545,
1290	.rssi_base_val = -91,
1291	.set_channel = at86rf23x_set_channel,
1292	.set_txpower = at86rf23x_set_txpower,
1293};
1294
1295static struct at86rf2xx_chip_data at86rf212_data = {
1296	.t_sleep_cycle = 330,
1297	.t_channel_switch = 11,
1298	.t_reset_to_off = 26,
1299	.t_off_to_aack = 200,
1300	.t_off_to_tx_on = 200,
1301	.t_off_to_sleep = 35,
1302	.t_sleep_to_off = 1000,
1303	.t_frame = 4096,
1304	.t_p_ack = 545,
1305	.rssi_base_val = -100,
1306	.set_channel = at86rf212_set_channel,
1307	.set_txpower = at86rf212_set_txpower,
1308};
1309
1310static int at86rf230_hw_init(struct at86rf230_local *lp, u8 xtal_trim)
1311{
1312	int rc, irq_type, irq_pol = IRQ_ACTIVE_HIGH;
1313	unsigned int dvdd;
1314	u8 csma_seed[2];
1315
1316	rc = at86rf230_sync_state_change(lp, STATE_FORCE_TRX_OFF);
1317	if (rc)
1318		return rc;
1319
1320	irq_type = irq_get_trigger_type(lp->spi->irq);
1321	if (irq_type == IRQ_TYPE_EDGE_FALLING ||
1322	    irq_type == IRQ_TYPE_LEVEL_LOW)
1323		irq_pol = IRQ_ACTIVE_LOW;
1324
1325	rc = at86rf230_write_subreg(lp, SR_IRQ_POLARITY, irq_pol);
1326	if (rc)
1327		return rc;
1328
1329	rc = at86rf230_write_subreg(lp, SR_RX_SAFE_MODE, 1);
1330	if (rc)
1331		return rc;
1332
1333	rc = at86rf230_write_subreg(lp, SR_IRQ_MASK, IRQ_TRX_END);
1334	if (rc)
1335		return rc;
1336
1337	/* reset values differs in at86rf231 and at86rf233 */
1338	rc = at86rf230_write_subreg(lp, SR_IRQ_MASK_MODE, 0);
1339	if (rc)
1340		return rc;
1341
1342	get_random_bytes(csma_seed, ARRAY_SIZE(csma_seed));
1343	rc = at86rf230_write_subreg(lp, SR_CSMA_SEED_0, csma_seed[0]);
1344	if (rc)
1345		return rc;
1346	rc = at86rf230_write_subreg(lp, SR_CSMA_SEED_1, csma_seed[1]);
1347	if (rc)
1348		return rc;
1349
1350	/* CLKM changes are applied immediately */
1351	rc = at86rf230_write_subreg(lp, SR_CLKM_SHA_SEL, 0x00);
1352	if (rc)
1353		return rc;
1354
1355	/* Turn CLKM Off */
1356	rc = at86rf230_write_subreg(lp, SR_CLKM_CTRL, 0x00);
1357	if (rc)
1358		return rc;
1359	/* Wait the next SLEEP cycle */
1360	usleep_range(lp->data->t_sleep_cycle,
1361		     lp->data->t_sleep_cycle + 100);
1362
1363	/* xtal_trim value is calculated by:
1364	 * CL = 0.5 * (CX + CTRIM + CPAR)
1365	 *
1366	 * whereas:
1367	 * CL = capacitor of used crystal
1368	 * CX = connected capacitors at xtal pins
1369	 * CPAR = in all at86rf2xx datasheets this is a constant value 3 pF,
1370	 *	  but this is different on each board setup. You need to fine
1371	 *	  tuning this value via CTRIM.
1372	 * CTRIM = variable capacitor setting. Resolution is 0.3 pF range is
1373	 *	   0 pF upto 4.5 pF.
1374	 *
1375	 * Examples:
1376	 * atben transceiver:
1377	 *
1378	 * CL = 8 pF
1379	 * CX = 12 pF
1380	 * CPAR = 3 pF (We assume the magic constant from datasheet)
1381	 * CTRIM = 0.9 pF
1382	 *
1383	 * (12+0.9+3)/2 = 7.95 which is nearly at 8 pF
1384	 *
1385	 * xtal_trim = 0x3
1386	 *
1387	 * openlabs transceiver:
1388	 *
1389	 * CL = 16 pF
1390	 * CX = 22 pF
1391	 * CPAR = 3 pF (We assume the magic constant from datasheet)
1392	 * CTRIM = 4.5 pF
1393	 *
1394	 * (22+4.5+3)/2 = 14.75 which is the nearest value to 16 pF
1395	 *
1396	 * xtal_trim = 0xf
1397	 */
1398	rc = at86rf230_write_subreg(lp, SR_XTAL_TRIM, xtal_trim);
1399	if (rc)
1400		return rc;
1401
1402	rc = at86rf230_read_subreg(lp, SR_DVDD_OK, &dvdd);
1403	if (rc)
1404		return rc;
1405	if (!dvdd) {
1406		dev_err(&lp->spi->dev, "DVDD error\n");
1407		return -EINVAL;
1408	}
1409
1410	/* Force setting slotted operation bit to 0. Sometimes the atben
1411	 * sets this bit and I don't know why. We set this always force
1412	 * to zero while probing.
1413	 */
1414	return at86rf230_write_subreg(lp, SR_SLOTTED_OPERATION, 0);
1415}
1416
1417static int
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1418at86rf230_detect_device(struct at86rf230_local *lp)
1419{
1420	unsigned int part, version, val;
1421	u16 man_id = 0;
1422	const char *chip;
1423	int rc;
1424
1425	rc = __at86rf230_read(lp, RG_MAN_ID_0, &val);
1426	if (rc)
1427		return rc;
1428	man_id |= val;
1429
1430	rc = __at86rf230_read(lp, RG_MAN_ID_1, &val);
1431	if (rc)
1432		return rc;
1433	man_id |= (val << 8);
1434
1435	rc = __at86rf230_read(lp, RG_PART_NUM, &part);
1436	if (rc)
1437		return rc;
1438
1439	rc = __at86rf230_read(lp, RG_VERSION_NUM, &version);
1440	if (rc)
1441		return rc;
1442
1443	if (man_id != 0x001f) {
1444		dev_err(&lp->spi->dev, "Non-Atmel dev found (MAN_ID %02x %02x)\n",
1445			man_id >> 8, man_id & 0xFF);
1446		return -EINVAL;
1447	}
1448
1449	lp->hw->flags = IEEE802154_HW_TX_OMIT_CKSUM |
1450			IEEE802154_HW_CSMA_PARAMS |
1451			IEEE802154_HW_FRAME_RETRIES | IEEE802154_HW_AFILT |
1452			IEEE802154_HW_PROMISCUOUS;
1453
1454	lp->hw->phy->flags = WPAN_PHY_FLAG_TXPOWER |
1455			     WPAN_PHY_FLAG_CCA_ED_LEVEL |
1456			     WPAN_PHY_FLAG_CCA_MODE;
1457
1458	lp->hw->phy->supported.cca_modes = BIT(NL802154_CCA_ENERGY) |
1459		BIT(NL802154_CCA_CARRIER) | BIT(NL802154_CCA_ENERGY_CARRIER);
1460	lp->hw->phy->supported.cca_opts = BIT(NL802154_CCA_OPT_ENERGY_CARRIER_AND) |
1461		BIT(NL802154_CCA_OPT_ENERGY_CARRIER_OR);
1462
1463	lp->hw->phy->cca.mode = NL802154_CCA_ENERGY;
1464
1465	switch (part) {
1466	case 2:
1467		chip = "at86rf230";
1468		rc = -ENOTSUPP;
1469		goto not_supp;
1470	case 3:
1471		chip = "at86rf231";
1472		lp->data = &at86rf231_data;
1473		lp->hw->phy->supported.channels[0] = 0x7FFF800;
1474		lp->hw->phy->current_channel = 11;
 
1475		lp->hw->phy->supported.tx_powers = at86rf231_powers;
1476		lp->hw->phy->supported.tx_powers_size = ARRAY_SIZE(at86rf231_powers);
1477		lp->hw->phy->supported.cca_ed_levels = at86rf231_ed_levels;
1478		lp->hw->phy->supported.cca_ed_levels_size = ARRAY_SIZE(at86rf231_ed_levels);
1479		break;
1480	case 7:
1481		chip = "at86rf212";
1482		lp->data = &at86rf212_data;
1483		lp->hw->flags |= IEEE802154_HW_LBT;
1484		lp->hw->phy->supported.channels[0] = 0x00007FF;
1485		lp->hw->phy->supported.channels[2] = 0x00007FF;
1486		lp->hw->phy->current_channel = 5;
 
1487		lp->hw->phy->supported.lbt = NL802154_SUPPORTED_BOOL_BOTH;
1488		lp->hw->phy->supported.tx_powers = at86rf212_powers;
1489		lp->hw->phy->supported.tx_powers_size = ARRAY_SIZE(at86rf212_powers);
1490		lp->hw->phy->supported.cca_ed_levels = at86rf212_ed_levels_100;
1491		lp->hw->phy->supported.cca_ed_levels_size = ARRAY_SIZE(at86rf212_ed_levels_100);
1492		break;
1493	case 11:
1494		chip = "at86rf233";
1495		lp->data = &at86rf233_data;
1496		lp->hw->phy->supported.channels[0] = 0x7FFF800;
1497		lp->hw->phy->current_channel = 13;
 
1498		lp->hw->phy->supported.tx_powers = at86rf233_powers;
1499		lp->hw->phy->supported.tx_powers_size = ARRAY_SIZE(at86rf233_powers);
1500		lp->hw->phy->supported.cca_ed_levels = at86rf233_ed_levels;
1501		lp->hw->phy->supported.cca_ed_levels_size = ARRAY_SIZE(at86rf233_ed_levels);
1502		break;
1503	default:
1504		chip = "unknown";
1505		rc = -ENOTSUPP;
1506		goto not_supp;
1507	}
1508
1509	lp->hw->phy->cca_ed_level = lp->hw->phy->supported.cca_ed_levels[7];
1510	lp->hw->phy->transmit_power = lp->hw->phy->supported.tx_powers[0];
1511
1512not_supp:
1513	dev_info(&lp->spi->dev, "Detected %s chip version %d\n", chip, version);
1514
1515	return rc;
1516}
1517
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1518static int at86rf230_probe(struct spi_device *spi)
1519{
1520	struct ieee802154_hw *hw;
1521	struct at86rf230_local *lp;
1522	struct gpio_desc *slp_tr;
1523	struct gpio_desc *rstn;
1524	unsigned int status;
1525	int rc, irq_type;
1526	u8 xtal_trim;
1527
1528	if (!spi->irq) {
1529		dev_err(&spi->dev, "no IRQ specified\n");
1530		return -EINVAL;
1531	}
1532
1533	rc = device_property_read_u8(&spi->dev, "xtal-trim", &xtal_trim);
1534	if (rc < 0) {
1535		if (rc != -EINVAL) {
1536			dev_err(&spi->dev,
1537				"failed to parse xtal-trim: %d\n", rc);
1538			return rc;
1539		}
1540		xtal_trim = 0;
1541	}
1542
1543	rstn = devm_gpiod_get_optional(&spi->dev, "reset", GPIOD_OUT_LOW);
1544	rc = PTR_ERR_OR_ZERO(rstn);
1545	if (rc)
1546		return rc;
 
