18523273. MIMO Enhancement Capability Design simplified abstract (Apple Inc.)
Contents
- 1 MIMO Enhancement Capability Design
- 1.1 Organization Name
- 1.2 Inventor(s)
- 1.3 MIMO Enhancement Capability Design - A simplified explanation of the abstract
- 1.4 Simplified Explanation
- 1.5 Potential Applications
- 1.6 Problems Solved
- 1.7 Benefits
- 1.8 Potential Commercial Applications
- 1.9 Possible Prior Art
- 1.10 Unanswered Questions
- 1.11 Original Abstract Submitted
MIMO Enhancement Capability Design
Organization Name
Inventor(s)
Haitong Sun of Cupertino CA (US)
Dawei Zhang of Saratoga CA (US)
Yuchul Kim of San Jose CA (US)
Weidong Yang of San Diego CA (US)
Chunxuan Ye of San Diego CA (US)
Oghenekome Oteri of San Diego CA (US)
Ismael Gutierrez Gonzalez of San Jose CA (US)
Ghaith N Hattab of Santa Clara CA (US)
Haijing Hu of Los Gatos CA (US)
Zhibin Wu of Los Altos CA (US)
Yeong-Sun Hwang of Germering (DE)
MIMO Enhancement Capability Design - A simplified explanation of the abstract
This abstract first appeared for US patent application 18523273 titled 'MIMO Enhancement Capability Design
Simplified Explanation
The patent application describes apparatuses, systems, and methods for multi-TRP by a UE, including out of order delivery of PDSCH, PUSCH, and/or DL ACK/NACK. The UE may receive a configuration from a base station that includes multiple control resource set (CORESET) pools, each associated with an index value. The UE may determine when it may be scheduled to receive PDSCHs, transmit PUSCHs, and/or transmit ACK/NACKs from CORESETs associated with multiple DCIs that end at a common symbol.
- UE receives configuration from base station with multiple CORESET pools
- Each CORESET pool associated with an index value
- UE determines scheduling for receiving PDSCHs, transmitting PUSCHs, and/or transmitting ACK/NACKs from CORESETs associated with multiple DCIs
Potential Applications
This technology can be applied in:
- 5G and future wireless communication systems
- IoT devices requiring efficient and reliable data transmission
Problems Solved
This technology solves the following problems:
- Efficient scheduling of data transmission in multi-TRP scenarios
- Out of order delivery of data packets
Benefits
The benefits of this technology include:
- Improved data transmission efficiency
- Enhanced reliability in multi-TRP communication
Potential Commercial Applications
Potential commercial applications of this technology include:
- Telecom equipment manufacturers
- IoT device manufacturers
Possible Prior Art
One possible prior art for this technology could be:
- Patent US20190094233A1 - Method and apparatus for multi-TRP communication in wireless networks
Unanswered Questions
How does this technology impact battery life in UE devices?
The patent application does not provide information on the potential impact of this technology on the battery life of UE devices.
What are the specific predetermined rules used by the UE to determine scheduling?
The patent application does not detail the specific predetermined rules used by the UE to determine scheduling in multi-TRP scenarios.
Original Abstract Submitted
Apparatuses, systems, and methods for multi-TRP by a UE, including out of order delivery of PDSCH, PUSCH, and/or DL ACK/NACK. The UE may receive, from a base station, a configuration that may include multiple control resource set (CORESET) pools and each CORESET pool may be associated with an index value. The UE may determine that at least two DCIs of the multiple DCIs end at a common symbol and determine, based on one or more predetermined rules, when the UE may be scheduled to receive PDSCHs, transmit PUSCHs, and/or transmit ACK/NACKs from CORESETs associated with the at least two DCIs.
- Apple Inc.
- Haitong Sun of Cupertino CA (US)
- Yushu Zhang of Beijing (CN)
- Wei Zeng of Saratoga CA (US)
- Dawei Zhang of Saratoga CA (US)
- Yuchul Kim of San Jose CA (US)
- Hong He of San Jose CA (US)
- Weidong Yang of San Diego CA (US)
- Chunhai Yao of Beijing (CN)
- Chunxuan Ye of San Diego CA (US)
- Oghenekome Oteri of San Diego CA (US)
- Ismael Gutierrez Gonzalez of San Jose CA (US)
- Ghaith N Hattab of Santa Clara CA (US)
- Jie Cui of San Jose CA (US)
- Yang Tang of San Jose CA (US)
- Haijing Hu of Los Gatos CA (US)
- Fangli Xu of Beijing (CN)
- Zhibin Wu of Los Altos CA (US)
- Yuqin Chen of Beijing (CN)
- Yeong-Sun Hwang of Germering (DE)
- H04B7/0413
- H04L1/1829
- H04L5/00
- H04W72/23