919 lines
28 KiB
C
919 lines
28 KiB
C
/* $NetBSD: arn9380.c,v 1.3 2014/01/22 17:29:29 matt Exp $ */
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/* $OpenBSD: ar9380.c,v 1.17 2012/10/20 09:54:20 stsp Exp $ */
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/*-
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* Copyright (c) 2011 Damien Bergamini <damien.bergamini@free.fr>
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* Copyright (c) 2010 Atheros Communications Inc.
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*
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* Permission to use, copy, modify, and/or distribute this software for any
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* purpose with or without fee is hereby granted, provided that the above
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* copyright notice and this permission notice appear in all copies.
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*
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* THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES
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* WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF
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* MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR
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* ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
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* WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN
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* ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF
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* OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
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*/
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/*
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* Driver for Atheros 802.11a/g/n chipsets.
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* Routines for AR9380 and AR9485 chipsets.
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*/
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#include <sys/cdefs.h>
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__KERNEL_RCSID(0, "$NetBSD: arn9380.c,v 1.3 2014/01/22 17:29:29 matt Exp $");
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#include <sys/param.h>
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#include <sys/sockio.h>
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#include <sys/mbuf.h>
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#include <sys/kernel.h>
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#include <sys/socket.h>
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#include <sys/systm.h>
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#include <sys/malloc.h>
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#include <sys/queue.h>
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#include <sys/conf.h>
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#include <sys/device.h>
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#include <sys/bus.h>
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#include <sys/endian.h>
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#include <net/bpf.h>
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#include <net/if.h>
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#include <net/if_arp.h>
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#include <net/if_dl.h>
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#include <net/if_ether.h>
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#include <net/if_media.h>
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#include <net/if_types.h>
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#include <netinet/in.h>
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#include <netinet/in_systm.h>
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#include <netinet/in_var.h>
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#include <net80211/ieee80211_var.h>
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#include <net80211/ieee80211_amrr.h>
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#include <net80211/ieee80211_radiotap.h>
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#include <dev/ic/athnreg.h>
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#include <dev/ic/athnvar.h>
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#include <dev/ic/arn9003reg.h>
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#include <dev/ic/arn9380reg.h>
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#include <dev/ic/arn9003.h>
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#include <dev/ic/arn9380.h>
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#define Static static
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Static void ar9380_get_correction(struct athn_softc *,
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struct ieee80211_channel *, int, int *, int *);
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Static void ar9380_get_paprd_masks(struct athn_softc *,
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struct ieee80211_channel *, uint32_t *, uint32_t *);
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Static const uint8_t *
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ar9380_get_rom_template(struct athn_softc *, uint8_t);
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Static void ar9380_init_from_rom(struct athn_softc *,
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struct ieee80211_channel *, struct ieee80211_channel *);
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Static void ar9380_set_correction(struct athn_softc *,
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struct ieee80211_channel *);
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Static int ar9380_set_synth(struct athn_softc *,
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struct ieee80211_channel *, struct ieee80211_channel *);
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Static void ar9380_set_txpower(struct athn_softc *,
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struct ieee80211_channel *, struct ieee80211_channel *);
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Static void ar9380_setup(struct athn_softc *);
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Static void ar9380_spur_mitigate(struct athn_softc *,
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struct ieee80211_channel *, struct ieee80211_channel *);
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Static void ar9380_spur_mitigate_cck(struct athn_softc *,
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struct ieee80211_channel *, struct ieee80211_channel *);
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Static void ar9380_spur_mitigate_ofdm(struct athn_softc *,
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struct ieee80211_channel *, struct ieee80211_channel *);
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Static void ar9380_swap_rom(struct athn_softc *);
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Static void ar9485_init_swreg(struct athn_softc *);
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#define ar9485_pmu_read AR_READ
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Static int ar9485_pmu_write(struct athn_softc *, uint32_t, uint32_t);
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#ifdef notused
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Static void ar9380_init_swreg(struct athn_softc *);
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#endif /* notused */
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PUBLIC int
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ar9380_attach(struct athn_softc *sc)
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{
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sc->sc_ngpiopins = 17;
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sc->sc_ops.setup = ar9380_setup;
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sc->sc_ops.get_rom_template = ar9380_get_rom_template;
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sc->sc_ops.swap_rom = ar9380_swap_rom;
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sc->sc_ops.init_from_rom = ar9380_init_from_rom;
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sc->sc_ops.set_txpower = ar9380_set_txpower;
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sc->sc_ops.set_synth = ar9380_set_synth;
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sc->sc_ops.spur_mitigate = ar9380_spur_mitigate;
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sc->sc_ops.get_paprd_masks = ar9380_get_paprd_masks;
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sc->sc_cca_min_2g = AR9380_PHY_CCA_MIN_GOOD_VAL_2GHZ;
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sc->sc_cca_max_2g = AR9380_PHY_CCA_MAX_GOOD_VAL_2GHZ;
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sc->sc_cca_min_5g = AR9380_PHY_CCA_MIN_GOOD_VAL_5GHZ;
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sc->sc_cca_max_5g = AR9380_PHY_CCA_MAX_GOOD_VAL_5GHZ;
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if (AR_SREV_9485(sc)) {
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sc->sc_ini = &ar9485_1_1_ini;
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sc->sc_serdes = &ar9485_1_1_serdes;
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}
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else {
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sc->sc_ini = &ar9380_2_2_ini;
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sc->sc_serdes = &ar9380_2_2_serdes;
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}
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return ar9003_attach(sc);
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}
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Static void
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ar9380_setup(struct athn_softc *sc)
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{
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struct ieee80211com *ic = &sc->sc_ic;
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struct ar9380_eeprom *eep = sc->sc_eep;
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struct ar9380_base_eep_hdr *base = &eep->baseEepHeader;
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uint8_t type;
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if (base->opFlags & AR_OPFLAGS_11A)
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sc->sc_flags |= ATHN_FLAG_11A;
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if (base->opFlags & AR_OPFLAGS_11G)
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sc->sc_flags |= ATHN_FLAG_11G;
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if (base->opFlags & AR_OPFLAGS_11N)
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sc->sc_flags |= ATHN_FLAG_11N;
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IEEE80211_ADDR_COPY(ic->ic_myaddr, eep->macAddr);
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sc->sc_led_pin = base->wlanLedGpio;
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/* Check if we have a hardware radio switch. */
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if (base->rfSilent & AR_EEP_RFSILENT_ENABLED) {
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sc->sc_flags |= ATHN_FLAG_RFSILENT;
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/* Get GPIO pin used by hardware radio switch. */
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sc->sc_rfsilent_pin = MS(base->rfSilent,
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AR_EEP_RFSILENT_GPIO_SEL);
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/* Get polarity of hardware radio switch. */
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if (base->rfSilent & AR_EEP_RFSILENT_POLARITY)
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sc->sc_flags |= ATHN_FLAG_RFSILENT_REVERSED;
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}
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/* Set the number of HW key cache entries. */
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sc->sc_kc_entries = AR_KEYTABLE_SIZE;
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sc->sc_txchainmask = MS(base->txrxMask, AR_EEP_TX_MASK);
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sc->sc_rxchainmask = MS(base->txrxMask, AR_EEP_RX_MASK);
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/* Fast PLL clock is always supported. */
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sc->sc_flags |= ATHN_FLAG_FAST_PLL_CLOCK;
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/* Enable PA predistortion if supported. */
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if (base->featureEnable & AR_EEP_PAPRD)
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sc->sc_flags |= ATHN_FLAG_PAPRD;
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/*
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* Some 3-stream chips may exceed the PCIe power requirements,
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* requiring to reduce the number of Tx chains in some cases.
