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rtw_wlan_util.c
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4066 lines (3341 loc) · 108 KB
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/******************************************************************************
*
* Copyright(c) 2007 - 2012 Realtek Corporation. All rights reserved.
*
* This program is free software; you can redistribute it and/or modify it
* under the terms of version 2 of the GNU General Public License as
* published by the Free Software Foundation.
*
* This program is distributed in the hope that it will be useful, but WITHOUT
* ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
* FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
* more details.
*
* You should have received a copy of the GNU General Public License along with
* this program; if not, write to the Free Software Foundation, Inc.,
* 51 Franklin Street, Fifth Floor, Boston, MA 02110, USA
*
*
******************************************************************************/
#define _RTW_WLAN_UTIL_C_
#include <drv_types.h>
#if defined(CONFIG_WOWLAN) || defined(CONFIG_AP_WOWLAN)
#include <linux/inetdevice.h>
#endif
unsigned const char ARTHEROS_OUI1[] = {0x00, 0x03, 0x7f};
unsigned const char ARTHEROS_OUI2[] = {0x00, 0x13, 0x74};
unsigned const char BROADCOM_OUI1[] = {0x00, 0x10, 0x18};
unsigned const char BROADCOM_OUI2[] = {0x00, 0x0a, 0xf7};
unsigned const char BROADCOM_OUI3[] = {0x00, 0x05, 0xb5};
unsigned const char BROADCOM_OUI4[] = {0x00, 0x90, 0x4c};
unsigned const char CISCO_OUI[] = {0x00, 0x40, 0x96};
unsigned const char MARVELL_OUI[] = {0x00, 0x50, 0x43};
unsigned const char RALINK_OUI[] = {0x00, 0x0c, 0x43};
unsigned const char REALTEK_OUI[] = {0x00, 0xe0, 0x4c};
unsigned const char AIRGOCAP_OUI[] = {0x00, 0x0a, 0xf5};
unsigned const char REALTEK_96B_IE[] = {0x00, 0xe0, 0x4c, 0x02, 0x01, 0x20};
extern const unsigned char WPA_TKIP_CIPHER[4];
extern const unsigned char RSN_TKIP_CIPHER[4];
#define R2T_PHY_DELAY (0)
//#define WAIT_FOR_BCN_TO_MIN (3000)
#define WAIT_FOR_BCN_TO_MIN (6000)
#define WAIT_FOR_BCN_TO_MAX (20000)
#define DISCONNECT_BY_CHK_BCN_FAIL_OBSERV_PERIOD_IN_MS 1000
#define DISCONNECT_BY_CHK_BCN_FAIL_THRESHOLD 3
static u8 rtw_basic_rate_cck[4] = {
IEEE80211_CCK_RATE_1MB|IEEE80211_BASIC_RATE_MASK, IEEE80211_CCK_RATE_2MB|IEEE80211_BASIC_RATE_MASK,
IEEE80211_CCK_RATE_5MB|IEEE80211_BASIC_RATE_MASK, IEEE80211_CCK_RATE_11MB|IEEE80211_BASIC_RATE_MASK
};
static u8 rtw_basic_rate_ofdm[3] = {
IEEE80211_OFDM_RATE_6MB|IEEE80211_BASIC_RATE_MASK, IEEE80211_OFDM_RATE_12MB|IEEE80211_BASIC_RATE_MASK,
IEEE80211_OFDM_RATE_24MB|IEEE80211_BASIC_RATE_MASK
};
static u8 rtw_basic_rate_mix[7] = {
IEEE80211_CCK_RATE_1MB|IEEE80211_BASIC_RATE_MASK, IEEE80211_CCK_RATE_2MB|IEEE80211_BASIC_RATE_MASK,
IEEE80211_CCK_RATE_5MB|IEEE80211_BASIC_RATE_MASK, IEEE80211_CCK_RATE_11MB|IEEE80211_BASIC_RATE_MASK,
IEEE80211_OFDM_RATE_6MB|IEEE80211_BASIC_RATE_MASK, IEEE80211_OFDM_RATE_12MB|IEEE80211_BASIC_RATE_MASK,
