Commit 1cb67184 authored by frtabu's avatar frtabu

remove develop version of USRP device, remove some compilation warnings

parent 2634e1e0
...@@ -808,9 +808,6 @@ fi ...@@ -808,9 +808,6 @@ fi
# Build RF device and transport protocol libraries # # Build RF device and transport protocol libraries #
#################################################### ####################################################
if [ "$eNB" = "1" -o "$UE" = "1" -o "$gNB" = "1" -o "$nrUE" = "1" -o "$HWLAT" = "1" ] ; then if [ "$eNB" = "1" -o "$UE" = "1" -o "$gNB" = "1" -o "$nrUE" = "1" -o "$HWLAT" = "1" ] ; then
if [ "$eNB" = "1" -o "$UE" = "1" ] ; then
USRPVERSION="lte"
fi
# build RF device libraries # build RF device libraries
if [ "$HW" != "None" ] ; then if [ "$HW" != "None" ] ; then
rm -f liboai_device.so rm -f liboai_device.so
...@@ -827,11 +824,11 @@ fi ...@@ -827,11 +824,11 @@ fi
echo_info "liboai_device.so is linked to EXMIMO device library" echo_info "liboai_device.so is linked to EXMIMO device library"
elif [ "$HW" == "OAI_USRP" ] ; then elif [ "$HW" == "OAI_USRP" ] ; then
compilations \ compilations \
$build_dir oai_usrpdevif$USRPVERSION \ $build_dir oai_usrpdevif \
liboai_usrpdevif$USRPVERSION.so $dbin/liboai_usrpdevif$USRPVERSION.so.$REL liboai_usrpdevif.so $dbin/liboai_usrpdevif.so.$REL
ln -sf liboai_usrpdevif$USRPVERSION.so liboai_device.so ln -sf liboai_usrpdevif.so liboai_device.so
ln -sf $dbin/liboai_usrpdevif$USRPVERSION.so.$REL $dbin/liboai_device.so ln -sf $dbin/liboai_usrpdevif.so.$REL $dbin/liboai_device.so
echo_info "liboai_device.so is linked to USRP device library" echo_info "liboai_device.so is linked to USRP device library"
elif [ "$HW" == "OAI_BLADERF" ] ; then elif [ "$HW" == "OAI_BLADERF" ] ; then
if [ -f "/usr/include/libbladeRF.h" ] ; then if [ -f "/usr/include/libbladeRF.h" ] ; then
......
...@@ -47,29 +47,29 @@ uint16_t get_SLIV(uint8_t S, uint8_t L); ...@@ -47,29 +47,29 @@ uint16_t get_SLIV(uint8_t S, uint8_t L);
uint8_t nr_get_S(uint8_t row_idx, uint8_t CP, uint8_t time_alloc_type, uint8_t dmrs_typeA_position); uint8_t nr_get_S(uint8_t row_idx, uint8_t CP, uint8_t time_alloc_type, uint8_t dmrs_typeA_position);
void nr_get_rbg_parms(NR_BWP_PARMS* bwp, uint8_t config_type); void nr_get_rbg_parms(NR_BWP_PARMS *bwp, uint8_t config_type);
void nr_get_rbg_list(uint32_t bitmap, uint8_t n_rbg, uint8_t* rbg_list); void nr_get_rbg_list(uint32_t bitmap, uint8_t n_rbg, uint8_t *rbg_list);
void nr_get_PRG_parms(NR_BWP_PARMS* bwp, NR_gNB_DCI_ALLOC_t dci_alloc, uint8_t prb_bundling_type); void nr_get_PRG_parms(NR_BWP_PARMS *bwp, NR_gNB_DCI_ALLOC_t dci_alloc, uint8_t prb_bundling_type);
void nr_pdsch_codeword_scrambling(uint8_t *in, void nr_pdsch_codeword_scrambling(uint8_t *in,
uint32_t size, uint32_t size,
uint8_t q, uint8_t q,
uint32_t Nid, uint32_t Nid,
uint32_t n_RNTI, uint32_t n_RNTI,
uint32_t* out); uint32_t *out);
void nr_fill_dlsch(PHY_VARS_gNB *gNB, void nr_fill_dlsch(PHY_VARS_gNB *gNB,
int frame, int frame,
int slot, int slot,
nfapi_nr_dl_config_dlsch_pdu *dlsch_pdu, nfapi_nr_dl_config_dlsch_pdu *dlsch_pdu,
unsigned char *sdu); unsigned char *sdu);
uint8_t nr_generate_pdsch(NR_gNB_DLSCH_t *dlsch, uint8_t nr_generate_pdsch(NR_gNB_DLSCH_t *dlsch,
NR_gNB_DCI_ALLOC_t *dci_alloc, NR_gNB_DCI_ALLOC_t *dci_alloc,
uint32_t ***pdsch_dmrs, uint32_t ***pdsch_dmrs,
int32_t** txdataF, int32_t **txdataF,
int16_t amp, int16_t amp,
int frame, int frame,
uint8_t slot, uint8_t slot,
...@@ -89,11 +89,12 @@ void clean_gNB_ulsch(NR_gNB_ULSCH_t *ulsch); ...@@ -89,11 +89,12 @@ void clean_gNB_ulsch(NR_gNB_ULSCH_t *ulsch);
int16_t find_nr_dlsch(uint16_t rnti, PHY_VARS_gNB *gNB,find_type_t type); int16_t find_nr_dlsch(uint16_t rnti, PHY_VARS_gNB *gNB,find_type_t type);
int nr_dlsch_encoding(unsigned char *a,int frame, int nr_dlsch_encoding(unsigned char *a,int frame,
uint8_t slot, uint8_t slot,
NR_gNB_DLSCH_t *dlsch, NR_gNB_DLSCH_t *dlsch,
NR_DL_FRAME_PARMS* frame_parms); NR_DL_FRAME_PARMS *frame_parms);
void nr_emulate_dlsch_payload(uint8_t* payload, uint16_t size); void nr_emulate_dlsch_payload(uint8_t *payload, uint16_t size);
int16_t find_nr_ulsch(uint16_t rnti, PHY_VARS_gNB *gNB,find_type_t type);
#endif #endif
...@@ -41,17 +41,13 @@ extern uint8_t nfapi_mode; ...@@ -41,17 +41,13 @@ extern uint8_t nfapi_mode;
void handle_nr_nfapi_bch_pdu(PHY_VARS_gNB *gNB, void handle_nr_nfapi_bch_pdu(PHY_VARS_gNB *gNB,
nfapi_nr_dl_config_request_pdu_t *dl_config_pdu, nfapi_nr_dl_config_request_pdu_t *dl_config_pdu,
uint8_t *sdu) uint8_t *sdu) {
{
AssertFatal(dl_config_pdu->bch_pdu_rel15.length == 3, "BCH PDU has length %d != 3\n", AssertFatal(dl_config_pdu->bch_pdu_rel15.length == 3, "BCH PDU has length %d != 3\n",
dl_config_pdu->bch_pdu_rel15.length); dl_config_pdu->bch_pdu_rel15.length);
LOG_D(PHY,"pbch_pdu[0]: %x,pbch_pdu[1]: %x,gNB->pbch_pdu[2]: %x\n",sdu[0],sdu[1],sdu[2]); LOG_D(PHY,"pbch_pdu[0]: %x,pbch_pdu[1]: %x,gNB->pbch_pdu[2]: %x\n",sdu[0],sdu[1],sdu[2]);
gNB->pbch_pdu[0] = sdu[2]; gNB->pbch_pdu[0] = sdu[2];
gNB->pbch_pdu[1] = sdu[1]; gNB->pbch_pdu[1] = sdu[1];
gNB->pbch_pdu[2] = sdu[0]; gNB->pbch_pdu[2] = sdu[0];
// adjust transmit amplitude here based on NFAPI info // adjust transmit amplitude here based on NFAPI info
} }
...@@ -60,22 +56,22 @@ void handle_nr_nfapi_bch_pdu(PHY_VARS_gNB *gNB, ...@@ -60,22 +56,22 @@ void handle_nr_nfapi_bch_pdu(PHY_VARS_gNB *gNB,
uint8_t *sdu) uint8_t *sdu)
{ {
int UE_id = 0; //Hardcode UE_id for now int UE_id = 0; //Hardcode UE_id for now
int harq_pid; int harq_pid;
NR_gNB_DLSCH_t *dlsch0=NULL, *dlsch1=NULL; NR_gNB_DLSCH_t *dlsch0=NULL, *dlsch1=NULL;
NR_DL_gNB_HARQ_t *dlsch0_harq=NULL,*dlsch1_harq=NULL; NR_DL_gNB_HARQ_t *dlsch0_harq=NULL,*dlsch1_harq=NULL;
// Based on nr_fill_dci_and_dlsch only gNB->dlsch[0][0] gets filled now. So maybe we do not need dlsch1. // Based on nr_fill_dci_and_dlsch only gNB->dlsch[0][0] gets filled now. So maybe we do not need dlsch1.
