Method for determining propagation delays
An apparatus comprising: means for measuring a downlink reference signal received from an access node ( 500 ); means for selecting an antenna panel of the user equipment receiving the best quality downlink reference signal from a primary angular direction to be used for a connection to the access node ( 502 ); means for detecting a maximum permissible exposure (MPE) event ( 504 ); means for measuring, under MPE power restrictions, the best downlink reference signal received from the access node ( 506 ); means for determining that under the MPE power restrictions the best quality downlink reference signal is received at least from a different secondary angular direction than the primary angular direction of the best quality downlink reference signal ( 508 ); means for measuring a propagation delay difference between the best quality downlink reference signal received from the primary angular direction and the best quality downlink reference signal received from the secondary angular direction ( 510 ); and means for sending, upon detecting that the propagation delay difference exceeding a predetermined threshold, an indication to the access node ( 514 ).
1 . A user equipment comprising:
a plurality of antenna panels;
a plurality of proximity sensors comprising a proximity sensor on each antenna panel of the plurality of antenna panels, each proximity sensor comprising a dedicated radar sensor configured to measure distance to an object and to distinguish between different types of objects;
at least one processor; and
at least one memory, said at least one memory stored with computer program code thereon, the at least one memory and the computer program code configured to, with the at least one processor, cause the user equipment at least to perform:
measure a plurality of downlink reference signals received from an access node by analyzing a power delay profile (PDP) of a synchronization signal block (SSB) on each antenna panel of the plurality of antenna panels individually;
select a first antenna panel of the plurality of antenna panels receiving a best quality downlink reference signal, of the plurality of downlink reference signals, from a primary angular direction to be used for a connection to the access node;
trigger a maximum permissible exposure (MPE) event in response to the proximity sensor of the first antenna panel detecting a robot;
measure, under MPE power restrictions, the best downlink reference signal received from the access node on any antenna panel of the plurality of antenna panels from angular directions different from the primary angular direction;
determine that under the MPE power restrictions the best quality downlink reference signal is received at a second antenna panel, of the plurality of antenna panels, at least from a secondary angular direction different from the primary angular direction;
measure that a power level of the best quality downlink reference signal received at the second antenna panel from the secondary angular direction is higher than a power level of the best quality downlink reference signal received at the first antenna panel from the primary angular direction by a predefined threshold;
measure a propagation delay difference between the best quality downlink reference signal received at the first antenna panel from the primary angular direction and the best quality downlink reference signal received at the second antenna panel from the secondary angular direction;
send, upon detecting that the propagation delay difference exceeds a predetermined threshold, an indication to the access node,
wherein said indication comprises the propagation delay difference measured as time difference of arrival (TDoA) of the downlink reference signals received from the primary angular direction and from the secondary angular direction,
wherein said indication is in a Medium Access Control (MAC) layer Control Element (CE),
wherein the downlink reference signals comprise a synchronization signal block (SSB), and the quality of the downlink reference signals is measured as a reference signal received power (RSRP) level;
wherein the computer program code configured to, with the at least one processor, further cause the user equipment at least to perform:
determine that uplink transmission beam change is needed;
align a narrow uplink beam towards the secondary angular direction of the best quality downlink reference signal by utilizing aperiodic channel state information reference signal (CSI-RS) with repetition ‘ON’ scheduled by the access node and by using a wider uplink beam until alignment of the narrow uplink beam is completed;
determine a difference between an RSRP of the aperiodic CSI-RS with repetition ‘ON’ on a MPE restricted narrower beam used for downlink and an RSRP of the narrow uplink beam used for uplink;
based on the difference in RSRP exceeding a predefined threshold:
determine that level of the CSI-RS is sufficient to keep an uplink/downlink beam split according to the aligned narrow uplink beam; and
inform the access node about imbalance in propagation paths for downlink and uplink by using the MAC CE for reporting a measured propagation difference between the source uplink transmit beam and the target uplink transmit beam.