IEEE80211_OFDM_RATE_24MB|IEEE80211_BASIC_RATE_MASK
};
int new_bcn_max = 3;
int cckrates_included(unsigned char *rate, int ratelen)
{
int i;
for(i = 0; i < ratelen; i++) {
if ( (((rate[i]) & 0x7f) == 2) || (((rate[i]) & 0x7f) == 4) ||
(((rate[i]) & 0x7f) == 11) || (((rate[i]) & 0x7f) == 22) )
return _TRUE;
}
return _FALSE;
}
int cckratesonly_included(unsigned char *rate, int ratelen)
{
int i;
for(i = 0; i < ratelen; i++) {
if ( (((rate[i]) & 0x7f) != 2) && (((rate[i]) & 0x7f) != 4) &&
(((rate[i]) & 0x7f) != 11) && (((rate[i]) & 0x7f) != 22) )
return _FALSE;
}
return _TRUE;
}
u8 networktype_to_raid(_adapter *adapter,struct sta_info *psta)
{
unsigned char raid;
switch(psta->wireless_mode) {
case WIRELESS_11B:
raid = RATR_INX_WIRELESS_B;
break;
case WIRELESS_11A:
case WIRELESS_11G:
raid = RATR_INX_WIRELESS_G;
break;
case WIRELESS_11BG:
raid = RATR_INX_WIRELESS_GB;
break;
case WIRELESS_11_24N:
case WIRELESS_11_5N:
raid = RATR_INX_WIRELESS_N;
break;
case WIRELESS_11A_5N:
case WIRELESS_11G_24N:
raid = RATR_INX_WIRELESS_NG;
break;
case WIRELESS_11BG_24N:
raid = RATR_INX_WIRELESS_NGB;
break;
default:
raid = RATR_INX_WIRELESS_GB;
break;
}
return raid;
}
u8 networktype_to_raid_ex(_adapter *adapter, struct sta_info *psta)
{
//struct mlme_ext_priv *pmlmeext = &adapter->mlmeextpriv;
u8 raid, cur_rf_type, rf_type;
cur_rf_type = rf_type = RF_1T1R;
rtw_hal_get_hwreg(adapter, HW_VAR_RF_TYPE, (u8 *)(&cur_rf_type));
if(cur_rf_type == RF_1T1R) {
rf_type = RF_1T1R;
} else if(IsSupportedVHT(psta->wireless_mode)) {
if(psta->ra_mask & 0xffc00000)
rf_type = RF_2T2R;
} else if(IsSupportedHT(psta->wireless_mode)) {
if(psta->ra_mask & 0xfff00000)
rf_type = RF_2T2R;
}
switch(psta->wireless_mode) {
case WIRELESS_11B:
raid = RATEID_IDX_B;
break;
case WIRELESS_11A:
case WIRELESS_11G:
raid = RATEID_IDX_G;
break;
case WIRELESS_11BG:
raid = RATEID_IDX_BG;
break;
case WIRELESS_11_24N:
case WIRELESS_11_5N:
case WIRELESS_11A_5N:
case WIRELESS_11G_24N:
if (rf_type == RF_2T2R)
raid = RATEID_IDX_GN_N2SS;
else
raid = RATEID_IDX_GN_N1SS;
break;
case WIRELESS_11B_24N:
case WIRELESS_11BG_24N:
if (psta->bw_mode == CHANNEL_WIDTH_20) {
if (rf_type == RF_2T2R)
raid = RATEID_IDX_BGN_20M_2SS_BN;
else
raid = RATEID_IDX_BGN_20M_1SS_BN;
} else {
if (rf_type == RF_2T2R)
raid = RATEID_IDX_BGN_40M_2SS;
else
raid = RATEID_IDX_BGN_40M_1SS;
}
break;
#ifdef CONFIG_80211AC_VHT
case WIRELESS_11_5AC:
if (rf_type == RF_1T1R)
raid = RATEID_IDX_VHT_1SS;
else
raid = RATEID_IDX_VHT_2SS;
break;
case WIRELESS_11_24AC:
if (psta->bw_mode >= CHANNEL_WIDTH_80) {
if (rf_type == RF_1T1R)
raid = RATEID_IDX_VHT_1SS;
else
raid = RATEID_IDX_VHT_2SS;
} else {
if (rf_type == RF_1T1R)
raid = 11;
else
raid = 12;
}
break;
#endif
default:
raid = RATEID_IDX_BGN_40M_2SS;
break;
}
return raid;
}
u8 judge_network_type(_adapter *padapter, unsigned char *rate, int ratelen)
{
u8 network_type = 0;
struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