dlsch0 = gNB->dlsch[UE_id][0]; dlsch0 = gNB->dlsch[UE_id][0];
dlsch1 = gNB->dlsch[UE_id][1]; dlsch1 = gNB->dlsch[UE_id][1];
harq_pid = dlsch0->harq_ids[subframe]; harq_pid = dlsch0->harq_ids[subframe];
dlsch0_harq = dlsch0->harq_processes[harq_pid]; dlsch0_harq = dlsch0->harq_processes[harq_pid];
dlsch1_harq = dlsch1->harq_processes[harq_pid]; dlsch1_harq = dlsch1->harq_processes[harq_pid];
//if (dlsch0_harq->round==0) { //get pointer to SDU if this a new SDU //if (dlsch0_harq->round==0) { //get pointer to SDU if this a new SDU
if(sdu == NULL) { if(sdu == NULL) {
LOG_E(PHY,"NFAPI: SFN/SF:%04d%d proc:TX:[frame %d subframe %d]: programming dlsch for round 0 \n", LOG_E(PHY,"NFAPI: SFN/SF:%04d%d proc:TX:[frame %d subframe %d]: programming dlsch for round 0 \n",
frame,subframe, frame,subframe,
...@@ -99,29 +95,20 @@ void handle_nfapi_nr_dci_dl_pdu(PHY_VARS_gNB *gNB, ...@@ -99,29 +95,20 @@ void handle_nfapi_nr_dci_dl_pdu(PHY_VARS_gNB *gNB,
nfapi_nr_dl_config_dci_dl_pdu *dci_dl_pdu) { nfapi_nr_dl_config_dci_dl_pdu *dci_dl_pdu) {
int idx = slot&1; int idx = slot&1;
NR_gNB_PDCCH *pdcch_vars = &gNB->pdcch_vars; NR_gNB_PDCCH *pdcch_vars = &gNB->pdcch_vars;
LOG_D(PHY,"Frame %d, Slot %d: DCI processing - populating pdcch_vars->dci_alloc[%d] proc:slot_tx:%d idx:%d pdcch_vars->num_dci:%d\n",frame,slot, pdcch_vars->num_dci, slot, idx, pdcch_vars->num_dci); LOG_D(PHY,"Frame %d, Slot %d: DCI processing - populating pdcch_vars->dci_alloc[%d] proc:slot_tx:%d idx:%d pdcch_vars->num_dci:%d\n",frame,slot, pdcch_vars->num_dci, slot, idx, pdcch_vars->num_dci);
// copy dci configuration into gNB structure // copy dci configuration into gNB structure
nr_fill_dci(gNB,frame,slot,&pdcch_vars->dci_alloc[pdcch_vars->num_dci],dci_dl_pdu); nr_fill_dci(gNB,frame,slot,&pdcch_vars->dci_alloc[pdcch_vars->num_dci],dci_dl_pdu);
LOG_D(PHY,"Frame %d, Slot %d: DCI processing - populated pdcch_vars->dci_alloc[%d] proc:slot_tx:%d idx:%d pdcch_vars->num_dci:%d\n",frame,slot, pdcch_vars->num_dci, slot, idx, pdcch_vars->num_dci); LOG_D(PHY,"Frame %d, Slot %d: DCI processing - populated pdcch_vars->dci_alloc[%d] proc:slot_tx:%d idx:%d pdcch_vars->num_dci:%d\n",frame,slot, pdcch_vars->num_dci, slot, idx, pdcch_vars->num_dci);
} }
void handle_nr_nfapi_dlsch_pdu(PHY_VARS_gNB *gNB,int frame,int slot, void handle_nr_nfapi_dlsch_pdu(PHY_VARS_gNB *gNB,int frame,int slot,
nfapi_nr_dl_config_dlsch_pdu *dlsch_pdu, nfapi_nr_dl_config_dlsch_pdu *dlsch_pdu,
uint8_t *sdu) uint8_t *sdu) {
{
nr_fill_dlsch(gNB,frame,slot,dlsch_pdu,sdu); nr_fill_dlsch(gNB,frame,slot,dlsch_pdu,sdu);
} }
void nr_schedule_response(NR_Sched_Rsp_t *Sched_INFO){ void nr_schedule_response(NR_Sched_Rsp_t *Sched_INFO) {
PHY_VARS_gNB *gNB; PHY_VARS_gNB *gNB;
// copy data from L2 interface into L1 structures // copy data from L2 interface into L1 structures
module_id_t Mod_id = Sched_INFO->module_id; module_id_t Mod_id = Sched_INFO->module_id;
...@@ -131,35 +118,27 @@ void nr_schedule_response(NR_Sched_Rsp_t *Sched_INFO){ ...@@ -131,35 +118,27 @@ void nr_schedule_response(NR_Sched_Rsp_t *Sched_INFO){
nfapi_nr_ul_tti_request_t *UL_tti_req = Sched_INFO->UL_tti_req; nfapi_nr_ul_tti_request_t *UL_tti_req = Sched_INFO->UL_tti_req;
frame_t frame = Sched_INFO->frame; frame_t frame = Sched_INFO->frame;
sub_frame_t slot = Sched_INFO->slot; sub_frame_t slot = Sched_INFO->slot;
AssertFatal(RC.gNB!=NULL,"RC.gNB is null\n"); AssertFatal(RC.gNB!=NULL,"RC.gNB is null\n");
AssertFatal(RC.gNB[Mod_id]!=NULL,"RC.gNB[%d] is null\n",Mod_id); AssertFatal(RC.gNB[Mod_id]!=NULL,"RC.gNB[%d] is null\n",Mod_id);
AssertFatal(RC.gNB[Mod_id][CC_id]!=NULL,"RC.gNB[%d][%d] is null\n",Mod_id,CC_id); AssertFatal(RC.gNB[Mod_id][CC_id]!=NULL,"RC.gNB[%d][%d] is null\n",Mod_id,CC_id);
gNB = RC.gNB[Mod_id][CC_id]; gNB = RC.gNB[Mod_id][CC_id];
uint8_t number_dl_pdu = DL_req->dl_config_request_body.number_pdu; uint8_t number_dl_pdu = DL_req->dl_config_request_body.number_pdu;
uint8_t number_ul_pdu = UL_tti_req->n_pdus;
nfapi_nr_dl_config_request_pdu_t *dl_config_pdu; nfapi_nr_dl_config_request_pdu_t *dl_config_pdu;
int i; int i;
LOG_D(PHY,"NFAPI: Sched_INFO:SFN/SF:%04d%d DL_req:SFN/SF:%04d%d:dl_pdu:%d tx_req:SFN/SF:%04d%d:pdus:%d \n", LOG_D(PHY,"NFAPI: Sched_INFO:SFN/SF:%04d%d DL_req:SFN/SF:%04d%d:dl_pdu:%d tx_req:SFN/SF:%04d%d:pdus:%d \n",
frame,slot, frame,slot,
NFAPI_SFNSF2SFN(DL_req->sfn_sf),NFAPI_SFNSF2SF(DL_req->sfn_sf),number_dl_pdu, NFAPI_SFNSF2SFN(DL_req->sfn_sf),NFAPI_SFNSF2SF(DL_req->sfn_sf),number_dl_pdu,
NFAPI_SFNSF2SFN(TX_req->sfn_sf),NFAPI_SFNSF2SF(TX_req->sfn_sf),TX_req->tx_request_body.number_of_pdus); NFAPI_SFNSF2SFN(TX_req->sfn_sf),NFAPI_SFNSF2SF(TX_req->sfn_sf),TX_req->tx_request_body.number_of_pdus);
int do_oai =0; int do_oai =0;
int dont_send =0; int dont_send =0;
gNB->pdcch_vars.num_dci = 0; gNB->pdcch_vars.num_dci = 0;
gNB->pdcch_vars.num_pdsch_rnti = 0; gNB->pdcch_vars.num_pdsch_rnti = 0;
gNB->pdcch_vars.num_dci=0; gNB->pdcch_vars.num_dci=0;
for (i=0;i<number_dl_pdu;i++) { for (i=0; i<number_dl_pdu; i++) {
dl_config_pdu = &DL_req->dl_config_request_body.dl_config_pdu_list[i]; dl_config_pdu = &DL_req->dl_config_request_body.dl_config_pdu_list[i];
LOG_D(PHY,"NFAPI: dl_pdu %d : type %d\n",i,dl_config_pdu->pdu_type); LOG_D(PHY,"NFAPI: dl_pdu %d : type %d\n",i,dl_config_pdu->pdu_type);
switch (dl_config_pdu->pdu_type) { switch (dl_config_pdu->pdu_type) {
case NFAPI_NR_DL_CONFIG_BCH_PDU_TYPE: case NFAPI_NR_DL_CONFIG_BCH_PDU_TYPE:
AssertFatal(dl_config_pdu->bch_pdu_rel15.pdu_index < TX_req->tx_request_body.number_of_pdus, AssertFatal(dl_config_pdu->bch_pdu_rel15.pdu_index < TX_req->tx_request_body.number_of_pdus,
...@@ -168,11 +147,10 @@ void nr_schedule_response(NR_Sched_Rsp_t *Sched_INFO){ ...@@ -168,11 +147,10 @@ void nr_schedule_response(NR_Sched_Rsp_t *Sched_INFO){
TX_req->tx_request_body.number_of_pdus); TX_req->tx_request_body.number_of_pdus);
gNB->pbch_configured=1; gNB->pbch_configured=1;
do_oai=1; do_oai=1;
handle_nr_nfapi_bch_pdu(gNB, handle_nr_nfapi_bch_pdu(gNB,
dl_config_pdu, dl_config_pdu,
TX_req->tx_request_body.tx_pdu_list[dl_config_pdu->bch_pdu_rel15.pdu_index].segments[0].segment_data); TX_req->tx_request_body.tx_pdu_list[dl_config_pdu->bch_pdu_rel15.pdu_index].segments[0].segment_data);
break; break;
case NFAPI_NR_DL_CONFIG_DCI_DL_PDU_TYPE: case NFAPI_NR_DL_CONFIG_DCI_DL_PDU_TYPE:
handle_nfapi_nr_dci_dl_pdu(gNB, handle_nfapi_nr_dci_dl_pdu(gNB,
...@@ -181,16 +159,14 @@ void nr_schedule_response(NR_Sched_Rsp_t *Sched_INFO){ ...@@ -181,16 +159,14 @@ void nr_schedule_response(NR_Sched_Rsp_t *Sched_INFO){
gNB->pdcch_vars.num_dci++; gNB->pdcch_vars.num_dci++;
gNB->pdcch_vars.num_pdsch_rnti++; gNB->pdcch_vars.num_pdsch_rnti++;
do_oai=1; do_oai=1;
break; break;
case NFAPI_NR_DL_CONFIG_DLSCH_PDU_TYPE:
{ case NFAPI_NR_DL_CONFIG_DLSCH_PDU_TYPE: {
nfapi_nr_dl_config_dlsch_pdu_rel15_t *dlsch_pdu_rel15 = &dl_config_pdu->dlsch_pdu.dlsch_pdu_rel15; nfapi_nr_dl_config_dlsch_pdu_rel15_t *dlsch_pdu_rel15 = &dl_config_pdu->dlsch_pdu.dlsch_pdu_rel15;
uint16_t pdu_index = dlsch_pdu_rel15->pdu_index; uint16_t pdu_index = dlsch_pdu_rel15->pdu_index;
uint16_t tx_pdus = TX_req->tx_request_body.number_of_pdus; uint16_t tx_pdus = TX_req->tx_request_body.number_of_pdus;
uint16_t invalid_pdu = pdu_index == -1; uint16_t invalid_pdu = pdu_index == -1;
uint8_t *sdu = invalid_pdu ? NULL : pdu_index >= tx_pdus ? NULL : TX_req->tx_request_body.tx_pdu_list[pdu_index].segments[0].segment_data; uint8_t *sdu = invalid_pdu ? NULL : pdu_index >= tx_pdus ? NULL : TX_req->tx_request_body.tx_pdu_list[pdu_index].segments[0].segment_data;
AssertFatal(sdu!=NULL,"sdu is null, pdu_index %d, tx_pdus %d\n",pdu_index,tx_pdus); AssertFatal(sdu!=NULL,"sdu is null, pdu_index %d, tx_pdus %d\n",pdu_index,tx_pdus);
