Nova Patents
EP1237363B1

Solid-state imaging device

Abstract

This record has no abstract on file.

EP1237363B1, drawing sheet 1
Sheet 1 of 65

Term

Term ended

Expired 20 November 2020, 5.8 years ago.

  1. Priority
  2. Filed
  3. Granted
  4. Expired
  5. Today

40 claims: 3 independent, 37 dependent

  1. 1
    A method for driving a solid-state imaging device including - a solid-state imaging element (3) with a plurality of light-receiving and charge-storing means arranged in a two-dimensional plane for storing a charge in response to receiving light; and - transfer means for outputting a charge accumulated on said light-receiving and charge-storing means to an outside; - signal synthesizer means (7) for synthesizing image signals outputted from said light-receiving and charge-storing means; - a first light shutter means for determining a first exposure time, - a second light shutter means (2) for shuttering light incident upon said light-receiving and charge-storing means and for determining a second exposure time, different from the first exposure time; whereby - the first exposure time is a short exposure time and - the second exposure time is a long exposure time and in that - said solid-state imaging element outputs the charge accumulated on said light-receiving and charge-storing means during the said first exposure, after an application of a first read control pulse and through said transfer means in a first reading mode; and - outputs the charge accumulated on said light-receiving and charge-storing means during the said second exposure which is completed with an exposure finishing by said second light shutter means, after an application of a second read control pulse and through said transfer means in a second reading mode; characterized in that - in the first reading mode the charge accumulated on two vertical adjacent pixels of said light-receiving and charge-storing means is mixed together in the transfer means; and - in the second reading mode the charge accumulated on two adjacent pixels of said light-receiving and charge-storing means is not mixed in the transfer means; so that the image signal read from the said solid-state imaging element (3) comprises two image signals which are different from each other in an exposure amount and the number of pixels; and in that - interpolation means (702) convert an image signal having a small number of pixels of said two image signals having a different number of pixels, into an image signal having the same signal type as an image signal having a large number of pixels by an interpolation process; and in that - signal synthesizer means synthesize said image signal having a large number of pixels and said image signal converted into the same signal type as said image signal having a large number of pixels by said interpolation means according to a synthesis control signal, and further characterized in that - said signal synthesizer means synthesizes image signals taken with said first exposure and said second exposure according to a synthesis coefficient k determined for each pixel by - a synthesis coefficient generation means as follows:- k = 0 when the level of the long signal, which is obtained from the second exposure, is below a low threshold Th_min, and - k = 1 when the level of the long signal is above a high threshold Th_max, and - 0 < k < 1 when the level of the long signal is between the said low and high threshold values.
  2. 4
    A method for driving a solid-state imaging device according to one of the claims 1 to 3, characterized in that - for reading the signal for the first field in the first reading the charge accumulated on the photodiodes is moved to the vertical transfer means by the read control pulse while the solid-state imaging element (3) is driven in a field read mode, and the charges accumulated on the photodiodes are mixed on the vertical transfer means and read to the outside.
  3. 5
    A method for driving a solid-state imaging device according to one of the claims 1 to 3, characterized in that - in the second reading mode only odd or only even pixel rows are read out after the application of said read control pulse and the remaining pixel rows are read out after the application of the subsequent read control pulse following the said read control pulse.
  4. 6
    A method for driving a solid-state imaging device according to one of the claims 1 to 5, characterized in that an image read after said application of said first read control pulse has a smaller number of pixels than an image read after said application of said second read control pulse.
  5. 7
    A method for driving a solid-state imaging device according to one of the claims 2 to 6, characterized in that the said mechanical light shutter means (2) is also used for an optical aperture.
  6. 8
    A method for driving a solid-state imaging device according to one of the claims 1 to 7, characterized in that - the said synthesis control signal is at least one of said image signals:- having a small number of pixels. - converted into the same signal type as said image signal having a large number of pixels by said interpolation means, and - having a large number of pixels.
  7. 9