struct mlme_ext_info *pmlmeinfo = &(pmlmeext->mlmext_info);
if(pmlmeext->cur_channel > 14) {
if (pmlmeinfo->VHT_enable)
network_type = WIRELESS_11AC;
else if (pmlmeinfo->HT_enable)
network_type = WIRELESS_11_5N;
network_type |= WIRELESS_11A;
} else {
if (pmlmeinfo->HT_enable) {
network_type = WIRELESS_11_24N;
}
if ((cckratesonly_included(rate, ratelen)) == _TRUE) {
network_type |= WIRELESS_11B;
} else if((cckrates_included(rate, ratelen)) == _TRUE) {
network_type |= WIRELESS_11BG;
} else {
network_type |= WIRELESS_11G;
}
}
return network_type;
}
unsigned char ratetbl_val_2wifirate(unsigned char rate);
unsigned char ratetbl_val_2wifirate(unsigned char rate)
{
unsigned char val = 0;
switch (rate & 0x7f) {
case 0:
val = IEEE80211_CCK_RATE_1MB;
break;
case 1:
val = IEEE80211_CCK_RATE_2MB;
break;
case 2:
val = IEEE80211_CCK_RATE_5MB;
break;
case 3:
val = IEEE80211_CCK_RATE_11MB;
break;
case 4:
val = IEEE80211_OFDM_RATE_6MB;
break;
case 5:
val = IEEE80211_OFDM_RATE_9MB;
break;
case 6:
val = IEEE80211_OFDM_RATE_12MB;
break;
case 7:
val = IEEE80211_OFDM_RATE_18MB;
break;
case 8:
val = IEEE80211_OFDM_RATE_24MB;
break;
case 9:
val = IEEE80211_OFDM_RATE_36MB;
break;
case 10:
val = IEEE80211_OFDM_RATE_48MB;
break;
case 11:
val = IEEE80211_OFDM_RATE_54MB;
break;
}
return val;
}
int is_basicrate(_adapter *padapter, unsigned char rate);
int is_basicrate(_adapter *padapter, unsigned char rate)
{
int i;
unsigned char val;
struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
for(i = 0; i < NumRates; i++) {
val = pmlmeext->basicrate[i];
if ((val != 0xff) && (val != 0xfe)) {
if (rate == ratetbl_val_2wifirate(val)) {
return _TRUE;
}
}
}
return _FALSE;
}
unsigned int ratetbl2rateset(_adapter *padapter, unsigned char *rateset);
unsigned int ratetbl2rateset(_adapter *padapter, unsigned char *rateset)
{
int i;
unsigned char rate;
unsigned int len = 0;
struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
for (i = 0; i < NumRates; i++) {
rate = pmlmeext->datarate[i];
switch (rate) {
case 0xff:
return len;
case 0xfe:
continue;
default:
rate = ratetbl_val_2wifirate(rate);
if (is_basicrate(padapter, rate) == _TRUE) {
rate |= IEEE80211_BASIC_RATE_MASK;
}
rateset[len] = rate;
len++;
break;
}
}
return len;
}
void get_rate_set(_adapter *padapter, unsigned char *pbssrate, int *bssrate_len)
{
unsigned char supportedrates[NumRates];
_rtw_memset(supportedrates, 0, NumRates);
*bssrate_len = ratetbl2rateset(padapter, supportedrates);
_rtw_memcpy(pbssrate, supportedrates, *bssrate_len);
}
void set_mcs_rate_by_mask(u8 *mcs_set, u32 mask)
{
u8 mcs_rate_1r = (u8)(mask&0xff);
u8 mcs_rate_2r = (u8)((mask>>8)&0xff);
u8 mcs_rate_3r = (u8)((mask>>16)&0xff);
u8 mcs_rate_4r = (u8)((mask>>24)&0xff);
mcs_set[0] &= mcs_rate_1r;
mcs_set[1] &= mcs_rate_2r;
mcs_set[2] &= mcs_rate_3r;
mcs_set[3] &= mcs_rate_4r;
}
void UpdateBrateTbl(
IN PADAPTER Adapter,
IN u8 *mBratesOS
)
{
u8 i;
u8 rate;
// 1M, 2M, 5.5M, 11M, 6M, 12M, 24M are mandatory.
