Claims
- 1. An image sensor array comprising:
a number of arrays of photodetectors and interlaced by two arrays of buffers, wherein the arrays of photodetectors are sequentially exposed to a document moving across the image sensor; and wherein signals generated in each of the arrays of photodetectors are sequentially shifted into the two arrays of buffers; and wherein buffered signals shifted out from the two arrays of buffers are integrated with the signals generated in each of the arrays of photodetectors to produce resultant scanning signals from the document.
- 2. The image sensor of claim 1, wherein there are N photodetectors in each of the arrays of photodetectors, there are at least N buffers in each of the two arrays of buffers, and wherein each of the N photodetectors and two corresponding buffers respectively in the two arrays of buffers are serially connected.
- 3. The image sensor of claim 2, wherein a first charge signal generated in one of the N photodetectors is shifted to a first one of the two corresponding buffers.
- 4. The image sensor of claim 3, wherein a second charge signal generated in the one of the N photodetectors is shifted to the first one of the two corresponding buffers after the first charge signal is shifted from the first one of the two corresponding buffers to a second one of the two corresponding buffers.
- 5. The image sensor of claim 4, wherein a third charge signal generated in the one of the N photodetectors is accumulated over a stored charge signal originally stored in and now shifted out from one of the arrays of buffers.
- 6. The image sensor of claim 5, wherein the first charge signal, the second charge signal and third charge signal are respective intensity signals from three different light spectrums.
- 7. The image sensor of claim 6, wherein the three different light spectrums represent red, greed and blue.
- 8. The image sensor of claim 6, wherein the three different light spectrums are created as a result of three different illuminations.
- 9. The image sensor of claim 6, wherein the three different illuminations are from one or more red LEDs, green LEDs and blue LEDs, powered on independently.
- 10. The image sensor of claim 2, wherein each of the N buffers in each of the two arrays of buffers is a photodetector masked by a non-transparent material so that the photodetector can not be exposed to the document and is used as a temporary storage space.
- 11. The image sensor of claim 10, wherein a distance between a photodetector in one of the arrays of photodetectors and a corresponding buffer in one of the two arrays of buffers is determined by a scanning resolution.
- 12. The image sensor of claim 1, wherein each of the resultant scanning signals is an accumulated signal from respective charges signals generated from the photodetectors respectively in each of the arrays of photodetectors.
- 13. The image sensor of claim 12, wherein the number of arrays of photodetectors determines how many times faster the document moves across the image sensor if the resultant scanning signals are to have a similar signal strength as the resultant scanning signals generated from only one of the arrays of photodetectors.
- 14. An image sensor array comprising:
M linear sensors organized in parallel, each of the M linear sensors including N photodetectors, wherein i-th photodetector in each of the M linear sensors is serially connected, 0<i≦N, and wherein two of every three linear sensors in the M linear sensors are shielded with a non-transparent material so that an array of non-shielded photodetectors is positioned between first two arrays of shielded photodetectors and second two arrays of shielded photodetectors; and wherein a charge signal is generated in each of the non-shielded photodetectors when a document is being scanned by the image sensor; and wherein the charge signal from the i-th non-shielded photodetector is sequentially shifted into the i-th two shielded photodetectors respectively in the second two arrays of shielded photodetectors.
- 15. The image sensor of claim 14, wherein the charge signal from the i-th non-shielded photodetector is accumulated with a buffered signal shifted out from the i-th two shielded photodetectors respectively in the first two arrays of shielded photodetectors.
- 16. The image sensor of claim 14, wherein the charge signal represents an intensity signal from the document illuminated by one of three colored light sources.
- 17. The image sensor of claim 16, wherein the three colored light sources include a red source, a green source and a blue source.
- 18. The image sensor of claim 16, wherein the three colored light sources are one or more red LEDs, green LEDs, and blue LEDs.
- 19. The image sensor of claim 16, wherein the charge signal is accumulated with a buffered signal shifted out from the i-th two shielded photodetectors respectively in the first two arrays of shielded photodetectors, and wherein the buffered signal represents an intensity signal from the document illuminated by the one of three colored light sources.
- 20. The image sensor of claim 14, wherein the charge signal represents an intensity signal from the document illuminated by one of three colored light sources, and wherein a subsequent signal generated in the each of the non-shielded photodetectors represents another intensity signal from the document illuminated by other than the one of three colored lights.
- 21. A method for generating color images, the method comprising:
generating N charge signals from each of M linear sensors organized in parallel, each of the M linear sensors including N photodetectors, wherein i-th photodetector in each of the M linear sensors is serially connected, 0<i≦N, and wherein two of every three linear sensors in the M linear sensors are shielded with a non-transparent material so that an array of non-shielded photodetectors is positioned between first two arrays of shielded photodetectors and second two arrays of shielded photodetectors; accumulating respectively the N charge signals over N previous charge signals shifted out from one of the first two arrays of shielded photodetectors; and shifting the accumulated N charge signals into one of the second two arrays of shielded photodetectors.
- 22. The method of claim 21, wherein the generating of the N charge signals happens successively for each of three colored lights before a document being scanned is advanced.
- 23. The method of claim 22, wherein the three colored lights are turned independently so that there are three corresponding versions of the N charge signals, one for each of the three colored lights.
- 24. The method of claim 23, wherein the three colored lights are red, green and blue.
- 25. The method of claim 22, wherein the N charge signals and the N previous charge signal are for the each of three colored lights.
- 26. The method of claim 21, wherein the accumulating respectively of the N charge signals over the N previous charge signals shifted out from one of the first two arrays of shielded photodetectors have substantially identical magnitude and reflect from a same scanning position of a document.
- 27. The method of claim 26, wherein the accumulated N charge signals are as twice strong as the N charge signals.
- 28. The method of claim 21, wherein the M linear sensors are integrated on a single substrate.
CROSS-REFERENCE TO RELATED APPLICATION
[0001] This is a continuation-in-part of co-pending U.S. application No. 09/789,299, entitled “Motion synchronized two-dimensional linear image sensor array”, filed Feb. 20, 2001, commonly assigned, by Alpha Hou.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
09789299 |
Feb 2001 |
US |
Child |
10028812 |
Dec 2001 |
US |