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*/
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if ((base->miscConfiguration & AR_EEP_CHAIN_MASK_REDUCE) &&
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sc->sc_txchainmask == 0x7)
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sc->sc_flags |= ATHN_FLAG_3TREDUCE_CHAIN;
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/* Select initialization values based on ROM. */
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type = MS(eep->baseEepHeader.txrxgain, AR_EEP_RX_GAIN);
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if (!AR_SREV_9485(sc)) {
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if (type == AR_EEP_RX_GAIN_WO_XLNA)
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sc->sc_rx_gain = &ar9380_2_2_rx_gain_wo_xlna;
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else
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sc->sc_rx_gain = &ar9380_2_2_rx_gain;
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}
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else
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sc->sc_rx_gain = &ar9485_1_1_rx_gain;
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/* Select initialization values based on ROM. */
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type = MS(eep->baseEepHeader.txrxgain, AR_EEP_TX_GAIN);
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if (!AR_SREV_9485(sc)) {
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if (type == AR_EEP_TX_GAIN_HIGH_OB_DB)
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sc->sc_tx_gain = &ar9380_2_2_tx_gain_high_ob_db;
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else if (type == AR_EEP_TX_GAIN_LOW_OB_DB)
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sc->sc_tx_gain = &ar9380_2_2_tx_gain_low_ob_db;
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else if (type == AR_EEP_TX_GAIN_HIGH_POWER)
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sc->sc_tx_gain = &ar9380_2_2_tx_gain_high_power;
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else
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sc->sc_tx_gain = &ar9380_2_2_tx_gain;
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}
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else
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sc->sc_tx_gain = &ar9485_1_1_tx_gain;
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}
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Static const uint8_t *
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ar9380_get_rom_template(struct athn_softc *sc, uint8_t ref)
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{
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size_t i;
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/* Retrieve template ROM image for given reference. */
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for (i = 0; i < __arraycount(ar9380_rom_templates); i++)
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if (ar9380_rom_templates[i][1] == ref)
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return ar9380_rom_templates[i];
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return NULL;
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}
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Static void
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ar9380_swap_rom(struct athn_softc *sc)
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{
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#if BYTE_ORDER == BIG_ENDIAN
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struct ar9380_eeprom *eep = sc->sc_eep;
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struct ar9380_base_eep_hdr *base = &eep->baseEepHeader;
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struct ar9380_modal_eep_header *modal;
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int i;
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base->regDmn[0] = bswap16(base->regDmn[0]);
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base->regDmn[1] = bswap16(base->regDmn[1]);
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base->swreg = bswap32(base->swreg);
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modal = &eep->modalHeader2G;
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modal->antCtrlCommon = bswap32(modal->antCtrlCommon);
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modal->antCtrlCommon2 = bswap32(modal->antCtrlCommon2);
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modal->papdRateMaskHt20 = bswap32(modal->papdRateMaskHt20);
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modal->papdRateMaskHt40 = bswap32(modal->papdRateMaskHt40);
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for (i = 0; i < AR9380_MAX_CHAINS; i++)
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modal->antCtrlChain[i] = bswap16(modal->antCtrlChain[i]);
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modal = &eep->modalHeader5G;
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modal->antCtrlCommon = bswap32(modal->antCtrlCommon);
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modal->antCtrlCommon2 = bswap32(modal->antCtrlCommon2);
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modal->papdRateMaskHt20 = bswap32(modal->papdRateMaskHt20);
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modal->papdRateMaskHt40 = bswap32(modal->papdRateMaskHt40);
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for (i = 0; i < AR9380_MAX_CHAINS; i++)
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modal->antCtrlChain[i] = bswap16(modal->antCtrlChain[i]);
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#endif
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}
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Static void
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ar9380_get_paprd_masks(struct athn_softc *sc, struct ieee80211_channel *c,
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uint32_t *ht20mask, uint32_t *ht40mask)
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{
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const struct ar9380_eeprom *eep = sc->sc_eep;
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const struct ar9380_modal_eep_header *modal;
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if (IEEE80211_IS_CHAN_2GHZ(c))
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modal = &eep->modalHeader2G;
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else
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modal = &eep->modalHeader5G;
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*ht20mask = modal->papdRateMaskHt20;
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*ht40mask = modal->papdRateMaskHt40;
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}
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Static int
