Abstract:
The inverse Fourier transform parallel pipeline processing technique inputs initial samples (Ck) of a digital stream to an interlaced processing unit. An auxiliary complex sample (Ak) is formed from initial input. Different stages of inverse transformation are carried out using pipeline architecture processing (DF), using two different memories (MMA,MMB), the elementary processing being separated into two parts.
Abstract:
The inverse Fourier transform parallel pipeline processing technique inputs initial samples (Ck) of a digital stream to an interlaced processing unit. An auxiliary complex sample (Ak) is formed from initial input. Different stages of inverse transformation are carried out using pipeline architecture processing (DF), using two different memories (MMA,MMB), the elementary processing being separated into two parts.
Abstract:
A sequential development of exit N samples (Ck) and their sequential delivery in a natural order (k) is obtained from a second addressing sequence containing natural and reversed orders. The phase of subsequent processing of the symbol auxiliary sequence (UK) temporally overlaps with respective phases of corresponding processing of the previous (UK-i) and the next symbol (UK+i). The addressing of the two memorials is successively and performed alternately according to the first and the second addresses sequence. An Independent claim is included for: (a) a device for transforming two groups of samples
Abstract:
PROBLEM TO BE SOLVED: To optimize the latency of a memory by executing inverse Fourier transformation in a pipeline structure using a random access memory(RAM). SOLUTION: This method is composed of interleave type processing provided with a preprocessing phase for preparing an auxiliary symbol composed of an auxiliary complex sample Ak concerning each initial symbol and a processing phase including the inverse Fourier transformation of a size N concerning each auxiliary symbol, and the transmission of 2N pieces of real number output data xp. The various stages of a graph are executed inside the pipeline structure DF. When the initial symbol is received, two different RAMs (MMA and MMB) are simultaneously used, the auxiliary symbol corresponding to this initial symbol is stored in the first memory MMA and on the basis of contents in the second memory MMB, basic processing corresponding to the first stage of the graph is executed. Each time the initial symbol is newly received, two memories are switched.
Abstract:
PROBLEM TO BE SOLVED: To efficiently convert real number data into a complex symbol, when receiving a carrier to be transmitted via a telephone line and subjected to phase modulation and amplitude modification. SOLUTION: A group stream to be formed from 2N pieces of the real number input data is converted into a complex number output symbol stream to be formed from N complex output samples by an interleave type processing. The interleave type processing is constituted of a pre-processing and a post- processing. The post-processing is timewisely nested regarding two continuos symbols, two memories of the same size which can be individually addressed are used and address specification of the two memories is executed continuously and alternately in the natural order and the reverse order, while being synchronized with a symbol clock signal.
Abstract:
A sequential development of exit N samples (Ck) and their sequential delivery in a natural order (k) is obtained from a second addressing sequence containing natural and reversed orders. The phase of subsequent processing of the symbol auxiliary sequence (UK) temporally overlaps with respective phases of corresponding processing of the previous (UK-i) and the next symbol (UK+i). The addressing of the two memorials is successively and performed alternately according to the first and the second addresses sequence. An Independent claim is included for: (a) a device for transforming two groups of samples
Abstract:
The inverse Fourier transform parallel pipeline processing technique inputs initial samples (Ck) of a digital stream to an interlaced processing unit. An auxiliary complex sample (Ak) is formed from initial input. Different stages of inverse transformation are carried out using pipeline architecture processing (DF), using two different memories (MMA,MMB), the elementary processing being separated into two parts.
Abstract:
A sequential development of exit N samples (Ck) and their sequential delivery in a natural order (k) is obtained from a second addressing sequence containing natural and reversed orders. The phase of subsequent processing of the symbol auxiliary sequence (UK) temporally overlaps with respective phases of corresponding processing of the previous (UK-i) and the next symbol (UK+i). The addressing of the two memorials is successively and performed alternately according to the first and the second addresses sequence. An Independent claim is included for: (a) a device for transforming two groups of samples
Abstract:
The inverse Fourier transform parallel pipeline processing technique inputs initial samples (Ck) of a digital stream to an interlaced processing unit. An auxiliary complex sample (Ak) is formed from initial input. Different stages of inverse transformation are carried out using pipeline architecture processing (DF), using two different memories (MMA,MMB), the elementary processing being separated into two parts.
Abstract:
Method of communication, on a radio channel, between at least two nodes (2) that are adapted for sending over said channel alternately, comprising the following steps, with a view to transmitting a data frame: - formulation, by one of the two nodes, termed the sender, of a signal (S) comprising a preamble including a series of frames followed by the data frame, at least one first frame of the preamble comprising a copy of the data frame and indicating a number of frames of the preamble separating this first frame from the data frame; - sending, by the sender node, of the signal thus formulated on the radio channel.