handle_nr_nfapi_dlsch_pdu(gNB,frame,slot,&dl_config_pdu->dlsch_pdu, sdu); handle_nr_nfapi_dlsch_pdu(gNB,frame,slot,&dl_config_pdu->dlsch_pdu, sdu);
do_oai=1; do_oai=1;
...@@ -199,7 +175,7 @@ void nr_schedule_response(NR_Sched_Rsp_t *Sched_INFO){ ...@@ -199,7 +175,7 @@ void nr_schedule_response(NR_Sched_Rsp_t *Sched_INFO){
} }
memcpy(&gNB->UL_tti_req,UL_tti_req,sizeof(nfapi_nr_ul_tti_request_t)); memcpy(&gNB->UL_tti_req,UL_tti_req,sizeof(nfapi_nr_ul_tti_request_t));
/* /*
// this is done in phy_procedures_gNB_uespec_RX now // this is done in phy_procedures_gNB_uespec_RX now
for (i=0;i<number_ul_pdu;i++) { for (i=0;i<number_ul_pdu;i++) {
...@@ -208,16 +184,14 @@ void nr_schedule_response(NR_Sched_Rsp_t *Sched_INFO){ ...@@ -208,16 +184,14 @@ void nr_schedule_response(NR_Sched_Rsp_t *Sched_INFO){
case NFAPI_NR_UL_CONFIG_PUSCH_PDU_TYPE: case NFAPI_NR_UL_CONFIG_PUSCH_PDU_TYPE:
{ {
nfapi_nr_pusch_pdu_t *pusch_pdu = &UL_tti_req->pdus_list[0].pusch_pdu; nfapi_nr_pusch_pdu_t *pusch_pdu = &UL_tti_req->pdus_list[0].pusch_pdu;
nr_fill_ulsch(gNB,frame,slot,pusch_pdu); nr_fill_ulsch(gNB,frame,slot,pusch_pdu);
} }
} }
} }
*/ */
if (nfapi_mode && do_oai && !dont_send) { if (nfapi_mode && do_oai && !dont_send) {
oai_nfapi_tx_req(Sched_INFO->TX_req); oai_nfapi_tx_req(Sched_INFO->TX_req);
oai_nfapi_nr_dl_config_req(Sched_INFO->DL_req); // DJP - .dl_config_request_body.dl_config_pdu_list[0]); // DJP - FIXME TODO - yuk - only copes with 1 pdu oai_nfapi_nr_dl_config_req(Sched_INFO->DL_req); // DJP - .dl_config_request_body.dl_config_pdu_list[0]); // DJP - FIXME TODO - yuk - only copes with 1 pdu
} }
} }
...@@ -171,7 +171,7 @@ void dlsch_scheduler_pre_ue_select_fairRR( ...@@ -171,7 +171,7 @@ void dlsch_scheduler_pre_ue_select_fairRR(
frame_t frameP, frame_t frameP,
sub_frame_t subframeP, sub_frame_t subframeP,
int *mbsfn_flag, int *mbsfn_flag,
uint16_t nb_rbs_required[MAX_NUM_CCs][NUMBER_OF_UE_MAX], uint16_t nb_rbs_required[MAX_NUM_CCs][MAX_MOBILES_PER_ENB],
DLSCH_UE_SELECT dlsch_ue_select[MAX_NUM_CCs]) { DLSCH_UE_SELECT dlsch_ue_select[MAX_NUM_CCs]) {
eNB_MAC_INST *eNB = RC.mac[module_idP]; eNB_MAC_INST *eNB = RC.mac[module_idP];
COMMON_channels_t *cc = eNB->common_channels; COMMON_channels_t *cc = eNB->common_channels;
...@@ -573,8 +573,8 @@ void dlsch_scheduler_pre_processor_fairRR (module_id_t Mod_id, ...@@ -573,8 +573,8 @@ void dlsch_scheduler_pre_processor_fairRR (module_id_t Mod_id,
uint8_t slice_allocation[MAX_NUM_CCs][N_RBG_MAX]; uint8_t slice_allocation[MAX_NUM_CCs][N_RBG_MAX];
int UE_id, i; int UE_id, i;
uint16_t j,c; uint16_t j,c;
uint16_t nb_rbs_required[MAX_NUM_CCs][NUMBER_OF_UE_MAX]; uint16_t nb_rbs_required[MAX_NUM_CCs][MAX_MOBILES_PER_ENB];
uint16_t nb_rbs_required_remaining[MAX_NUM_CCs][NUMBER_OF_UE_MAX]; uint16_t nb_rbs_required_remaining[MAX_NUM_CCs][MAX_MOBILES_PER_ENB];
// uint16_t nb_rbs_required_remaining_1[MAX_NUM_CCs][NUMBER_OF_UE_MAX]; // uint16_t nb_rbs_required_remaining_1[MAX_NUM_CCs][NUMBER_OF_UE_MAX];
uint16_t average_rbs_per_user[MAX_NUM_CCs] = {0}; uint16_t average_rbs_per_user[MAX_NUM_CCs] = {0};
rnti_t rnti; rnti_t rnti;
...@@ -617,7 +617,7 @@ void dlsch_scheduler_pre_processor_fairRR (module_id_t Mod_id, ...@@ -617,7 +617,7 @@ void dlsch_scheduler_pre_processor_fairRR (module_id_t Mod_id,
frameP, frameP,
subframeP, subframeP,
min_rb_unit, min_rb_unit,
(uint16_t (*)[NUMBER_OF_UE_MAX])nb_rbs_required, nb_rbs_required,
rballoc_sub, rballoc_sub,
MIMO_mode_indicator, MIMO_mode_indicator,
mbsfn_flag); mbsfn_flag);
...@@ -701,8 +701,8 @@ void dlsch_scheduler_pre_processor_fairRR (module_id_t Mod_id, ...@@ -701,8 +701,8 @@ void dlsch_scheduler_pre_processor_fairRR (module_id_t Mod_id,
CC_id, CC_id,
N_RBG[CC_id], N_RBG[CC_id],
min_rb_unit[CC_id], min_rb_unit[CC_id],
(uint16_t (*)[NUMBER_OF_UE_MAX])nb_rbs_required, nb_rbs_required,
(uint16_t (*)[NUMBER_OF_UE_MAX])nb_rbs_required_remaining, nb_rbs_required_remaining,
rballoc_sub, rballoc_sub,
slice_allocation, slice_allocation,
MIMO_mode_indicator); MIMO_mode_indicator);
......
...@@ -78,49 +78,49 @@ void set_dl_ue_select_msg2(int CC_idP, uint16_t nb_rb, int UE_id, rnti_t rnti); ...@@ -78,49 +78,49 @@ void set_dl_ue_select_msg2(int CC_idP, uint16_t nb_rb, int UE_id, rnti_t rnti);
void set_dl_ue_select_msg4(int CC_idP, uint16_t nb_rb, int UE_id, rnti_t rnti); void set_dl_ue_select_msg4(int CC_idP, uint16_t nb_rb, int UE_id, rnti_t rnti);
void dlsch_scheduler_pre_ue_select_fairRR( void dlsch_scheduler_pre_ue_select_fairRR(
module_id_t module_idP, module_id_t module_idP,
frame_t frameP, frame_t frameP,
sub_frame_t subframeP, sub_frame_t subframeP,
int* mbsfn_flag, int *mbsfn_flag,
uint16_t nb_rbs_required[MAX_NUM_CCs][NUMBER_OF_UE_MAX], uint16_t nb_rbs_required[MAX_NUM_CCs][MAX_MOBILES_PER_ENB],
DLSCH_UE_SELECT dlsch_ue_select[MAX_NUM_CCs]); DLSCH_UE_SELECT dlsch_ue_select[MAX_NUM_CCs]);
void dlsch_scheduler_pre_processor_fairRR (module_id_t Mod_id, void dlsch_scheduler_pre_processor_fairRR (module_id_t Mod_id,
frame_t frameP, frame_t frameP,
sub_frame_t subframeP, sub_frame_t subframeP,
int N_RBG[MAX_NUM_CCs], int N_RBG[MAX_NUM_CCs],
int *mbsfn_flag); int *mbsfn_flag);
void fill_DLSCH_dci_fairRR( void fill_DLSCH_dci_fairRR(
module_id_t module_idP, module_id_t module_idP,
frame_t frameP, frame_t frameP,
sub_frame_t subframeP, sub_frame_t subframeP,
int* mbsfn_flagP); int *mbsfn_flagP);
void schedule_ue_spec_fairRR(module_id_t module_idP, void schedule_ue_spec_fairRR(module_id_t module_idP,
frame_t frameP, sub_frame_t subframeP, int *mbsfn_flag); frame_t frameP, sub_frame_t subframeP, int *mbsfn_flag);
void ulsch_scheduler_pre_ue_select_fairRR( void ulsch_scheduler_pre_ue_select_fairRR(
module_id_t module_idP, module_id_t module_idP,
frame_t frameP, frame_t frameP,
sub_frame_t subframeP, sub_frame_t subframeP,
sub_frame_t sched_subframeP, sub_frame_t sched_subframeP,
ULSCH_UE_SELECT ulsch_ue_select[MAX_NUM_CCs]); ULSCH_UE_SELECT ulsch_ue_select[MAX_NUM_CCs]);
void ulsch_scheduler_pre_processor_fairRR(module_id_t module_idP, void ulsch_scheduler_pre_processor_fairRR(module_id_t module_idP,
frame_t frameP, frame_t frameP,
sub_frame_t subframeP, sub_frame_t subframeP,
sub_frame_t sched_subframeP, sub_frame_t sched_subframeP,
ULSCH_UE_SELECT ulsch_ue_select[MAX_NUM_CCs]); ULSCH_UE_SELECT ulsch_ue_select[MAX_NUM_CCs]);
void schedule_ulsch_fairRR(module_id_t module_idP, frame_t frameP, void schedule_ulsch_fairRR(module_id_t module_idP, frame_t frameP,
sub_frame_t subframeP); sub_frame_t subframeP);
void schedule_ulsch_rnti_fairRR(module_id_t module_idP, void schedule_ulsch_rnti_fairRR(module_id_t module_idP,
frame_t frameP, frame_t frameP,
sub_frame_t subframeP, sub_frame_t subframeP,
unsigned char sched_subframeP, unsigned char sched_subframeP,
ULSCH_UE_SELECT ulsch_ue_select[MAX_NUM_CCs]); ULSCH_UE_SELECT ulsch_ue_select[MAX_NUM_CCs]);
/* extern */ /* extern */
......
/*
* Licensed to the OpenAirInterface (OAI) Software Alliance under one or more
* contributor license agreements. See the NOTICE file distributed with
* this work for additional information regarding copyright ownership.
* The OpenAirInterface Software Alliance licenses this file to You under
* the OAI Public License, Version 1.1 (the "License"); you may not use this file
* except in compliance with the License.
* You may obtain a copy of the License at
*
* http://www.openairinterface.org/?page_id=698
*
* Unless required by applicable law or agreed to in writing, software
* distributed under the License is distributed on an "AS IS" BASIS,
* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
* See the License for the specific language governing permissions and
* limitations under the License.
