1460740362-d0d2a418-1430-46e7-ab54-8267db2a07e7

What is claimed is:

1. A radiation image read-out method, comprising the steps of:
i) linearly irradiating stimulating rays, which have been produced by a line light source, onto an area of a front surface of a stimulable phosphor sheet, on which a radiation image has been stored, the stimulating rays causing the stimulable phosphor sheet to emit light in proportion to an amount of energy stored thereon during its exposure to radiation,
ii) receiving light, which is emitted from the linear area of the front surface of the stimulable phosphor sheet exposed to the linear stimulating rays or from a linear area of a back surface of the stimulable phosphor sheet corresponding to said linear area of the front surface of the stimulable phosphor sheet, with a line sensor comprising a plurality of photoelectric conversion devices arrayed along each of a length direction of said linear area of the stimulable phosphor sheet and a direction normal to said length direction, the received light being subjected to photoelectric conversion performed by said line sensor,
iii) moving the stimulable phosphor sheet with respect to said line light source and said line sensor and in a direction different from said length direction of said linear area of the stimulable phosphor sheet,
iv) successively reading outputs of said line sensor in accordance with said movement, and
v) performing operation processing on the outputs of said photoelectric conversion devices, which outputs have been obtained at respective positions of movement and correspond to an identical site on the stimulable phosphor sheet.
2. A method as defined in claim 1 wherein said line sensor comprises a plurality of sensor chips arrayed in a straight line along said length direction of said linear area of the stimulable phosphor sheet.
3. A method as defined in claim 1 wherein said line sensor comprises a plurality of sensor chips arrayed in a zigzag pattern along said length direction of said linear area of the stimulable phosphor sheet.
4. A method as defined in claim 2 or 3 wherein each of said sensor chips comprises a plurality of photoelectric conversion devices arrayed in two-dimensional directions.
5. A method as defined in claim 1, 2, or 3 wherein said line light source is a broad area laser, which linearly radiates out the stimulating rays.
6. A method as defined in claim 1, 2, or 3 wherein the linear stimulating rays are guided with stimulating ray guiding means to the area of the stimulable phosphor sheet,
the light, which is emitted by the stimulable phosphor sheet, is guided with emitted light guiding means to said line sensor, and
at least part of an optical path of the stimulating rays from said line light source to the stimulable phosphor sheet and at least part of an optical path of the emitted light from the stimulable phosphor sheet to said line sensor overlap each other.
7. A method as defined in claim 6 wherein at least part of optical elements, which constitute said stimulating ray guiding means, and at least part of optical elements, which constitute said emitted light guiding means, are utilized in common with each other.
8. A method as defined in claim 1, 2, or 3 wherein a light emission region of the stimulable phosphor sheet is partitioned by a stimulating ray reflecting partition member, which extends in a thickness direction of the stimulable phosphor sheet, into a plurality of fine cells.
9. A method as defined in claim 1, 2, or 3 wherein the stimulable phosphor sheet is capable of emitting light from the front and back surfaces,
two line sensors are utilized, each of which is located on one of the front and back surface sides of the stimulable phosphor sheet, said two line sensors detecting two image signals, each of which is made up of a series of image signal components representing pixels in the radiation image, from the front and back surfaces of the stimulable phosphor sheet, and
operation processing-is performed on image signal components of said two image signals, which image signal components represent corresponding pixels on the front and back surfaces of the stimulable phosphor sheet.
10. A method as defined in claim 9 wherein two line light sources are utilized, each of which is located on one of the front and back surface sides of the stimulable phosphor sheet.
11. A method as defined in claim 1, 2, or 3 wherein the stimulable phosphor sheet is capable of emitting light from the front and back surfaces,
after detection of the emitted light from one of the front and back surfaces of the stimulable phosphor sheet has been finished, said line sensor is shifted by sensor shifting means to the opposite surface side of the stimulable phosphor sheet, said line sensor thereby detecting two image signals, each of which is made up of a series of image signal components representing pixels in the radiation image, from the front and back surfaces of the stimulable phosphor sheet, and
operation processing is performed on image signal components of said two image signals, which image signal components represent corresponding pixels on the front and back surfaces of the stimulable phosphor sheet.