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ar9380_set_synth(struct athn_softc *sc, struct ieee80211_channel *c,
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struct ieee80211_channel *extc)
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{
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uint32_t freq = c->ic_freq;
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uint32_t chansel, phy;
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if (IEEE80211_IS_CHAN_2GHZ(c)) {
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if (AR_SREV_9485(sc))
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chansel = ((freq << 16) - 215) / 15;
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else
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chansel = (freq << 16) / 15;
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AR_WRITE(sc, AR_PHY_SYNTH_CONTROL, AR9380_BMODE);
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}
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else {
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chansel = (freq << 15) / 15;
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chansel >>= 1;
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AR_WRITE(sc, AR_PHY_SYNTH_CONTROL, 0);
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}
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/* Enable Long Shift Select for synthesizer. */
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AR_SETBITS(sc, AR_PHY_65NM_CH0_SYNTH4,
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AR_PHY_SYNTH4_LONG_SHIFT_SELECT);
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AR_WRITE_BARRIER(sc);
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/* Program synthesizer. */
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phy = (chansel << 2) | AR9380_FRACMODE;
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DPRINTFN(DBG_RF, sc, "AR_PHY_65NM_CH0_SYNTH7=0x%08x\n", phy);
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AR_WRITE(sc, AR_PHY_65NM_CH0_SYNTH7, phy);
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AR_WRITE_BARRIER(sc);
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/* Toggle Load Synth Channel bit. */
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AR_WRITE(sc, AR_PHY_65NM_CH0_SYNTH7, phy | AR9380_LOAD_SYNTH);
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AR_WRITE_BARRIER(sc);
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return 0;
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}
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Static void
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ar9380_init_from_rom(struct athn_softc *sc, struct ieee80211_channel *c,
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struct ieee80211_channel *extc)
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{
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const struct ar9380_eeprom *eep = sc->sc_eep;
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const struct ar9380_modal_eep_header *modal;
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uint8_t db, margin, ant_div_ctrl;
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uint32_t reg;
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int i, maxchains;
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if (IEEE80211_IS_CHAN_2GHZ(c))
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modal = &eep->modalHeader2G;
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else
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modal = &eep->modalHeader5G;
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/* Apply XPA bias level. */
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if (AR_SREV_9485(sc)) {
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reg = AR_READ(sc, AR9485_PHY_65NM_CH0_TOP2);
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reg = RW(reg, AR9485_PHY_65NM_CH0_TOP2_XPABIASLVL,
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modal->xpaBiasLvl);
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AR_WRITE(sc, AR9485_PHY_65NM_CH0_TOP2, reg);
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}
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else {
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reg = AR_READ(sc, AR_PHY_65NM_CH0_TOP);
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reg = RW(reg, AR_PHY_65NM_CH0_TOP_XPABIASLVL,
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modal->xpaBiasLvl & 0x3);
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AR_WRITE(sc, AR_PHY_65NM_CH0_TOP, reg);
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reg = AR_READ(sc, AR_PHY_65NM_CH0_THERM);
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reg = RW(reg, AR_PHY_65NM_CH0_THERM_XPABIASLVL_MSB,
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modal->xpaBiasLvl >> 2);
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reg |= AR_PHY_65NM_CH0_THERM_XPASHORT2GND;
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AR_WRITE(sc, AR_PHY_65NM_CH0_THERM, reg);
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}
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/* Apply antenna control. */
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reg = AR_READ(sc, AR_PHY_SWITCH_COM);
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reg = RW(reg, AR_SWITCH_TABLE_COM_ALL, modal->antCtrlCommon);
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AR_WRITE(sc, AR_PHY_SWITCH_COM, reg);
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reg = AR_READ(sc, AR_PHY_SWITCH_COM_2);
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reg = RW(reg, AR_SWITCH_TABLE_COM_2_ALL, modal->antCtrlCommon2);
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AR_WRITE(sc, AR_PHY_SWITCH_COM_2, reg);
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maxchains = AR_SREV_9485(sc) ? 1 : AR9380_MAX_CHAINS;
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for (i = 0; i < maxchains; i++) {
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reg = AR_READ(sc, AR_PHY_SWITCH_CHAIN(i));
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reg = RW(reg, AR_SWITCH_TABLE_ALL, modal->antCtrlChain[i]);
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AR_WRITE(sc, AR_PHY_SWITCH_CHAIN(i), reg);
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}
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if (AR_SREV_9485(sc)) {
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ant_div_ctrl = eep->base_ext1.ant_div_control;
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reg = AR_READ(sc, AR_PHY_MC_GAIN_CTRL);
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reg = RW(reg, AR_PHY_MC_GAIN_CTRL_ANT_DIV_CTRL_ALL,
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MS(ant_div_ctrl, AR_EEP_ANT_DIV_CTRL_ALL));
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if (ant_div_ctrl & AR_EEP_ANT_DIV_CTRL_ANT_DIV)