*-------------------------------------------------------------------------------
* For more information about the OpenAirInterface (OAI) Software Alliance:
* contact@openairinterface.org
*/
/** usrp_lib.cpp
*
* \author: HongliangXU : hong-liang-xu@agilent.com
*/
#include <string.h>
#include <pthread.h>
#include <unistd.h>
#include <stdio.h>
#include <uhd/version.hpp>
#if UHD_VERSION < 3110000
#include <uhd/utils/thread_priority.hpp>
#else
#include <uhd/utils/thread.hpp>
#endif
#include <uhd/usrp/multi_usrp.hpp>
#include <uhd/version.hpp>
#include <boost/lexical_cast.hpp>
#include <boost/algorithm/string.hpp>
#include <boost/thread.hpp>
#include <boost/format.hpp>
#include <iostream>
#include <complex>
#include <fstream>
#include <cmath>
#include <time.h>
#include "common/utils/LOG/log.h"
#include "common_lib.h"
#include "assertions.h"
#include <sys/sysinfo.h>
#include <sys/resource.h>
#ifdef __SSE4_1__
#include <smmintrin.h>
#endif
#ifdef __AVX2__
#include <immintrin.h>
#endif
#ifdef __arm__
#include <arm_neon.h>
#endif
/** @addtogroup _USRP_PHY_RF_INTERFACE_
* @{
*/
/*! \brief USRP Configuration */
typedef struct {
// --------------------------------
// variables for USRP configuration
// --------------------------------
//! USRP device pointer
uhd::usrp::multi_usrp::sptr usrp;
//create a send streamer and a receive streamer
//! USRP TX Stream
uhd::tx_streamer::sptr tx_stream;
//! USRP RX Stream
uhd::rx_streamer::sptr rx_stream;
//! USRP TX Metadata
uhd::tx_metadata_t tx_md;
//! USRP RX Metadata
uhd::rx_metadata_t rx_md;
//! Sampling rate
double sample_rate;
//! TX forward samples. We use usrp_time_offset to get this value
int tx_forward_nsamps; //166 for 20Mhz
// --------------------------------
// Debug and output control
// --------------------------------
int num_underflows;
int num_overflows;
int num_seq_errors;
int64_t tx_count;
int64_t rx_count;
int wait_for_first_pps;
int use_gps;
//! timestamp of RX packet
openair0_timestamp rx_timestamp;
} usrp_state_t;
//void print_notes(void)
//{
// Helpful notes
// std::cout << boost::format("**************************************Helpful Notes on Clock/PPS Selection**************************************\n");
// std::cout << boost::format("As you can see, the default 10 MHz Reference and 1 PPS signals are now from the GPSDO.\n");
// std::cout << boost::format("If you would like to use the internal reference(TCXO) in other applications, you must configure that explicitly.\n");
// std::cout << boost::format("You can no longer select the external SMAs for 10 MHz or 1 PPS signaling.\n");
// std::cout << boost::format("****************************************************************************************************************\n");
//}
static int sync_to_gps(openair0_device *device) {
uhd::set_thread_priority_safe();
//std::string args;
//Set up program options
//po::options_description desc("Allowed options");
//desc.add_options()
//("help", "help message")
//("args", po::value<std::string>(&args)->default_value(""), "USRP device arguments")
//;
//po::variables_map vm;
//po::store(po::parse_command_line(argc, argv, desc), vm);
//po::notify(vm);
//Print the help message
//if (vm.count("help"))
//{
// std::cout << boost::format("Synchronize USRP to GPS %s") % desc << std::endl;
// return EXIT_FAILURE;
//}
//Create a USRP device
//std::cout << boost::format("\nCreating the USRP device with: %s...\n") % args;
//uhd::usrp::multi_usrp::sptr usrp = uhd::usrp::multi_usrp::make(args);
//std::cout << boost::format("Using Device: %s\n") % usrp->get_pp_string();
usrp_state_t *s = (usrp_state_t *)device->priv;
try {
size_t num_mboards = s->usrp->get_num_mboards();
size_t num_gps_locked = 0;
for (size_t mboard = 0; mboard < num_mboards; mboard++) {
std::cout << "Synchronizing mboard " << mboard << ": " << s->usrp->get_mboard_name(mboard) << std::endl;
//Set references to GPSDO
s->usrp->set_clock_source("gpsdo", mboard);
s->usrp->set_time_source("gpsdo", mboard);
//std::cout << std::endl;
//print_notes();
//std::cout << std::endl;
//Check for 10 MHz lock
std::vector<std::string> sensor_names = s->usrp->get_mboard_sensor_names(mboard);
if(std::find(sensor_names.begin(), sensor_names.end(), "ref_locked") != sensor_names.end()) {
std::cout << "Waiting for reference lock..." << std::flush;
bool ref_locked = false;
for (int i = 0; i < 30 and not ref_locked; i++) {
ref_locked = s->usrp->get_mboard_sensor("ref_locked", mboard).to_bool();
if (not ref_locked) {
std::cout << "." << std::flush;
boost::this_thread::sleep(boost::posix_time::seconds(1));
}
}
if(ref_locked) {
std::cout << "LOCKED" << std::endl;
} else {
std::cout << "FAILED" << std::endl;
std::cout << "Failed to lock to GPSDO 10 MHz Reference. Exiting." << std::endl;
exit(EXIT_FAILURE);
}
} else {
std::cout << boost::format("ref_locked sensor not present on this board.\n");
}
//Wait for GPS lock
bool gps_locked = s->usrp->get_mboard_sensor("gps_locked", mboard).to_bool();
if(gps_locked) {
num_gps_locked++;
std::cout << boost::format("GPS Locked\n");
} else {
LOG_W(HW,"WARNING: GPS not locked - time will not be accurate until locked\n");
}
//Set to GPS time
uhd::time_spec_t gps_time = uhd::time_spec_t(time_t(s->usrp->get_mboard_sensor("gps_time", mboard).to_int()));
//s->usrp->set_time_next_pps(gps_time+1.0, mboard);
s->usrp->set_time_next_pps(uhd::time_spec_t(0.0));
//Wait for it to apply
//The wait is 2 seconds because N-Series has a known issue where
//the time at the last PPS does not properly update at the PPS edge
//when the time is actually set.
boost::this_thread::sleep(boost::posix_time::seconds(2));
//Check times
gps_time = uhd::time_spec_t(time_t(s->usrp->get_mboard_sensor("gps_time", mboard).to_int()));
uhd::time_spec_t time_last_pps = s->usrp->get_time_last_pps(mboard);
std::cout << "USRP time: " << (boost::format("%0.9f") % time_last_pps.get_real_secs()) << std::endl;
std::cout << "GPSDO time: " << (boost::format("%0.9f") % gps_time.get_real_secs()) << std::endl;
//if (gps_time.get_real_secs() == time_last_pps.get_real_secs())
// std::cout << std::endl << "SUCCESS: USRP time synchronized to GPS time" << std::endl << std::endl;
//else
// std::cerr << std::endl << "ERROR: Failed to synchronize USRP time to GPS time" << std::endl << std::endl;
}
if (num_gps_locked == num_mboards and num_mboards > 1) {
//Check to see if all USRP times are aligned
//First, wait for PPS.
uhd::time_spec_t time_last_pps = s->usrp->get_time_last_pps();
while (time_last_pps == s->usrp->get_time_last_pps()) {
boost::this_thread::sleep(boost::posix_time::milliseconds(1));
}
//Sleep a little to make sure all devices have seen a PPS edge
boost::this_thread::sleep(boost::posix_time::milliseconds(200));
//Compare times across all mboards
bool all_matched = true;
uhd::time_spec_t mboard0_time = s->usrp->get_time_last_pps(0);
for (size_t mboard = 1; mboard < num_mboards; mboard++) {
uhd::time_spec_t mboard_time = s->usrp->get_time_last_pps(mboard);
if (mboard_time != mboard0_time) {
all_matched = false;
std::cerr << (boost::format("ERROR: Times are not aligned: USRP 0=%0.9f, USRP %d=%0.9f")
% mboard0_time.get_real_secs()
% mboard
% mboard_time.get_real_secs()) << std::endl;
}
}
if (all_matched) {
std::cout << "SUCCESS: USRP times aligned" << std::endl << std::endl;
} else {
std::cout << "ERROR: USRP times are not aligned" << std::endl << std::endl;
}
}
} catch (std::exception &e) {
std::cout << boost::format("\nError: %s") % e.what();
std::cout << boost::format("This could mean that you have not installed the GPSDO correctly.\n\n");
std::cout << boost::format("Visit one of these pages if the problem persists:\n");
std::cout << boost::format(" * N2X0/E1X0: http://files.ettus.com/manual/page_gpsdo.html");
std::cout << boost::format(" * X3X0: http://files.ettus.com/manual/page_gpsdo_x3x0.html\n\n");
std::cout << boost::format(" * E3X0: http://files.ettus.com/manual/page_usrp_e3x0.html#e3x0_hw_gps\n\n");
exit(EXIT_FAILURE);
}
return EXIT_SUCCESS;
}
#if defined(USRP_REC_PLAY)
#include "usrp_lib.h"
static FILE *pFile = NULL;
int mmapfd = 0;
int iqfd = 0;
int use_mmap = 1; // default is to use mmap
struct stat sb;
iqrec_t *ms_sample = NULL; // memory for all subframes
unsigned int nb_samples = 0;
unsigned int cur_samples = 0;
int64_t wrap_count = 0;
int64_t wrap_ts = 0;
unsigned int u_sf_mode = 0; // 1=record, 2=replay
unsigned int u_sf_record = 0; // record mode
unsigned int u_sf_replay = 0; // replay mode
char u_sf_filename[1024] = ""; // subframes file path
unsigned int u_sf_max = DEF_NB_SF; // max number of recorded subframes
unsigned int u_sf_loops = DEF_SF_NB_LOOP; // number of loops in replay mode
unsigned int u_sf_read_delay = DEF_SF_DELAY_READ; // read delay in replay mode
unsigned int u_sf_write_delay = DEF_SF_DELAY_WRITE; // write delay in replay mode
char config_opt_sf_file[] = CONFIG_OPT_SF_FILE;
char config_def_sf_file[] = DEF_SF_FILE;
char config_hlp_sf_file[] = CONFIG_HLP_SF_FILE;
char config_opt_sf_rec[] = CONFIG_OPT_SF_REC;
char config_hlp_sf_rec[] = CONFIG_HLP_SF_REC;
char config_opt_sf_rep[] = CONFIG_OPT_SF_REP;
char config_hlp_sf_rep[] = CONFIG_HLP_SF_REP;
char config_opt_sf_max[] = CONFIG_OPT_SF_MAX;
char config_hlp_sf_max[] = CONFIG_HLP_SF_MAX;
char config_opt_sf_loops[] = CONFIG_OPT_SF_LOOPS;
char config_hlp_sf_loops[] = CONFIG_HLP_SF_LOOPS;
char config_opt_sf_rdelay[] = CONFIG_OPT_SF_RDELAY;
char config_hlp_sf_rdelay[] = CONFIG_HLP_SF_RDELAY;
char config_opt_sf_wdelay[] = CONFIG_OPT_SF_WDELAY;
char config_hlp_sf_wdelay[] = CONFIG_HLP_SF_WDELAY;
#endif
/*! \brief Called to start the USRP transceiver. Return 0 if OK, < 0 if error
@param device pointer to the device structure specific to the RF hardware target
*/
static int trx_usrp_start(openair0_device *device) {
#if defined(USRP_REC_PLAY)
if (u_sf_mode != 2) { // not replay mode
#endif
usrp_state_t *s = (usrp_state_t *)device->priv;
// setup GPIO for TDD, GPIO(4) = ATR_RX
//set data direction register (DDR) to output
s->usrp->set_gpio_attr("FP0", "DDR", 0x7f, 0x7f);
//set control register to ATR
s->usrp->set_gpio_attr("FP0", "CTRL", 0x7f,0x7f);
//set ATR register
s->usrp->set_gpio_attr("FP0", "ATR_RX", (1<<4)|(1<<6), 0x7f);
// init recv and send streaming
uhd::stream_cmd_t cmd(uhd::stream_cmd_t::STREAM_MODE_START_CONTINUOUS);
LOG_I(PHY,"Time in secs now: %llu \n", s->usrp->get_time_now().to_ticks(s->sample_rate));
LOG_I(PHY,"Time in secs last pps: %llu \n", s->usrp->get_time_last_pps().to_ticks(s->sample_rate));
if (s->use_gps == 1 || device->openair0_cfg[0].time_source == external) {
s->wait_for_first_pps = 1;
cmd.time_spec = s->usrp->get_time_last_pps() + uhd::time_spec_t(1.0);
} else {
s->wait_for_first_pps = 0;
cmd.time_spec = s->usrp->get_time_now() + uhd::time_spec_t(0.005);
}
cmd.stream_now = false; // start at constant delay
s->rx_stream->issue_stream_cmd(cmd);
s->tx_md.time_spec = cmd.time_spec + uhd::time_spec_t(1-(double)s->tx_forward_nsamps/s->sample_rate);
s->tx_md.has_time_spec = true;
s->tx_md.start_of_burst = true;
s->tx_md.end_of_burst = false;
s->rx_count = 0;
s->tx_count = 0;
s->rx_timestamp = 0;
#if defined(USRP_REC_PLAY)
}
#endif
return 0;
}
/*! \brief Terminate operation of the USRP transceiver -- free all associated resources
* \param device the hardware to use
*/
static void trx_usrp_end(openair0_device *device) {
#if defined(USRP_REC_PLAY) // For some ugly reason, this can be called several times...
