Qualcomm incorporated (20240214933). MACRO AND MICRO DISCONTINUOUS RECEPTION simplified abstract
Contents
- 1 MACRO AND MICRO DISCONTINUOUS RECEPTION
- 1.1 Organization Name
- 1.2 Inventor(s)
- 1.3 MACRO AND MICRO DISCONTINUOUS RECEPTION - 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 Wireless Communication Technology
- 1.13 Original Abstract Submitted
MACRO AND MICRO DISCONTINUOUS RECEPTION
Organization Name
Inventor(s)
Ravi Agarwal of San Diego CA (US)
Gavin Bernard Horn of La Jolla CA (US)
Peter Pui Lok Ang of San Diego CA (US)
MACRO AND MICRO DISCONTINUOUS RECEPTION - A simplified explanation of the abstract
This abstract first appeared for US patent application 20240214933 titled 'MACRO AND MICRO DISCONTINUOUS RECEPTION
Simplified Explanation
The patent application describes methods, systems, and devices for wireless communication. It focuses on a wireless device's ability to receive a downlink reception indication during an active duration of a discontinuous reception configuration.
- The wireless device can receive a signal indicating a reception opportunity after an inactivity interval.
- The device may enter a sleep mode during the inactivity interval and wake up to receive a subsequent transmission.
- It may refrain from monitoring the downlink during the inactivity interval.
- The device could also use the inactivity interval to communicate using a different radio access technology.
Key Features and Innovation
- Wireless device receives downlink reception indication during discontinuous reception configuration.
- Indicates presence of reception opportunity after inactivity interval.
- Device can enter sleep mode during inactivity and wake up for subsequent transmission.
- Refrains from downlink monitoring during inactivity.
- Utilizes inactivity interval for communication using different radio access technology.
Potential Applications
This technology can be applied in various wireless communication systems, IoT devices, and mobile networks where power efficiency and network optimization are crucial.
Problems Solved
This technology addresses the issue of optimizing power consumption in wireless devices by intelligently managing reception opportunities and inactivity intervals.
Benefits
- Improved power efficiency in wireless devices.
- Enhanced network optimization.
- Seamless communication using different radio access technologies.
Commercial Applications
- IoT devices requiring efficient power management.
- Mobile networks looking to optimize network performance.
- Wireless communication systems aiming for enhanced reliability and efficiency.
Prior Art
Readers can explore prior art related to this technology by researching patents and publications in the field of wireless communication systems and power management.
Frequently Updated Research
Stay updated on the latest research in wireless communication systems, power management, and network optimization to further enhance the application of this technology.
Questions about Wireless Communication Technology
How does this technology improve power efficiency in wireless devices?
This technology improves power efficiency by allowing devices to enter sleep mode during inactivity intervals, reducing unnecessary power consumption.
What are the potential applications of this wireless communication technology?
The potential applications include IoT devices, mobile networks, and wireless communication systems where power efficiency and network optimization are essential.
Original Abstract Submitted
methods, systems, and devices for wireless communication are described. a wireless device may receive a downlink (dl) reception indication during an active duration of a discontinuous reception (drx) configuration. the dl reception indication may indicate the presence of a reception opportunity following an inactivity interval, as well as the length of the inactivity interval. the wireless device may refrain from dl monitoring during the inactivity interval. in some cases, the wireless device may enter a sleep mode during the inactivity interval and wake up to receive a subsequent transmission during the reception opportunity. in some examples, the wireless device may use the inactivity interval to communicate using a different radio access technology (rat).