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reg |= AR_PHY_MC_GAIN_CTRL_ENABLE_ANT_DIV;
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else
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reg &= ~AR_PHY_MC_GAIN_CTRL_ENABLE_ANT_DIV;
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AR_WRITE(sc, AR_PHY_MC_GAIN_CTRL, reg);
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reg = AR_READ(sc, AR_PHY_CCK_DETECT);
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if (ant_div_ctrl & AR_EEP_ANT_DIV_CTRL_FAST_DIV)
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reg |= AR_PHY_CCK_DETECT_BB_ENABLE_ANT_FAST_DIV;
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else
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reg &= ~AR_PHY_CCK_DETECT_BB_ENABLE_ANT_FAST_DIV;
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AR_WRITE(sc, AR_PHY_CCK_DETECT, reg);
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}
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if (eep->baseEepHeader.miscConfiguration & AR_EEP_DRIVE_STRENGTH) {
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/* Apply drive strength. */
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reg = AR_READ(sc, AR_PHY_65NM_CH0_BIAS1);
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reg = RW(reg, AR_PHY_65NM_CH0_BIAS1_0, 5);
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reg = RW(reg, AR_PHY_65NM_CH0_BIAS1_1, 5);
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reg = RW(reg, AR_PHY_65NM_CH0_BIAS1_2, 5);
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reg = RW(reg, AR_PHY_65NM_CH0_BIAS1_3, 5);
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reg = RW(reg, AR_PHY_65NM_CH0_BIAS1_4, 5);
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reg = RW(reg, AR_PHY_65NM_CH0_BIAS1_5, 5);
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AR_WRITE(sc, AR_PHY_65NM_CH0_BIAS1, reg);
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reg = AR_READ(sc, AR_PHY_65NM_CH0_BIAS2);
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reg = RW(reg, AR_PHY_65NM_CH0_BIAS2_0, 5);
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reg = RW(reg, AR_PHY_65NM_CH0_BIAS2_1, 5);
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reg = RW(reg, AR_PHY_65NM_CH0_BIAS2_2, 5);
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reg = RW(reg, AR_PHY_65NM_CH0_BIAS2_3, 5);
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reg = RW(reg, AR_PHY_65NM_CH0_BIAS2_4, 5);
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reg = RW(reg, AR_PHY_65NM_CH0_BIAS2_5, 5);
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reg = RW(reg, AR_PHY_65NM_CH0_BIAS2_6, 5);
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reg = RW(reg, AR_PHY_65NM_CH0_BIAS2_7, 5);
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reg = RW(reg, AR_PHY_65NM_CH0_BIAS2_8, 5);
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AR_WRITE(sc, AR_PHY_65NM_CH0_BIAS2, reg);
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reg = AR_READ(sc, AR_PHY_65NM_CH0_BIAS4);
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reg = RW(reg, AR_PHY_65NM_CH0_BIAS4_0, 5);
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reg = RW(reg, AR_PHY_65NM_CH0_BIAS4_1, 5);
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reg = RW(reg, AR_PHY_65NM_CH0_BIAS4_2, 5);
|
|
AR_WRITE(sc, AR_PHY_65NM_CH0_BIAS4, reg);
|
|
}
|
|
|
|
/* Apply attenuation settings. */
|
|
maxchains = AR_SREV_9485(sc) ? 1 : AR9380_MAX_CHAINS;
|
|
for (i = 0; i < maxchains; i++) {
|
|
if (IEEE80211_IS_CHAN_5GHZ(c) &&
|
|
eep->base_ext2.xatten1DBLow[i] != 0) {
|
|
if (c->ic_freq <= 5500) {
|
|
db = athn_interpolate(c->ic_freq,
|
|
5180, eep->base_ext2.xatten1DBLow[i],
|
|
5500, modal->xatten1DB[i]);
|
|
}
|
|
else {
|
|
db = athn_interpolate(c->ic_freq,
|
|
5500, modal->xatten1DB[i],
|
|
5785, eep->base_ext2.xatten1DBHigh[i]);
|
|
}
|
|
}
|
|
else
|
|
db = modal->xatten1DB[i];
|
|
if (IEEE80211_IS_CHAN_5GHZ(c) &&
|
|
eep->base_ext2.xatten1MarginLow[i] != 0) {
|
|
if (c->ic_freq <= 5500) {
|
|
margin = athn_interpolate(c->ic_freq,
|
|
5180, eep->base_ext2.xatten1MarginLow[i],
|
|
5500, modal->xatten1Margin[i]);
|
|
}
|
|
else {
|
|
margin = athn_interpolate(c->ic_freq,
|
|
5500, modal->xatten1Margin[i],
|
|
5785, eep->base_ext2.xatten1MarginHigh[i]);
|
|
}
|
|
}
|
|
else
|
|
margin = modal->xatten1Margin[i];
|
|
reg = AR_READ(sc, AR_PHY_EXT_ATTEN_CTL(i));
|
|
reg = RW(reg, AR_PHY_EXT_ATTEN_CTL_XATTEN1_DB, db);
|
|
reg = RW(reg, AR_PHY_EXT_ATTEN_CTL_XATTEN1_MARGIN, margin);
|
|
AR_WRITE(sc, AR_PHY_EXT_ATTEN_CTL(i), reg);
|
|
}
|
|
|
|
/* Initialize switching regulator. */
|
|
if (AR_SREV_9485(sc))
|
|
ar9485_init_swreg(sc);
|
|
else
|
|
ar9485_init_swreg(sc);
|
|
|
|
/* Apply tuning capabilities. */
|
|
if (AR_SREV_9485(sc) &&
|
|
(eep->baseEepHeader.featureEnable & AR_EEP_TUNING_CAPS)) {
|
|
reg = AR_READ(sc, AR9485_PHY_CH0_XTAL);
|
|
reg = RW(reg, AR9485_PHY_CH0_XTAL_CAPINDAC,
|
|
eep->baseEepHeader.params_for_tuning_caps[0]);
|
|
reg = RW(reg, AR9485_PHY_CH0_XTAL_CAPOUTDAC,
|
|
eep->baseEepHeader.params_for_tuning_caps[0]);
|
|
AR_WRITE(sc, AR9485_PHY_CH0_XTAL, reg);
|
|
}
|
|
AR_WRITE_BARRIER(sc);
|
|
}
|
|
|
|
#ifdef notused
|
|
Static void
|
|
ar9380_init_swreg(struct athn_softc *sc)
|
|
{
|
|
const struct ar9380_eeprom *eep = sc->sc_eep;
|
|
|
|
if (eep->baseEepHeader.featureEnable & AR_EEP_INTERNAL_REGULATOR) {
|
|
/* Internal regulator is ON. */
|
|
AR_CLRBITS(sc, AR_RTC_REG_CONTROL1,
|
|
AR_RTC_REG_CONTROL1_SWREG_PROGRAM);
|
|
AR_WRITE(sc, AR_RTC_REG_CONTROL0, eep->baseEepHeader.swreg);
|
|
AR_SETBITS(sc, AR_RTC_REG_CONTROL1,
|
|
AR_RTC_REG_CONTROL1_SWREG_PROGRAM);
|
|
}
|
|
else
|
|
AR_SETBITS(sc, AR_RTC_SLEEP_CLK, AR_RTC_FORCE_SWREG_PRD);
|
|
AR_WRITE_BARRIER(sc);
|
|
}
|
|
#endif /* notused */
|
|
|
|
Static int
|
|
ar9485_pmu_write(struct athn_softc *sc, uint32_t addr, uint32_t val)
|
|
{
|
|
int ntries;
|
|
|
|
AR_WRITE(sc, addr, val);
|
|
/* Wait for write to complete. */
|
|
for (ntries = 0; ntries < 100; ntries++) {
|
|
if (AR_READ(sc, addr) == val)
|
|
return 0;
|
|
AR_WRITE(sc, addr, val); /* Insist. */
|
|
AR_WRITE_BARRIER(sc);
|
|
DELAY(10);
|
|
}
|
|
return ETIMEDOUT;
|
|
}
|
|
|
|
Static void
|
|
ar9485_init_swreg(struct athn_softc *sc)
|
|
{
|
|
const struct ar9380_eeprom *eep = sc->sc_eep;
|
|
uint32_t reg;
|
|
|
|
ar9485_pmu_write(sc, AR_PHY_PMU2,
|
|
ar9485_pmu_read(sc, AR_PHY_PMU2) & ~AR_PHY_PMU2_PGM);
|
|
|
|
if (eep->baseEepHeader.featureEnable & AR_EEP_INTERNAL_REGULATOR) {
|
|
ar9485_pmu_write(sc, AR_PHY_PMU1, 0x131dc17a);
|
|
|
|
reg = ar9485_pmu_read(sc, AR_PHY_PMU2);
|
|
reg = (reg & ~0xffc00000) | 0x10000000;
|
|
ar9485_pmu_write(sc, AR_PHY_PMU2, reg);
|
|
}
|
|
else {
|
|
ar9485_pmu_write(sc, AR_PHY_PMU1,
|
|
ar9485_pmu_read(sc, AR_PHY_PMU1) | AR_PHY_PMU1_PWD);
|
|
}
|
|
|
|
ar9485_pmu_write(sc, AR_PHY_PMU2,
|
|
ar9485_pmu_read(sc, AR_PHY_PMU2) | AR_PHY_PMU2_PGM);
|
|
}
|
|
|
|
/*
|
|
* NB: It is safe to call this function for 5GHz channels.