1547
1548	gpiod_set_consumer_name(rstn, "rstn");
1549
1550	slp_tr = devm_gpiod_get_optional(&spi->dev, "sleep", GPIOD_OUT_LOW);
1551	rc = PTR_ERR_OR_ZERO(slp_tr);
1552	if (rc)
1553		return rc;
1554
1555	gpiod_set_consumer_name(slp_tr, "slp_tr");
 
 
 
 
 
1556
1557	/* Reset */
1558	if (rstn) {
1559		udelay(1);
1560		gpiod_set_value_cansleep(rstn, 1);
1561		udelay(1);
1562		gpiod_set_value_cansleep(rstn, 0);
1563		usleep_range(120, 240);
1564	}
1565
1566	hw = ieee802154_alloc_hw(sizeof(*lp), &at86rf230_ops);
1567	if (!hw)
1568		return -ENOMEM;
1569
1570	lp = hw->priv;
1571	lp->hw = hw;
1572	lp->spi = spi;
1573	lp->slp_tr = slp_tr;
1574	hw->parent = &spi->dev;
1575	ieee802154_random_extended_addr(&hw->phy->perm_extended_addr);
1576
1577	lp->regmap = devm_regmap_init_spi(spi, &at86rf230_regmap_spi_config);
1578	if (IS_ERR(lp->regmap)) {
1579		rc = PTR_ERR(lp->regmap);
1580		dev_err(&spi->dev, "Failed to allocate register map: %d\n",
1581			rc);
1582		goto free_dev;
1583	}
1584
1585	at86rf230_setup_spi_messages(lp, &lp->state);
1586	at86rf230_setup_spi_messages(lp, &lp->tx);
1587
1588	rc = at86rf230_detect_device(lp);
1589	if (rc < 0)
1590		goto free_dev;
1591
1592	init_completion(&lp->state_complete);
1593
1594	spi_set_drvdata(spi, lp);
1595
1596	rc = at86rf230_hw_init(lp, xtal_trim);
1597	if (rc)
1598		goto free_dev;
1599
1600	/* Read irq status register to reset irq line */
1601	rc = at86rf230_read_subreg(lp, RG_IRQ_STATUS, 0xff, 0, &status);
1602	if (rc)
1603		goto free_dev;
1604
1605	irq_type = irq_get_trigger_type(spi->irq);
1606	if (!irq_type)
1607		irq_type = IRQF_TRIGGER_HIGH;
1608
1609	rc = devm_request_irq(&spi->dev, spi->irq, at86rf230_isr,
1610			      IRQF_SHARED | irq_type, dev_name(&spi->dev), lp);
1611	if (rc)
1612		goto free_dev;
1613
1614	/* disable_irq by default and wait for starting hardware */
1615	disable_irq(spi->irq);
1616
1617	/* going into sleep by default */
1618	at86rf230_sleep(lp);
1619
1620	rc = ieee802154_register_hw(lp->hw);
1621	if (rc)
1622		goto free_dev;
1623
 
 
 
 
1624	return rc;
1625
 
 
1626free_dev:
1627	ieee802154_free_hw(lp->hw);
1628
1629	return rc;
1630}
1631
1632static void at86rf230_remove(struct spi_device *spi)
1633{
1634	struct at86rf230_local *lp = spi_get_drvdata(spi);
1635
1636	/* mask all at86rf230 irq's */
1637	at86rf230_write_subreg(lp, SR_IRQ_MASK, 0);
1638	ieee802154_unregister_hw(lp->hw);
1639	ieee802154_free_hw(lp->hw);
 
1640	dev_dbg(&spi->dev, "unregistered at86rf230\n");
 
 
1641}
1642
1643static const struct of_device_id at86rf230_of_match[] = {
1644	{ .compatible = "atmel,at86rf230", },
1645	{ .compatible = "atmel,at86rf231", },
1646	{ .compatible = "atmel,at86rf233", },
1647	{ .compatible = "atmel,at86rf212", },
1648	{ },
1649};
1650MODULE_DEVICE_TABLE(of, at86rf230_of_match);
1651
1652static const struct spi_device_id at86rf230_device_id[] = {
1653	{ .name = "at86rf230", },
1654	{ .name = "at86rf231", },
1655	{ .name = "at86rf233", },
1656	{ .name = "at86rf212", },
1657	{ },
1658};
1659MODULE_DEVICE_TABLE(spi, at86rf230_device_id);
1660
1661static struct spi_driver at86rf230_driver = {
1662	.id_table = at86rf230_device_id,
1663	.driver = {
1664		.of_match_table = at86rf230_of_match,
1665		.name	= "at86rf230",
1666	},
1667	.probe      = at86rf230_probe,
1668	.remove     = at86rf230_remove,
1669};
1670
1671module_spi_driver(at86rf230_driver);
1672
1673MODULE_DESCRIPTION("AT86RF230 Transceiver Driver");
1674MODULE_LICENSE("GPL v2");
v4.17
 
   1/*
   2 * AT86RF230/RF231 driver
   3 *
   4 * Copyright (C) 2009-2012 Siemens AG
   5 *
   6 * This program is free software; you can redistribute it and/or modify
   7 * it under the terms of the GNU General Public License version 2
   8 * as published by the Free Software Foundation.
   9 *
  10 * This program is distributed in the hope that it will be useful,
  11 * but WITHOUT ANY WARRANTY; without even the implied warranty of
  12 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
  13 * GNU General Public License for more details.
  14 *
  15 * Written by:
  16 * Dmitry Eremin-Solenikov <dbaryshkov@gmail.com>
  17 * Alexander Smirnov <alex.bluesman.smirnov@gmail.com>
  18 * Alexander Aring <aar@pengutronix.de>
  19 */
  20#include <linux/kernel.h>
  21#include <linux/module.h>
 
  22#include <linux/hrtimer.h>
  23#include <linux/jiffies.h>
  24#include <linux/interrupt.h>
  25#include <linux/irq.h>
  26#include <linux/gpio.h>
  27#include <linux/delay.h>
 
  28#include <linux/spi/spi.h>
  29#include <linux/spi/at86rf230.h>
  30#include <linux/regmap.h>
  31#include <linux/skbuff.h>
  32#include <linux/of_gpio.h>
  33#include <linux/ieee802154.h>
  34#include <linux/debugfs.h>
  35
  36#include <net/mac802154.h>
  37#include <net/cfg802154.h>
  38
  39#include "at86rf230.h"
  40
  41struct at86rf230_local;
  42/* at86rf2xx chip depend data.
  43 * All timings are in us.
  44 */
  45struct at86rf2xx_chip_data {
  46	u16 t_sleep_cycle;
  47	u16 t_channel_switch;
  48	u16 t_reset_to_off;
  49	u16 t_off_to_aack;
  50	u16 t_off_to_tx_on;
  51	u16 t_off_to_sleep;
  52	u16 t_sleep_to_off;
  53	u16 t_frame;
  54	u16 t_p_ack;
  55	int rssi_base_val;
  56
  57	int (*set_channel)(struct at86rf230_local *, u8, u8);
  58	int (*set_txpower)(struct at86rf230_local *, s32);
  59};
  60
  61#define AT86RF2XX_MAX_BUF		(127 + 3)
  62/* tx retries to access the TX_ON state
  63 * if it's above then force change will be started.
  64 *
  65 * We assume the max_frame_retries (7) value of 802.15.4 here.
  66 */
  67#define AT86RF2XX_MAX_TX_RETRIES	7
  68/* We use the recommended 5 minutes timeout to recalibrate */
  69#define AT86RF2XX_CAL_LOOP_TIMEOUT	(5 * 60 * HZ)
  70
  71struct at86rf230_state_change {
  72	struct at86rf230_local *lp;
  73	int irq;
  74
  75	struct hrtimer timer;
  76	struct spi_message msg;
  77	struct spi_transfer trx;
  78	u8 buf[AT86RF2XX_MAX_BUF];
  79
  80	void (*complete)(void *context);
  81	u8 from_state;
  82	u8 to_state;
 
  83
  84	bool free;
  85};
  86
  87struct at86rf230_trac {
  88	u64 success;
  89	u64 success_data_pending;
  90	u64 success_wait_for_ack;
  91	u64 channel_access_failure;
  92	u64 no_ack;
  93	u64 invalid;
  94};
  95
  96struct at86rf230_local {
  97	struct spi_device *spi;
  98
  99	struct ieee802154_hw *hw;
 100	struct at86rf2xx_chip_data *data;
 101	struct regmap *regmap;
 102	int slp_tr;
 103	bool sleep;
 104
 105	struct completion state_complete;
 106	struct at86rf230_state_change state;
 107
 108	unsigned long cal_timeout;
 109	bool is_tx;
 110	bool is_tx_from_off;
 