for(i=0; i<NDIS_802_11_LENGTH_RATES_EX; i++) {
rate = mBratesOS[i] & 0x7f;
switch(rate) {
case IEEE80211_CCK_RATE_1MB:
case IEEE80211_CCK_RATE_2MB:
case IEEE80211_CCK_RATE_5MB:
case IEEE80211_CCK_RATE_11MB:
case IEEE80211_OFDM_RATE_6MB:
case IEEE80211_OFDM_RATE_12MB:
case IEEE80211_OFDM_RATE_24MB:
mBratesOS[i] |= IEEE80211_BASIC_RATE_MASK;
break;
}
}
}
void UpdateBrateTblForSoftAP(u8 *bssrateset, u32 bssratelen)
{
u8 i;
u8 rate;
for(i=0; i<bssratelen; i++) {
rate = bssrateset[i] & 0x7f;
switch(rate) {
case IEEE80211_CCK_RATE_1MB:
case IEEE80211_CCK_RATE_2MB:
case IEEE80211_CCK_RATE_5MB:
case IEEE80211_CCK_RATE_11MB:
bssrateset[i] |= IEEE80211_BASIC_RATE_MASK;
break;
}
}
}
void Save_DM_Func_Flag(_adapter *padapter)
{
u8 bSaveFlag = _TRUE;
rtw_hal_set_hwreg(padapter, HW_VAR_DM_FUNC_OP, (u8 *)(&bSaveFlag));
}
void Restore_DM_Func_Flag(_adapter *padapter)
{
u8 bSaveFlag = _FALSE;
rtw_hal_set_hwreg(padapter, HW_VAR_DM_FUNC_OP, (u8 *)(&bSaveFlag));
}
void Switch_DM_Func(_adapter *padapter, u32 mode, u8 enable)
{
if(enable == _TRUE)
rtw_hal_set_hwreg(padapter, HW_VAR_DM_FUNC_SET, (u8 *)(&mode));
else
rtw_hal_set_hwreg(padapter, HW_VAR_DM_FUNC_CLR, (u8 *)(&mode));
}
static inline void Set_NETYPE1_MSR(_adapter *padapter, u8 type)
{
rtw_hal_set_hwreg(padapter, HW_VAR_MEDIA_STATUS1, (u8 *)(&type));
}
static void Set_NETYPE0_MSR(_adapter *padapter, u8 type)
{
rtw_hal_set_hwreg(padapter, HW_VAR_MEDIA_STATUS, (u8 *)(&type));
}
void Set_MSR(_adapter *padapter, u8 type)
{
#ifdef CONFIG_CONCURRENT_MODE
if(padapter->iface_type == IFACE_PORT1) {
Set_NETYPE1_MSR(padapter, type);
} else
#endif
{
Set_NETYPE0_MSR(padapter, type);
}
}
inline u8 rtw_get_oper_ch(_adapter *adapter)
{
return adapter_to_dvobj(adapter)->oper_channel;
}
inline void rtw_set_oper_ch(_adapter *adapter, u8 ch)
{
#ifdef DBG_CH_SWITCH
const int len = 128;
char msg[128] = {0};
int cnt = 0;
int i = 0;
#endif /* DBG_CH_SWITCH */
struct dvobj_priv *dvobj = adapter_to_dvobj(adapter);
if (dvobj->oper_channel != ch) {
dvobj->on_oper_ch_time = rtw_get_current_time();
#ifdef DBG_CH_SWITCH
cnt += snprintf(msg+cnt, len-cnt, "switch to ch %3u", ch);
for (i = 0; i < dvobj->iface_nums; i++) {
_adapter *iface = dvobj->padapters[i];
cnt += snprintf(msg+cnt, len-cnt, " ["ADPT_FMT":", ADPT_ARG(iface));
if (iface->mlmeextpriv.cur_channel == ch)
cnt += snprintf(msg+cnt, len-cnt, "C");
else
cnt += snprintf(msg+cnt, len-cnt, "_");
if (iface->wdinfo.listen_channel == ch && !rtw_p2p_chk_state(&iface->wdinfo, P2P_STATE_NONE))
cnt += snprintf(msg+cnt, len-cnt, "L");
else
cnt += snprintf(msg+cnt, len-cnt, "_");
cnt += snprintf(msg+cnt, len-cnt, "]");
}
DBG_871X(FUNC_ADPT_FMT" %s\n", FUNC_ADPT_ARG(adapter), msg);
#endif /* DBG_CH_SWITCH */
}
dvobj->oper_channel = ch;
}
inline u8 rtw_get_oper_bw(_adapter *adapter)
{
return adapter_to_dvobj(adapter)->oper_bwmode;
}
inline void rtw_set_oper_bw(_adapter *adapter, u8 bw)
{