12. A method as defined in claim 11 wherein said sensor shifting means shifts both said line sensor and said line light source to the opposite surface side of the stimulable phosphor sheet.
13. A method as defined in claim 1, 2, or 3 wherein the stimulable phosphor sheet is capable of emitting light from the front and back surfaces,
after detection of the emitted light from one of the front and back surfaces of the stimulable phosphor sheet has been finished, the front and back surfaces of the stimulable phosphor sheet are reversed by sheet reversing means, said line sensor thereby detecting two image signals, each of which is made up of a series of image signal components representing pixels in the radiation image, from the front and back surfaces of the stimulable phosphor sheet, and
operation processing is performed on image signal components of said two image signals, which image signal components represent corresponding pixels on the front and back surfaces of the stimulable phosphor sheet.
14. A method as defined in claim 9 wherein a light emission region of the stimulable phosphor sheet is partitioned by a stimulating ray reflecting partition member, which extends in a thickness direction of the stimulable phosphor sheet, into a plurality of fine cells.
15. A method as defined in claim 11 wherein a light emission region of the stimulable phosphor sheet is partitioned by a stimulating ray-reflecting partition member, which extends in a thickness direction of the stimulable phosphor sheet, into a plurality of fine cells.
16. A method as defined in claim 13 wherein a light emission region of the stimulable phosphor sheet is partitioned by a stimulating ray reflecting partition member, which extends in a thickness direction of the stimulable phosphor sheet, into a plurality of fine cells.
17. A method as defined in claim 9 wherein, in cases where said line light source and said line sensor are located on the same surface side of the stimulable phosphor sheet, at least part of an optical path of the stimulating rays from said line light source to the stimulable phosphor sheet and at least part of an optical path of the emitted light from the stimulable phosphor sheet to said line sensor overlap each other.
18. A method as defined in claim 11 wherein, in cases where said line light source and said line sensor are located on the same surface side of the stimulable phosphor sheet, at least part of an optical path of the stimulating rays from said line light source to the stimulable phosphor sheet and at least part of an optical path of the emitted light from the stimulable phosphor sheet to said line sensor overlap each other.
19. A method as defined in claim 13 wherein, in cases where said line light source and said line sensor are located on the same surface side of the stimulable phosphor sheet, at least part of an optical path of the stimulating rays from said line light source to the stimulable phosphor sheet and at least part of an optical path of the emitted light from the stimulable phosphor sheet to said line sensor overlap each other.
20. A method as defined in claim 1, 2, or 3 wherein the stimulable phosphor sheet is a stimulable phosphor sheet for energy subtraction processing, which stores two radiation images of a single object formed with radiation having different energy distributions, the stimulable phosphor sheet being capable of emitting light, which carries information of one of the two radiation images, from the front surface, and emitting light, which carries information of the other radiation image, from the back surface,
two line sensors are utilized, each of which is located on one of the front and back surface sides of the stimulable phosphor sheet, said two line sensors detecting two image signals, each of which is made up of a series of image signal components representing pixels in the radiation image, from the front and back surfaces of the stimulable phosphor sheet, and
a subtraction process is performed on image signal components of said two image signals, which image signal components represent corresponding pixels on the front and back surfaces of the stimulable phosphor sheet.
21. A method as defined in claim 20 wherein two line light sources are utilized, each of which is located on one of the front and back surface sides of the stimulable phosphor sheet.
22. A method as defined in claim 1, 2, or 3 wherein the stimulable phosphor sheet is a stimulable phosphor sheet for energy subtraction processing, which stores two radiation images of a single object formed with radiation having different energy distributions, the stimulable phosphor sheet being capable of emitting light, which carries information of one of the two radiation images, from the front surface, and emitting light, which carries information of the other radiation image, from the back surface,
after detection of the emitted light from one of the front and back surfaces of the stimulable phosphor sheet has been finished, said line sensor is shifted by sensor shifting means to the opposite surface side of the stimulable phosphor sheet, said line sensor thereby detecting two image signals, each of which is made up of a series of image signal components representing pixels in the radiation image, from the front and back surfaces of the stimulable phosphor sheet, and
a subtraction process is performed on image signal components of said two image signals, which image signal components represent corresponding pixels on the front and back surfaces of the stimulable phosphor sheet.