 111	u8 tx_retry;
 112	struct sk_buff *tx_skb;
 113	struct at86rf230_state_change tx;
 114
 115	struct at86rf230_trac trac;
 116};
 117
 118#define AT86RF2XX_NUMREGS 0x3F
 119
 120static void
 121at86rf230_async_state_change(struct at86rf230_local *lp,
 122			     struct at86rf230_state_change *ctx,
 123			     const u8 state, void (*complete)(void *context));
 124
 125static inline void
 126at86rf230_sleep(struct at86rf230_local *lp)
 127{
 128	if (gpio_is_valid(lp->slp_tr)) {
 129		gpio_set_value(lp->slp_tr, 1);
 130		usleep_range(lp->data->t_off_to_sleep,
 131			     lp->data->t_off_to_sleep + 10);
 132		lp->sleep = true;
 133	}
 134}
 135
 136static inline void
 137at86rf230_awake(struct at86rf230_local *lp)
 138{
 139	if (gpio_is_valid(lp->slp_tr)) {
 140		gpio_set_value(lp->slp_tr, 0);
 141		usleep_range(lp->data->t_sleep_to_off,
 142			     lp->data->t_sleep_to_off + 100);
 143		lp->sleep = false;
 144	}
 145}
 146
 147static inline int
 148__at86rf230_write(struct at86rf230_local *lp,
 149		  unsigned int addr, unsigned int data)
 150{
 151	bool sleep = lp->sleep;
 152	int ret;
 153
 154	/* awake for register setting if sleep */
 155	if (sleep)
 156		at86rf230_awake(lp);
 157
 158	ret = regmap_write(lp->regmap, addr, data);
 159
 160	/* sleep again if was sleeping */
 161	if (sleep)
 162		at86rf230_sleep(lp);
 163
 164	return ret;
 165}
 166
 167static inline int
 168__at86rf230_read(struct at86rf230_local *lp,
 169		 unsigned int addr, unsigned int *data)
 170{
 171	bool sleep = lp->sleep;
 172	int ret;
 173
 174	/* awake for register setting if sleep */
 175	if (sleep)
 176		at86rf230_awake(lp);
 177
 178	ret = regmap_read(lp->regmap, addr, data);
 179
 180	/* sleep again if was sleeping */
 181	if (sleep)
 182		at86rf230_sleep(lp);
 183
 184	return ret;
 185}
 186
 187static inline int
 188at86rf230_read_subreg(struct at86rf230_local *lp,
 189		      unsigned int addr, unsigned int mask,
 190		      unsigned int shift, unsigned int *data)
 191{
 192	int rc;
 193
 194	rc = __at86rf230_read(lp, addr, data);
 195	if (!rc)
 196		*data = (*data & mask) >> shift;
 197
 198	return rc;
 199}
 200
 201static inline int
 202at86rf230_write_subreg(struct at86rf230_local *lp,
 203		       unsigned int addr, unsigned int mask,
 204		       unsigned int shift, unsigned int data)
 205{
 206	bool sleep = lp->sleep;
 207	int ret;
 208
 209	/* awake for register setting if sleep */
 210	if (sleep)
 211		at86rf230_awake(lp);
 212
 213	ret = regmap_update_bits(lp->regmap, addr, mask, data << shift);
 214
 215	/* sleep again if was sleeping */
 216	if (sleep)
 217		at86rf230_sleep(lp);
 218
 219	return ret;
 220}
 221
 222static inline void
 223at86rf230_slp_tr_rising_edge(struct at86rf230_local *lp)
 224{
 225	gpio_set_value(lp->slp_tr, 1);
 226	udelay(1);
 227	gpio_set_value(lp->slp_tr, 0);
 228}
 229
 230static bool
 231at86rf230_reg_writeable(struct device *dev, unsigned int reg)
 232{
 233	switch (reg) {
 234	case RG_TRX_STATE:
 235	case RG_TRX_CTRL_0:
 236	case RG_TRX_CTRL_1:
 237	case RG_PHY_TX_PWR:
 238	case RG_PHY_ED_LEVEL:
 239	case RG_PHY_CC_CCA:
 240	case RG_CCA_THRES:
 241	case RG_RX_CTRL:
 242	case RG_SFD_VALUE:
 243	case RG_TRX_CTRL_2:
 244	case RG_ANT_DIV:
 245	case RG_IRQ_MASK:
 246	case RG_VREG_CTRL:
 247	case RG_BATMON:
 248	case RG_XOSC_CTRL:
 249	case RG_RX_SYN:
 250	case RG_XAH_CTRL_1:
 251	case RG_FTN_CTRL:
 252	case RG_PLL_CF:
 253	case RG_PLL_DCU:
 254	case RG_SHORT_ADDR_0:
 255	case RG_SHORT_ADDR_1:
 256	case RG_PAN_ID_0:
 257	case RG_PAN_ID_1:
 258	case RG_IEEE_ADDR_0:
 259	case RG_IEEE_ADDR_1:
 260	case RG_IEEE_ADDR_2:
 261	case RG_IEEE_ADDR_3:
 262	case RG_IEEE_ADDR_4:
 263	case RG_IEEE_ADDR_5:
 264	case RG_IEEE_ADDR_6:
 265	case RG_IEEE_ADDR_7:
 266	case RG_XAH_CTRL_0:
 267	case RG_CSMA_SEED_0:
 268	case RG_CSMA_SEED_1:
 269	case RG_CSMA_BE:
 270		return true;
 271	default:
 272		return false;
 273	}
 274}
 275
 276static bool
 277at86rf230_reg_readable(struct device *dev, unsigned int reg)
 278{
 279	bool rc;
 280
 281	/* all writeable are also readable */
 282	rc = at86rf230_reg_writeable(dev, reg);
 283	if (rc)
 284		return rc;
 285
 286	/* readonly regs */
 287	switch (reg) {
 288	case RG_TRX_STATUS:
 289	case RG_PHY_RSSI:
 290	case RG_IRQ_STATUS:
 291	case RG_PART_NUM:
 292	case RG_VERSION_NUM:
 293	case RG_MAN_ID_1:
 294	case RG_MAN_ID_0:
 295		return true;
 296	default:
 297		return false;
 298	}
 299}
 300
 301static bool
 302at86rf230_reg_volatile(struct device *dev, unsigned int reg)
 303{
 304	/* can be changed during runtime */
 305	switch (reg) {
 306	case RG_TRX_STATUS:
 307	case RG_TRX_STATE:
 308	case RG_PHY_RSSI:
 309	case RG_PHY_ED_LEVEL:
 310	case RG_IRQ_STATUS:
 311	case RG_VREG_CTRL:
 312	case RG_PLL_CF:
 313	case RG_PLL_DCU:
 314		return true;
 315	default:
 316		return false;
 317	}
 318}
 319
 320static bool
 321at86rf230_reg_precious(struct device *dev, unsigned int reg)
 322{
 323	/* don't clear irq line on read */
 324	switch (reg) {
 325	case RG_IRQ_STATUS:
 326		return true;
 327	default:
 328		return false;
 329	}
 330}
 331
 332static const struct regmap_config at86rf230_regmap_spi_config = {
 333	.reg_bits = 8,
 334	.val_bits = 8,
 335	.write_flag_mask = CMD_REG | CMD_WRITE,
 336	.read_flag_mask = CMD_REG,
 337	.cache_type = REGCACHE_RBTREE,
 338	.max_register = AT86RF2XX_NUMREGS,
 339	.writeable_reg = at86rf230_reg_writeable,
 340	.readable_reg = at86rf230_reg_readable,
 341	.volatile_reg = at86rf230_reg_volatile,
 342	.precious_reg = at86rf230_reg_precious,
 343};
 344
 345static void
 346at86rf230_async_error_recover_complete(void *context)
 347{
 348	struct at86rf230_state_change *ctx = context;
 349	struct at86rf230_local *lp = ctx->lp;
 350
 351	if (ctx->free)
 352		kfree(ctx);
 353
 354	ieee802154_wake_queue(lp->hw);
 
 
 
 355}
 356
 357static void
 358at86rf230_async_error_recover(void *context)
 359{
 360	struct at86rf230_state_change *ctx = context;
 361	struct at86rf230_local *lp = ctx->lp;
 362
 363	lp->is_tx = 0;
 
 
 