|
|
*/
|
|
Static void
|
|
ar9380_spur_mitigate_cck(struct athn_softc *sc, struct ieee80211_channel *c,
|
|
struct ieee80211_channel *extc)
|
|
{
|
|
static const int16_t freqs[] = { 2420, 2440, 2464, 2480 };
|
|
size_t i;
|
|
int spur, freq;
|
|
uint32_t reg;
|
|
|
|
for (i = 0; i < __arraycount(freqs); i++) {
|
|
spur = freqs[i] - c->ic_freq;
|
|
if (abs(spur) < 10) /* +/- 10MHz range. */
|
|
break;
|
|
}
|
|
if (i == __arraycount(freqs)) {
|
|
/* Disable CCK spur mitigation. */
|
|
reg = AR_READ(sc, AR_PHY_AGC_CONTROL);
|
|
reg = RW(reg, AR_PHY_AGC_CONTROL_YCOK_MAX, 0x5);
|
|
AR_WRITE(sc, AR_PHY_AGC_CONTROL, reg);
|
|
reg = AR_READ(sc, AR_PHY_CCK_SPUR_MIT);
|
|
reg = RW(reg, AR_PHY_CCK_SPUR_MIT_CCK_SPUR_FREQ, 0);
|
|
reg &= ~AR_PHY_CCK_SPUR_MIT_USE_CCK_SPUR_MIT;
|
|
AR_WRITE(sc, AR_PHY_CCK_SPUR_MIT, reg);
|
|
AR_WRITE_BARRIER(sc);
|
|
return;
|
|
}
|
|
freq = (spur * 524288) / 11;
|
|
|
|
reg = AR_READ(sc, AR_PHY_AGC_CONTROL);
|
|
reg = RW(reg, AR_PHY_AGC_CONTROL_YCOK_MAX, 0x7);
|
|
AR_WRITE(sc, AR_PHY_AGC_CONTROL, reg);
|
|
|
|
reg = AR_READ(sc, AR_PHY_CCK_SPUR_MIT);
|
|
reg = RW(reg, AR_PHY_CCK_SPUR_MIT_CCK_SPUR_FREQ, freq);
|
|
reg = RW(reg, AR_PHY_CCK_SPUR_MIT_SPUR_RSSI_THR, 0x7f);
|
|
reg = RW(reg, AR_PHY_CCK_SPUR_MIT_SPUR_FILTER_TYPE, 0x2);
|
|
reg |= AR_PHY_CCK_SPUR_MIT_USE_CCK_SPUR_MIT;
|
|
AR_WRITE(sc, AR_PHY_CCK_SPUR_MIT, reg);
|
|
AR_WRITE_BARRIER(sc);
|
|
}
|
|
|
|
Static void
|
|
ar9380_spur_mitigate_ofdm(struct athn_softc *sc, struct ieee80211_channel *c,
|
|
struct ieee80211_channel *extc)
|
|
{
|
|
const struct ar9380_eeprom *eep = sc->sc_eep;
|
|
const uint8_t *spurchans;
|
|
uint32_t reg;
|
|
int idx, spur_delta_phase, spur_off, range, i;
|
|
int freq, spur, spur_freq_sd, spur_subchannel_sd;
|
|
|
|
if (IEEE80211_IS_CHAN_2GHZ(c))
|
|
spurchans = eep->modalHeader2G.spurChans;
|
|
else
|
|
spurchans = eep->modalHeader5G.spurChans;
|
|
if (spurchans[0] == 0)
|
|
return;
|
|
|
|
/* Disable OFDM spur mitigation. */
|
|
AR_CLRBITS(sc, AR_PHY_TIMING4, AR_PHY_TIMING4_ENABLE_SPUR_FILTER);
|
|
|
|
reg = AR_READ(sc, AR_PHY_TIMING11);
|
|
reg = RW(reg, AR_PHY_TIMING11_SPUR_FREQ_SD, 0);
|
|
reg = RW(reg, AR_PHY_TIMING11_SPUR_DELTA_PHASE, 0);
|
|
reg &= ~AR_PHY_TIMING11_USE_SPUR_FILTER_IN_AGC;
|
|
reg &= ~AR_PHY_TIMING11_USE_SPUR_FILTER_IN_SELFCOR;
|
|
AR_WRITE(sc, AR_PHY_TIMING11, reg);
|
|
|
|
AR_CLRBITS(sc, AR_PHY_SFCORR_EXT,
|
|
AR_PHY_SFCORR_EXT_SPUR_SUBCHANNEL_SD);
|
|
|
|
AR_CLRBITS(sc, AR_PHY_TIMING4, AR_PHY_TIMING4_ENABLE_SPUR_RSSI);
|
|
|
|
reg = AR_READ(sc, AR_PHY_SPUR_REG);
|
|
reg = RW(reg, AR_PHY_SPUR_REG_MASK_RATE_CNTL, 0);
|
|
reg &= ~AR_PHY_SPUR_REG_EN_VIT_SPUR_RSSI;
|
|
reg &= ~AR_PHY_SPUR_REG_ENABLE_NF_RSSI_SPUR_MIT;
|
|
reg &= ~AR_PHY_SPUR_REG_ENABLE_MASK_PPM;
|
|
AR_WRITE(sc, AR_PHY_SPUR_REG, reg);
|
|
AR_WRITE_BARRIER(sc);
|
|
|
|
freq = c->ic_freq;
|
|
#ifndef IEEE80211_NO_HT
|
|
if (extc != NULL) {
|
|
range = 19; /* +/- 19MHz range. */
|
|
if (AR_READ(sc, AR_PHY_GEN_CTRL) & AR_PHY_GC_DYN2040_PRI_CH)
|
|
freq += 10;
|
|
else
|
|
freq -= 10;
|
|
}
|
|
else
|
|
#endif
|
|
range = 10; /* +/- 10MHz range. */
|
|
for (i = 0; i < AR9380_EEPROM_MODAL_SPURS; i++) {
|
|
spur = spurchans[i];
|
|
if (spur == 0)
|
|
return;
|
|
/* Convert to frequency. */
|
|
if (IEEE80211_IS_CHAN_2GHZ(c))
|
|
spur = 2300 + spur;