adapter_to_dvobj(adapter)->oper_bwmode = bw;
}
inline u8 rtw_get_oper_choffset(_adapter *adapter)
{
return adapter_to_dvobj(adapter)->oper_ch_offset;
}
inline void rtw_set_oper_choffset(_adapter *adapter, u8 offset)
{
adapter_to_dvobj(adapter)->oper_ch_offset = offset;
}
u8 rtw_get_offset_by_ch(u8 channel)
{
u8 offset = HAL_PRIME_CHNL_OFFSET_DONT_CARE;
if(channel>=1 && channel<=4) {
offset = HAL_PRIME_CHNL_OFFSET_LOWER;
} else if(channel>=5 && channel<=14) {
offset = HAL_PRIME_CHNL_OFFSET_UPPER;
} else {
switch(channel) {
case 36:
case 44:
case 52:
case 60:
case 100:
case 108:
case 116:
case 124:
case 132:
case 149:
case 157:
offset = HAL_PRIME_CHNL_OFFSET_LOWER;
break;
case 40:
case 48:
case 56:
case 64:
case 104:
case 112:
case 120:
case 128:
case 136:
case 153:
case 161:
offset = HAL_PRIME_CHNL_OFFSET_UPPER;
break;
default:
offset = HAL_PRIME_CHNL_OFFSET_DONT_CARE;
break;
}
}
return offset;
}
u8 rtw_get_center_ch(u8 channel, u8 chnl_bw, u8 chnl_offset)
{
u8 center_ch = channel;
if(chnl_bw == CHANNEL_WIDTH_80) {
if((channel == 36) || (channel == 40) || (channel == 44) || (channel == 48) )
center_ch = 42;
if((channel == 52) || (channel == 56) || (channel == 60) || (channel == 64) )
center_ch = 58;
if((channel == 100) || (channel == 104) || (channel == 108) || (channel == 112) )
center_ch = 106;
if((channel == 116) || (channel == 120) || (channel == 124) || (channel == 128) )
center_ch = 122;
if((channel == 132) || (channel == 136) || (channel == 140) || (channel == 144) )
center_ch = 138;
if((channel == 149) || (channel == 153) || (channel == 157) || (channel == 161) )
center_ch = 155;
else if(channel <= 14)
center_ch = 7;
} else if(chnl_bw == CHANNEL_WIDTH_40) {
if (chnl_offset == HAL_PRIME_CHNL_OFFSET_LOWER)
center_ch = channel + 2;
else
center_ch = channel - 2;
}
return center_ch;
}
inline u32 rtw_get_on_oper_ch_time(_adapter *adapter)
{
return adapter_to_dvobj(adapter)->on_oper_ch_time;
}
inline u32 rtw_get_on_cur_ch_time(_adapter *adapter)
{
if (adapter->mlmeextpriv.cur_channel == adapter_to_dvobj(adapter)->oper_channel)
return adapter_to_dvobj(adapter)->on_oper_ch_time;
else
return 0;
}
void SelectChannel(_adapter *padapter, unsigned char channel)
{
//struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
#ifdef CONFIG_DUALMAC_CONCURRENT
//saved channel info
rtw_set_oper_ch(padapter, channel);
dc_SelectChannel(padapter, channel);
#else //CONFIG_DUALMAC_CONCURRENT
_enter_critical_mutex(&(adapter_to_dvobj(padapter)->setch_mutex), NULL);
//saved channel info
rtw_set_oper_ch(padapter, channel);
rtw_hal_set_chan(padapter, channel);
_exit_critical_mutex(&(adapter_to_dvobj(padapter)->setch_mutex), NULL);
#endif // CONFIG_DUALMAC_CONCURRENT
}
void SetBWMode(_adapter *padapter, unsigned short bwmode, unsigned char channel_offset)
{
//struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
#ifdef CONFIG_DUALMAC_CONCURRENT
//saved bw info