 
 364	at86rf230_async_state_change(lp, ctx, STATE_RX_AACK_ON,
 365				     at86rf230_async_error_recover_complete);
 366}
 367
 368static inline void
 369at86rf230_async_error(struct at86rf230_local *lp,
 370		      struct at86rf230_state_change *ctx, int rc)
 371{
 372	dev_err(&lp->spi->dev, "spi_async error %d\n", rc);
 373
 374	at86rf230_async_state_change(lp, ctx, STATE_FORCE_TRX_OFF,
 375				     at86rf230_async_error_recover);
 376}
 377
 378/* Generic function to get some register value in async mode */
 379static void
 380at86rf230_async_read_reg(struct at86rf230_local *lp, u8 reg,
 381			 struct at86rf230_state_change *ctx,
 382			 void (*complete)(void *context))
 383{
 384	int rc;
 385
 386	u8 *tx_buf = ctx->buf;
 387
 388	tx_buf[0] = (reg & CMD_REG_MASK) | CMD_REG;
 389	ctx->msg.complete = complete;
 390	rc = spi_async(lp->spi, &ctx->msg);
 391	if (rc)
 392		at86rf230_async_error(lp, ctx, rc);
 393}
 394
 395static void
 396at86rf230_async_write_reg(struct at86rf230_local *lp, u8 reg, u8 val,
 397			  struct at86rf230_state_change *ctx,
 398			  void (*complete)(void *context))
 399{
 400	int rc;
 401
 402	ctx->buf[0] = (reg & CMD_REG_MASK) | CMD_REG | CMD_WRITE;
 403	ctx->buf[1] = val;
 404	ctx->msg.complete = complete;
 405	rc = spi_async(lp->spi, &ctx->msg);
 406	if (rc)
 407		at86rf230_async_error(lp, ctx, rc);
 408}
 409
 410static void
 411at86rf230_async_state_assert(void *context)
 412{
 413	struct at86rf230_state_change *ctx = context;
 414	struct at86rf230_local *lp = ctx->lp;
 415	const u8 *buf = ctx->buf;
 416	const u8 trx_state = buf[1] & TRX_STATE_MASK;
 417
 418	/* Assert state change */
 419	if (trx_state != ctx->to_state) {
 420		/* Special handling if transceiver state is in
 421		 * STATE_BUSY_RX_AACK and a SHR was detected.
 422		 */
 423		if  (trx_state == STATE_BUSY_RX_AACK) {
 424			/* Undocumented race condition. If we send a state
 425			 * change to STATE_RX_AACK_ON the transceiver could
 426			 * change his state automatically to STATE_BUSY_RX_AACK
 427			 * if a SHR was detected. This is not an error, but we
 428			 * can't assert this.
 429			 */
 430			if (ctx->to_state == STATE_RX_AACK_ON)
 431				goto done;
 432
 433			/* If we change to STATE_TX_ON without forcing and
 434			 * transceiver state is STATE_BUSY_RX_AACK, we wait
 435			 * 'tFrame + tPAck' receiving time. In this time the
 436			 * PDU should be received. If the transceiver is still
 437			 * in STATE_BUSY_RX_AACK, we run a force state change
 438			 * to STATE_TX_ON. This is a timeout handling, if the
 439			 * transceiver stucks in STATE_BUSY_RX_AACK.
 440			 *
 441			 * Additional we do several retries to try to get into
 442			 * TX_ON state without forcing. If the retries are
 443			 * higher or equal than AT86RF2XX_MAX_TX_RETRIES we
 444			 * will do a force change.
 445			 */
 446			if (ctx->to_state == STATE_TX_ON ||
 447			    ctx->to_state == STATE_TRX_OFF) {
 448				u8 state = ctx->to_state;
 449
 450				if (lp->tx_retry >= AT86RF2XX_MAX_TX_RETRIES)
 451					state = STATE_FORCE_TRX_OFF;
 452				lp->tx_retry++;
 453
 454				at86rf230_async_state_change(lp, ctx, state,
 455							     ctx->complete);
 456				return;
 457			}
 458		}
 459
 460		dev_warn(&lp->spi->dev, "unexcept state change from 0x%02x to 0x%02x. Actual state: 0x%02x\n",
 461			 ctx->from_state, ctx->to_state, trx_state);
 462	}
 463
 464done:
 465	if (ctx->complete)
 466		ctx->complete(context);
 467}
 468
 469static enum hrtimer_restart at86rf230_async_state_timer(struct hrtimer *timer)
 470{
 471	struct at86rf230_state_change *ctx =
 472		container_of(timer, struct at86rf230_state_change, timer);
 473	struct at86rf230_local *lp = ctx->lp;
 474
 475	at86rf230_async_read_reg(lp, RG_TRX_STATUS, ctx,
 476				 at86rf230_async_state_assert);
 477
 478	return HRTIMER_NORESTART;
 479}
 480
 481/* Do state change timing delay. */
 482static void
 483at86rf230_async_state_delay(void *context)
 484{
 485	struct at86rf230_state_change *ctx = context;
 486	struct at86rf230_local *lp = ctx->lp;
 487	struct at86rf2xx_chip_data *c = lp->data;
 488	bool force = false;
 489	ktime_t tim;
 490
 491	/* The force state changes are will show as normal states in the
 492	 * state status subregister. We change the to_state to the
 493	 * corresponding one and remember if it was a force change, this
 494	 * differs if we do a state change from STATE_BUSY_RX_AACK.
 495	 */
 496	switch (ctx->to_state) {
 497	case STATE_FORCE_TX_ON:
 498		ctx->to_state = STATE_TX_ON;
 499		force = true;
 500		break;
 501	case STATE_FORCE_TRX_OFF:
 502		ctx->to_state = STATE_TRX_OFF;
 503		force = true;
 504		break;
 505	default:
 506		break;
 507	}
 508
 509	switch (ctx->from_state) {
 510	case STATE_TRX_OFF:
 511		switch (ctx->to_state) {
 512		case STATE_RX_AACK_ON:
 513			tim = c->t_off_to_aack * NSEC_PER_USEC;
 514			/* state change from TRX_OFF to RX_AACK_ON to do a
 515			 * calibration, we need to reset the timeout for the
 516			 * next one.
 517			 */
 518			lp->cal_timeout = jiffies + AT86RF2XX_CAL_LOOP_TIMEOUT;
 519			goto change;
 520		case STATE_TX_ARET_ON:
 521		case STATE_TX_ON:
 522			tim = c->t_off_to_tx_on * NSEC_PER_USEC;
 523			/* state change from TRX_OFF to TX_ON or ARET_ON to do
 524			 * a calibration, we need to reset the timeout for the
 525			 * next one.
 526			 */
 527			lp->cal_timeout = jiffies + AT86RF2XX_CAL_LOOP_TIMEOUT;
 528			goto change;
 529		default:
 530			break;
 531		}
 532		break;
 533	case STATE_BUSY_RX_AACK:
 534		switch (ctx->to_state) {
 535		case STATE_TRX_OFF:
 536		case STATE_TX_ON:
 537			/* Wait for worst case receiving time if we
 538			 * didn't make a force change from BUSY_RX_AACK
 539			 * to TX_ON or TRX_OFF.
 540			 */
 541			if (!force) {
 542				tim = (c->t_frame + c->t_p_ack) * NSEC_PER_USEC;
 543				goto change;
 544			}
 545			break;
 546		default:
 547			break;
 548		}
 549		break;
 550	/* Default value, means RESET state */
 551	case STATE_P_ON:
 552		switch (ctx->to_state) {
 553		case STATE_TRX_OFF:
 554			tim = c->t_reset_to_off * NSEC_PER_USEC;
 555			goto change;
 556		default:
 557			break;
 558		}
 559		break;
 560	default:
 561		break;
 562	}
 563
 564	/* Default delay is 1us in the most cases */
 565	udelay(1);
 566	at86rf230_async_state_timer(&ctx->timer);
 567	return;
 568
 569change:
 570	hrtimer_start(&ctx->timer, tim, HRTIMER_MODE_REL);
 571}
 572
 573static void
 574at86rf230_async_state_change_start(void *context)
 575{
 576	struct at86rf230_state_change *ctx = context;
 577	struct at86rf230_local *lp = ctx->lp;
 578	u8 *buf = ctx->buf;
 579	const u8 trx_state = buf[1] & TRX_STATE_MASK;
 580
 581	/* Check for "possible" STATE_TRANSITION_IN_PROGRESS */
 582	if (trx_state == STATE_TRANSITION_IN_PROGRESS) {
 583		udelay(1);
 584		at86rf230_async_read_reg(lp, RG_TRX_STATUS, ctx,
 585					 at86rf230_async_state_change_start);
 586		return;
 587	}
 588
 589	/* Check if we already are in the state which we change in */
 590	if (trx_state == ctx->to_state) {
 591		if (ctx->complete)
 592			ctx->complete(context);
 593		return;
 594	}
 595
 596	/* Set current state to the context of state change */
 597	ctx->from_state = trx_state;
 598
 599	/* Going into the next step for a state change which do a timing
 600	 * relevant delay.
 601	 */
 602	at86rf230_async_write_reg(lp, RG_TRX_STATE, ctx->to_state, ctx,
 603				  at86rf230_async_state_delay);
 604}
 605
 606static void
 607at86rf230_async_state_change(struct at86rf230_local *lp,
 608			     struct at86rf230_state_change *ctx,
 609			     const u8 state, void (*complete)(void *context))
 610{
 611	/* Initialization for the state change context */
 612	ctx->to_state = state;
 613	ctx->complete = complete;
 614	at86rf230_async_read_reg(lp, RG_TRX_STATUS, ctx,
 615				 at86rf230_async_state_change_start);
 616}
 617
 618static void
 619at86rf230_sync_state_change_complete(void *context)
 620{
 621	struct at86rf230_state_change *ctx = context;
 622	struct at86rf230_local *lp = ctx->lp;
 623
 624	complete(&lp->state_complete);
 625}
 626
 627/* This function do a sync framework above the async state change.
 628 * Some callbacks of the IEEE 802.15.4 driver interface need to be
 629 * handled synchronously.
 630 */
 631static int
 632at86rf230_sync_state_change(struct at86rf230_local *lp, unsigned int state)
 633{
 634	unsigned long rc;
 635
 636	at86rf230_async_state_change(lp, &lp->state, state,
 637				     at86rf230_sync_state_change_complete);
 638
 639	rc = wait_for_completion_timeout(&lp->state_complete,
 640					 msecs_to_jiffies(100));
 641	if (!rc) {
 642		at86rf230_async_error(lp, &lp->state, -ETIMEDOUT);
 643		return -ETIMEDOUT;
 644	}
 645
 646	return 0;
 647}
 648
 649static void
 650at86rf230_tx_complete(void *context)
 651{
 652	struct at86rf230_state_change *ctx = context;
 653	struct at86rf230_local *lp = ctx->lp;
 654
 655	ieee802154_xmit_complete(lp->hw, lp->tx_skb, false);
 
 
 
 
 656	kfree(ctx);
 657}
 658
 659static void
 660at86rf230_tx_on(void *context)
 661{
 662	struct at86rf230_state_change *ctx = context;
 663	struct at86rf230_local *lp = ctx->lp;
 664
 665	at86rf230_async_state_change(lp, ctx, STATE_RX_AACK_ON,
 666				     at86rf230_tx_complete);
 667}
 668
 669static void
 670at86rf230_tx_trac_check(void *context)
 671{
 672	struct at86rf230_state_change *ctx = context;
 673	struct at86rf230_local *lp = ctx->lp;
 