    A method for driving a solid-state imaging device according to any one of the claims 1 to 7, characterized in that - the said solid-state imaging element outputs two image signals which are different from each other in an exposure amount and the number of pixels; and in that - brightness signal extraction means (70401) extract a brightness signal from an image signal having a small number of pixels or an image signal having a large number of pixels of said two image signals having a different number of pixels:and in that - interpolation means (702) convert said image signal having a small number of pixels into an image signal having the same signal type as said image signal having a large number of pixels by an interpolation process: and in that - said signal synthesizer means (13) synthesize said image signal having a large number of pixels and said image signal converted into said same signal type as said image signal having a large number of pixels by said interpolation means according to a synthesis control signal, and in that - said synthesis control signal is at least one of the brightness signals: - extracted from said image signal having a small number of pixels or - extracted from said image signal having a large number of pixels.
  8. 11
    A method for driving a solid-state imaging device according to one of the claims 1 to 7, characterized in that said solid-state imaging element for outputting two image signals which are different from one another in an exposure amount and the number of pixels; includes brightness signal extraction means for extracting a brightness signal from an image signal having a small number of pixels or an image signal having a large number of pixels of said two image signals having a different number of pixels; and that first interpolation means (12) convert said brightness signal extracted from said image signal having a small number of pixels into a brightness signal having the same signal type as a brightness signal obtained from said image signal having a large number of pixels by an interpolation process; and in that brightness signal synthesizer means (13) synthesize said brightness signal converted into the same signal type as said brightness signal obtained from said image signal having a large number of pixels by said first interpolation means and said brightness signal extracted from said image signal having a large number of pixels according to a synthesis control signal, said synthesis control signal being at least one of said brightness signal extracted from said image signal having a small number of pixels, said brightness signal converted into the same signal type as a brightness signal obtained from said image signal having a large number of pixels by the first interpolation means, and said brightness signal obtained from said image signal having a large number of pixels by the first interpolation means; and that second interpolation means (702) convert said image signal having a small number of pixels into an image signal having the same signal type as said image signal having a large number of pixels by an interpolation process:and in that said signal synthesizer (14) means synthesize said image signal converted into the same signal type as said image signal having a large number of pixels and said image signal having a large number of pixels according to said synthesis control signal.
  9. 13
    A method for driving a solid-state imaging device according to claims 11 or 12, characterized in that said brightness signal synthesizer means (13) includes second synthesizer means (704) which weight and add said image signal converted to the same signal type as said image signal having a large number of pixels by said second interpolation means, and said image signal having a large number of pixels, according to at least one of the coefficients k generated by said first coefficient generation means.
  10. 14
    A method for driving a solid-state imaging device according to claims 11 or 12, characterized in that said brightness signal synthesizer means (13) includes second synthesizer means (704) which weight and add said image signal converted to the same signal type as said image signal having a large number of pixels by said second interpolation means, and said image signal having a large number of pixels, according to at least one of the mean value, maximum value, minimum value and intermediate value of a plurality of coefficients k, of the coefficients k generated by said first coefficient generation means.
  11. 16
    A method for driving a solid-state imaging device according to any one of the claims 1 to 7, characterized in that thinning out means (22) convert said image signal having a large number of pixels into the same signal type as said image signal having a small number of pixels by a thinning out process;and in that said signal synthesizer means (23) synthesize said image signal converted into the same signal type as said image signal having a small number of pixels by said thinning out means, and said image signal having a small number of pixels, according to said synthesis control signal.
  12. 21
    A method for driving a solid-state imaging device according to any one of the claims 1 to 7, characterized in that said imaging device comprises - first thinning out means for thinning out pixels of said image signal having a large number of pixels by a thinning out process;- second thinning out means for thinning out pixels of said image signal having a small number of pixels by a thinning out process;and - signal synthesizer means for synthesizing said image signals whose pixels are thinned out by said first thinning out means and said second thinning out means, according to said synthesis control signal.
