SUPERPOSITION TRANSMISSION AND DETECTION OF ACCESS AND BACKHAUL SIGNALS
According to one embodiment of the invention, a wireless communication system (WCS) has a wireless relay and a base station adapted to process wireless access traffic for one or more mobile terminals (MTs) and to process wireless backhaul traffic. The wireless relay is adapted to generate a superimposed signal having a backhaul component intended for the base station and an access component intended for one of the MTs. The wireless relay is further adapted to allocate power between the backhaul and access components based on signal propagation conditions between itself, the base station, and the MT to render the backhaul component decodable at the base station and the access component decodable at the MT.
1 . At a first transceiver of a wireless communication system (WCS) comprising a plurality of transceivers having one or more wireless relays and one or more base stations, at least one of said wireless relays and at least one of said base stations being adapted to process wireless access traffic and wireless backhaul traffic, a communication method comprising:
generating a superimposed signal having a backhaul component intended for a second transceiver and an access component intended for a mobile terminal; and
transmitting the generated superimposed signal.
2 . The invention of claim 1 , wherein said step of generating comprises allocating power between said backhaul and access components based on signal propagation conditions between the first and second transceivers and between the first transceiver and the mobile terminal to render the backhaul component decodable at the second transceiver and the access component decodable at the mobile terminal.
3 . The invention of claim 1 , wherein:
the first transceiver is a base station; and
the second transceiver is a wireless relay.
4 . The invention of claim 1 , wherein:
the first transceiver is a wireless relay; and
the second transceiver is a base station or another wireless relay.
5 . The invention of claim 1 , wherein:
the first transceiver is adapted to transmit signals using time division multiplexing; and
an instance of the superimposed signal is transmitted in a single time slot.
6 . The invention of claim 1 , wherein:
the first transceiver is adapted to transmit signals using frequency division multiplexing; and
the superimposed signal has at least one frequency component used by both of the backhaul and access components.
7 . The invention of claim 1 , wherein:
the first transceiver is adapted to transmit signals using signal multiplexing based on spreading codes; and
the superimposed signal is generated using at least one spreading-code subspace for both of the backhaul and access components.
8 . The invention of claim 1 , wherein at least one of the second transceiver and the mobile terminal is adapted to:
define an extended constellation based on constellations corresponding to the backhaul and access components;
process the received superimposed signal using said extended constellation; and
recover data encoded onto at least one of the backhaul and access components based on said processing.
9 . The invention of claim 1 , further comprising receiving a power request from at least one of the mobile terminal and the second transceiver, wherein said step of generating comprises setting the power of at least one of said backhaul and access components based on the received power request.
10 . At a first transceiver of a wireless communication system (WCS) comprising a plurality of transceivers having one or more wireless relays and one or more base stations, at least one of said wireless relays and at least one of said base stations being adapted to process wireless access traffic and wireless backhaul traffic, a communication method comprising:
receiving a superimposed signal having a backhaul component and an access component, said superimposed signal generated by (i) a second transceiver or (ii) by the second transceiver and another transceiver, with each of the second transceiver and said another transceiver generating a corresponding one of the backhaul and access components; and
decoding at least one of said backhaul and access components.
11 . The invention of claim 10 , wherein:
the superimposed signal is generated by the second transceiver; and
power between said backhaul and access components has been allocated based on signal propagation conditions between the second and first transceivers and between the second transceiver and a third transceiver to render an intended one of said backhaul and access components decodable at the first transceiver and the other one of said backhaul and access components decodable at the third transceiver.
12 . The invention of claim 11 , wherein:
the first transceiver is a base station;
the second transceiver is a wireless relay; and
the third transceiver is a mobile terminal.
13 . The invention of claim 11 , wherein:
the first transceiver is a wireless relay;
the second transceiver is a base station or another wireless relay; and
the third transceiver is a mobile terminal.
14 . The invention of claim 11 , wherein:
the first transceiver is a mobile terminal;
the second transceiver is a wireless relay; and
the third transceiver is a base station or another wireless relay.
15 . The invention of claim 10 , wherein:
the superimposed signal is generated by the second transceiver and said another transceiver; and
power between said backhaul and access components has been allocated based on signal propagation conditions between the second and first transceivers and between said another transceiver and the first transceiver to render both of said backhaul and access components decodable at the first transceiver.
16 . The invention of claim 10 , the step of decoding comprises decoding the access component while treating the backhaul component as noise.
17 . The invention of claim 16 , further comprising:
estimating a contribution of the access component into the superimposed signal based on data decoded from the access component;
subtracting said estimated contribution from the superimposed signal to estimate the backhaul component; and
recovering data encoded onto the backhaul component based on the estimated backhaul component.
18 . The invention of claim 17 , further comprising:
measuring a signal-to-noise ratio (SNR) for the estimated backhaul component; and
sending to the second transceiver a power-up or power-down request for a next instance of the backhaul component based on the measured SNR.
19 . The invention of claim 16 , further comprising:
measuring a signal-to-noise ratio (SNR) for the decoded access component; and
sending to the second transceiver a power-up or power-down request for a next instance of the access component based on the measured SNR.
20 . The invention of claim 10 , further comprising:
defining an extended constellation based on constellations corresponding to the backhaul and access components;
processing the received superimposed signal using said extended constellation; and
recovering data encoded onto at least one of the backhaul and access components based on said processing.
21 . The invention of claim 20 , further comprising discarding the data corresponding to said other one component.
22 . A first transceiver of a wireless communication system (WCS) comprising a plurality of transceivers having one or more wireless relays and one or more base stations, at least one of said wireless relays and at least one of said base stations being adapted to process wireless access traffic and wireless backhaul traffic, said first transceiver characterized by being adapted to:
generate a superimposed signal having a backhaul component intended for a second transceiver and an access component intended for a mobile terminal; and
transmit the generated superimposed signal.
23 . A first transceiver of a wireless communication system (WCS) comprising a plurality of transceivers having one or more wireless relays and one or more base stations, at least one of said wireless relays and at least one of said base stations being adapted to process wireless access traffic and wireless backhaul traffic, said first transceiver characterized by being adapted to:
receive a superimposed signal having a backhaul component and an access component, said superimposed signal generated by (i) a second transceiver or (ii) by the second transceiver and another transceiver, with each of the second transceiver and said another transceiver generating a corresponding one of the backhaul and access components; and
decode at least one of said backhaul and access components.
24 . A wireless communication system (WCS), comprising a plurality of transceivers having one or more wireless relays and one or more base stations, at least one of said wireless relays and at least one of said base stations being adapted to process wireless access traffic and wireless backhaul traffic, wherein:
said plurality comprises first and second transceivers and a mobile terminal;
the first transceiver is adapted to generate and transmit a superimposed signal having a backhaul component intended for the second transceiver and an access component intended for the mobile terminal;
the second transceiver is adapted to receive and decode at least said backhaul component; and
the mobile terminal is adapted to receive and decode at least said access component.