 674
 675	if (IS_ENABLED(CONFIG_IEEE802154_AT86RF230_DEBUGFS)) {
 676		u8 trac = TRAC_MASK(ctx->buf[1]);
 677
 678		switch (trac) {
 679		case TRAC_SUCCESS:
 680			lp->trac.success++;
 681			break;
 682		case TRAC_SUCCESS_DATA_PENDING:
 683			lp->trac.success_data_pending++;
 684			break;
 685		case TRAC_CHANNEL_ACCESS_FAILURE:
 686			lp->trac.channel_access_failure++;
 687			break;
 688		case TRAC_NO_ACK:
 689			lp->trac.no_ack++;
 690			break;
 691		case TRAC_INVALID:
 692			lp->trac.invalid++;
 693			break;
 694		default:
 695			WARN_ONCE(1, "received tx trac status %d\n", trac);
 696			break;
 697		}
 698	}
 699
 700	at86rf230_async_state_change(lp, ctx, STATE_TX_ON, at86rf230_tx_on);
 701}
 702
 703static void
 704at86rf230_rx_read_frame_complete(void *context)
 705{
 706	struct at86rf230_state_change *ctx = context;
 707	struct at86rf230_local *lp = ctx->lp;
 708	const u8 *buf = ctx->buf;
 709	struct sk_buff *skb;
 710	u8 len, lqi;
 711
 712	len = buf[1];
 713	if (!ieee802154_is_valid_psdu_len(len)) {
 714		dev_vdbg(&lp->spi->dev, "corrupted frame received\n");
 715		len = IEEE802154_MTU;
 716	}
 717	lqi = buf[2 + len];
 718
 719	skb = dev_alloc_skb(IEEE802154_MTU);
 720	if (!skb) {
 721		dev_vdbg(&lp->spi->dev, "failed to allocate sk_buff\n");
 722		kfree(ctx);
 723		return;
 724	}
 725
 726	skb_put_data(skb, buf + 2, len);
 727	ieee802154_rx_irqsafe(lp->hw, skb, lqi);
 728	kfree(ctx);
 729}
 730
 731static void
 732at86rf230_rx_trac_check(void *context)
 733{
 734	struct at86rf230_state_change *ctx = context;
 735	struct at86rf230_local *lp = ctx->lp;
 736	u8 *buf = ctx->buf;
 737	int rc;
 738
 739	if (IS_ENABLED(CONFIG_IEEE802154_AT86RF230_DEBUGFS)) {
 740		u8 trac = TRAC_MASK(buf[1]);
 741
 742		switch (trac) {
 743		case TRAC_SUCCESS:
 744			lp->trac.success++;
 745			break;
 746		case TRAC_SUCCESS_WAIT_FOR_ACK:
 747			lp->trac.success_wait_for_ack++;
 748			break;
 749		case TRAC_INVALID:
 750			lp->trac.invalid++;
 751			break;
 752		default:
 753			WARN_ONCE(1, "received rx trac status %d\n", trac);
 754			break;
 755		}
 756	}
 757
 758	buf[0] = CMD_FB;
 759	ctx->trx.len = AT86RF2XX_MAX_BUF;
 760	ctx->msg.complete = at86rf230_rx_read_frame_complete;
 761	rc = spi_async(lp->spi, &ctx->msg);
 762	if (rc) {
 763		ctx->trx.len = 2;
 764		at86rf230_async_error(lp, ctx, rc);
 765	}
 766}
 767
 768static void
 769at86rf230_irq_trx_end(void *context)
 770{
 771	struct at86rf230_state_change *ctx = context;
 772	struct at86rf230_local *lp = ctx->lp;
 773
 774	if (lp->is_tx) {
 775		lp->is_tx = 0;
 776		at86rf230_async_read_reg(lp, RG_TRX_STATE, ctx,
 777					 at86rf230_tx_trac_check);
 778	} else {
 779		at86rf230_async_read_reg(lp, RG_TRX_STATE, ctx,
 780					 at86rf230_rx_trac_check);
 781	}
 782}
 783
 784static void
 785at86rf230_irq_status(void *context)
 786{
 787	struct at86rf230_state_change *ctx = context;
 788	struct at86rf230_local *lp = ctx->lp;
 789	const u8 *buf = ctx->buf;
 790	u8 irq = buf[1];
 791
 792	enable_irq(lp->spi->irq);
 793
 794	if (irq & IRQ_TRX_END) {
 795		at86rf230_irq_trx_end(ctx);
 796	} else {
 797		dev_err(&lp->spi->dev, "not supported irq %02x received\n",
 798			irq);
 799		kfree(ctx);
 800	}
 801}
 802
 803static void
 804at86rf230_setup_spi_messages(struct at86rf230_local *lp,
 805			     struct at86rf230_state_change *state)
 806{
 807	state->lp = lp;
 808	state->irq = lp->spi->irq;
 809	spi_message_init(&state->msg);
 810	state->msg.context = state;
 811	state->trx.len = 2;
 812	state->trx.tx_buf = state->buf;
 813	state->trx.rx_buf = state->buf;
 814	spi_message_add_tail(&state->trx, &state->msg);
 815	hrtimer_init(&state->timer, CLOCK_MONOTONIC, HRTIMER_MODE_REL);
 816	state->timer.function = at86rf230_async_state_timer;
 817}
 818
 819static irqreturn_t at86rf230_isr(int irq, void *data)
 820{
 821	struct at86rf230_local *lp = data;
 822	struct at86rf230_state_change *ctx;
 823	int rc;
 824
 825	disable_irq_nosync(irq);
 826
 827	ctx = kzalloc(sizeof(*ctx), GFP_ATOMIC);
 828	if (!ctx) {
 829		enable_irq(irq);
 830		return IRQ_NONE;
 831	}
 832
 833	at86rf230_setup_spi_messages(lp, ctx);
 834	/* tell on error handling to free ctx */
 835	ctx->free = true;
 836
 837	ctx->buf[0] = (RG_IRQ_STATUS & CMD_REG_MASK) | CMD_REG;
 838	ctx->msg.complete = at86rf230_irq_status;
 839	rc = spi_async(lp->spi, &ctx->msg);
 840	if (rc) {
 841		at86rf230_async_error(lp, ctx, rc);
 842		enable_irq(irq);
 843		return IRQ_NONE;
 844	}
 845
 846	return IRQ_HANDLED;
 847}
 848
 849static void
 850at86rf230_write_frame_complete(void *context)
 851{
 852	struct at86rf230_state_change *ctx = context;
 853	struct at86rf230_local *lp = ctx->lp;
 854
 855	ctx->trx.len = 2;
 856
 857	if (gpio_is_valid(lp->slp_tr))
 858		at86rf230_slp_tr_rising_edge(lp);
 859	else
 860		at86rf230_async_write_reg(lp, RG_TRX_STATE, STATE_BUSY_TX, ctx,
 861					  NULL);
 862}
 863
 864static void
 865at86rf230_write_frame(void *context)
 866{
 867	struct at86rf230_state_change *ctx = context;
 868	struct at86rf230_local *lp = ctx->lp;
 869	struct sk_buff *skb = lp->tx_skb;
 870	u8 *buf = ctx->buf;
 871	int rc;
 872
 873	lp->is_tx = 1;
 874
 875	buf[0] = CMD_FB | CMD_WRITE;
 876	buf[1] = skb->len + 2;
 877	memcpy(buf + 2, skb->data, skb->len);
 878	ctx->trx.len = skb->len + 2;
 879	ctx->msg.complete = at86rf230_write_frame_complete;
 880	rc = spi_async(lp->spi, &ctx->msg);
 881	if (rc) {
 882		ctx->trx.len = 2;
 883		at86rf230_async_error(lp, ctx, rc);
 884	}
 885}
 886
 887static void
 888at86rf230_xmit_tx_on(void *context)
 889{
 890	struct at86rf230_state_change *ctx = context;
 891	struct at86rf230_local *lp = ctx->lp;
 892
 893	at86rf230_async_state_change(lp, ctx, STATE_TX_ARET_ON,
 894				     at86rf230_write_frame);
 895}
 896
 897static void
 898at86rf230_xmit_start(void *context)
 899{
 900	struct at86rf230_state_change *ctx = context;
 901	struct at86rf230_local *lp = ctx->lp;
 902
 903	/* check if we change from off state */
 904	if (lp->is_tx_from_off)
 905		at86rf230_async_state_change(lp, ctx, STATE_TX_ARET_ON,
 906					     at86rf230_write_frame);
 907	else
 908		at86rf230_async_state_change(lp, ctx, STATE_TX_ON,
 909					     at86rf230_xmit_tx_on);
 910}
 911
 912static int
 913at86rf230_xmit(struct ieee802154_hw *hw, struct sk_buff *skb)
 914{
 915	struct at86rf230_local *lp = hw->priv;
 916	struct at86rf230_state_change *ctx = &lp->tx;
 917
 918	lp->tx_skb = skb;
 919	lp->tx_retry = 0;
 920
 921	/* After 5 minutes in PLL and the same frequency we run again the
 922	 * calibration loops which is recommended by at86rf2xx datasheets.
 923	 *
 924	 * The calibration is initiate by a state change from TRX_OFF
 925	 * to TX_ON, the lp->cal_timeout should be reinit by state_delay
 926	 * function then to start in the next 5 minutes.
 927	 */
 928	if (time_is_before_jiffies(lp->cal_timeout)) {
 929		lp->is_tx_from_off = true;
 930		at86rf230_async_state_change(lp, ctx, STATE_TRX_OFF,
 931					     at86rf230_xmit_start);
 932	} else {
 933		lp->is_tx_from_off = false;
 934		at86rf230_xmit_start(ctx);
 935	}
 936
 937	return 0;
 938}
 939
 940static int
 941at86rf230_ed(struct ieee802154_hw *hw, u8 *level)
 942{
 943	BUG_ON(!level);
 944	*level = 0xbe;
 945	return 0;
 946}
 947
 948static int
 949at86rf230_start(struct ieee802154_hw *hw)
 950{
 951	struct at86rf230_local *lp = hw->priv;
 952
 953	/* reset trac stats on start */
 954	if (IS_ENABLED(CONFIG_IEEE802154_AT86RF230_DEBUGFS))
 955		memset(&lp->trac, 0, sizeof(struct at86rf230_trac));
 956
 957	at86rf230_awake(lp);
 958	enable_irq(lp->spi->irq);
 959
 960	return at86rf230_sync_state_change(lp, STATE_RX_AACK_ON);
 961}
 962
 963static void
 964at86rf230_stop(struct ieee802154_hw *hw)
 965{
 966	struct at86rf230_local *lp = hw->priv;
 967	u8 csma_seed[2];
 968
 969	at86rf230_sync_state_change(lp, STATE_FORCE_TRX_OFF);
 970
 971	disable_irq(lp->spi->irq);
 972
 973	/* It's recommended to set random new csma_seeds before sleep state.
 974	 * Makes only sense in the stop callback, not doing this inside of
 975	 * at86rf230_sleep, this is also used when we don't transmit afterwards
 976	 * when calling start callback again.
 977	 */
 978	get_random_bytes(csma_seed, ARRAY_SIZE(csma_seed));
 979	at86rf230_write_subreg(lp, SR_CSMA_SEED_0, csma_seed[0]);
 980	at86rf230_write_subreg(lp, SR_CSMA_SEED_1, csma_seed[1]);
 981
 982	at86rf230_sleep(lp);
 983}
 984
 985static int
 986at86rf23x_set_channel(struct at86rf230_local *lp, u8 page, u8 channel)
 987{
 988	return at86rf230_write_subreg(lp, SR_CHANNEL, channel);
 989}
 990
 991#define AT86RF2XX_MAX_ED_LEVELS 0xF
 992static const s32 at86rf233_ed_levels[AT86RF2XX_MAX_ED_LEVELS + 1] = {
 993	-9400, -9200, -9000, -8800, -8600, -8400, -8200, -8000, -7800, -7600,
 994	-7400, -7200, -7000, -6800, -6600, -6400,
 995};
 996
 997static const s32 at86rf231_ed_levels[AT86RF2XX_MAX_ED_LEVELS + 1] = {
 998	-9100, -8900, -8700, -8500, -8300, -8100, -7900, -7700, -7500, -7300,
 999	-7100, -6900, -6700, -6500, -6300, -6100,
1000};
1001
1002static const s32 at86rf212_ed_levels_100[AT86RF2XX_MAX_ED_LEVELS + 1] = {
1003	-10000, -9800, -9600, -9400, -9200, -9000, -8800, -8600, -8400, -8200,
1004	-8000, -7800, -7600, -7400, -7200, -7000,
1005};
1006
1007static const s32 at86rf212_ed_levels_98[AT86RF2XX_MAX_ED_LEVELS + 1] = {
1008	-9800, -9600, -9400, -9200, -9000, -8800, -8600, -8400, -8200, -8000,
1009	-7800, -7600, -7400, -7200, -7000, -6800,
1010};
1011
1012static inline int
1013at86rf212_update_cca_ed_level(struct at86rf230_local *lp, int rssi_base_val)
1014{
1015	unsigned int cca_ed_thres;
1016	int rc;
1017
1018	rc = at86rf230_read_subreg(lp, SR_CCA_ED_THRES, &cca_ed_thres);
1019	if (rc < 0)
1020		return rc;
1021
1022	switch (rssi_base_val) {
1023	case -98:
1024		lp->hw->phy->supported.cca_ed_levels = at86rf212_ed_levels_98;
1025		lp->hw->phy->supported.cca_ed_levels_size = ARRAY_SIZE(at86rf212_ed_levels_98);