static int done = 0;
if (done == 1) return;
done = 1;
if (u_sf_mode != 2) { // not subframes replay
#endif
usrp_state_t *s = (usrp_state_t *)device->priv;
s->rx_stream->issue_stream_cmd(uhd::stream_cmd_t::STREAM_MODE_STOP_CONTINUOUS);
//send a mini EOB packet
s->tx_md.end_of_burst = true;
s->tx_stream->send("", 0, s->tx_md);
s->tx_md.end_of_burst = false;
sleep(1);
#if defined(USRP_REC_PLAY)
}
#endif
#if defined(USRP_REC_PLAY)
if (u_sf_mode == 1) { // subframes store
pFile = fopen (u_sf_filename,"wb+");
if (pFile == NULL) {
std::cerr << "Cannot open " << u_sf_filename << std::endl;
} else {
unsigned int i = 0;
unsigned int modu = 0;
if ((modu = nb_samples % 10) != 0) {
nb_samples -= modu; // store entire number of frames
}
std::cerr << "Writing " << nb_samples << " subframes to " << u_sf_filename << " ..." << std::endl;
for (i = 0; i < nb_samples; i++) {
fwrite(ms_sample+i, sizeof(unsigned char), sizeof(iqrec_t), pFile);
}
fclose (pFile);
std::cerr << "File " << u_sf_filename << " closed." << std::endl;
}
}
if (u_sf_mode == 1) { // record
if (ms_sample != NULL) {
free((void *)ms_sample);
ms_sample = NULL;
}
}
if (u_sf_mode == 2) { // replay
if (use_mmap) {
if (ms_sample != MAP_FAILED) {
munmap(ms_sample, sb.st_size);
ms_sample = NULL;
}
if (mmapfd != 0) {
close(mmapfd);
mmapfd = 0;
}
} else {
if (ms_sample != NULL) {
free(ms_sample);
ms_sample = NULL;
}
if (iqfd != 0) {
close(iqfd);
iqfd = 0;
}
}
}
#endif
}
/*! \brief Called to send samples to the USRP RF target
@param device pointer to the device structure specific to the RF hardware target
@param timestamp The timestamp at which the first sample MUST be sent
@param buff Buffer which holds the samples
@param nsamps number of samples to be sent
@param antenna_id index of the antenna if the device has multiple antennas
@param flags flags must be set to TRUE if timestamp parameter needs to be applied
*/
static int trx_usrp_write(openair0_device *device, openair0_timestamp timestamp, void **buff, int nsamps, int cc, int flags) {
int ret=0;
#if defined(USRP_REC_PLAY)
if (u_sf_mode != 2) { // not replay mode
#endif
usrp_state_t *s = (usrp_state_t *)device->priv;
int nsamps2; // aligned to upper 32 or 16 byte boundary
#if defined(__x86_64) || defined(__i386__)
#ifdef __AVX2__
nsamps2 = (nsamps+7)>>3;
__m256i buff_tx[2][nsamps2];
#else
nsamps2 = (nsamps+3)>>2;
__m128i buff_tx[2][nsamps2];
#endif
#elif defined(__arm__)
nsamps2 = (nsamps+3)>>2;
int16x8_t buff_tx[2][nsamps2];
#else
#error Unsupported CPU architecture, USRP device cannot be built
#endif
// bring RX data into 12 LSBs for softmodem RX
for (int i=0; i<cc; i++) {
for (int j=0; j<nsamps2; j++) {
#if defined(__x86_64__) || defined(__i386__)
#ifdef __AVX2__
buff_tx[i][j] = _mm256_slli_epi16(((__m256i *)buff[i])[j],4);
#else
buff_tx[i][j] = _mm_slli_epi16(((__m128i *)buff[i])[j],4);
#endif
#elif defined(__arm__)
buff_tx[i][j] = vshlq_n_s16(((int16x8_t *)buff[i])[j],4);
#endif
}
}
s->tx_md.time_spec = uhd::time_spec_t::from_ticks(timestamp, s->sample_rate);
s->tx_md.has_time_spec = flags;
if(flags>0)
s->tx_md.has_time_spec = true;
else
s->tx_md.has_time_spec = false;
if (flags == 2) { // start of burst
s->tx_md.start_of_burst = true;
s->tx_md.end_of_burst = false;
} else if (flags == 3) { // end of burst
s->tx_md.start_of_burst = false;
s->tx_md.end_of_burst = true;
} else if (flags == 4) { // start and end
s->tx_md.start_of_burst = true;
s->tx_md.end_of_burst = true;
} else if (flags==1) { // middle of burst
s->tx_md.start_of_burst = false;
s->tx_md.end_of_burst = false;
}
if(flags==10) { // fail safe mode
s->tx_md.has_time_spec = false;
s->tx_md.start_of_burst = false;
s->tx_md.end_of_burst = true;
}
if (cc>1) {
std::vector<void *> buff_ptrs;
for (int i=0; i<cc; i++)
buff_ptrs.push_back(buff_tx[i]);
ret = (int)s->tx_stream->send(buff_ptrs, nsamps, s->tx_md,1e-3);
} else
ret = (int)s->tx_stream->send(buff_tx[0], nsamps, s->tx_md,1e-3);
if (ret != nsamps)
LOG_E(PHY,"[xmit] tx samples %d != %d\n",ret,nsamps);
#if defined(USRP_REC_PLAY)
} else {
struct timespec req;
req.tv_sec = 0;
req.tv_nsec = u_sf_write_delay * 1000;
nanosleep(&req, NULL);
ret = nsamps;
}
#endif
return ret;
}
/*! \brief Receive samples from hardware.
* Read \ref nsamps samples from each channel to buffers. buff[0] is the array for
* the first channel. *ptimestamp is the time at which the first sample
* was received.
* \param device the hardware to use
* \param[out] ptimestamp the time at which the first sample was received.
* \param[out] buff An array of pointers to buffers for received samples. The buffers must be large enough to hold the number of samples \ref nsamps.
* \param nsamps Number of samples. One sample is 2 byte I + 2 byte Q => 4 byte.
* \param antenna_id Index of antenna for which to receive samples
* \returns the number of sample read
*/
static int trx_usrp_read(openair0_device *device, openair0_timestamp *ptimestamp, void **buff, int nsamps, int cc) {
usrp_state_t *s = (usrp_state_t *)device->priv;
int samples_received=0;
int nsamps2; // aligned to upper 32 or 16 byte boundary
#if defined(USRP_REC_PLAY)
if (u_sf_mode != 2) { // not replay mode
#endif
#if defined(__x86_64) || defined(__i386__)
#ifdef __AVX2__
nsamps2 = (nsamps+7)>>3;
__m256i buff_tmp[2][nsamps2];
#else
nsamps2 = (nsamps+3)>>2;
__m128i buff_tmp[2][nsamps2];
#endif
#elif defined(__arm__)
nsamps2 = (nsamps+3)>>2;
int16x8_t buff_tmp[2][nsamps2];
#endif
if (device->type == USRP_B200_DEV) {
if (cc>1) {
// receive multiple channels (e.g. RF A and RF B)
std::vector<void *> buff_ptrs;
for (int i=0; i<cc; i++) buff_ptrs.push_back(buff_tmp[i]);
samples_received = s->rx_stream->recv(buff_ptrs, nsamps, s->rx_md);
} else {
// receive a single channel (e.g. from connector RF A)
samples_received=0;
while (samples_received != nsamps) {
samples_received += s->rx_stream->recv(buff_tmp[0]+samples_received,
nsamps-samples_received, s->rx_md);
if ((s->wait_for_first_pps == 0) && (s->rx_md.error_code!=uhd::rx_metadata_t::ERROR_CODE_NONE))
break;
if ((s->wait_for_first_pps == 1) && (samples_received != nsamps)) {
printf("sleep...\n"); //usleep(100);
}
}
if (samples_received == nsamps) s->wait_for_first_pps=0;
}
// bring RX data into 12 LSBs for softmodem RX
for (int i=0; i<cc; i++) {
for (int j=0; j<nsamps2; j++) {
#if defined(__x86_64__) || defined(__i386__)
#ifdef __AVX2__
((__m256i *)buff[i])[j] = _mm256_srai_epi16(buff_tmp[i][j],4);
#else
((__m128i *)buff[i])[j] = _mm_srai_epi16(buff_tmp[i][j],4);
#endif
#elif defined(__arm__)
((int16x8_t *)buff[i])[j] = vshrq_n_s16(buff_tmp[i][j],4);
#endif
}
}
} else if (device->type == USRP_X300_DEV) {
if (cc>1) {
// receive multiple channels (e.g. RF A and RF B)
std::vector<void *> buff_ptrs;
for (int i=0; i<cc; i++) buff_ptrs.push_back(buff[i]);
samples_received = s->rx_stream->recv(buff_ptrs, nsamps, s->rx_md);
} else {
// receive a single channel (e.g. from connector RF A)
samples_received = s->rx_stream->recv(buff[0], nsamps, s->rx_md);
}
}
if (samples_received < nsamps)
LOG_E(PHY,"[recv] received %d samples out of %d\n",samples_received,nsamps);
if ( s->rx_md.error_code != uhd::rx_metadata_t::ERROR_CODE_NONE)
LOG_E(PHY, "%s\n", s->rx_md.to_pp_string(true).c_str());
s->rx_count += nsamps;
s->rx_timestamp = s->rx_md.time_spec.to_ticks(s->sample_rate);
*ptimestamp = s->rx_timestamp;
#if defined (USRP_REC_PLAY)
}
#endif
#if defined(USRP_REC_PLAY)
if (u_sf_mode == 1) { // record mode
// Copy subframes to memory (later dump on a file)
if (nb_samples < u_sf_max) {
(ms_sample+nb_samples)->header = BELL_LABS_IQ_HEADER;
(ms_sample+nb_samples)->ts = *ptimestamp;
memcpy((ms_sample+nb_samples)->samples, buff[0], nsamps*4);
nb_samples++;
}
} else if (u_sf_mode == 2) { // replay mode
if (cur_samples == nb_samples) {
cur_samples = 0;
wrap_count++;
if (wrap_count == u_sf_loops) {
std::cerr << "USRP device terminating subframes replay mode after " << u_sf_loops << " loops." << std::endl;
return 0; // should make calling process exit
}
wrap_ts = wrap_count * (nb_samples * (((int)(device->openair0_cfg[0].sample_rate)) / 1000));
if (!use_mmap) {
if (lseek(iqfd, 0, SEEK_SET) == 0) {
std::cerr << "Seeking at the beginning of IQ file" << std::endl;