23. A method as defined in claim 22 wherein said sensor shifting means shifts both said line sensor and said line light source to the opposite surface side of the stimulable phosphor sheet.
24. A method as defined in claim 1, 2, or 3 wherein the stimulable phosphor sheet is a stimulable phosphor sheet for energy subtraction processing, which stores two radiation images of a single object formed with radiation having different energy distributions, the stimulable phosphor sheet being capable of emitting light, which carries information of one of the two radiation images, from the front surface, and emitting light, which carries information of the other radiation image, from the back surface,
after detection of the emitted light from one of the front and back surfaces of the stimulable phosphor sheet has been finished, the front and back surfaces of the stimulable phosphor sheet are reversed by sheet reversing means, said line sensor thereby detecting two image signals, each of which is made up of a series of image signal components representing pixels in the radiation image, from the front and back surfaces of the stimulable phosphor sheet, and
a subtraction process is performed on image signal components of said two image signals, which image signal components represent corresponding pixels on the front and back surfaces of the stimulable phosphor sheet.
25. A method as defined in claim 20 wherein a light emission region of the stimulable phosphor sheet is partitioned by a stimulating ray reflecting partition member, which extends in a thickness direction of the stimulable phosphor sheet, into a plurality of fine cells.
26. A method as defined in claim 22 wherein a light emission region of the stimulable phosphor sheet is partitioned by a stimulating ray reflecting partition member, which extends in a thickness direction of the stimulable phosphor sheet, into a plurality of fine cells.
27. A method as defined in claim 24 wherein a light emission region of the stimulable phosphor sheet is partitioned by a stimulating ray reflecting partition member, which extends in a thickness direction of the stimulable phosphor sheet, into a plurality of fine cells.
28. A method as defined in claim 20 wherein, in cases where said line light source and said line sensor are located on the same surface side of the stimulable phosphor sheet, at least part of an optical path of the stimulating rays from said line light source to the stimulable phosphor sheet and at least part of an optical path of the emitted light from the stimulable phosphor sheet to said line sensor overlap each other.
29. A method as defined in claim 22 wherein, in cases where said line light source and said line sensor are located on the same surface side of the stimulable phosphor sheet, at least part of an optical path of the stimulating rays from said line light source to the stimulable phosphor sheet and at least part of an optical path of the emitted light from the stimulable phosphor sheet to said line sensor overlap each other.
30. A method as defined in claim 24 wherein, in cases where said line light source and said line sensor are located on the same surface side of the stimulable phosphor sheet, at least part of an optical path of the stimulating rays from said line light source to the stimulable phosphor sheet and at least part of an optical path of the emitted light from the stimulable phosphor sheet to said line sensor overlap each other.
31. A method as defined in claim 1 wherein said area sensor is a back illuminated type of CCD image sensor.
32. A method as defined in claim 31 wherein said back illuminated type of CCD image sensor comprises a plurality of back illuminated type of CCD image sensor chips arrayed in a straight line along said length direction of said linear area of the stimulable phosphor sheet.
33. A method as defined in claim 31 wherein said back illuminated type of CCD image sensor comprises a plurality of back illuminated type of CCD image sensor chips arrayed in a zigzag pattern along said length direction of said linear area of the stimulable phosphor sheet.
34. A method as defined in claim 32 or 33 wherein each of said back illuminated type of CCD image sensor chips comprises a plurality of photoelectric conversion devices arrayed in two-dimensional directions.
35. A method as defined in claim 31, 32, or 33 wherein said back illuminated type of CCD image sensor is cooled with cooling means.
36. A method as defined in claim 1, 2, or 3 wherein said line light source is constituted of an organic EL device.
37. A method as defined in claim 1, 2, or 3 wherein the light, which is emitted by the stimulable phosphor sheet, is guided with light guiding optical system to the line sensor,
the stimulable phosphor sheet is moved with respect to said line light source, said light guiding optical system, and said line sensor and in the direction different from said length direction of said linear area of the stimulable phosphor sheet, and
said light guiding optical system has been subjected to coloring for transmitting only the emitted light and filtering out the stimulating rays.