1026		lp->hw->phy->cca_ed_level = at86rf212_ed_levels_98[cca_ed_thres];
1027		break;
1028	case -100:
1029		lp->hw->phy->supported.cca_ed_levels = at86rf212_ed_levels_100;
1030		lp->hw->phy->supported.cca_ed_levels_size = ARRAY_SIZE(at86rf212_ed_levels_100);
1031		lp->hw->phy->cca_ed_level = at86rf212_ed_levels_100[cca_ed_thres];
1032		break;
1033	default:
1034		WARN_ON(1);
1035	}
1036
1037	return 0;
1038}
1039
1040static int
1041at86rf212_set_channel(struct at86rf230_local *lp, u8 page, u8 channel)
1042{
1043	int rc;
1044
1045	if (channel == 0)
1046		rc = at86rf230_write_subreg(lp, SR_SUB_MODE, 0);
1047	else
1048		rc = at86rf230_write_subreg(lp, SR_SUB_MODE, 1);
1049	if (rc < 0)
1050		return rc;
1051
1052	if (page == 0) {
1053		rc = at86rf230_write_subreg(lp, SR_BPSK_QPSK, 0);
1054		lp->data->rssi_base_val = -100;
1055	} else {
1056		rc = at86rf230_write_subreg(lp, SR_BPSK_QPSK, 1);
1057		lp->data->rssi_base_val = -98;
1058	}
1059	if (rc < 0)
1060		return rc;
1061
1062	rc = at86rf212_update_cca_ed_level(lp, lp->data->rssi_base_val);
1063	if (rc < 0)
1064		return rc;
1065
1066	/* This sets the symbol_duration according frequency on the 212.
1067	 * TODO move this handling while set channel and page in cfg802154.
1068	 * We can do that, this timings are according 802.15.4 standard.
1069	 * If we do that in cfg802154, this is a more generic calculation.
1070	 *
1071	 * This should also protected from ifs_timer. Means cancel timer and
1072	 * init with a new value. For now, this is okay.
1073	 */
1074	if (channel == 0) {
1075		if (page == 0) {
1076			/* SUB:0 and BPSK:0 -> BPSK-20 */
1077			lp->hw->phy->symbol_duration = 50;
1078		} else {
1079			/* SUB:1 and BPSK:0 -> BPSK-40 */
1080			lp->hw->phy->symbol_duration = 25;
1081		}
1082	} else {
1083		if (page == 0)
1084			/* SUB:0 and BPSK:1 -> OQPSK-100/200/400 */
1085			lp->hw->phy->symbol_duration = 40;
1086		else
1087			/* SUB:1 and BPSK:1 -> OQPSK-250/500/1000 */
1088			lp->hw->phy->symbol_duration = 16;
1089	}
1090
1091	lp->hw->phy->lifs_period = IEEE802154_LIFS_PERIOD *
1092				   lp->hw->phy->symbol_duration;
1093	lp->hw->phy->sifs_period = IEEE802154_SIFS_PERIOD *
1094				   lp->hw->phy->symbol_duration;
1095
1096	return at86rf230_write_subreg(lp, SR_CHANNEL, channel);
1097}
1098
1099static int
1100at86rf230_channel(struct ieee802154_hw *hw, u8 page, u8 channel)
1101{
1102	struct at86rf230_local *lp = hw->priv;
1103	int rc;
1104
1105	rc = lp->data->set_channel(lp, page, channel);
1106	/* Wait for PLL */
1107	usleep_range(lp->data->t_channel_switch,
1108		     lp->data->t_channel_switch + 10);
1109
1110	lp->cal_timeout = jiffies + AT86RF2XX_CAL_LOOP_TIMEOUT;
1111	return rc;
1112}
1113
1114static int
1115at86rf230_set_hw_addr_filt(struct ieee802154_hw *hw,
1116			   struct ieee802154_hw_addr_filt *filt,
1117			   unsigned long changed)
1118{
1119	struct at86rf230_local *lp = hw->priv;
1120
1121	if (changed & IEEE802154_AFILT_SADDR_CHANGED) {
1122		u16 addr = le16_to_cpu(filt->short_addr);
1123
1124		dev_vdbg(&lp->spi->dev,
1125			 "at86rf230_set_hw_addr_filt called for saddr\n");
1126		__at86rf230_write(lp, RG_SHORT_ADDR_0, addr);
1127		__at86rf230_write(lp, RG_SHORT_ADDR_1, addr >> 8);
1128	}
1129
1130	if (changed & IEEE802154_AFILT_PANID_CHANGED) {
1131		u16 pan = le16_to_cpu(filt->pan_id);
1132
1133		dev_vdbg(&lp->spi->dev,
1134			 "at86rf230_set_hw_addr_filt called for pan id\n");
1135		__at86rf230_write(lp, RG_PAN_ID_0, pan);
1136		__at86rf230_write(lp, RG_PAN_ID_1, pan >> 8);
1137	}
1138
1139	if (changed & IEEE802154_AFILT_IEEEADDR_CHANGED) {
1140		u8 i, addr[8];
1141
1142		memcpy(addr, &filt->ieee_addr, 8);
1143		dev_vdbg(&lp->spi->dev,
1144			 "at86rf230_set_hw_addr_filt called for IEEE addr\n");
1145		for (i = 0; i < 8; i++)
1146			__at86rf230_write(lp, RG_IEEE_ADDR_0 + i, addr[i]);
1147	}
1148
1149	if (changed & IEEE802154_AFILT_PANC_CHANGED) {
1150		dev_vdbg(&lp->spi->dev,
1151			 "at86rf230_set_hw_addr_filt called for panc change\n");
1152		if (filt->pan_coord)
1153			at86rf230_write_subreg(lp, SR_AACK_I_AM_COORD, 1);
1154		else
1155			at86rf230_write_subreg(lp, SR_AACK_I_AM_COORD, 0);
1156	}
1157
1158	return 0;
1159}
1160
1161#define AT86RF23X_MAX_TX_POWERS 0xF
1162static const s32 at86rf233_powers[AT86RF23X_MAX_TX_POWERS + 1] = {
1163	400, 370, 340, 300, 250, 200, 100, 0, -100, -200, -300, -400, -600,
1164	-800, -1200, -1700,
1165};
1166
1167static const s32 at86rf231_powers[AT86RF23X_MAX_TX_POWERS + 1] = {
1168	300, 280, 230, 180, 130, 70, 0, -100, -200, -300, -400, -500, -700,
1169	-900, -1200, -1700,
1170};
1171
1172#define AT86RF212_MAX_TX_POWERS 0x1F
1173static const s32 at86rf212_powers[AT86RF212_MAX_TX_POWERS + 1] = {
1174	500, 400, 300, 200, 100, 0, -100, -200, -300, -400, -500, -600, -700,
1175	-800, -900, -1000, -1100, -1200, -1300, -1400, -1500, -1600, -1700,
1176	-1800, -1900, -2000, -2100, -2200, -2300, -2400, -2500, -2600,
1177};
1178
1179static int
1180at86rf23x_set_txpower(struct at86rf230_local *lp, s32 mbm)
1181{
1182	u32 i;
1183
1184	for (i = 0; i < lp->hw->phy->supported.tx_powers_size; i++) {
1185		if (lp->hw->phy->supported.tx_powers[i] == mbm)
1186			return at86rf230_write_subreg(lp, SR_TX_PWR_23X, i);
1187	}
1188
1189	return -EINVAL;
1190}
1191
1192static int
1193at86rf212_set_txpower(struct at86rf230_local *lp, s32 mbm)
1194{
1195	u32 i;
1196
1197	for (i = 0; i < lp->hw->phy->supported.tx_powers_size; i++) {
1198		if (lp->hw->phy->supported.tx_powers[i] == mbm)
1199			return at86rf230_write_subreg(lp, SR_TX_PWR_212, i);
1200	}
1201
1202	return -EINVAL;
1203}
1204
1205static int
1206at86rf230_set_txpower(struct ieee802154_hw *hw, s32 mbm)
1207{
1208	struct at86rf230_local *lp = hw->priv;
1209
1210	return lp->data->set_txpower(lp, mbm);
1211}
1212
1213static int
1214at86rf230_set_lbt(struct ieee802154_hw *hw, bool on)
1215{
1216	struct at86rf230_local *lp = hw->priv;
1217
1218	return at86rf230_write_subreg(lp, SR_CSMA_LBT_MODE, on);
1219}
1220
1221static int
1222at86rf230_set_cca_mode(struct ieee802154_hw *hw,
1223		       const struct wpan_phy_cca *cca)
1224{
1225	struct at86rf230_local *lp = hw->priv;
1226	u8 val;
1227
1228	/* mapping 802.15.4 to driver spec */
1229	switch (cca->mode) {
1230	case NL802154_CCA_ENERGY:
1231		val = 1;
1232		break;
1233	case NL802154_CCA_CARRIER:
1234		val = 2;
1235		break;
1236	case NL802154_CCA_ENERGY_CARRIER:
1237		switch (cca->opt) {
1238		case NL802154_CCA_OPT_ENERGY_CARRIER_AND:
1239			val = 3;
1240			break;
1241		case NL802154_CCA_OPT_ENERGY_CARRIER_OR:
1242			val = 0;
1243			break;
1244		default:
1245			return -EINVAL;
1246		}
1247		break;
1248	default:
1249		return -EINVAL;
1250	}
1251
1252	return at86rf230_write_subreg(lp, SR_CCA_MODE, val);
1253}
1254
1255
1256static int
1257at86rf230_set_cca_ed_level(struct ieee802154_hw *hw, s32 mbm)
1258{
1259	struct at86rf230_local *lp = hw->priv;
1260	u32 i;
1261
1262	for (i = 0; i < hw->phy->supported.cca_ed_levels_size; i++) {
1263		if (hw->phy->supported.cca_ed_levels[i] == mbm)
1264			return at86rf230_write_subreg(lp, SR_CCA_ED_THRES, i);
1265	}
1266
1267	return -EINVAL;
1268}
1269
1270static int
1271at86rf230_set_csma_params(struct ieee802154_hw *hw, u8 min_be, u8 max_be,
1272			  u8 retries)
1273{
1274	struct at86rf230_local *lp = hw->priv;
1275	int rc;
1276
1277	rc = at86rf230_write_subreg(lp, SR_MIN_BE, min_be);
1278	if (rc)
1279		return rc;
1280
1281	rc = at86rf230_write_subreg(lp, SR_MAX_BE, max_be);
1282	if (rc)
1283		return rc;
1284
1285	return at86rf230_write_subreg(lp, SR_MAX_CSMA_RETRIES, retries);
1286}
1287
1288static int
1289at86rf230_set_frame_retries(struct ieee802154_hw *hw, s8 retries)
1290{
1291	struct at86rf230_local *lp = hw->priv;
1292
1293	return at86rf230_write_subreg(lp, SR_MAX_FRAME_RETRIES, retries);
1294}
1295
1296static int
1297at86rf230_set_promiscuous_mode(struct ieee802154_hw *hw, const bool on)
1298{
1299	struct at86rf230_local *lp = hw->priv;
1300	int rc;
1301
1302	if (on) {
1303		rc = at86rf230_write_subreg(lp, SR_AACK_DIS_ACK, 1);
1304		if (rc < 0)
1305			return rc;
1306
1307		rc = at86rf230_write_subreg(lp, SR_AACK_PROM_MODE, 1);
1308		if (rc < 0)
1309			return rc;
1310	} else {
1311		rc = at86rf230_write_subreg(lp, SR_AACK_PROM_MODE, 0);
1312		if (rc < 0)
1313			return rc;
1314
1315		rc = at86rf230_write_subreg(lp, SR_AACK_DIS_ACK, 0);
1316		if (rc < 0)
1317			return rc;
1318	}
1319
1320	return 0;
1321}
1322
1323static const struct ieee802154_ops at86rf230_ops = {
1324	.owner = THIS_MODULE,
1325	.xmit_async = at86rf230_xmit,
1326	.ed = at86rf230_ed,
1327	.set_channel = at86rf230_channel,
1328	.start = at86rf230_start,
1329	.stop = at86rf230_stop,
1330	.set_hw_addr_filt = at86rf230_set_hw_addr_filt,
1331	.set_txpower = at86rf230_set_txpower,
1332	.set_lbt = at86rf230_set_lbt,
1333	.set_cca_mode = at86rf230_set_cca_mode,
1334	.set_cca_ed_level = at86rf230_set_cca_ed_level,
1335	.set_csma_params = at86rf230_set_csma_params,
1336	.set_frame_retries = at86rf230_set_frame_retries,
1337	.set_promiscuous_mode = at86rf230_set_promiscuous_mode,
1338};
1339
1340static struct at86rf2xx_chip_data at86rf233_data = {
1341	.t_sleep_cycle = 330,
1342	.t_channel_switch = 11,
1343	.t_reset_to_off = 26,
1344	.t_off_to_aack = 80,
1345	.t_off_to_tx_on = 80,
1346	.t_off_to_sleep = 35,
1347	.t_sleep_to_off = 1000,
1348	.t_frame = 4096,
1349	.t_p_ack = 545,
1350	.rssi_base_val = -94,
1351	.set_channel = at86rf23x_set_channel,
1352	.set_txpower = at86rf23x_set_txpower,
1353};
1354
1355static struct at86rf2xx_chip_data at86rf231_data = {
1356	.t_sleep_cycle = 330,
1357	.t_channel_switch = 24,
1358	.t_reset_to_off = 37,
1359	.t_off_to_aack = 110,
1360	.t_off_to_tx_on = 110,
1361	.t_off_to_sleep = 35,
1362	.t_sleep_to_off = 1000,
1363	.t_frame = 4096,
1364	.t_p_ack = 545,
1365	.rssi_base_val = -91,
1366	.set_channel = at86rf23x_set_channel,
1367	.set_txpower = at86rf23x_set_txpower,
1368};
1369