} else {
std::cerr << "Problem seeking at the beginning of IQ file" << std::endl;
}
}
}
if (use_mmap) {
if (cur_samples < nb_samples) {
*ptimestamp = (ms_sample[0].ts + (cur_samples * (((int)(device->openair0_cfg[0].sample_rate)) / 1000))) + wrap_ts;
if (cur_samples == 0) {
std::cerr << "starting subframes file with wrap_count=" << wrap_count << " wrap_ts=" << wrap_ts
<< " ts=" << *ptimestamp << std::endl;
}
memcpy(buff[0], &ms_sample[cur_samples].samples[0], nsamps*4);
cur_samples++;
}
} else {
// read sample from file
if (read(iqfd, ms_sample, sizeof(iqrec_t)) != sizeof(iqrec_t)) {
std::cerr << "pb reading iqfile at index " << sizeof(iqrec_t)*cur_samples << std::endl;
close(iqfd);
free(ms_sample);
ms_sample = NULL;
iqfd = 0;
exit(-1);
}
if (cur_samples < nb_samples) {
static int64_t ts0 = 0;
if ((cur_samples == 0) && (wrap_count == 0)) {
ts0 = ms_sample->ts;
}
*ptimestamp = ts0 + (cur_samples * (((int)(device->openair0_cfg[0].sample_rate)) / 1000)) + wrap_ts;
if (cur_samples == 0) {
std::cerr << "starting subframes file with wrap_count=" << wrap_count << " wrap_ts=" << wrap_ts
<< " ts=" << *ptimestamp << std::endl;
}
memcpy(buff[0], &ms_sample->samples[0], nsamps*4);
cur_samples++;
// Prepare for next read
off_t where = lseek(iqfd, cur_samples * sizeof(iqrec_t), SEEK_SET);
}
}
struct timespec req;
req.tv_sec = 0;
req.tv_nsec = u_sf_read_delay * 1000;
nanosleep(&req, NULL);
return nsamps;
}
#endif
return samples_received;
}
/*! \brief Compares two variables within precision
* \param a first variable
* \param b second variable
*/
static bool is_equal(double a, double b) {
return std::fabs(a-b) < std::numeric_limits<double>::epsilon();
}
void *freq_thread(void *arg) {
openair0_device *device=(openair0_device *)arg;
usrp_state_t *s = (usrp_state_t *)device->priv;
s->usrp->set_tx_freq(device->openair0_cfg[0].tx_freq[0]);
s->usrp->set_rx_freq(device->openair0_cfg[0].rx_freq[0]);
return NULL;
}
/*! \brief Set frequencies (TX/RX). Spawns a thread to handle the frequency change to not block the calling thread
* \param device the hardware to use
* \param openair0_cfg RF frontend parameters set by application
* \param dummy dummy variable not used
* \returns 0 in success
*/
int trx_usrp_set_freq(openair0_device *device, openair0_config_t *openair0_cfg, int dont_block) {
usrp_state_t *s = (usrp_state_t *)device->priv;
pthread_t f_thread;
printf("Setting USRP TX Freq %f, RX Freq %f\n",openair0_cfg[0].tx_freq[0],openair0_cfg[0].rx_freq[0]);
// spawn a thread to handle the frequency change to not block the calling thread
if (dont_block == 1)
pthread_create(&f_thread,NULL,freq_thread,(void *)device);
else {
s->usrp->set_tx_freq(device->openair0_cfg[0].tx_freq[0]);
s->usrp->set_rx_freq(device->openair0_cfg[0].rx_freq[0]);
}
return(0);
}
/*! \brief Set RX frequencies
* \param device the hardware to use
* \param openair0_cfg RF frontend parameters set by application
* \returns 0 in success
*/
int openair0_set_rx_frequencies(openair0_device *device, openair0_config_t *openair0_cfg) {
usrp_state_t *s = (usrp_state_t *)device->priv;
uhd::tune_request_t rx_tune_req(openair0_cfg[0].rx_freq[0]);
rx_tune_req.rf_freq_policy = uhd::tune_request_t::POLICY_MANUAL;
rx_tune_req.rf_freq = openair0_cfg[0].rx_freq[0];
s->usrp->set_rx_freq(rx_tune_req);
return(0);
}
/*! \brief Set Gains (TX/RX)
* \param device the hardware to use
* \param openair0_cfg RF frontend parameters set by application
* \returns 0 in success
*/
int trx_usrp_set_gains(openair0_device *device,
openair0_config_t *openair0_cfg) {
usrp_state_t *s = (usrp_state_t *)device->priv;
::uhd::gain_range_t gain_range_tx = s->usrp->get_tx_gain_range(0);
s->usrp->set_tx_gain(gain_range_tx.stop()-openair0_cfg[0].tx_gain[0]);
::uhd::gain_range_t gain_range = s->usrp->get_rx_gain_range(0);
// limit to maximum gain
if (openair0_cfg[0].rx_gain[0]-openair0_cfg[0].rx_gain_offset[0] > gain_range.stop()) {
LOG_E(PHY,"RX Gain 0 too high, reduce by %f dB\n",
openair0_cfg[0].rx_gain[0]-openair0_cfg[0].rx_gain_offset[0] - gain_range.stop());
exit(-1);
}
s->usrp->set_rx_gain(openair0_cfg[0].rx_gain[0]-openair0_cfg[0].rx_gain_offset[0]);
LOG_I(PHY,"Setting USRP RX gain to %f (rx_gain %f,gain_range.stop() %f)\n",
openair0_cfg[0].rx_gain[0]-openair0_cfg[0].rx_gain_offset[0],
openair0_cfg[0].rx_gain[0],gain_range.stop());
return(0);
}
/*! \brief Stop USRP
* \param card refers to the hardware index to use
*/
int trx_usrp_stop(openair0_device *device) {
return(0);
}
/*! \brief USRPB210 RX calibration table */
rx_gain_calib_table_t calib_table_b210[] = {
{3500000000.0,44.0},
{2660000000.0,49.0},
{2300000000.0,50.0},
{1880000000.0,53.0},
{816000000.0,58.0},
{-1,0}
};
/*! \brief USRPB210 RX calibration table */
rx_gain_calib_table_t calib_table_b210_38[] = {
{3500000000.0,44.0},
{2660000000.0,49.8},
{2300000000.0,51.0},
{1880000000.0,53.0},
{816000000.0,57.0},
{-1,0}
};
/*! \brief USRPx310 RX calibration table */
rx_gain_calib_table_t calib_table_x310[] = {
{3500000000.0,77.0},
{2660000000.0,81.0},
{2300000000.0,81.0},
{1880000000.0,82.0},
{816000000.0,85.0},
{-1,0}
};
/*! \brief Set RX gain offset
* \param openair0_cfg RF frontend parameters set by application
* \param chain_index RF chain to apply settings to
* \returns 0 in success
*/
void set_rx_gain_offset(openair0_config_t *openair0_cfg, int chain_index,int bw_gain_adjust) {
int i=0;
// loop through calibration table to find best adjustment factor for RX frequency
double min_diff = 6e9,diff,gain_adj=0.0;
if (bw_gain_adjust==1) {
switch ((int)openair0_cfg[0].sample_rate) {
case 30720000:
break;
case 23040000:
gain_adj=1.25;
break;
case 15360000:
gain_adj=3.0;
break;
case 7680000:
gain_adj=6.0;
break;
case 3840000:
gain_adj=9.0;
break;
case 1920000:
gain_adj=12.0;
break;
default:
LOG_E(PHY,"unknown sampling rate %d\n",(int)openair0_cfg[0].sample_rate);
exit(-1);
break;
}
}
while (openair0_cfg->rx_gain_calib_table[i].freq>0) {
diff = fabs(openair0_cfg->rx_freq[chain_index] - openair0_cfg->rx_gain_calib_table[i].freq);
LOG_I(PHY,"cal %d: freq %f, offset %f, diff %f\n",
i,
openair0_cfg->rx_gain_calib_table[i].freq,
openair0_cfg->rx_gain_calib_table[i].offset,diff);
if (min_diff > diff) {
min_diff = diff;
openair0_cfg->rx_gain_offset[chain_index] = openair0_cfg->rx_gain_calib_table[i].offset+gain_adj;
}
i++;
}
}
/*! \brief print the USRP statistics
* \param device the hardware to use
* \returns 0 on success
*/
int trx_usrp_get_stats(openair0_device *device) {
return(0);
}
/*! \brief Reset the USRP statistics
* \param device the hardware to use
* \returns 0 on success
*/
int trx_usrp_reset_stats(openair0_device *device) {
return(0);
}
#if defined(USRP_REC_PLAY)
extern "C" {
/*! \brief Initializer for USRP record/playback config
* \param parameter array description
* \returns 0 on success
*/
int trx_usrp_recplay_config_init(paramdef_t *usrp_recplay_params) {
// --subframes-file
memcpy(usrp_recplay_params[0].optname, config_opt_sf_file, strlen(config_opt_sf_file));
usrp_recplay_params[0].helpstr = config_hlp_sf_file;
usrp_recplay_params[0].paramflags=PARAMFLAG_NOFREE;
usrp_recplay_params[0].strptr=(char **)&u_sf_filename;
usrp_recplay_params[0].defstrval = NULL;
usrp_recplay_params[0].type=TYPE_STRING;
usrp_recplay_params[0].numelt=sizeof(u_sf_filename);
// --subframes-record
memcpy(usrp_recplay_params[1].optname, config_opt_sf_rec, strlen(config_opt_sf_rec));
usrp_recplay_params[1].helpstr = config_hlp_sf_rec;
usrp_recplay_params[1].paramflags=PARAMFLAG_BOOL;
usrp_recplay_params[1].uptr=&u_sf_record;
usrp_recplay_params[1].defuintval=0;
usrp_recplay_params[1].type=TYPE_UINT;
usrp_recplay_params[1].numelt=0;
// --subframes-replay
memcpy(usrp_recplay_params[2].optname, config_opt_sf_rep, strlen(config_opt_sf_rep));
usrp_recplay_params[2].helpstr = config_hlp_sf_rep;
usrp_recplay_params[2].paramflags=PARAMFLAG_BOOL;
usrp_recplay_params[2].uptr=&u_sf_replay;
usrp_recplay_params[2].defuintval=0;
usrp_recplay_params[2].type=TYPE_UINT;
usrp_recplay_params[2].numelt=0;
// --subframes-max
memcpy(usrp_recplay_params[3].optname, config_opt_sf_max, strlen(config_opt_sf_max));
usrp_recplay_params[3].helpstr = config_hlp_sf_max;