|
|
else
|
|
spur = 4900 + (spur * 5);
|
|
spur -= freq;
|
|
if (abs(spur) < range)
|
|
break;
|
|
}
|
|
if (i == AR9380_EEPROM_MODAL_SPURS)
|
|
return;
|
|
|
|
/* Enable OFDM spur mitigation. */
|
|
#ifndef IEEE80211_NO_HT
|
|
if (extc != NULL) {
|
|
spur_delta_phase = (spur * 131072) / 5;
|
|
reg = AR_READ(sc, AR_PHY_GEN_CTRL);
|
|
if (spur < 0) {
|
|
spur_subchannel_sd =
|
|
(reg & AR_PHY_GC_DYN2040_PRI_CH) == 0;
|
|
spur_off = spur + 10;
|
|
}
|
|
else {
|
|
spur_subchannel_sd =
|
|
(reg & AR_PHY_GC_DYN2040_PRI_CH) != 0;
|
|
spur_off = spur - 10;
|
|
}
|
|
}
|
|
else
|
|
#endif
|
|
{
|
|
spur_delta_phase = (spur * 262144) / 5;
|
|
spur_subchannel_sd = 0;
|
|
spur_off = spur;
|
|
}
|
|
spur_freq_sd = (spur_off * 512) / 11;
|
|
|
|
AR_SETBITS(sc, AR_PHY_TIMING4, AR_PHY_TIMING4_ENABLE_SPUR_FILTER);
|
|
|
|
reg = AR_READ(sc, AR_PHY_TIMING11);
|
|
reg = RW(reg, AR_PHY_TIMING11_SPUR_FREQ_SD, spur_freq_sd);
|
|
reg = RW(reg, AR_PHY_TIMING11_SPUR_DELTA_PHASE, spur_delta_phase);
|
|
reg |= AR_PHY_TIMING11_USE_SPUR_FILTER_IN_AGC;
|
|
reg |= AR_PHY_TIMING11_USE_SPUR_FILTER_IN_SELFCOR;
|
|
AR_WRITE(sc, AR_PHY_TIMING11, reg);
|
|
|
|
reg = AR_READ(sc, AR_PHY_SFCORR_EXT);
|
|
if (spur_subchannel_sd)
|
|
reg |= AR_PHY_SFCORR_EXT_SPUR_SUBCHANNEL_SD;
|
|
else
|
|
reg &= ~AR_PHY_SFCORR_EXT_SPUR_SUBCHANNEL_SD;
|
|
AR_WRITE(sc, AR_PHY_SFCORR_EXT, reg);
|
|
|
|
AR_SETBITS(sc, AR_PHY_TIMING4, AR_PHY_TIMING4_ENABLE_SPUR_RSSI);
|
|
|
|
reg = AR_READ(sc, AR_PHY_SPUR_REG);
|
|
reg = RW(reg, AR_PHY_SPUR_REG_MASK_RATE_CNTL, 0xff);
|
|
reg = RW(reg, AR_PHY_SPUR_REG_SPUR_RSSI_THRESH, 34);
|
|
reg |= AR_PHY_SPUR_REG_EN_VIT_SPUR_RSSI;
|
|
if (AR_READ(sc, AR_PHY_MODE) & AR_PHY_MODE_DYNAMIC)
|
|
reg |= AR_PHY_SPUR_REG_ENABLE_NF_RSSI_SPUR_MIT;
|
|
reg |= AR_PHY_SPUR_REG_ENABLE_MASK_PPM;
|
|
AR_WRITE(sc, AR_PHY_SPUR_REG, reg);
|
|
|
|
idx = (spur * 16) / 5;
|
|
if (idx < 0)
|
|
idx--;
|
|
|
|
/* Write pilot mask. */
|
|
AR_SETBITS(sc, AR_PHY_TIMING4,
|
|
AR_PHY_TIMING4_ENABLE_PILOT_MASK |
|
|
AR_PHY_TIMING4_ENABLE_CHAN_MASK);
|
|
|
|
reg = AR_READ(sc, AR_PHY_PILOT_SPUR_MASK);
|
|
reg = RW(reg, AR_PHY_PILOT_SPUR_MASK_CF_PILOT_MASK_IDX_A, idx);
|
|
reg = RW(reg, AR_PHY_PILOT_SPUR_MASK_CF_PILOT_MASK_A, 0x0c);
|
|
AR_WRITE(sc, AR_PHY_PILOT_SPUR_MASK, reg);
|
|
|
|
reg = AR_READ(sc, AR_PHY_SPUR_MASK_A);
|
|
reg = RW(reg, AR_PHY_SPUR_MASK_A_CF_PUNC_MASK_IDX_A, idx);
|
|
reg = RW(reg, AR_PHY_SPUR_MASK_A_CF_PUNC_MASK_A, 0xa0);
|
|
AR_WRITE(sc, AR_PHY_SPUR_MASK_A, reg);
|
|
|
|
reg = AR_READ(sc, AR_PHY_CHAN_SPUR_MASK);
|
|
reg = RW(reg, AR_PHY_CHAN_SPUR_MASK_CF_CHAN_MASK_IDX_A, idx);
|
|
reg = RW(reg, AR_PHY_CHAN_SPUR_MASK_CF_CHAN_MASK_A, 0x0c);
|
|
AR_WRITE(sc, AR_PHY_CHAN_SPUR_MASK, reg);
|
|
AR_WRITE_BARRIER(sc);
|
|
}
|
|
|
|
Static void
|
|
ar9380_spur_mitigate(struct athn_softc *sc, struct ieee80211_channel *c,
|
|
struct ieee80211_channel *extc)
|
|
{
|
|
|
|
/* NB: We call spur_mitigate_cck for 5GHz too, just to disable it. */
|
|
ar9380_spur_mitigate_cck(sc, c, extc);
|
|
ar9380_spur_mitigate_ofdm(sc, c, extc);
|
|
}
|
|
|
|
Static void
|
|
ar9380_set_txpower(struct athn_softc *sc, struct ieee80211_channel *c,
|
|
struct ieee80211_channel *extc)
|
|
{
|
|
const struct ar9380_eeprom *eep = sc->sc_eep;
|
|
uint8_t tpow_cck[4], tpow_ofdm[4];
|
|
