Title :
An Efficient Implementation of a Phase Unwrapping Kernel on Reconfigurable Hardware
Author :
Braganza, Sherman ; Leeser, Miriam
Author_Institution :
Northeastern Univ., Boston, MA, USA
Abstract :
The optical quadrature method of microscopy (OQM) was developed at Northeastern University for the purpose of non-invasively capturing phase data to image the sample being studied. This phase data need to be unwrapped before it can be of use. Phase unwrapping is the process by which an integer multiple of 2¿ is added to a measured, wrapped phase value in order to generate a continuous function. The algorithm used is the minimum LP norm method which uses a two dimensional discrete cosine transform (2-D DCT) to solve the discrete Poisson equation. This calculation forms the most computationally expensive part of the minimum LP norm method. This paper presents an implementation on reconfigurable hardware that performs the 2-D DCT over the entire image, solves the Poisson equation and then performs the two dimensional inverse discrete cosine transform (2-D IDCT) using a novel FPGA implementation of the DCT with a semi-floating point data representation.
Keywords :
Poisson equation; data structures; discrete cosine transforms; field programmable gate arrays; microscopy; FPGA; discrete Poisson equation; microscopy; optical quadrature method; phase unwrapping kernel; reconfigurable hardware; semi-floating point data representation; two dimensional inverse discrete cosine transform; Discrete cosine transforms; Embryo; Field programmable gate arrays; Glass; Hardware; Kernel; Optical microscopy; Poisson equations; Random access memory; Timing; 2D DCT FPGA Poisson phase unwrapping minimum LP norm OQM;
Conference_Titel :
Field-Programmable Custom Computing Machines, 2008. FCCM '08. 16th International Symposium on
Conference_Location :
Palo Alto, CA
Print_ISBN :
978-0-7695-3307-0
DOI :
10.1109/FCCM.2008.56