1370static struct at86rf2xx_chip_data at86rf212_data = {
1371	.t_sleep_cycle = 330,
1372	.t_channel_switch = 11,
1373	.t_reset_to_off = 26,
1374	.t_off_to_aack = 200,
1375	.t_off_to_tx_on = 200,
1376	.t_off_to_sleep = 35,
1377	.t_sleep_to_off = 1000,
1378	.t_frame = 4096,
1379	.t_p_ack = 545,
1380	.rssi_base_val = -100,
1381	.set_channel = at86rf212_set_channel,
1382	.set_txpower = at86rf212_set_txpower,
1383};
1384
1385static int at86rf230_hw_init(struct at86rf230_local *lp, u8 xtal_trim)
1386{
1387	int rc, irq_type, irq_pol = IRQ_ACTIVE_HIGH;
1388	unsigned int dvdd;
1389	u8 csma_seed[2];
1390
1391	rc = at86rf230_sync_state_change(lp, STATE_FORCE_TRX_OFF);
1392	if (rc)
1393		return rc;
1394
1395	irq_type = irq_get_trigger_type(lp->spi->irq);
1396	if (irq_type == IRQ_TYPE_EDGE_FALLING ||
1397	    irq_type == IRQ_TYPE_LEVEL_LOW)
1398		irq_pol = IRQ_ACTIVE_LOW;
1399
1400	rc = at86rf230_write_subreg(lp, SR_IRQ_POLARITY, irq_pol);
1401	if (rc)
1402		return rc;
1403
1404	rc = at86rf230_write_subreg(lp, SR_RX_SAFE_MODE, 1);
1405	if (rc)
1406		return rc;
1407
1408	rc = at86rf230_write_subreg(lp, SR_IRQ_MASK, IRQ_TRX_END);
1409	if (rc)
1410		return rc;
1411
1412	/* reset values differs in at86rf231 and at86rf233 */
1413	rc = at86rf230_write_subreg(lp, SR_IRQ_MASK_MODE, 0);
1414	if (rc)
1415		return rc;
1416
1417	get_random_bytes(csma_seed, ARRAY_SIZE(csma_seed));
1418	rc = at86rf230_write_subreg(lp, SR_CSMA_SEED_0, csma_seed[0]);
1419	if (rc)
1420		return rc;
1421	rc = at86rf230_write_subreg(lp, SR_CSMA_SEED_1, csma_seed[1]);
1422	if (rc)
1423		return rc;
1424
1425	/* CLKM changes are applied immediately */
1426	rc = at86rf230_write_subreg(lp, SR_CLKM_SHA_SEL, 0x00);
1427	if (rc)
1428		return rc;
1429
1430	/* Turn CLKM Off */
1431	rc = at86rf230_write_subreg(lp, SR_CLKM_CTRL, 0x00);
1432	if (rc)
1433		return rc;
1434	/* Wait the next SLEEP cycle */
1435	usleep_range(lp->data->t_sleep_cycle,
1436		     lp->data->t_sleep_cycle + 100);
1437
1438	/* xtal_trim value is calculated by:
1439	 * CL = 0.5 * (CX + CTRIM + CPAR)
1440	 *
1441	 * whereas:
1442	 * CL = capacitor of used crystal
1443	 * CX = connected capacitors at xtal pins
1444	 * CPAR = in all at86rf2xx datasheets this is a constant value 3 pF,
1445	 *	  but this is different on each board setup. You need to fine
1446	 *	  tuning this value via CTRIM.
1447	 * CTRIM = variable capacitor setting. Resolution is 0.3 pF range is
1448	 *	   0 pF upto 4.5 pF.
1449	 *
1450	 * Examples:
1451	 * atben transceiver:
1452	 *
1453	 * CL = 8 pF
1454	 * CX = 12 pF
1455	 * CPAR = 3 pF (We assume the magic constant from datasheet)
1456	 * CTRIM = 0.9 pF
1457	 *
1458	 * (12+0.9+3)/2 = 7.95 which is nearly at 8 pF
1459	 *
1460	 * xtal_trim = 0x3
1461	 *
1462	 * openlabs transceiver:
1463	 *
1464	 * CL = 16 pF
1465	 * CX = 22 pF
1466	 * CPAR = 3 pF (We assume the magic constant from datasheet)
1467	 * CTRIM = 4.5 pF
1468	 *
1469	 * (22+4.5+3)/2 = 14.75 which is the nearest value to 16 pF
1470	 *
1471	 * xtal_trim = 0xf
1472	 */
1473	rc = at86rf230_write_subreg(lp, SR_XTAL_TRIM, xtal_trim);
1474	if (rc)
1475		return rc;
1476
1477	rc = at86rf230_read_subreg(lp, SR_DVDD_OK, &dvdd);
1478	if (rc)
1479		return rc;
1480	if (!dvdd) {
1481		dev_err(&lp->spi->dev, "DVDD error\n");
1482		return -EINVAL;
1483	}
1484
1485	/* Force setting slotted operation bit to 0. Sometimes the atben
1486	 * sets this bit and I don't know why. We set this always force
1487	 * to zero while probing.
1488	 */
1489	return at86rf230_write_subreg(lp, SR_SLOTTED_OPERATION, 0);
1490}
1491
1492static int
1493at86rf230_get_pdata(struct spi_device *spi, int *rstn, int *slp_tr,
1494		    u8 *xtal_trim)
1495{
1496	struct at86rf230_platform_data *pdata = spi->dev.platform_data;
1497	int ret;
1498
1499	if (!IS_ENABLED(CONFIG_OF) || !spi->dev.of_node) {
1500		if (!pdata)
1501			return -ENOENT;
1502
1503		*rstn = pdata->rstn;
1504		*slp_tr = pdata->slp_tr;
1505		*xtal_trim = pdata->xtal_trim;
1506		return 0;
1507	}
1508
1509	*rstn = of_get_named_gpio(spi->dev.of_node, "reset-gpio", 0);
1510	*slp_tr = of_get_named_gpio(spi->dev.of_node, "sleep-gpio", 0);
1511	ret = of_property_read_u8(spi->dev.of_node, "xtal-trim", xtal_trim);
1512	if (ret < 0 && ret != -EINVAL)
1513		return ret;
1514
1515	return 0;
1516}
1517
1518static int
1519at86rf230_detect_device(struct at86rf230_local *lp)
1520{
1521	unsigned int part, version, val;
1522	u16 man_id = 0;
1523	const char *chip;
1524	int rc;
1525
1526	rc = __at86rf230_read(lp, RG_MAN_ID_0, &val);
1527	if (rc)
1528		return rc;
1529	man_id |= val;
1530
1531	rc = __at86rf230_read(lp, RG_MAN_ID_1, &val);
1532	if (rc)
1533		return rc;
1534	man_id |= (val << 8);
1535
1536	rc = __at86rf230_read(lp, RG_PART_NUM, &part);
1537	if (rc)
1538		return rc;
1539
1540	rc = __at86rf230_read(lp, RG_VERSION_NUM, &version);
1541	if (rc)
1542		return rc;
1543
1544	if (man_id != 0x001f) {
1545		dev_err(&lp->spi->dev, "Non-Atmel dev found (MAN_ID %02x %02x)\n",
1546			man_id >> 8, man_id & 0xFF);
1547		return -EINVAL;
1548	}
1549
1550	lp->hw->flags = IEEE802154_HW_TX_OMIT_CKSUM |
1551			IEEE802154_HW_CSMA_PARAMS |
1552			IEEE802154_HW_FRAME_RETRIES | IEEE802154_HW_AFILT |
1553			IEEE802154_HW_PROMISCUOUS;
1554
1555	lp->hw->phy->flags = WPAN_PHY_FLAG_TXPOWER |
1556			     WPAN_PHY_FLAG_CCA_ED_LEVEL |
1557			     WPAN_PHY_FLAG_CCA_MODE;
1558
1559	lp->hw->phy->supported.cca_modes = BIT(NL802154_CCA_ENERGY) |
1560		BIT(NL802154_CCA_CARRIER) | BIT(NL802154_CCA_ENERGY_CARRIER);
1561	lp->hw->phy->supported.cca_opts = BIT(NL802154_CCA_OPT_ENERGY_CARRIER_AND) |
1562		BIT(NL802154_CCA_OPT_ENERGY_CARRIER_OR);
1563
1564	lp->hw->phy->cca.mode = NL802154_CCA_ENERGY;
1565
1566	switch (part) {
1567	case 2:
1568		chip = "at86rf230";
1569		rc = -ENOTSUPP;
1570		goto not_supp;
1571	case 3:
1572		chip = "at86rf231";
1573		lp->data = &at86rf231_data;
1574		lp->hw->phy->supported.channels[0] = 0x7FFF800;
1575		lp->hw->phy->current_channel = 11;
1576		lp->hw->phy->symbol_duration = 16;
1577		lp->hw->phy->supported.tx_powers = at86rf231_powers;
1578		lp->hw->phy->supported.tx_powers_size = ARRAY_SIZE(at86rf231_powers);
1579		lp->hw->phy->supported.cca_ed_levels = at86rf231_ed_levels;
1580		lp->hw->phy->supported.cca_ed_levels_size = ARRAY_SIZE(at86rf231_ed_levels);
1581		break;
1582	case 7:
1583		chip = "at86rf212";
1584		lp->data = &at86rf212_data;
1585		lp->hw->flags |= IEEE802154_HW_LBT;
1586		lp->hw->phy->supported.channels[0] = 0x00007FF;
1587		lp->hw->phy->supported.channels[2] = 0x00007FF;
1588		lp->hw->phy->current_channel = 5;
1589		lp->hw->phy->symbol_duration = 25;
1590		lp->hw->phy->supported.lbt = NL802154_SUPPORTED_BOOL_BOTH;
1591		lp->hw->phy->supported.tx_powers = at86rf212_powers;
1592		lp->hw->phy->supported.tx_powers_size = ARRAY_SIZE(at86rf212_powers);
1593		lp->hw->phy->supported.cca_ed_levels = at86rf212_ed_levels_100;
1594		lp->hw->phy->supported.cca_ed_levels_size = ARRAY_SIZE(at86rf212_ed_levels_100);
1595		break;
1596	case 11:
1597		chip = "at86rf233";
1598		lp->data = &at86rf233_data;
1599		lp->hw->phy->supported.channels[0] = 0x7FFF800;
1600		lp->hw->phy->current_channel = 13;
1601		lp->hw->phy->symbol_duration = 16;
1602		lp->hw->phy->supported.tx_powers = at86rf233_powers;
1603		lp->hw->phy->supported.tx_powers_size = ARRAY_SIZE(at86rf233_powers);
1604		lp->hw->phy->supported.cca_ed_levels = at86rf233_ed_levels;
1605		lp->hw->phy->supported.cca_ed_levels_size = ARRAY_SIZE(at86rf233_ed_levels);
1606		break;
1607	default:
1608		chip = "unknown";
1609		rc = -ENOTSUPP;
1610		goto not_supp;
1611	}
1612
1613	lp->hw->phy->cca_ed_level = lp->hw->phy->supported.cca_ed_levels[7];
1614	lp->hw->phy->transmit_power = lp->hw->phy->supported.tx_powers[0];
1615
1616not_supp:
1617	dev_info(&lp->spi->dev, "Detected %s chip version %d\n", chip, version);
1618
1619	return rc;
1620}
1621
1622#ifdef CONFIG_IEEE802154_AT86RF230_DEBUGFS
1623static struct dentry *at86rf230_debugfs_root;
1624
1625static int at86rf230_stats_show(struct seq_file *file, void *offset)
1626{
1627	struct at86rf230_local *lp = file->private;
1628
1629	seq_printf(file, "SUCCESS:\t\t%8llu\n", lp->trac.success);
1630	seq_printf(file, "SUCCESS_DATA_PENDING:\t%8llu\n",
1631		   lp->trac.success_data_pending);
1632	seq_printf(file, "SUCCESS_WAIT_FOR_ACK:\t%8llu\n",
1633		   lp->trac.success_wait_for_ack);
1634	seq_printf(file, "CHANNEL_ACCESS_FAILURE:\t%8llu\n",
1635		   lp->trac.channel_access_failure);
1636	seq_printf(file, "NO_ACK:\t\t\t%8llu\n", lp->trac.no_ack);
1637	seq_printf(file, "INVALID:\t\t%8llu\n", lp->trac.invalid);
1638	return 0;
1639}
1640
1641static int at86rf230_stats_open(struct inode *inode, struct file *file)
1642{
1643	return single_open(file, at86rf230_stats_show, inode->i_private);
1644}
1645
1646static const struct file_operations at86rf230_stats_fops = {
1647	.open		= at86rf230_stats_open,
1648	.read		= seq_read,
1649	.llseek		= seq_lseek,
1650	.release	= single_release,
1651};
1652
1653static int at86rf230_debugfs_init(struct at86rf230_local *lp)
1654{
1655	char debugfs_dir_name[DNAME_INLINE_LEN + 1] = "at86rf230-";
1656	struct dentry *stats;
1657
1658	strncat(debugfs_dir_name, dev_name(&lp->spi->dev), DNAME_INLINE_LEN);
1659
1660	at86rf230_debugfs_root = debugfs_create_dir(debugfs_dir_name, NULL);
1661	if (!at86rf230_debugfs_root)
1662		return -ENOMEM;
1663
1664	stats = debugfs_create_file("trac_stats", 0444,
1665				    at86rf230_debugfs_root, lp,
1666				    &at86rf230_stats_fops);
1667	if (!stats)
1668		return -ENOMEM;
1669
1670	return 0;
1671}
1672
1673static void at86rf230_debugfs_remove(void)
1674{
1675	debugfs_remove_recursive(at86rf230_debugfs_root);
1676}
1677#else
1678static int at86rf230_debugfs_init(struct at86rf230_local *lp) { return 0; }
1679static void at86rf230_debugfs_remove(void) { }
1680#endif
1681
1682static int at86rf230_probe(struct spi_device *spi)
1683{
1684	struct ieee802154_hw *hw;
1685	struct at86rf230_local *lp;
 