usrp_recplay_params[3].paramflags=0;
usrp_recplay_params[3].uptr=&u_sf_max;
usrp_recplay_params[3].defuintval=DEF_NB_SF;
usrp_recplay_params[3].type=TYPE_UINT;
usrp_recplay_params[3].numelt=0;
// --subframes-loops
memcpy(usrp_recplay_params[4].optname, config_opt_sf_loops, strlen(config_opt_sf_loops));
usrp_recplay_params[4].helpstr = config_hlp_sf_loops;
usrp_recplay_params[4].paramflags=0;
usrp_recplay_params[4].uptr=&u_sf_loops;
usrp_recplay_params[4].defuintval=DEF_SF_NB_LOOP;
usrp_recplay_params[4].type=TYPE_UINT;
usrp_recplay_params[4].numelt=0;
// --subframes-read-delay
memcpy(usrp_recplay_params[5].optname, config_opt_sf_rdelay, strlen(config_opt_sf_rdelay));
usrp_recplay_params[5].helpstr = config_hlp_sf_rdelay;
usrp_recplay_params[5].paramflags=0;
usrp_recplay_params[5].uptr=&u_sf_read_delay;
usrp_recplay_params[5].defuintval=DEF_SF_DELAY_READ;
usrp_recplay_params[5].type=TYPE_UINT;
usrp_recplay_params[5].numelt=0;
// --subframes-write-delay
memcpy(usrp_recplay_params[6].optname, config_opt_sf_wdelay, strlen(config_opt_sf_wdelay));
usrp_recplay_params[6].helpstr = config_hlp_sf_wdelay;
usrp_recplay_params[6].paramflags=0;
usrp_recplay_params[6].uptr=&u_sf_write_delay;
usrp_recplay_params[6].defuintval=DEF_SF_DELAY_WRITE;
usrp_recplay_params[6].type=TYPE_UINT;
usrp_recplay_params[6].numelt=0;
return 0; // always ok
}
}
#endif
extern "C" {
int device_init(openair0_device *device, openair0_config_t *openair0_cfg) {
LOG_D(PHY, "openair0_cfg[0].sdr_addrs == '%s'\n", openair0_cfg[0].sdr_addrs);
LOG_D(PHY, "openair0_cfg[0].clock_source == '%d'\n", openair0_cfg[0].clock_source);
#if defined(USRP_REC_PLAY)
paramdef_t usrp_recplay_params[7];
struct sysinfo systeminfo;
// to check
static int done = 0;
if (done == 1) {
return 0;
} // prevent from multiple init
done = 1;
// end to check
// Use mmap for IQ files for systems with less than 6GB total RAM
sysinfo(&systeminfo);
if (systeminfo.totalram < 6144000000) {
use_mmap = 0;
}
memset(usrp_recplay_params, 0, 7*sizeof(paramdef_t));
memset(&u_sf_filename[0], 0, 1024);
if (trx_usrp_recplay_config_init(usrp_recplay_params) != 0) {
std::cerr << "USRP device record/replay mode configuration error exiting" << std::endl;
return -1;
}
config_process_cmdline(usrp_recplay_params,sizeof(usrp_recplay_params)/sizeof(paramdef_t),NULL);
if (strlen(u_sf_filename) == 0) {
(void) strcpy(u_sf_filename, DEF_SF_FILE);
}
if (u_sf_replay == 1) u_sf_mode = 2;
if (u_sf_record == 1) u_sf_mode = 1;
if (u_sf_mode == 2) {
// Replay subframes from from file
int bw_gain_adjust=0;
device->openair0_cfg = openair0_cfg;
device->type = USRP_B200_DEV;
openair0_cfg[0].rx_gain_calib_table = calib_table_b210_38;
bw_gain_adjust=1;
openair0_cfg[0].tx_sample_advance = 80;
openair0_cfg[0].tx_bw = 20e6;
openair0_cfg[0].rx_bw = 20e6;
openair0_cfg[0].iq_txshift = 4;//shift
openair0_cfg[0].iq_rxrescale = 15;//rescale iqs
set_rx_gain_offset(&openair0_cfg[0],0,bw_gain_adjust);
device->priv = NULL;
device->trx_start_func = trx_usrp_start;
device->trx_write_func = trx_usrp_write;
device->trx_read_func = trx_usrp_read;
device->trx_get_stats_func = trx_usrp_get_stats;
device->trx_reset_stats_func = trx_usrp_reset_stats;
device->trx_end_func = trx_usrp_end;
device->trx_stop_func = trx_usrp_stop;
device->trx_set_freq_func = trx_usrp_set_freq;
device->trx_set_gains_func = trx_usrp_set_gains;
device->openair0_cfg = openair0_cfg;
std::cerr << "USRP device initialized in subframes replay mode for " << u_sf_loops << " loops. Use mmap="
<< use_mmap << std::endl;
} else {
#endif
uhd::set_thread_priority_safe(1.0);
usrp_state_t *s = (usrp_state_t *)calloc(sizeof(usrp_state_t),1);
if (openair0_cfg[0].clock_source==gpsdo)
s->use_gps =1;
// Initialize USRP device
device->openair0_cfg = openair0_cfg;
int vers=0,subvers=0,subsubvers=0;
int bw_gain_adjust=0;
#if defined(USRP_REC_PLAY)
if (u_sf_mode == 1) {
std::cerr << "USRP device initialized in subframes record mode" << std::endl;
}
#endif
sscanf(uhd::get_version_string().c_str(),"%d.%d.%d",&vers,&subvers,&subsubvers);
LOG_I(PHY,"Checking for USRPs : UHD %s (%d.%d.%d)\n",
uhd::get_version_string().c_str(),vers,subvers,subsubvers);
std::string args;
if (openair0_cfg[0].sdr_addrs == NULL) {
args = "type=b200";
} else {
args = openair0_cfg[0].sdr_addrs;
}
uhd::device_addrs_t device_adds = uhd::device::find(args);
if (device_adds.size() == 0) {
LOG_E(HW,"No USRP Device Found.\n ");
free(s);
return -1;
} else if (device_adds.size() > 1) {
LOG_E(HW,"More than one USRP Device Found. Please specify device more precisely in config file.\n");
free(s);
return -1;
}
LOG_I(HW,"Found USRP %s\n", device_adds[0].get("type").c_str());
double usrp_master_clock;
if (device_adds[0].get("type") == "b200") {
printf("Found USRP b200\n");
device->type = USRP_B200_DEV;
usrp_master_clock = 30.72e6;
args += boost::str(boost::format(",master_clock_rate=%f") % usrp_master_clock);
args += ",num_send_frames=256,num_recv_frames=256, send_frame_size=7680, recv_frame_size=7680" ;
}
if (device_adds[0].get("type") == "n3xx") {
printf("Found USRP n300\n");
device->type=USRP_X300_DEV; //treat it as X300 for now
usrp_master_clock = 122.88e6;
args += boost::str(boost::format(",master_clock_rate=%f") % usrp_master_clock);
}
if (device_adds[0].get("type") == "x300") {
printf("Found USRP x300\n");
device->type=USRP_X300_DEV;
usrp_master_clock = 184.32e6;
args += boost::str(boost::format(",master_clock_rate=%f") % usrp_master_clock);
}
s->usrp = uhd::usrp::multi_usrp::make(args);
// lock mboard clocks
if (openair0_cfg[0].clock_source == internal) {
s->usrp->set_clock_source("internal");
printf("Setting clock source to internal\n");
} else {
s->usrp->set_clock_source("external");
printf("Setting clock source to external\n");
}
if (device->type==USRP_X300_DEV) {
openair0_cfg[0].rx_gain_calib_table = calib_table_x310;
#if defined(USRP_REC_PLAY)
std::cerr << "-- Using calibration table: calib_table_x310" << std::endl; // Bell Labs info
#endif
LOG_I(PHY,"%s() sample_rate:%u\n", __FUNCTION__, (int)openair0_cfg[0].sample_rate);
switch ((int)openair0_cfg[0].sample_rate) {
case 122880000:
// from usrp_time_offset
//openair0_cfg[0].samples_per_packet = 2048;
openair0_cfg[0].tx_sample_advance = 15; //to be checked
openair0_cfg[0].tx_bw = 80e6;
openair0_cfg[0].rx_bw = 80e6;
break;
case 61440000:
// from usrp_time_offset
//openair0_cfg[0].samples_per_packet = 2048;
openair0_cfg[0].tx_sample_advance = 15;
openair0_cfg[0].tx_bw = 40e6;
openair0_cfg[0].rx_bw = 40e6;
break;
case 30720000:
// from usrp_time_offset
//openair0_cfg[0].samples_per_packet = 2048;
openair0_cfg[0].tx_sample_advance = 15;
openair0_cfg[0].tx_bw = 20e6;
openair0_cfg[0].rx_bw = 20e6;
break;
case 15360000:
//openair0_cfg[0].samples_per_packet = 2048;
openair0_cfg[0].tx_sample_advance = 45;
openair0_cfg[0].tx_bw = 10e6;
openair0_cfg[0].rx_bw = 10e6;
break;
case 7680000:
//openair0_cfg[0].samples_per_packet = 2048;
openair0_cfg[0].tx_sample_advance = 50;
openair0_cfg[0].tx_bw = 5e6;
openair0_cfg[0].rx_bw = 5e6;
break;
case 1920000:
//openair0_cfg[0].samples_per_packet = 2048;
openair0_cfg[0].tx_sample_advance = 50;
openair0_cfg[0].tx_bw = 1.25e6;
openair0_cfg[0].rx_bw = 1.25e6;
break;
default:
LOG_E(PHY,"Error: unknown sampling rate %f\n",openair0_cfg[0].sample_rate);
exit(-1);
break;
}
}
if (device->type == USRP_B200_DEV) {
if ((vers == 3) && (subvers == 9) && (subsubvers>=2)) {
openair0_cfg[0].rx_gain_calib_table = calib_table_b210;
bw_gain_adjust=0;
#if defined(USRP_REC_PLAY)
std::cerr << "-- Using calibration table: calib_table_b210" << std::endl; // Bell Labs info
#endif
} else {
openair0_cfg[0].rx_gain_calib_table = calib_table_b210_38;
bw_gain_adjust=1;
#if defined(USRP_REC_PLAY)
std::cerr << "-- Using calibration table: calib_table_b210_38" << std::endl; // Bell Labs info
#endif
}
switch ((int)openair0_cfg[0].sample_rate) {
case 30720000:
s->usrp->set_master_clock_rate(30.72e6);
//openair0_cfg[0].samples_per_packet = 1024;
openair0_cfg[0].tx_sample_advance = 115;
openair0_cfg[0].tx_bw = 20e6;
openair0_cfg[0].rx_bw = 20e6;
break;
case 23040000:
s->usrp->set_master_clock_rate(23.04e6); //to be checked
//openair0_cfg[0].samples_per_packet = 1024;