rtw_set_oper_bw(padapter, bwmode);
rtw_set_oper_choffset(padapter, channel_offset);
dc_SetBWMode(padapter, bwmode, channel_offset);
#else //CONFIG_DUALMAC_CONCURRENT
_enter_critical_mutex(&(adapter_to_dvobj(padapter)->setbw_mutex), NULL);
//saved bw info
rtw_set_oper_bw(padapter, bwmode);
rtw_set_oper_choffset(padapter, channel_offset);
rtw_hal_set_bwmode(padapter, (CHANNEL_WIDTH)bwmode, channel_offset);
_exit_critical_mutex(&(adapter_to_dvobj(padapter)->setbw_mutex), NULL);
#endif // CONFIG_DUALMAC_CONCURRENT
}
void set_channel_bwmode(_adapter *padapter, unsigned char channel, unsigned char channel_offset, unsigned short bwmode)
{
u8 center_ch, chnl_offset80 = HAL_PRIME_CHNL_OFFSET_DONT_CARE;
//struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
if ( padapter->bNotifyChannelChange ) {
DBG_871X( "[%s] ch = %d, offset = %d, bwmode = %d\n", __FUNCTION__, channel, channel_offset, bwmode );
}
center_ch = rtw_get_center_ch(channel, bwmode, channel_offset);
if(bwmode == CHANNEL_WIDTH_80) {
if(center_ch > channel)
chnl_offset80 = HAL_PRIME_CHNL_OFFSET_LOWER;
else if(center_ch < channel)
chnl_offset80 = HAL_PRIME_CHNL_OFFSET_UPPER;
else
chnl_offset80 = HAL_PRIME_CHNL_OFFSET_DONT_CARE;
}
//set Channel
#ifdef CONFIG_DUALMAC_CONCURRENT
//saved channel/bw info
rtw_set_oper_ch(padapter, channel);
rtw_set_oper_bw(padapter, bwmode);
rtw_set_oper_choffset(padapter, channel_offset);
SelectChannel(padapter, channel);
SetBWMode(padapter, bwmode, channel_offset);
#else //CONFIG_DUALMAC_CONCURRENT
_enter_critical_mutex(&(adapter_to_dvobj(padapter)->setch_mutex), NULL);
//saved channel/bw info
rtw_set_oper_ch(padapter, channel);
rtw_set_oper_bw(padapter, bwmode);
rtw_set_oper_choffset(padapter, channel_offset);
rtw_hal_set_chnl_bw(padapter, center_ch, bwmode, channel_offset, chnl_offset80); // set center channel
_exit_critical_mutex(&(adapter_to_dvobj(padapter)->setch_mutex), NULL);
#endif // CONFIG_DUALMAC_CONCURRENT
}
int get_bsstype(unsigned short capability)
{
if (capability & BIT(0)) {
return WIFI_FW_AP_STATE;
} else if (capability & BIT(1)) {
return WIFI_FW_ADHOC_STATE;
} else {
return 0;
}
}
__inline u8 *get_my_bssid(WLAN_BSSID_EX *pnetwork)
{
return (pnetwork->MacAddress);
}
u16 get_beacon_interval(WLAN_BSSID_EX *bss)
{
unsigned short val;
_rtw_memcpy((unsigned char *)&val, rtw_get_beacon_interval_from_ie(bss->IEs), 2);
return le16_to_cpu(val);
}
int is_client_associated_to_ap(_adapter *padapter)
{
struct mlme_ext_priv *pmlmeext;
struct mlme_ext_info *pmlmeinfo;
if(!padapter)
return _FAIL;
pmlmeext = &padapter->mlmeextpriv;
pmlmeinfo = &(pmlmeext->mlmext_info);
if ((pmlmeinfo->state & WIFI_FW_ASSOC_SUCCESS) && ((pmlmeinfo->state&0x03) == WIFI_FW_STATION_STATE)) {
return _TRUE;
} else {
return _FAIL;
}
}
int is_client_associated_to_ibss(_adapter *padapter)
{
struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
struct mlme_ext_info *pmlmeinfo = &(pmlmeext->mlmext_info);
