18632655. DYNAMIC GAP SYMBOL IN SIDELINK POSITIONING REFERENCE SIGNAL RESOURCE CONFIGURATION simplified abstract (Nokia Technologies Oy)
Contents
- 1 DYNAMIC GAP SYMBOL IN SIDELINK POSITIONING REFERENCE SIGNAL RESOURCE CONFIGURATION
- 1.1 Organization Name
- 1.2 Inventor(s)
- 1.3 DYNAMIC GAP SYMBOL IN SIDELINK POSITIONING REFERENCE SIGNAL RESOURCE CONFIGURATION - A simplified explanation of the abstract
- 1.4 Simplified Explanation
- 1.5 Key Features and Innovation
- 1.6 Potential Applications
- 1.7 Problems Solved
- 1.8 Benefits
- 1.9 Commercial Applications
- 1.10 Prior Art
- 1.11 Frequently Updated Research
- 1.12 Questions about Sidelink Positioning Reference Signal Resource Configuration
- 1.13 Original Abstract Submitted
DYNAMIC GAP SYMBOL IN SIDELINK POSITIONING REFERENCE SIGNAL RESOURCE CONFIGURATION
Organization Name
Inventor(s)
Ryan Keating of Chicago IL (US)
Torsten Wildschek of Gloucester (GB)
Hyun-Su Cha of Chicago IL (US)
Prajwal Keshavamurthy of Munich (DE)
DYNAMIC GAP SYMBOL IN SIDELINK POSITIONING REFERENCE SIGNAL RESOURCE CONFIGURATION - A simplified explanation of the abstract
This abstract first appeared for US patent application 18632655 titled 'DYNAMIC GAP SYMBOL IN SIDELINK POSITIONING REFERENCE SIGNAL RESOURCE CONFIGURATION
Simplified Explanation
The patent application discusses a method for configuring resources for a sidelink positioning reference signal transmission, including determining the presence of a gap symbol and allocating time domain for the signal.
Key Features and Innovation
- Method for configuring resources for sidelink positioning reference signal transmission
- Detection of gap symbol presence for signal transmission
- Allocation of time domain for the signal
- Positioning computation based on received signal
Potential Applications
This technology can be applied in:
- Wireless communication systems
- Internet of Things (IoT) devices
- Location-based services
- Autonomous vehicles
- Emergency services
Problems Solved
- Efficient configuration of resources for sidelink positioning reference signal transmission
- Improved accuracy in positioning computation
- Enhanced reliability of location-based services
Benefits
- Optimal resource allocation for signal transmission
- Accurate positioning computation
- Reliable location-based services
- Enhanced performance in wireless communication systems
Commercial Applications
- Telecom companies for improved network performance
- IoT device manufacturers for accurate location tracking
- Navigation systems for precise positioning
- Emergency services for quick and accurate response
- Automotive industry for autonomous vehicle navigation
Prior Art
Prior art related to this technology may include research papers, patents, and publications in the field of wireless communication systems, positioning reference signals, and resource allocation techniques.
Frequently Updated Research
Researchers are constantly exploring advancements in resource allocation techniques for signal transmission in wireless communication systems, which may impact the development of this technology.
Questions about Sidelink Positioning Reference Signal Resource Configuration
How does the method determine the presence of a gap symbol for the sidelink positioning reference signal transmission?
The method determines the presence of a gap symbol by receiving sidelink control information from the user equipment.
What are the potential applications of this technology beyond wireless communication systems?
This technology can be applied in various industries such as IoT, autonomous vehicles, emergency services, and location-based services.
Original Abstract Submitted
Systems, methods, apparatuses, and computer program products for dynamic gap symbol in sidelink positioning reference signal (SL PRS) resource configuration. A method may include receiving, from a user equipment, a sidelink control information indicating whether a gap symbol exists for a sidelink positioning reference signal transmission. The method may also include determining a time domain allocation of the sidelink positioning reference signal. The method may further include receiving, from the user equipment, a sidelink positioning reference signal with or without the gap symbol. In addition, the method may include performing a positioning computation based on the sidelink positioning reference signal received from the user equipment.