38. A radiation image read-out method, comprising the steps of:
i) linearly irradiating stimulating rays, which have been produced by a line light source, onto an area of a front surface of a stimulable phosphor sheet, on which a radiation image has been stored, the stimulating rays causing the stimulable phosphor sheet to emit light in proportion to an amount of energy stored thereon during its exposure to radiation,
ii) receiving light, which is emitted from the linear area of the front surface of the stimulable phosphor sheet exposed to the linear stimulating rays or from a linear area of a back surface of the stimulable phosphor sheet corresponding to said linear area of the front surface of the stimulable phosphor sheet, with a line sensor comprising a plurality of photoelectric conversion devices arrayed along a length direction of said linear area of the stimulable phosphor sheet, the received light being subjected to photoelectric conversion performed by said line sensor,
iii) moving the stimulable phosphor sheet with respect to said line light source and said line sensor and in a direction different from a length direction of said linear area of the stimulable phosphor sheet, and
iv) successively reading outputs of said photoelectric conversion devices of said line sensor in accordance with said movement,
wherein said line light source is a broad area laser, which linearly radiates out the stimulating rays.
39. A radiation image read-out method, comprising the steps of:
i) linearly radiating stimulating rays, which have been produced by a line light source,
ii) guiding the linear stimulating rays to an area of a stimulable phosphor sheet, on which a radiation image has been stored, with stimulating ray guiding means, the stimulating rays causing the stimulable phosphor sheet to emit light in proportion to an amount of energy stored thereon during its exposure to radiation,
iii) guiding light, which is emitted from the linear area of the stimulable phosphor sheet exposed to the linear stimulating rays, with emitted light guiding means to a line sensor comprising a plurality of photoelectric conversion devices arrayed along a length direction of said linear area of the stimulable phosphor sheet,
iv) receiving the emitted light with said line sensor, the received light being subjected to photoelectric conversion performed by said line sensor,
v) moving the stimulable phosphor sheet with respect to said line light source and said line sensor and in a direction different from the length direction of said linear area of the stimulable phosphor sheet, and
vi) successively reading outputs of said line sensor in accordance with said movement,
wherein at least part of an optical path of the stimulating rays from said line light source to the stimulable phosphor sheet and at least part of an optical path of the emitted light from the stimulable phosphor sheet to said line sensor overlap each other.
40. A method as defined in claim 39 wherein at least part of optical elements, which constitute said stimulating ray guiding means, and at least part of optical elements, which constitute said emitted light guiding means, are utilized in common with each other.
41. A radiation image read-out method,comprising the steps of:
i) linearly irradiating stimulating rays, which have been produced by a line light source, onto an area of a front surface of a stimulable phosphor sheet, on which a radiation image has been stored, the stimulating rays causing the stimulable phosphor sheet to emit light in proportion to an amount of energy stored thereon during its exposure to radiation,
ii) receiving light, which is emitted from the linear area of the front surface of the stimulable phosphor sheet exposed to the linear stimulating rays or from a linear area of a back surface of the stimulable phosphor sheet corresponding to said linear area of the front surface of the stimulable phosphor sheet, with a line sensor comprising a plurality of photoelectric conversion devices arrayed along a length direction of said linear area of the stimulable phosphor sheet, the received light being subjected to photoelectric conversion performed by said line sensor,
iii) moving the stimulable phosphor sheet with respect to said line light source and said line sensor and in a direction different from said length direction of said linear area of the stimulable phosphor sheet, and
iv) successively reading outputs of said line sensor in accordance with said movement,
wherein a light emission region of the stimulable phosphor sheet is partitioned by a stimulating ray reflecting partition member, which extends in a thickness direction of the stimulable phosphor sheet, into a plurality of fine cells.
