Title :
Differentially coherent detection technique for direct-sequence code acquisition in a Rayleigh fading mobile channel
Author_Institution :
Dept. of Electr. Eng., Nat. Central Univ., Chung-Li, Taiwan
Abstract :
A novel differentially coherent (DC) detection scheme for rapid code acquisition is proposed for a direct sequence (DS) spread-spectrum system being used to communicate over a fast Rayleigh fading mobile radio channel. The scheme processes the received signal at baseband using a complex differential detector with one-chip time delay and then performs a coherent partial correlation of the detector output with the product of a local DS code and its one-chip delayed phase to form a test sample. While still preserving the pseudo-noise attribute at its output, the differential detector is able to effectively suppress slowly fluctuating phase components due to fading and carrier frequency offset, thereby enhancing the in-sync correlation at the following correlator. The performance of this detection scheme is analysed based on a central-limit-theorem argument, and verified by simulation. Both serial and parallel acquisition systems employing the proposed DC detector are compared with the conventional parallel I-Q system by mean acquisition time performance. It is shown that the serial DC acquisition system significantly outperforms the parallel I-Q system in very fast Rayleigh fading environments.<>
Keywords :
Rayleigh channels; correlation methods; delays; demodulation; fading; land mobile radio; pseudonoise codes; radiowave propagation; signal detection; spread spectrum communication; Rayleigh fading mobile channel; baseband; carrier frequency offset; central limit theorem; coherent partial correlation; correlator; differential detector; differentially coherent detection; direct-sequence code acquisition; fast Rayleigh fading; in-sync correlation; mean acquisition time performance; one-chip delayed phase; one-chip time delay; parallel I-Q system; parallel acquisition systems; pseudo-noise; received signal; serial acquisition systems; simulation; test sample; Baseband; Delay effects; Detectors; Land mobile radio; Performance evaluation; Phase detection; Rayleigh channels; Signal processing; Spread spectrum communication; Testing;
Journal_Title :
Communications, IEEE Transactions on