Abstract:
A method of communicating over a wideband communication channel divided into a plurality of sub-channels comprises dividing a single serial message intended for one of the plurality of communication devices into a plurality of parallel messages, encoding each of the plurality of parallel messages onto at least some of the plurality of sub-channels, and transmitting the encoded plurality of parallel messages to the communication device over the wideband communication channel.
Abstract:
A forward error correction encoder encodes input data words into code words that comprise a parity matrix. In one aspect, the encoder is optimized based on the properties of the parity matrix in order to reduce routing overhead size.
Abstract:
A method of communicating over a wideband communication channel divided into a plurality of sub-channels comprises dividing a single serial message intended for one of the plurality of communication devices into a plurality of parallel messages, encoding each of the plurality of parallel messages onto at least some of the plurality of sub-channels, and transmitting the encoded plurality of parallel messages to the communication device over the wideband communication channel.
Abstract:
A method of communicating over a wideband communication channel divided into a plurality of sub-channels comprises dividing a single serial message intended for one of the plurality of communication devices into a plurality of parallel messages, encoding each of the plurality of parallel messages onto at least some of the plurality of sub-channels, and transmitting the encoded plurality of parallel messages to the communication device over the wideband communication channel.
Abstract:
A method of communicating over a wideband communication channel divided into a plurality of sub-channels comprises dividing a single serial message intended for one of the plurality of communication devices into a plurality of parallel messages, encoding each of the plurality of parallel messages onto at least some of the plurality of sub-channels, and transmitting the encoded plurality of parallel messages to the communication device over the wideband communication channel.
Abstract:
A wireless transmitter configured to encode data to be transmitted to a wireless receiver into frames comprising a frame structure. The frame structure comprises a synchronization packet that can be used by the receiver to synchronize with the wireless transmitter followed by data packets interspersed with preamble packets that can be used to re-synchronize the wireless receiver with the wireless transmitter, the length of the data packets selected to ensure that drift in the wireless receiver will be minimal before re-synchronization due to the preamble packets.
Abstract:
Apparatus and methods of ultra-wideband (UWB) communication are provided. In one embodiment, an ultra-wideband transmitter includes a processor configured to generate data for transmission in the form of a plurality of ultra-wideband pulses. The transmitter includes a FEC encoder that generates a code word based on the data. The FEC includes a plurality of cyclic shift registers configured to receive and process the data, a plurality of fixed connections between each of the plurality of cyclic shift registers and a plurality of XOR gates communicating with the plurality of fixed connections. This Abstract is provided for the sole purpose of complying with the Abstract requirement rules that allow a reader to quickly ascertain the subject matter of the disclosure contained herein. This Abstract is submitted with the explicit understanding that it will not be used to interpret or to limit the scope or the meaning of the claims.
Abstract:
Systems and methods of ultra-wideband communication are provided. In one embodiment, an ultra-wideband communication system divides a stream of data conveying symbols into a plurality of unspread substreams. A common spreading code is generated at the ultra-wideband transmitter, and each of the unspread substreams are spread using the common spreading code to form a plurality of spread substreams. The spread substreams are combined to form a composite signal that is transmitted. This Abstract is provided for the sole purpose of complying with the Abstract requirement rules that allow a reader to quickly ascertain the subject matter of the disclosure contained herein. This Abstract is submitted with the explicit understanding that it will not be used to interpret or to limit the scope or the meaning of the claims.
Abstract:
The present invention provides a system and method of timing estimation for use in a digital, receiver within a communication system. This method exploits the complementary information available from the use of two different nonlinearities to estimate the timing offset following asynchronous sampling of the received signal at a rate of two samples per symbol. The present method operates in a feedforward configuration thereby avoiding issues associated with feedback configurations such as hangup. The present method uses a magnitude square nonlinearity as well as a delay, complex conjugate and multiply nonlinearity to calculate the timing offset. The choice of these nonlinearities is influenced by the need for the estimator to operate in the presence of a phase offset on the received signal. Timing estimators which can tolerate the presence of a slowly varying phase offset over the observation interval on the received signal are especially important in all-digital feedforward receiver design. Separating the two sample per symbol outputs from the nonlinearities into odd and even samples provides four signals which, when suitably manipulated, yield an expression for the timing estimate. This timing offset is then fed to a timing correction unit which calculates the data samples corresponding to the sampling clock phase and removes the redundant samples. The resultant sampled signal is then forwarded to additional synchronization and functional units in the receiver. The system may be utilized in a variety of digital receivers employing CDMA, TDMA, FDMA and/or any combination of the principles of the above or other technologies.
Abstract:
A method of wireless communications is provided. The method includes detecting at least a portion of a preamble of a packet transmitted by a first device by sweeping over a plurality of receive directions; receiving and decoding a header of the packet based on a first receive direction to identify that the first device had transmitted the packet; and completing reception of the packet based on a second receive direction. An apparatus for performing the method is also disclosed.