if ((pmlmeinfo->state & WIFI_FW_ASSOC_SUCCESS) && ((pmlmeinfo->state&0x03) == WIFI_FW_ADHOC_STATE)) {
return _TRUE;
} else {
return _FAIL;
}
}
int is_IBSS_empty(_adapter *padapter)
{
unsigned int i;
struct mlme_ext_priv *pmlmeext = &padapter->mlmeextpriv;
struct mlme_ext_info *pmlmeinfo = &(pmlmeext->mlmext_info);
for (i = IBSS_START_MAC_ID; i < NUM_STA; i++) {
if (pmlmeinfo->FW_sta_info[i].status == 1) {
return _FAIL;
}
}
return _TRUE;
}
unsigned int decide_wait_for_beacon_timeout(unsigned int bcn_interval)
{
if ((bcn_interval << 2) < WAIT_FOR_BCN_TO_MIN) {
return WAIT_FOR_BCN_TO_MIN;
} else if ((bcn_interval << 2) > WAIT_FOR_BCN_TO_MAX) {
return WAIT_FOR_BCN_TO_MAX;
} else {
return ((bcn_interval << 2));
}
}
void CAM_empty_entry(
PADAPTER Adapter,
u8 ucIndex
)
{
rtw_hal_set_hwreg(Adapter, HW_VAR_CAM_EMPTY_ENTRY, (u8 *)(&ucIndex));
}
void invalidate_cam_all(_adapter *padapter)
{
struct dvobj_priv *dvobj = adapter_to_dvobj(padapter);
struct cam_ctl_t *cam_ctl = &dvobj->cam_ctl;
_irqL irqL;
u8 val8 = 0;
rtw_hal_set_hwreg(padapter, HW_VAR_CAM_INVALID_ALL, &val8);
_enter_critical_bh(&cam_ctl->lock, &irqL);
cam_ctl->bitmap = 0;
_rtw_memset(dvobj->cam_cache, 0, sizeof(struct cam_entry_cache)*TOTAL_CAM_ENTRY);
_exit_critical_bh(&cam_ctl->lock, &irqL);
}
#if 1
static u32 _ReadCAM(_adapter *padapter ,u32 addr)
{
u32 count = 0, cmd;
cmd = CAM_POLLINIG |addr ;
rtw_write32(padapter, RWCAM, cmd);
do {
if(0 == (rtw_read32(padapter,REG_CAMCMD) & CAM_POLLINIG)) {
break;
}
} while(count++ < 100);
return rtw_read32(padapter,REG_CAMREAD);
}
void read_cam(_adapter *padapter ,u8 entry, u8 *get_key)
{
u32 j, addr, cmd;
addr = entry << 3;
//DBG_8192C("********* DUMP CAM Entry_#%02d***************\n",entry);
for (j = 0; j < 6; j++) {
cmd = _ReadCAM(padapter ,addr+j);
//DBG_8192C("offset:0x%02x => 0x%08x \n",addr+j,cmd);
if(j>1) //get key from cam
_rtw_memcpy(get_key+(j-2)*4, &cmd, 4);
}
//DBG_8192C("*********************************\n");
}
bool read_phy_cam_is_gtk(_adapter *padapter, u8 entry)
{
bool res = _FALSE;
u32 addr, cmd;
addr = entry << 3;
cmd = _ReadCAM(padapter, addr);
res = (cmd & BIT6)? _TRUE:_FALSE;
return res;
}
void dump_cam_table(_adapter *padapter)
{
u32 i, j, addr, cmd;
DBG_871X("###########DUMP CAM TABLE##############\n");
for (i = 0; i < 8 ; i++) {
addr = i << 3;
DBG_871X("********* DUMP CAM Entry_#%02d**********\n",i);
for (j = 0; j < 6; j++) {
cmd = _ReadCAM(padapter ,addr+j);
DBG_8192C("offset:0x%02x => 0x%08x \n",addr+j,cmd);
}
DBG_871X("*********************************\n");
}
}
#endif
void _write_cam(_adapter *padapter, u8 entry, u16 ctrl, const u8 *mac, const u8 *key)
{
unsigned int i, val, addr;
int j;
u32 cam_val[2];
addr = entry << 3;
for (j = 5; j >= 0; j--) {
switch (j) {
case 0:
val = (ctrl | (mac[0] << 16) | (mac[1] << 24) );
break;
case 1:
val = (mac[2] | ( mac[3] << 8) | (mac[4] << 16) | (mac[5] << 24));