uint8_t tpow_ht20[14], tpow_ht40[14];
|
|
int16_t power[ATHN_POWER_COUNT];
|
|
|
|
if (IEEE80211_IS_CHAN_2GHZ(c)) {
|
|
/* Get CCK target powers. */
|
|
ar9003_get_lg_tpow(sc, c, AR_CTL_11B,
|
|
eep->calTargetFbinCck, eep->calTargetPowerCck,
|
|
AR9380_NUM_2G_CCK_TARGET_POWERS, tpow_cck);
|
|
|
|
/* Get OFDM target powers. */
|
|
ar9003_get_lg_tpow(sc, c, AR_CTL_11G,
|
|
eep->calTargetFbin2G, eep->calTargetPower2G,
|
|
AR9380_NUM_2G_20_TARGET_POWERS, tpow_ofdm);
|
|
|
|
/* Get HT-20 target powers. */
|
|
ar9003_get_ht_tpow(sc, c, AR_CTL_2GHT20,
|
|
eep->calTargetFbin2GHT20, eep->calTargetPower2GHT20,
|
|
AR9380_NUM_2G_20_TARGET_POWERS, tpow_ht20);
|
|
|
|
if (extc != NULL) {
|
|
/* Get HT-40 target powers. */
|
|
ar9003_get_ht_tpow(sc, c, AR_CTL_2GHT40,
|
|
eep->calTargetFbin2GHT40,
|
|
eep->calTargetPower2GHT40,
|
|
AR9380_NUM_2G_40_TARGET_POWERS, tpow_ht40);
|
|
}
|
|
}
|
|
else {
|
|
/* Get OFDM target powers. */
|
|
ar9003_get_lg_tpow(sc, c, AR_CTL_11A,
|
|
eep->calTargetFbin5G, eep->calTargetPower5G,
|
|
AR9380_NUM_5G_20_TARGET_POWERS, tpow_ofdm);
|
|
|
|
/* Get HT-20 target powers. */
|
|
ar9003_get_ht_tpow(sc, c, AR_CTL_5GHT20,
|
|
eep->calTargetFbin5GHT20, eep->calTargetPower5GHT20,
|
|
AR9380_NUM_5G_20_TARGET_POWERS, tpow_ht20);
|
|
|
|
if (extc != NULL) {
|
|
/* Get HT-40 target powers. */
|
|
ar9003_get_ht_tpow(sc, c, AR_CTL_5GHT40,
|
|
eep->calTargetFbin5GHT40,
|
|
eep->calTargetPower5GHT40,
|
|
AR9380_NUM_5G_40_TARGET_POWERS, tpow_ht40);
|
|
}
|
|
}
|
|
|
|
memset(power, 0, sizeof(power));
|
|
/* Shuffle target powers accross transmit rates. */
|
|
power[ATHN_POWER_OFDM6 ] =
|
|
power[ATHN_POWER_OFDM9 ] =
|
|
power[ATHN_POWER_OFDM12] =
|
|
power[ATHN_POWER_OFDM18] =
|
|
power[ATHN_POWER_OFDM24] = tpow_ofdm[0];
|
|
power[ATHN_POWER_OFDM36] = tpow_ofdm[1];
|
|
power[ATHN_POWER_OFDM48] = tpow_ofdm[2];
|
|
power[ATHN_POWER_OFDM54] = tpow_ofdm[3];
|
|
if (IEEE80211_IS_CHAN_2GHZ(c)) {
|
|
power[ATHN_POWER_CCK1_LP ] =
|
|
power[ATHN_POWER_CCK2_LP ] =
|
|
power[ATHN_POWER_CCK2_SP ] =
|
|
power[ATHN_POWER_CCK55_LP] = tpow_cck[0];
|
|
power[ATHN_POWER_CCK55_SP] = tpow_cck[1];
|
|
power[ATHN_POWER_CCK11_LP] = tpow_cck[2];
|
|
power[ATHN_POWER_CCK11_SP] = tpow_cck[3];
|
|
}
|
|
/* Next entry covers MCS0, MCS8 and MCS16. */
|
|
power[ATHN_POWER_HT20( 0)] = tpow_ht20[ 0];
|
|
/* Next entry covers MCS1-3, MCS9-11 and MCS17-19. */
|
|
power[ATHN_POWER_HT20( 1)] = tpow_ht20[ 1];
|
|
power[ATHN_POWER_HT20( 4)] = tpow_ht20[ 2];
|
|
power[ATHN_POWER_HT20( 5)] = tpow_ht20[ 3];
|
|
power[ATHN_POWER_HT20( 6)] = tpow_ht20[ 4];
|
|
power[ATHN_POWER_HT20( 7)] = tpow_ht20[ 5];
|
|
power[ATHN_POWER_HT20(12)] = tpow_ht20[ 6];
|
|
power[ATHN_POWER_HT20(13)] = tpow_ht20[ 7];
|
|
power[ATHN_POWER_HT20(14)] = tpow_ht20[ 8];
|
|
power[ATHN_POWER_HT20(15)] = tpow_ht20[ 9];
|
|
power[ATHN_POWER_HT20(20)] = tpow_ht20[10];
|
|
power[ATHN_POWER_HT20(21)] = tpow_ht20[11];
|
|
power[ATHN_POWER_HT20(22)] = tpow_ht20[12];
|
|
power[ATHN_POWER_HT20(23)] = tpow_ht20[13];
|
|
if (extc != NULL) {
|
|
/* Next entry covers MCS0, MCS8 and MCS16. */
|
|
power[ATHN_POWER_HT40( 0)] = tpow_ht40[ 0];
|
|
/* Next entry covers MCS1-3, MCS9-11 and MCS17-19. */
|
|
power[ATHN_POWER_HT40( 1)] = tpow_ht40[ 1];
|
|
power[ATHN_POWER_HT40( 4)] = tpow_ht40[ 2];
|
|
power[ATHN_POWER_HT40( 5)] = tpow_ht40[ 3];