  13. 26
    A method for driving a solid-state imaging device according to any one of claims 1 to 22, characterized in that said image signal having a small number of pixels is an image signal for one field, while said image signal having a large number of pixels is an image signal for one frame.
  14. 27
    A method for driving a solid-state imaging device according to any one of claims 8 to 25, characterized in that said coefficient generation means, said first coefficient generation means and said second coefficient generation means generate said coefficient k according to a signal level of at least one pixel of a plurality of pixels of said synthesis control signal.
  15. 28
    A method for driving a solid-state imaging device according to any one of claims 8 to 25. characterized in that wherein said coefficient generation means, said first coefficient generation means and said second coefficient generation means generate said coefficient k according to at least one of the mean value, maximum value, minimum value and intermediate value of each signal level of a plurality of pixels of said synthesis control signal.
  16. 29
    A method for driving a solid-state imaging device according to any one of claims 8 to 25, characterized in that said coefficient generation means, said first coefficient generation means and said second coefficient generation means generate said coefficient k corresponding to each pixel of said synthesis control signal.
  17. 30
    A method for driving a solid-state imaging device according to any one of claims 8 to 25, characterized in that said coefficient generation means, said first coefficient generation means and said second coefficient generation means generate said coefficient k corresponding to a block consisting of a plurality of pixels of said synthesis control signal.
  18. 31
    A method for driving a solid-state imaging device according to any one of claims 8 to 25, characterized in that said coefficient generation means, said first coefficient generation means and said second coefficient generation means generate said coefficient k according to at least one of the mean value, maximum value, minimum value and intermediate value of each signal level in the block consisting of a plurality of pixels of the synthesis control signal.
  19. 32
    A method for driving a solid-state imaging device according to any one of claims 8 to 25, characterized in that said coefficient generation means, said first coefficient generation means and said second coefficient generation means generate a certain coefficient k according to a signal level of a pixel existing at a specific position in a block of each signal level in a block consisting of a plurality of pixels of said synthesis control signal.
  20. 33
    A method for driving a solid-state imaging device according to any one of claims 1 to 32, characterized in that of said two image signals which are different form each other in said exposure amount and said number of pixels, said image signal having a small number of pixels is a short-time exposure signal, while said image signal having a large number of pixels is a long-time exposure signal.
  21. 34
    A method for driving a solid-state imaging device according to any one of claims 1 to 32, characterized in that of said two image signals which are different form each other in said exposure amount and said number of pixels, said image signal having a small number of pixels is a long-time exposure signal, while said image signal having a large number of pixels is a short-time exposure signal.
  22. 35
    A method for driving a solid-state imaging device according to any one of claims 1 to 34. characterized in that an exposure amount of an image signal imaged by said solid-state imaging element is controlled by a mechanical light shutter means or an electronic shutter function of said solid-state imaging element.
  23. 36
    A method for driving a solid-state imaging device according to any one of claims 1 to 34, characterized in that said solid-state imaging element includes a color filter of four colors magenta, green, yellow and cyan.
  24. 37
    A method for driving a solid-state imaging device according to any one of claims 1 to 36, characterized in that said solid-state imaging element includes a color filter having an arrangement of a complementary-color checkered type consisting of four colors magenta, green, yellow and cyan.
  25. 38
    A method for driving a solid-state imaging device according to any one of claims 1 to 35, characterized in that said solid-state imaging element includes a color filter of three colors red, green and blue.
  26. 39
    A method for driving a solid-state imaging device according to any one of claims 1 to 35. characterized in that said solid-state imaging element includes a color filter of three-color stripe type consisting of three colors red, green and blue.
  27. 40
    A method for driving a solid-state imaging device according to any one of claims 1 to 39, characterized in that said solid-state imaging element is an inter-line transfer CCD (IT-CCD).
Independent claims27