break;
default:
i = (j - 2) << 2;
val = (key[i] | (key[i+1] << 8) | (key[i+2] << 16) | (key[i+3] << 24));
break;
}
cam_val[0] = val;
cam_val[1] = addr + (unsigned int)j;
rtw_hal_set_hwreg(padapter, HW_VAR_CAM_WRITE, (u8 *)cam_val);
}
}
void _clear_cam_entry(_adapter *padapter, u8 entry)
{
const unsigned char null_sta[] = {0x00, 0x00, 0x00, 0x00, 0x00, 0x00};
const unsigned char null_key[] = {0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,0x00, 0x00, 0x00, 0x00,0x00, 0x00, 0x00, 0x00};
_write_cam(padapter, entry, 0, null_sta, null_key);
}
inline void write_cam(_adapter *adapter, u8 id, u16 ctrl, const u8 *mac, const u8 *key)
{
#ifdef CONFIG_WRITE_CACHE_ONLY
write_cam_cache(adapter, id ,ctrl, mac, key);
#else
_write_cam(adapter, id, ctrl, mac, key);
write_cam_cache(adapter, id ,ctrl, mac, key);
#endif
}
inline void clear_cam_entry(_adapter *adapter, u8 id)
{
_clear_cam_entry(adapter, id);
clear_cam_cache(adapter, id);
}
inline void write_cam_from_cache(_adapter *adapter, u8 id)
{
struct dvobj_priv *dvobj = adapter_to_dvobj(adapter);
struct cam_ctl_t *cam_ctl = &dvobj->cam_ctl;
_irqL irqL;
struct cam_entry_cache cache;
_enter_critical_bh(&cam_ctl->lock, &irqL);
_rtw_memcpy(&cache, &dvobj->cam_cache[id], sizeof(struct cam_entry_cache));
_exit_critical_bh(&cam_ctl->lock, &irqL);
_write_cam(adapter, id, cache.ctrl, cache.mac, cache.key);
}
void write_cam_cache(_adapter *adapter, u8 id, u16 ctrl, const u8 *mac, const u8 *key)
{
struct dvobj_priv *dvobj = adapter_to_dvobj(adapter);
struct cam_ctl_t *cam_ctl = &dvobj->cam_ctl;
_irqL irqL;
_enter_critical_bh(&cam_ctl->lock, &irqL);
dvobj->cam_cache[id].ctrl = ctrl;
_rtw_memcpy(dvobj->cam_cache[id].mac, mac, ETH_ALEN);
_rtw_memcpy(dvobj->cam_cache[id].key, key, 16);
_exit_critical_bh(&cam_ctl->lock, &irqL);
}
void clear_cam_cache(_adapter *adapter, u8 id)
{
struct dvobj_priv *dvobj = adapter_to_dvobj(adapter);
struct cam_ctl_t *cam_ctl = &dvobj->cam_ctl;
_irqL irqL;
_enter_critical_bh(&cam_ctl->lock, &irqL);
_rtw_memset(&(dvobj->cam_cache[id]), 0, sizeof(struct cam_entry_cache));
_exit_critical_bh(&cam_ctl->lock, &irqL);
}
s16 rtw_get_camid(_adapter *adapter, struct sta_info *sta, s16 kid)
{
u8 macid;
s16 camid;
//cam_entry:
//0~3 for default key
//for concurrent mode (ap+sta, sta+sta):
//default key is disable, using sw encrypt/decrypt
//camid 0, 1, 2, 3 is default entry for default key/group key
//macid = 1 is for bc/mc stainfo, no mapping to camid
//macid = 0 mapping to camid 4
//for macid >=2, camid = macid+3;
if (sta) {
struct mlme_ext_info *mlmeinfo = &adapter->mlmeextpriv.mlmext_info;
macid = sta->mac_id;
if((mlmeinfo->state&0x03) == WIFI_FW_AP_STATE) {
if((macid == 1) || (macid>(NUM_STA-4))) {
DBG_871X_LEVEL(_drv_always_, FUNC_ADPT_FMT" failed, mac_id=%d\n", FUNC_ADPT_ARG(adapter), macid);
camid = -1;
goto exit;
}
}
if(macid==0)
camid = 4;
else if(macid >=2)
camid = macid + 3;