Claims
- 1. An apparatus for the generation of two-dimensional discrete Fourier transforms of an input signal developed from a data field having a size of N.sub.1 by N.sub.2, N.sub.1 and N.sub.2 being relatively prime with respect to each other, comprising:
- an input scan apparatus for scanning the N.sub.1 by N.sub.2 two-dimensional data field comprising the input signal, which receives and scans in such an order, or sequence, the N.sub.1 by N.sub.2 input data samples in the field so that a subsequently generated one-dimensional Fourier transform of a length N.sub.1 N.sub.2 serial data string is identical to an N.sub.1 by N.sub.2 two-dimensional discrete Fourier transform of the N.sub.1 by N.sub.2 input data samples; and
- a serial-access one-dimensional discrete Fourier transform (DFT) device, connected to the input scan generator, for generating a one-dimensional discrete Fourier transform of the length N.sub.1 N.sub.2 serial data string.
- 2. The apparatus according to claim 1, wherein:
- the input scan apparatus scans selectively according to any one of the sequences shown in Table 1.
- 3. The apparatus according to claim 1, wherein the input scan apparatus comprises:
- an imaging device which receives and stores the data from the two-dimensional data field; and
- an input scan generator which scans the stored data in the imaging device, the stored data being scanned at discrete data points having coordinate values j.sub.1 and j.sub.2, j.sub.1 and j.sub.2 forming a coordinate system.
- 4. The apparatus according to claim 3, wherein
- the input scan generator scans the stored data at discrete data points j.sub.1 and j.sub.2, the system of coordinates j.sub.1 and j.sub.2 comprising an orthogonal coordinate system.
- 5. The apparatus according to claim 3, wherein the input scan apparatus further comprises:
- a pair of digital-to-analog (D/A) converters connected between the input scan generator and the imaging device, to supply analog scanning voltages for scanning the imaging device.
- 6. The apparatus according to claim 5, wherein
- the imaging device is a vidicon.
- 7. The apparatus according to claim 1, wherein the input scan apparatus includes an input scan generator which comprises:
- a first recursive filter; the recursion relationship being j.sub.1 (k+1)=j.sub.1 (k) + j.sub.1 (1), (Mod N.sub.1), k=0, . . . , N.sub.1 N.sub.2, the output of the filter comprising a j.sub.1 -coordinate scan output;
- a second recursive filter, the recursion relationship being j.sub.2 (k+1)=j.sub.2 (k)+j.sub.2 (1), (Mod N.sub.2), the output of this filter comprising a j.sub.2 -coordinate scan output, j.sub.1 and j.sub.2 forming a coordinate system; and
- a double-pole double-throw initialization switch, which switches in a manner so that at one position of the switch, at a first sample time of the data field, the j.sub.1 - and j.sub.2 -coordinate scan outputs are zero, but at the succeeding N-1 sample times the scan outputs are the outputs of the modulo N.sub.1 and modulo N.sub.2 recursive filters, the two outputs comprising the input to the discrete Fourier transform device.
- 8. The apparatus according to claim 7, further comprising:
- a timing source, connected to the input scan generator.
- 9. The apparatus according to claim 8, further comprising:
- means connected to the timing source for delaying the signals from the timing source;
- an output scan generator whose input is connected to the output of the delay means, which keep track of the specific two-dimensional transform point which is currently being produced by the one-dimensional transform device;
- a selection gate, which has one input connected to the output of the DFT device and another input connected to the output of the output scan generator, the gate selecting the specific frequencies, corresponding to specific coordinate values, which are to be transmitted; and
- a read-only memory (ROM), serving as a selection table, whose output is connected to the selection gate, which stores information as to which frequencies are rejected.
- 10. The apparatus according to claim 9, wherein
- the read-only memory stores information as to which higher frequencies of the selected specific frequencies are rejected.
- 11. The apparatus according to claim 9, wherein
- the selection table also stores information as to required quantization for various frequencies of interest.
- 12. The image transmission system according to claim 11 further comprising:
- a first modem, functioning as a modulator, whose input is connected to the output of the selection gate, which modulates the input signal;
- a signal channel, whose input is connected to the output of the first modem, for transmitting the modulated signal;
- a second modem, functioning as a demodulator, whose input is connected to the output of the signal channel, for demodulating the modulated signal;
- an inverse transform device whose input is connected to the output of the second modem; and
- a display device, whose input is connected to the output of the inverse transform device, which displays the reduced redundancy image.
STATEMENT OF GOVERNMENT INTEREST
The invention described herein may be manufactured and used by or for the Government of the United States of America for governmental purposes without the payment of any royalties thereon or therefor.
US Referenced Citations (2)
Number |
Name |
Date |
Kind |
3686490 |
Goldstone |
Aug 1972 |
|
3775602 |
Alexandridis et al. |
Nov 1973 |
|
Non-Patent Literature Citations (1)
Entry |
P. E. Anuta, "Spatial Registration of Multispectral and Multitemporal Digl Imagery Using FFT Techniques," IEEE Trans. on Geoscience Electronics, Vol. GE-8, No. 4 Oct. 1970, pp. 353-368. |