42. A radiation image read-out method, comprising the steps of:
i) linearly irradiating stimulating rays, which have been produced by a line light source, onto an area of a stimulable phosphor sheet, on which a radiation image has been stored, the stimulating rays causing the stimulable phosphor sheet to emit light in proportion to an amount of energy stored thereon during its exposure to radiation,
ii) receiving light, which is emitted from the linear area of the stimulable phosphor sheet exposed to the linear stimulating rays, with a line sensor comprising a plurality of photoelectric conversion devices arrayed along a length direction of said linear area of the stimulable phosphor sheet, the received light being subjected to photoelectric conversion performed by said line sensor,
iii) moving the stimulable phosphor sheet with respect to said line light source and said line sensor, and
iv) reading outputs of said photoelectric conversion devices constituting said line sensor, which outputs are obtained at respective positions of movement,
wherein the stimulable phosphor sheet is capable of emitting light from front and back surfaces,
two line sensors are utilized, each of which is located on one of the front and back surface sides of the stimulable phosphor sheet, said two line sensors detecting two image signals, each of which is made up of a series of image signal components representing pixels in the radiation image, from the front and back surfaces of the stimulable phosphor sheet, and
operation processing is performed on image signal components of said two image signals, which image signal components represent corresponding pixels on the front and back surfaces of the stimulable phosphor sheet.
43. A method as defined in claim 42 wherein two line light sources are utilized, each of which is located on one of the front and back surface sides of the stimulable phosphor sheet.
44. A radiation image read-out method, comprising the steps of:
i) linearly irradiating stimulating rays, which have been produced by a line light source, onto an area of a stimulable phosphor sheet, on which a radiation image has been stored, the stimulating rays causing the stimulable phosphor sheet to emit light in proportion to an amount of energy stored thereon during its exposure to radiation,
ii) receiving light, which is emitted from the linear area of the stimulable phosphor sheet exposed to the linear stimulating rays, with a line sensor comprising a plurality of photoelectric conversion devices arrayed along a length direction of said linear area of the stimulable phosphor sheet, the received light being subjected to photoelectric conversion performed by said line sensor,
iii) moving the stimulable phosphor sheet with respect to said line light source and said line sensor, and
iv) reading outputs of said photoelectric conversion devices constituting said line sensor, which outputs are obtained at respective positions of movement,
wherein the stimulable phosphor sheet is capable of emitting light from front and back surfaces,
after detection of the emitted light from one of the front and back surfaces of the stimulable phosphor sheet has been finished, said line sensor is shifted by sensor shifting means to the opposite surface side of the stimulable phosphor sheet, said line sensor thereby detecting two image signals, each of which is made up of a series of image signal components representing pixels in the radiation image, from the front and back surfaces of the stimulable phosphor sheet, and
operation processing is performed on image signal components of said two image signals, which image signal components represent corresponding pixels on the front and back surfaces of the stimulable phosphor sheet.
45. A method as defined in claim 44 wherein said sensor shifting means shifts both said line sensor and said line light source to the opposite surface side of the stimulable phosphor sheet.
46. A radiation image read-out method, comprising the steps of:
i) linearly irradiating stimulating rays, which have been produced by a line light source, onto an area of a stimulable phosphor sheet, on which a radiation image has been stored, the stimulating rays causing the stimulable phosphor sheet to emit light in proportion to an amount of energy stored thereon during its exposure to radiation,
ii) receiving light, which is emitted from the linear area of the stimulable phosphor sheet exposed to the linear stimulating rays, with a line sensor comprising a plurality of photoelectric conversion devices arrayed along a length direction of said linear area of the stimulable phosphor sheet, the received light being subjected to photoelectric conversion performed by said line sensor,
iii) moving the stimulable phosphor sheet with respect to said line light source and said line sensor, and
iv) reading outputs of said photoelectric conversion devices constituting said line sensor, which outputs are obtained at respective positions of movement,
wherein the stimulable phosphor sheet is capable of emitting light from front and back surfaces,
after detection of the emitted light from one of the front and back surfaces of the stimulable phosphor sheet has been finished, the front and back surfaces of the stimulable phosphor sheet are reversed by sheet reversing means, said line sensor thereby detecting two image signals, each of which is made up of a series of image signal components representing pixels in the radiation image, from the front and back surfaces of the stimulable phosphor sheet, and
operation processing is performed on image signal components of said two image signals, which image signal components represent corresponding pixels on the front and back surfaces of the stimulable phosphor sheet.
