DocumentCode :
1719457
Title :
All-pass based efficient and robust structures for finite precision implementation of digital filters
Author :
Tao Hong ; Si Tang ; Gang Li ; Xiongxiong He ; Liping Chang
Author_Institution :
Zhejiang Provincial Key Lab. for Signal Process., Zhejiang Univ. of Technol., Hangzhou, China
fYear :
2013
Firstpage :
4517
Lastpage :
4522
Abstract :
In this paper, a novel structure is derived for digital filters implemented with finite wordlength (FWL). Based on a realization of 1st order complex all-pass systems, we develop a structure for a real 2nd-order filter with complex conjugate poles, in which the transfer functions between the two states and the input signal are in a power-complementary pair. This property ensures that the state dynamics can be controlled easily such that no overflow occurs. In addition, a 2nd-order filter implemented using such a structure needs 7 multiplications and 7 additions for computing each output samples, which is more efficient than the existing optimal FWL structures. A procedure is given to extend such a structure to higher order filters and the corresponding expression for roundoff noise gain is derived. Simulations show that our proposed structure yields the excellent finite word length performance and outperforms the classical optimal structures in terms of reducing quantization errors.
Keywords :
all-pass filters; digital filters; quantisation (signal); FWL; conjugate poles; digital filters; finite wordlength; first order complex all-pass systems; power-complementary pair; quantization error reduction; roundoff noise gain; second-order filter structure; state dynamics; transfer functions; Complexity theory; Delays; Equations; Noise; Periodic structures; Robustness; Transfer functions; Digital filter structures; all-pass systems; overflow; roundoff noise; structure robustness;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Control Conference (CCC), 2013 32nd Chinese
Conference_Location :
Xi´an
Type :
conf
Filename :
6640216
Link To Document :
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