openair0_cfg[0].tx_sample_advance = 113;
openair0_cfg[0].tx_bw = 20e6;
openair0_cfg[0].rx_bw = 20e6;
break;
case 15360000:
s->usrp->set_master_clock_rate(30.72e06);
//openair0_cfg[0].samples_per_packet = 1024;
openair0_cfg[0].tx_sample_advance = 103;
openair0_cfg[0].tx_bw = 20e6;
openair0_cfg[0].rx_bw = 20e6;
break;
case 7680000:
s->usrp->set_master_clock_rate(30.72e6);
//openair0_cfg[0].samples_per_packet = 1024;
openair0_cfg[0].tx_sample_advance = 80;
openair0_cfg[0].tx_bw = 20e6;
openair0_cfg[0].rx_bw = 20e6;
break;
case 1920000:
s->usrp->set_master_clock_rate(30.72e6);
//openair0_cfg[0].samples_per_packet = 1024;
openair0_cfg[0].tx_sample_advance = 40;
openair0_cfg[0].tx_bw = 20e6;
openair0_cfg[0].rx_bw = 20e6;
break;
default:
LOG_E(PHY,"Error: unknown sampling rate %f\n",openair0_cfg[0].sample_rate);
exit(-1);
break;
}
}
/* device specific */
//openair0_cfg[0].txlaunch_wait = 1;//manage when TX processing is triggered
//openair0_cfg[0].txlaunch_wait_slotcount = 1; //manage when TX processing is triggered
openair0_cfg[0].iq_txshift = 4;//shift
openair0_cfg[0].iq_rxrescale = 15;//rescale iqs
for(int i=0; i<((int) s->usrp->get_rx_num_channels()); i++) {
if (i<openair0_cfg[0].rx_num_channels) {
s->usrp->set_rx_rate(openair0_cfg[0].sample_rate,i);
s->usrp->set_rx_freq(openair0_cfg[0].rx_freq[i],i);
set_rx_gain_offset(&openair0_cfg[0],i,bw_gain_adjust);
::uhd::gain_range_t gain_range = s->usrp->get_rx_gain_range(i);
// limit to maximum gain
AssertFatal( openair0_cfg[0].rx_gain[i]-openair0_cfg[0].rx_gain_offset[i] <= gain_range.stop(),
"RX Gain too high, lower by %f dB\n",
openair0_cfg[0].rx_gain[i]-openair0_cfg[0].rx_gain_offset[i] - gain_range.stop());
s->usrp->set_rx_gain(openair0_cfg[0].rx_gain[i]-openair0_cfg[0].rx_gain_offset[i],i);
LOG_I(PHY,"RX Gain %d %f (%f) => %f (max %f)\n",i,
openair0_cfg[0].rx_gain[i],openair0_cfg[0].rx_gain_offset[i],
openair0_cfg[0].rx_gain[i]-openair0_cfg[0].rx_gain_offset[i],gain_range.stop());
}
}
LOG_D(PHY, "usrp->get_tx_num_channels() == %zd\n", s->usrp->get_tx_num_channels());
LOG_D(PHY, "openair0_cfg[0].tx_num_channels == %d\n", openair0_cfg[0].tx_num_channels);
for(int i=0; i<((int) s->usrp->get_tx_num_channels()); i++) {
::uhd::gain_range_t gain_range_tx = s->usrp->get_tx_gain_range(i);
if (i<openair0_cfg[0].tx_num_channels) {
s->usrp->set_tx_rate(openair0_cfg[0].sample_rate,i);
s->usrp->set_tx_freq(openair0_cfg[0].tx_freq[i],i);
s->usrp->set_tx_gain(gain_range_tx.stop()-openair0_cfg[0].tx_gain[i],i);
LOG_I(PHY,"USRP TX_GAIN:%3.2lf gain_range:%3.2lf tx_gain:%3.2lf\n", gain_range_tx.stop()-openair0_cfg[0].tx_gain[i], gain_range_tx.stop(), openair0_cfg[0].tx_gain[i]);
}
}
//s->usrp->set_clock_source("external");
//s->usrp->set_time_source("external");
// display USRP settings
LOG_I(PHY,"Actual master clock: %fMHz...\n",s->usrp->get_master_clock_rate()/1e6);
sleep(1);
// create tx & rx streamer
uhd::stream_args_t stream_args_rx("sc16", "sc16");
int samples=openair0_cfg[0].sample_rate;
int max=s->usrp->get_rx_stream(stream_args_rx)->get_max_num_samps();
samples/=10000;
LOG_I(PHY,"RF board max packet size %u, size for 100µs jitter %d \n", max, samples);
if ( samples < max ) {
stream_args_rx.args["spp"] = str(boost::format("%d") % samples );
}
LOG_I(PHY,"rx_max_num_samps %zu\n",
s->usrp->get_rx_stream(stream_args_rx)->get_max_num_samps());
for (int i = 0; i<openair0_cfg[0].rx_num_channels; i++)
stream_args_rx.channels.push_back(i);
s->rx_stream = s->usrp->get_rx_stream(stream_args_rx);
uhd::stream_args_t stream_args_tx("sc16", "sc16");
for (int i = 0; i<openair0_cfg[0].tx_num_channels; i++)
stream_args_tx.channels.push_back(i);
s->tx_stream = s->usrp->get_tx_stream(stream_args_tx);
/* Setting TX/RX BW after streamers are created due to USRP calibration issue */
for(int i=0; i<((int) s->usrp->get_tx_num_channels()) && i<openair0_cfg[0].tx_num_channels; i++)
s->usrp->set_tx_bandwidth(openair0_cfg[0].tx_bw,i);
for(int i=0; i<((int) s->usrp->get_rx_num_channels()) && i<openair0_cfg[0].rx_num_channels; i++)
s->usrp->set_rx_bandwidth(openair0_cfg[0].rx_bw,i);
for (int i=0; i<openair0_cfg[0].rx_num_channels; i++) {
LOG_I(PHY,"RX Channel %d\n",i);
LOG_I(PHY," Actual RX sample rate: %fMSps...\n",s->usrp->get_rx_rate(i)/1e6);
LOG_I(PHY," Actual RX frequency: %fGHz...\n", s->usrp->get_rx_freq(i)/1e9);
LOG_I(PHY," Actual RX gain: %f...\n", s->usrp->get_rx_gain(i));
LOG_I(PHY," Actual RX bandwidth: %fM...\n", s->usrp->get_rx_bandwidth(i)/1e6);
LOG_I(PHY," Actual RX antenna: %s...\n", s->usrp->get_rx_antenna(i).c_str());
}
for (int i=0; i<openair0_cfg[0].tx_num_channels; i++) {
LOG_I(PHY,"TX Channel %d\n",i);
LOG_I(PHY," Actual TX sample rate: %fMSps...\n", s->usrp->get_tx_rate(i)/1e6);
LOG_I(PHY," Actual TX frequency: %fGHz...\n", s->usrp->get_tx_freq(i)/1e9);
LOG_I(PHY," Actual TX gain: %f...\n", s->usrp->get_tx_gain(i));
LOG_I(PHY," Actual TX bandwidth: %fM...\n", s->usrp->get_tx_bandwidth(i)/1e6);
LOG_I(PHY," Actual TX antenna: %s...\n", s->usrp->get_tx_antenna(i).c_str());
}
LOG_I(PHY,"Device timestamp: %f...\n", s->usrp->get_time_now().get_real_secs());
device->priv = s;
device->trx_start_func = trx_usrp_start;
device->trx_write_func = trx_usrp_write;
device->trx_read_func = trx_usrp_read;
device->trx_get_stats_func = trx_usrp_get_stats;
device->trx_reset_stats_func = trx_usrp_reset_stats;
device->trx_end_func = trx_usrp_end;
device->trx_stop_func = trx_usrp_stop;
device->trx_set_freq_func = trx_usrp_set_freq;
device->trx_set_gains_func = trx_usrp_set_gains;
device->openair0_cfg = openair0_cfg;
s->sample_rate = openair0_cfg[0].sample_rate;
// TODO:
// init tx_forward_nsamps based usrp_time_offset ex
if(is_equal(s->sample_rate, (double)30.72e6))
s->tx_forward_nsamps = 176;
if(is_equal(s->sample_rate, (double)15.36e6))
s->tx_forward_nsamps = 90;
if(is_equal(s->sample_rate, (double)7.68e6))
s->tx_forward_nsamps = 50;
if (s->use_gps == 1) {
if (sync_to_gps(device)) {
LOG_I(PHY,"USRP fails to sync with GPS...\n");
exit(0);
}
}
#if defined(USRP_REC_PLAY)
}
#endif
#if defined(USRP_REC_PLAY)
if (u_sf_mode == 1) { // record mode
ms_sample = (iqrec_t *) malloc(u_sf_max * sizeof(iqrec_t));
if (ms_sample == NULL) {
std::cerr<< "Memory allocation failed for subframe record or replay mode." << std::endl;
exit(-1);
}
memset(ms_sample, 0, u_sf_max * BELL_LABS_IQ_BYTES_PER_SF);
}
if (u_sf_mode == 2) {
if (use_mmap) {
// use mmap
mmapfd = open(u_sf_filename, O_RDONLY | O_LARGEFILE);
if (mmapfd != 0) {
fstat(mmapfd, &sb);
std::cerr << "Loading subframes using mmap() from " << u_sf_filename << " size=" << (uint64_t)sb.st_size << " bytes ..." << std::endl;
ms_sample = (iqrec_t *) mmap(NULL, sb.st_size, PROT_WRITE, MAP_PRIVATE, mmapfd, 0);
if (ms_sample != MAP_FAILED) {
nb_samples = (sb.st_size / sizeof(iqrec_t));
int aligned = (((unsigned long)ms_sample & 31) == 0)? 1:0;
std::cerr<< "Loaded "<< nb_samples << " subframes." << std::endl;
if (aligned == 0) {
std::cerr<< "mmap address is not 32 bytes aligned, exiting." << std::endl;
close(mmapfd);
exit(-1);
}
} else {
std::cerr << "Cannot mmap file, exiting." << std::endl;
close(mmapfd);
exit(-1);
}
} else {
std::cerr << "Cannot open " << u_sf_filename << " , exiting." << std::endl;
exit(-1);
}
} else {
iqfd = open(u_sf_filename, O_RDONLY | O_LARGEFILE);
if (iqfd != 0) {
fstat(iqfd, &sb);
nb_samples = (sb.st_size / sizeof(iqrec_t));
std::cerr << "Loading " << nb_samples << " subframes from " << u_sf_filename
<< " size=" << (uint64_t)sb.st_size << " bytes ..." << std::endl;
// allocate buffer for 1 sample at a time
ms_sample = (iqrec_t *) malloc(sizeof(iqrec_t));
if (ms_sample == NULL) {
std::cerr<< "Memory allocation failed for individual subframe replay mode." << std::endl;
close(iqfd);
exit(-1);
}
memset(ms_sample, 0, sizeof(iqrec_t));
// point at beginning of file
if (lseek(iqfd, 0, SEEK_SET) == 0) {
std::cerr << "Initial seek at beginning of the file" << std::endl;
} else {
std::cerr << "Problem initial seek at beginning of the file" << std::endl;
}
} else {
std::cerr << "Cannot open " << u_sf_filename << " , exiting." << std::endl;
exit(-1);
}
}
}
#endif
return 0;
}
}
/*@}*/
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