47. A method as defined in any of claims 42 to 46 wherein a light emission region of the stimulable phosphor sheet is partitioned by a stimulating ray reflecting partition member, which extends in a thickness direction of the stimulable phosphor sheet, into a plurality of fine cells.
48. A method as defined in any of claims 42 to 46 wherein, in cases where said line light source and said line sensor are located on the same surface side of the stimulable phosphor sheet, at least part of an optical path of the stimulating rays from said line light source to the stimulable phosphor sheet and at least part of an optical path of the emitted light from the stimulable phosphor sheet to said line sensor overlap each other.
49. A radiation image read-out method, comprising the steps of:
i) linearly irradiating stimulating rays, which have been produced by a line light source, onto an area of a stimulable phosphor sheet, on which a radiation image has been stored, the stimulating rays causing the stimulable phosphor sheet to emit light in proportion to an amount of energy stored thereon during its exposure to radiation,
ii) receiving light, which is emitted from the linear area of the stimulable phosphor sheet exposed to the linear stimulating rays, with a line sensor comprising a plurality of photoelectric conversion devices arrayed along a length direction of said linear area of the stimulable phosphor sheet, the received light being subjected to photoelectric conversion performed by said line sensor,
iii) moving the stimulable phosphor sheet with respect to said line light source and said line sensor, and
iv) reading outputs of said photoelectric conversion devices constituting said line sensor, which outputs are obtained at respective positions of movement,
wherein the stimulable phosphor sheet is a stimulable phosphor sheet for energy subtraction processing, which stores two radiation images of a single object formed with radiation having different energy distributions, the stimulable phosphor sheet being capable of emitting light, which carries information of one of the two radiation images, from a front surface, and emitting light, which carries information of the other radiation image, from a back surface,
two line sensors are utilized, each of which is located on one of the front and back surface sides of the stimulable phosphor sheet, said two line sensors detecting two image signals, each of which is made up of a series of image signal components representing pixels in the radiation image, from the front and back surfaces of the stimulable phosphor sheet, and
a subtraction process is performed on image signal components of said two image signals, which image signal components represent corresponding pixels on the front and back surfaces of the stimulable phosphor sheet.
50. A method as defined in claim 49 wherein two line light sources are utilized, each of which is located on one of the front and back surface sides of the stimulable phosphor sheet.
51. A radiation image read-out method, comprising the steps of:
i) linearly irradiating stimulating rays, which have been produced by a line light source, onto an area of a stimulable phosphor sheet, on which a radiation image has been stored, the stimulating rays causing the stimulable phosphor sheet to emit light in proportion to an amount of energy stored thereon during its exposure to radiation,
ii) receiving light, which is emitted from the linear area of the stimulable phosphor sheet exposed to the linear stimulating rays, with a line sensor comprising a plurality of photoelectric conversion devices arrayed along a length direction of said linear area of the stimulable phosphor sheet, the received light being subjected to photoelectric conversion performed by said line sensor,
iii) moving the stimulable phosphor sheet with respect to said line light source and said line sensor, and
iv) reading outputs of said photoelectric conversion devices constituting said line sensor, which outputs are obtained at respective positions of movement,
wherein the stimulable phosphor sheet is a stimulable phosphor sheet for energy subtraction processing, which stores two radiation images of a single object formed with radiation having different energy distributions, the stimulable phosphor sheet being capable of emitting light, which carries information of one of the two radiation images, from a front surface, and emitting light, which carries information of the other radiation image, from a back surface,
after detection of the emitted light from one of the front and back surfaces of the stimulable phosphor sheet has been finished, said line sensor is shifted by sensor shifting means to the opposite surface side of the stimulable phosphor sheet, said line sensor thereby detecting two image signals, each of which is made up of a series of image signal components representing pixels in the radiation image, from the front and back surfaces of the stimulable phosphor sheet, and
a subtraction process is performed on image signal components of said two image signals, which image signal components represent corresponding pixels on the front and back surfaces of the stimulable phosphor sheet.