 
1686	unsigned int status;
1687	int rc, irq_type, rstn, slp_tr;
1688	u8 xtal_trim = 0;
1689
1690	if (!spi->irq) {
1691		dev_err(&spi->dev, "no IRQ specified\n");
1692		return -EINVAL;
1693	}
1694
1695	rc = at86rf230_get_pdata(spi, &rstn, &slp_tr, &xtal_trim);
1696	if (rc < 0) {
1697		dev_err(&spi->dev, "failed to parse platform_data: %d\n", rc);
 
 
 
 
 
 
 
 
 
 
1698		return rc;
1699	}
1700
1701	if (gpio_is_valid(rstn)) {
1702		rc = devm_gpio_request_one(&spi->dev, rstn,
1703					   GPIOF_OUT_INIT_HIGH, "rstn");
1704		if (rc)
1705			return rc;
1706	}
1707
1708	if (gpio_is_valid(slp_tr)) {
1709		rc = devm_gpio_request_one(&spi->dev, slp_tr,
1710					   GPIOF_OUT_INIT_LOW, "slp_tr");
1711		if (rc)
1712			return rc;
1713	}
1714
1715	/* Reset */
1716	if (gpio_is_valid(rstn)) {
1717		udelay(1);
1718		gpio_set_value_cansleep(rstn, 0);
1719		udelay(1);
1720		gpio_set_value_cansleep(rstn, 1);
1721		usleep_range(120, 240);
1722	}
1723
1724	hw = ieee802154_alloc_hw(sizeof(*lp), &at86rf230_ops);
1725	if (!hw)
1726		return -ENOMEM;
1727
1728	lp = hw->priv;
1729	lp->hw = hw;
1730	lp->spi = spi;
1731	lp->slp_tr = slp_tr;
1732	hw->parent = &spi->dev;
1733	ieee802154_random_extended_addr(&hw->phy->perm_extended_addr);
1734
1735	lp->regmap = devm_regmap_init_spi(spi, &at86rf230_regmap_spi_config);
1736	if (IS_ERR(lp->regmap)) {
1737		rc = PTR_ERR(lp->regmap);
1738		dev_err(&spi->dev, "Failed to allocate register map: %d\n",
1739			rc);
1740		goto free_dev;
1741	}
1742
1743	at86rf230_setup_spi_messages(lp, &lp->state);
1744	at86rf230_setup_spi_messages(lp, &lp->tx);
1745
1746	rc = at86rf230_detect_device(lp);
1747	if (rc < 0)
1748		goto free_dev;
1749
1750	init_completion(&lp->state_complete);
1751
1752	spi_set_drvdata(spi, lp);
1753
1754	rc = at86rf230_hw_init(lp, xtal_trim);
1755	if (rc)
1756		goto free_dev;
1757
1758	/* Read irq status register to reset irq line */
1759	rc = at86rf230_read_subreg(lp, RG_IRQ_STATUS, 0xff, 0, &status);
1760	if (rc)
1761		goto free_dev;
1762
1763	irq_type = irq_get_trigger_type(spi->irq);
1764	if (!irq_type)
1765		irq_type = IRQF_TRIGGER_HIGH;
1766
1767	rc = devm_request_irq(&spi->dev, spi->irq, at86rf230_isr,
1768			      IRQF_SHARED | irq_type, dev_name(&spi->dev), lp);
1769	if (rc)
1770		goto free_dev;
1771
1772	/* disable_irq by default and wait for starting hardware */
1773	disable_irq(spi->irq);
1774
1775	/* going into sleep by default */
1776	at86rf230_sleep(lp);
1777
1778	rc = at86rf230_debugfs_init(lp);
1779	if (rc)
1780		goto free_dev;
1781
1782	rc = ieee802154_register_hw(lp->hw);
1783	if (rc)
1784		goto free_debugfs;
1785
1786	return rc;
1787
1788free_debugfs:
1789	at86rf230_debugfs_remove();
1790free_dev:
1791	ieee802154_free_hw(lp->hw);
1792
1793	return rc;
1794}
1795
1796static int at86rf230_remove(struct spi_device *spi)
1797{
1798	struct at86rf230_local *lp = spi_get_drvdata(spi);
1799
1800	/* mask all at86rf230 irq's */
1801	at86rf230_write_subreg(lp, SR_IRQ_MASK, 0);
1802	ieee802154_unregister_hw(lp->hw);
1803	ieee802154_free_hw(lp->hw);
1804	at86rf230_debugfs_remove();
1805	dev_dbg(&spi->dev, "unregistered at86rf230\n");
1806
1807	return 0;
1808}
1809
1810static const struct of_device_id at86rf230_of_match[] = {
1811	{ .compatible = "atmel,at86rf230", },
1812	{ .compatible = "atmel,at86rf231", },
1813	{ .compatible = "atmel,at86rf233", },
1814	{ .compatible = "atmel,at86rf212", },
1815	{ },
1816};
1817MODULE_DEVICE_TABLE(of, at86rf230_of_match);
1818
1819static const struct spi_device_id at86rf230_device_id[] = {
1820	{ .name = "at86rf230", },
1821	{ .name = "at86rf231", },
1822	{ .name = "at86rf233", },
1823	{ .name = "at86rf212", },
1824	{ },
1825};
1826MODULE_DEVICE_TABLE(spi, at86rf230_device_id);
1827
1828static struct spi_driver at86rf230_driver = {
1829	.id_table = at86rf230_device_id,
1830	.driver = {
1831		.of_match_table = of_match_ptr(at86rf230_of_match),
1832		.name	= "at86rf230",
1833	},
1834	.probe      = at86rf230_probe,
1835	.remove     = at86rf230_remove,
1836};
1837
1838module_spi_driver(at86rf230_driver);
1839
1840MODULE_DESCRIPTION("AT86RF230 Transceiver Driver");
1841MODULE_LICENSE("GPL v2");