Systems and methods for dynamic inter-sector MIMO transmission

    公开(公告)号:US10784930B2

    公开(公告)日:2020-09-22

    申请号:US16550760

    申请日:2019-08-26

    Abstract: A system includes a first antenna array, and a sector scheduler. The sector scheduler determines if a number of transmit antennas of the first antenna array, that serves a location of a user equipment (UE), is less than a maximum multiple-input, multiple-output (MIMO) capability of the UE. The sector scheduler causes data to be transmitted to the UE via one or more transmit antennas of the first antenna array and at least one transmit antenna associated with a second antenna array of a selected adjacent sector based on the number of transmit antennas of the first antenna array being less than the maximum MIMO capability of the UE.

    Dynamic error correction procedures

    公开(公告)号:US10171208B2

    公开(公告)日:2019-01-01

    申请号:US15157175

    申请日:2016-05-17

    Inventor: Nader El Chebib

    Abstract: Techniques described herein may be used to enable a base station to dynamically implement error correction procedures (e.g., Hybrid Automatic Repeat Request (HARQ), Forward Error Correction (FEC), etc.) based on one or more factors, such as a level of network activity, network congestion, etc. When network congestion is high, the network device may implement an error correction policy that is directed to using available network resources to prioritize error correction procedures for transmission failures with high service requirements. However, when network congestion is low, the network device may implement an error correction policy directed to optimizing error correction effectiveness by allocating unused network resources (e.g., bandwidth, physical channels, etc.) to correct transmission failures.

    DYNAMIC ERROR CORRECTION PROCEDURES
    4.
    发明申请

    公开(公告)号:US20170338908A1

    公开(公告)日:2017-11-23

    申请号:US15157175

    申请日:2016-05-17

    Inventor: Nader El Chebib

    Abstract: Techniques described herein may be used to enable a base station to dynamically implement error correction procedures (e.g., Hybrid Automatic Repeat Request (HARQ), Forward Error Correction (FEC), etc.) based on one or more factors, such as a level of network activity, network congestion, etc. When network congestion is high, the network device may implement an error correction policy that is directed to using available network resources to prioritize error correction procedures for transmission failures with high service requirements. However, when network congestion is low, the network device may implement an error correction policy directed to optimizing error correction effectiveness by allocating unused network resources (e.g., bandwidth, physical channels, etc.) to correct transmission failures.

    SYSTEMS AND METHODS FOR DYNAMIC INTER-SECTOR MIMO TRANSMISSION

    公开(公告)号:US20200099419A1

    公开(公告)日:2020-03-26

    申请号:US16550760

    申请日:2019-08-26

    Abstract: A system includes a first antenna array, and a sector scheduler. The sector scheduler determines if a number of transmit antennas of the first antenna array, that serves a location of a user equipment (UE), is less than a maximum multiple-input, multiple-output (MIMO) capability of the UE. The sector scheduler causes data to be transmitted to the UE via one or more transmit antennas of the first antenna array and at least one transmit antenna associated with a second antenna array of a selected adjacent sector based on the number of transmit antennas of the first antenna array being less than the maximum MIMO capability of the UE.

    Systems and methods for dynamic inter-sector MIMO transmission

    公开(公告)号:US10439681B1

    公开(公告)日:2019-10-08

    申请号:US16136617

    申请日:2018-09-20

    Abstract: A first base station determines a maximum MIMO capability of a UE that equals a maximum number of spatial layers that the UE can receive. The first base station determines if the number of transmit antennas of the first base station, that serves a location of the UE, is less than the maximum MIMO capability of the UE and identifies adjacent sectors that currently serve the location of the UE. The first base station selects at least one adjacent sector, associated with a second base station, from the identified adjacent sectors based on the number of transmit antennas of the first base station being less than the maximum MIMO capability of the UE, and causes data to be transmitted to the UE via one or more transmit antennas of the first base station and at least one transmit antenna associated with the selected at least one adjacent sector.

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