52. A method as defined in claim 51 wherein said sensor shifting means shifts both said line sensor and said line light source to the opposite surface side of the stimulable phosphor sheet.
53. A radiation image read-out method, comprising the steps of:
i) linearly irradiating stimulating rays, which have been produced by a line light source, onto an area of a stimulable phosphor sheet, on which a radiation image has been stored, the stimulating rays causing the stimulable phosphor sheet to emit light in proportion to an amount of energy stored thereon during its exposure to radiation,
ii) receiving light, which is emitted from the linear area of the stimulable phosphor sheet exposed to the linear stimulating rays, with a line sensor comprising a plurality of photoelectric conversion devices arrayed along a length direction of said linear area of the stimulable phosphor sheet, the received light being subjected to photoelectric conversion performed by said line sensor,
iii) moving the stimulable phosphor sheet with respect to said line light source and said line sensor, and
iv) reading outputs of said photoelectric conversion devices constituting said line sensor, which outputs are obtained at respective positions of movement,
wherein the stimulable phosphor sheet is a stimulable phosphor sheet for energy subtraction processing, which stores two radiation images of a single object formed with radiation having different energy distributions, the stimulable phosphor sheet being capable of emitting light, which carries information of one of the two radiation images, from a front surface, and emitting light, which carries information of the other radiation image, from a back surface,
after detection of the emitted light from one of the front and back surfaces of the stimulable phosphor sheet has been finished, the front and back surfaces of the stimulable phosphor sheet are reversed by sheet reversing means, said line sensor thereby detecting two image signals, each of which is made up of a series of image signal components representing pixels in the radiation image, from the front and back surfaces of the stimulable phosphor sheet, and
a subtraction process is performed on image signal components of said two image signals, which image signal components represent corresponding pixels on the front and back surfaces of the stimulable phosphor sheet.
54. A method as defined in any of claims 49 to 53 wherein a light emission region of the stimulable phosphor sheet is partitioned by a stimulating ray reflecting partition member, which extends in a thickness direction of the stimulable phosphor sheet, into a plurality of fine cells.
55. A method as defined in any of claims 49 to 53 wherein, in cases where said line light source and said line sensor are located on the same surface side of the stimulable phosphor sheet, at least part of an optical path of the stimulating rays from said line light source to the stimulable phosphor sheet and at least part of an optical path of the emitted light from the stimulable phosphor sheet to said line sensor overlap each other.
56. A radiation image read-out method, comprising the steps of:
i) linearly irradiating stimulating rays, which have been produced by a line light source, onto an area of a front surface of a stimulable phosphor sheet, on which a radiation image has been stored, the stimulating rays causing the stimulable phosphor sheet to emit light in proportion to an amount of energy stored thereon during its exposure to radiation,
ii) receiving light, which is emitted from the linear area of the front surface of the stimulable phosphor sheet exposed to the linear stimulating rays or from a linear area of a back surface of the stimulable phosphor sheet corresponding to said linear area of the front surface of the stimulable phosphor sheet, with a line sensor comprising a plurality of photoelectric conversion devices arrayed along a length direction of said linear area of the stimulable phosphor sheet, the received light being subjected to photoelectric conversion performed by said line sensor,
iii) moving the stimulable phosphor sheet with respect to said line light source and said line sensor and in a direction different from a length direction of said linear area of the stimulable phosphor sheet, and
iv) successively reading outputs of said photoelectric conversion devices of said line sensor in accordance with said movement,
wherein said line sensor is a back illuminated type of CCD image sensor.
57. A method as defined in claim 56 wherein said back illuminated type of CCD image sensor comprises a plurality of back illuminated type of CCD image sensor chips arrayed in a straight line along said length direction of said linear area of the stimulable phosphor sheet.
58. A method as defined in claim 56 wherein said back illuminated type of CCD image sensor comprises a plurality of back illuminated type of CCD image sensor chips arrayed in a zigzag pattern along said length direction of said linear area of the stimulable phosphor sheet.
59. A method as defined in claim 56, 57, or 58 wherein said back illuminated type of CCD image sensor is cooled with cooling means.