|
|
power[ATHN_POWER_HT40( 6)] = tpow_ht40[ 4];
|
|
power[ATHN_POWER_HT40( 7)] = tpow_ht40[ 5];
|
|
power[ATHN_POWER_HT40(12)] = tpow_ht40[ 6];
|
|
power[ATHN_POWER_HT40(13)] = tpow_ht40[ 7];
|
|
power[ATHN_POWER_HT40(14)] = tpow_ht40[ 8];
|
|
power[ATHN_POWER_HT40(15)] = tpow_ht40[ 9];
|
|
power[ATHN_POWER_HT40(20)] = tpow_ht40[10];
|
|
power[ATHN_POWER_HT40(21)] = tpow_ht40[11];
|
|
power[ATHN_POWER_HT40(22)] = tpow_ht40[12];
|
|
power[ATHN_POWER_HT40(23)] = tpow_ht40[13];
|
|
}
|
|
|
|
/* Write transmit power values to hardware. */
|
|
ar9003_write_txpower(sc, power);
|
|
|
|
/* Apply transmit power correction. */
|
|
ar9380_set_correction(sc, c);
|
|
}
|
|
|
|
Static void
|
|
ar9380_get_correction(struct athn_softc *sc, struct ieee80211_channel *c,
|
|
int chain, int *corr, int *temp)
|
|
{
|
|
const struct ar9380_eeprom *eep = sc->sc_eep;
|
|
const struct ar9380_cal_data_per_freq_op_loop *pierdata;
|
|
const uint8_t *pierfreq;
|
|
uint8_t fbin;
|
|
int lo, hi, npiers;
|
|
|
|
if (IEEE80211_IS_CHAN_2GHZ(c)) {
|
|
pierfreq = eep->calFreqPier2G;
|
|
pierdata = eep->calPierData2G[chain];
|
|
npiers = AR9380_NUM_2G_CAL_PIERS;
|
|
}
|
|
else {
|
|
pierfreq = eep->calFreqPier5G;
|
|
pierdata = eep->calPierData5G[chain];
|
|
npiers = AR9380_NUM_5G_CAL_PIERS;
|
|
}
|
|
/* Find channel in ROM pier table. */
|
|
fbin = athn_chan2fbin(c);
|
|
athn_get_pier_ival(fbin, pierfreq, npiers, &lo, &hi);
|
|
|
|
*corr = athn_interpolate(fbin,
|
|
pierfreq[lo], pierdata[lo].refPower,
|
|
pierfreq[hi], pierdata[hi].refPower);
|
|
*temp = athn_interpolate(fbin,
|
|
pierfreq[lo], pierdata[lo].tempMeas,
|
|
pierfreq[hi], pierdata[hi].tempMeas);
|
|
}
|
|
|
|
Static void
|
|
ar9380_set_correction(struct athn_softc *sc, struct ieee80211_channel *c)
|
|
{
|
|
const struct ar9380_eeprom *eep = sc->sc_eep;
|
|
const struct ar9380_modal_eep_header *modal;
|
|
uint32_t reg;
|
|
int8_t slope;
|
|
int i, corr, temp, temp0;
|
|
|
|
if (IEEE80211_IS_CHAN_2GHZ(c))
|
|
modal = &eep->modalHeader2G;
|
|
else
|
|
modal = &eep->modalHeader5G;
|
|
|
|
temp0 = 0; /* XXX: gcc */
|
|
for (i = 0; i < AR9380_MAX_CHAINS; i++) {
|
|
ar9380_get_correction(sc, c, i, &corr, &temp);
|
|
if (i == 0)
|
|
temp0 = temp;
|
|
|
|
reg = AR_READ(sc, AR_PHY_TPC_11_B(i));
|
|
reg = RW(reg, AR_PHY_TPC_11_OLPC_GAIN_DELTA, corr);
|
|
AR_WRITE(sc, AR_PHY_TPC_11_B(i), reg);
|
|
|
|
/* Enable open loop power control. */
|
|
reg = AR_READ(sc, AR_PHY_TPC_6_B(i));
|
|
reg = RW(reg, AR_PHY_TPC_6_ERROR_EST_MODE, 3);
|
|
AR_WRITE(sc, AR_PHY_TPC_6_B(i), reg);
|
|
}
|
|
|
|
/* Enable temperature compensation. */
|
|
if (IEEE80211_IS_CHAN_5GHZ(c) &&
|
|
eep->base_ext2.tempSlopeLow != 0) {
|
|
if (c->ic_freq <= 5500) {
|
|
slope = athn_interpolate(c->ic_freq,
|
|
5180, eep->base_ext2.tempSlopeLow,
|
|
5500, modal->tempSlope);
|
|
}
|
|
else {
|
|
slope = athn_interpolate(c->ic_freq,
|
|
5500, modal->tempSlope,
|
|
5785, eep->base_ext2.tempSlopeHigh);
|
|
}
|
|
}
|
|
else
|
|
slope = modal->tempSlope;
|
|
|
|
reg = AR_READ(sc, AR_PHY_TPC_19);
|
|
reg = RW(reg, AR_PHY_TPC_19_ALPHA_THERM, slope);
|
|
AR_WRITE(sc, AR_PHY_TPC_19, reg);
|
|
|
|
reg = AR_READ(sc, AR_PHY_TPC_18);
|
|
reg = RW(reg, AR_PHY_TPC_18_THERM_CAL, temp0);
|
|
AR_WRITE(sc, AR_PHY_TPC_18, reg);
|
|
AR_WRITE_BARRIER(sc);
|
|
}
|