Three-dimensional optical Fredkin gate arrays applied to residue arithmetic.
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[1] Algirdas Avizienis,et al. Signed-Digit Numbe Representations for Fast Parallel Arithmetic , 1961, IRE Trans. Electron. Comput..
[2] V. Benes. Optimal rearrangeable multistage connecting networks , 1964 .
[3] J W Goodman,et al. Optical computation using residue arithmetic. , 1979, Applied optics.
[4] C C Guest,et al. Truth-table look-up optical processing utilizing binary and residue arithmetic. , 1980, Applied optics.
[5] F.J. Leonberger,et al. Optical interconnections for VLSI systems , 1984, Proceedings of the IEEE.
[6] J. Goodman. Optical interconnection for VLSI , 1984 .
[7] F. J. Taylor,et al. Residue Arithmetic A Tutorial with Examples , 1984, Computer.
[8] J W Goodman,et al. Optical imaging applied to microelectronic chip-to-chip interconnections. , 1985, Applied optics.
[9] Joseph W. Goodman,et al. Fan-in and Fan-out with Optical Interconnections , 1985 .
[10] A. Lohmann. What classical optics can do for the digital optical computer. , 1986, Applied optics.
[11] W. Miceli,et al. Photonic computing using the modified signed-digit number representation , 1986 .
[12] J. Shamir. Three-dimensional optical interconnection gate array. , 1987, Applied optics.
[13] J Shamir,et al. Residue arithmetic processing utilizing optical Fredkin gate arrays. , 1987, Applied optics.
[14] J Shamir,et al. High-efficiency rapidly programmable optical interconnections. , 1987, Applied optics.
[15] K. Johnson,et al. Optical Computing And Image Processing With Ferroelectric Liquid Crystals , 1987 .
[16] K. Johnson,et al. Optical interconnection network using polarization-based ferroelectric liquid crystal gates. , 1988, Applied optics.
[17] J Shamir,et al. Massive holographic interconnection networks and their limitations. , 1989, Applied optics.