Cpu power management for virtualized radio access networks
US-2024406860-A1 · Dec 5, 2024 · US
US9386517B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9386517-B2 |
| Application number | US-201314044540-A |
| Country | US |
| Kind code | B2 |
| Filing date | Oct 2, 2013 |
| Priority date | Nov 8, 2012 |
| Publication date | Jul 5, 2016 |
| Grant date | Jul 5, 2016 |
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Official abstract text for this publication.
The present invention discloses an energy efficient network communication device comprising: a media-access-controller for outputting a transmission-end low power idle (LPI) indication and receiving a reception-end LPI indication; a media-independent-interface for generating a transmission-end LPI signal according to the transmission-end LPI indication, and generating the reception-end LPI indication according to a reception-end LPI signal; and a physical-layer-circuit, coupled to several pairs of transmission lines, for converting the transmission-end LPI signal into a transmission signal to send it to a reception end for requesting an LPI mode and receiving a reception signal from the reception end to convert it into the reception-end LPI signal. Said physical-layer-circuit uses some of the several pairs of transmission lines for transmission and reception when keeping the other pairs of transmission lines unused to save power; furthermore, the physical-layer-circuit can enter the LPI mode from an idle mode for additional power saving.
Opening claim text (preview).
What is claimed is: 1. An energy efficient network communication device, comprising: a media access controller for outputting a transmission-end low power idle indication (TX-LPI indication) and receiving a reception-end low power idle indication (RX-LPI indication), including: a media access control circuit coupled to a media independent reception interface; and a transmission buffer, coupled between the media access control circuit and a media independent transmission interface, for outputting the TX-LPI indication according to a buffer capacity threshold after the media access control circuit stops sending packets; a media independent interface including: the media independent transmission interface for generating a transmission-end low power idle signal (TX-LPI signal) according to the TX-LPI indication; and the media independent reception interface for generating the RX-LPI indication according to a reception-end low power idle signal (RX-LPI signal); and a physical layer circuit, electrically coupled to the media independent interface and several pairs of transmission lines, including: a physical layer transmission circuit, coupled to the media independent transmission interface, for converting the TX-LPI signal into a transmission signal and sending the transmission signal to a reception end to ask the reception end to enter a low power idle mode (LPI mode); and a physical layer reception circuit, coupled to the media independent reception interface, for receiving a reception signal from the reception end and converting the reception signal into the RX-LPI signal, wherein the physical layer circuit uses at least one of the several pairs of transmission lines to send the transmission signal and receive the reception signal, and keeps at least another one of the several pairs of transmission lines unused, and after sending the transmission signal and/or receiving the RX-LPI signal, the physical layer circuit enters the LPI mode from an idle mode and stops the operation of some or all of the physical layer circuit to reduce power consumption. 2. The energy efficient network communication device of claim 1 , wherein the TX-LPI signal includes a first transmission bit, a second transmission bit and a third transmission bit in which the first transmission bit has a first predetermined value, the second transmission bit has a second predetermined value and the third transmission bit has a third predetermined value, and the RX-LPI signal includes a first reception bit, a second reception bit and a third reception bit in which the first reception bit corresponds to the first predetermined value, the second reception bit corresponds to the second predetermined value and the third reception bit corresponds to the third predetermined value. 3. The energy efficient network communication device of claim 1 , wherein the physical layer transmission circuit includes: a transmission-bit conversion circuit, coupled to the media independent transmission interface, for generating a transmission-bit conversion signal according to the TX-LPI signal in which the bit number of the TX-LPI signal is different from the bit number of the transmission-bit conversion signal; an encryption circuit, coupled to the transmission-bit conversion circuit, for generating a transmission-end encryption signal according to the transmission-bit conversion signal; and a transmission circuit, electrically coupled to the several pairs of transmission lines, for generating the transmission signal according to the transmission-end encryption signal. 4. The energy efficient network communication device of claim 3 , wherein the encryption circuit generates a plurality of transmission-end encryption bits according to the transmission-bit conversion signal, and performs a logic operation with at least some of the transmission-end encryption bits to thereby generate the transmission-end encryption signal. 5. The energy efficient network communication device of claim 4 , wherein the plurality of transmission-end encryption bits includes a first transmission-end encryption bit, a second transmission-end encryption bit and a third transmission-end encryption bit in which the first transmission-end encryption bit represents the TX-LPI indication, the second transmission-end encryption bit represents a transmission-end update-completion indication and the third transmission-end encryption bit represents a transmission-end reception status. 6. The energy efficient network communication device of claim 4 , wherein the logic operation is an Exclusive-OR operation. 7. The energy efficient network communication device of claim 3 , wherein the transmission circuit includes: a physical coding sub-layer encoding circuit for generating a coded signal in accordance with the transmission-end encryption signal; a physical medium attachment transmission circuit for generating a digital transmission signal according to the coded signal; and an analog front end transmission circuit for generating the transmission signal according to the digital transmission signal. 8. The energy efficient network communication device of claim 1 , wherein the physical layer reception circuit includes: a reception circuit, electrically connected to the several pairs of transmission lines, for generating a reception-end encryption signal according to the reception signal; a decryption circuit, coupled to the reception circuit, for generating a reception-bit conversion signal according to the reception-end encryption signal; and a reception-bit conversion circuit, coupled to the decryption circuit and the medium independent reception interface, for generating the RX-LPI signal according to the reception-bit conversion signal in which the bit number of the RX-LPI signal is different from the bit number of the reception-bit conversion signal. 9. The energy efficient network communication device of claim 8 , wherein the decryption circuit includes: a first decryption sequence generation circuit for providing a first decryption sequence according to the reception-end encryption signal in which the first decryption sequence is used as the basis of generating the reception-bit conversion signal and includes a first preset bit; a first decryption verification circuit for generating a decryption verification signal according to a first reception-end encryption bit of the reception-end encryption signal and the first preset bit; a second decryption verification circuit for generating the decryption verification signal according to the reversed bit of the first reception-end encryption bit and a first preset operation-bit; and a second decryption sequence generation circuit for providing a second decryption sequence as the basis of generating the reception-bit conversion signal in which the second decryption sequence includes the first preset operation-bit. 10. The energy efficient network communication device of claim 8 , wherein the decryption circuit generates a plurality of reception-end encryption bits and performs a comparison operation with at least some of the plurality of reception-end encryption bits to thereby generate the reception-bit conversion signal. 11. The energy efficient network communication device of claim 10 , wherein the decryption circuit checks whether a decryption sequence of the decryption circuit is synchronous with an encryption sequence of the reception end by the comparison operation, and determines whether the reception end asks for the low power idle mode. 12. The energy efficient network communication device of claim 8 , wherein the reception circuit includes: an analog front end reception circuit for generating a digit
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