60. A radiation image read-out method, comprising the steps of:
i) linearly irradiating stimulating rays, which have been produced by a line light source, onto an area of a front surface of a stimulable phosphor sheet, on which a radiation image has been stored, the stimulating rays causing the stimulable phosphor sheet to emit light in proportion to an amount of energy stored thereon during its exposure to radiation,
ii) receiving light, which is emitted from the linear area of the front surface of the stimulable phosphor sheet exposed to the linear stimulating rays or from a linear area of a back surface of the stimulable phosphor sheet corresponding to said linear area of the front surface of the stimulable phosphor sheet, with a line sensor comprising a plurality of photoelectric conversion devices arrayed along a length direction of said linear area of the stimulable phosphor sheet, the received light being subjected to photoelectric conversion performed by said line sensor,
iii) moving the stimulable phosphor sheet with respect to said line light source and said line sensor and in a direction different from a length direction of said linear area of the stimulable phosphor sheet, and
iv) successively reading outputs of said photoelectric conversion devices of said line sensor in accordance with said movement,
wherein said line light source is constituted of an organic EL device.
61. A radiation image read-out method, comprising the steps of:
i) linearly irradiating stimulating rays, which have been produced by a line light source, onto an area of a front surface of a stimulable phosphor sheet, on which a radiation image has been stored, the stimulating rays causing the stimulable phosphor sheet to emit light in proportion to an amount of energy stored thereon during its exposure to radiation,
ii) guiding light, which is emitted from the linear area of the front surface of the stimulable phosphor sheet exposed to the linear stimulating rays or from a linear area of a back surface of the stimulable phosphor sheet corresponding to said linear area of the front surface of the stimulable phosphor sheet, with light guiding optical system to a line sensor comprising a plurality of photoelectric conversion devices arrayed along a length direction of said linear area of the stimulable phosphor sheet,
iii) receiving the emitted light with said line sensor, the received light being subjected to photoelectric conversion performed by said line sensor, and
iv) moving the stimulable phosphor sheet with respect to said line light source, said light guiding optical system, and said line sensor and in a direction different from a length direction of said linear area of the stimulable phosphor sheet,
wherein said light guiding optical system has been subjected to coloring for transmitting only the emitted light and filtering out the stimulating rays.
62. A radiation image read-out method, comprising the steps of:
i) irradiating stimulating rays, which have been produced by a surface light source, onto a front surface of a stimulable phosphor sheet, on which a radiation image has been stored, the stimulating rays causing the stimulable phosphor sheet to emit light in proportion to an amount of energy stored thereon during its exposure to radiation,
ii) receiving light, which is emitted from the area of the front surface of the stimulable phosphor sheet exposed to the stimulating rays or from an area of a back surface of the stimulable phosphor sheet corresponding to said area of the front surface of the stimulable phosphor sheet, with an area sensor comprising a plurality of arrayed photoelectric conversion devices, the received light being subjected to photoelectric conversion performed by said area sensor, and
iii) reading outputs of said photoelectric conversion devices constituting said area sensor,
wherein said area sensor is a back illuminated type of CCD image sensor.
63. A method as defined in claim 62 wherein said back illuminated type of CCD image sensor comprises a plurality of arrayed back illuminated type of CCD image sensor chips.
64. A method as defined in claim 63 wherein each of said back illuminated type of CCD image sensor chips comprises a plurality of photoelectric conversion devices arrayed in two-dimensional directions.
65. A method as defined in claim 62, 63, or 64 wherein said back illuminated type of CCD image sensor is cooled with cooling means.
66. A radiation image read-out method, comprising the steps of:
i) irradiating stimulating rays, which have been produced by a surface light source, onto a front surface of a stimulable phosphor sheet, on which a radiation image has been stored, the stimulating rays causing the stimulable phosphor sheet to emit light in proportion to an amount of energy stored thereon during its exposure to radiation,
ii) receiving light, which is emitted from the area of the front surface of the stimulable phosphor sheet exposed to the stimulating rays or from an area of a back surface of the stimulable phosphor sheet corresponding to said area of the front surface of the stimulable phosphor sheet, with an area sensor comprising a plurality of arrayed photoelectric conversion devices, the received light being subjected to photoelectric conversion performed by said area sensor, and
iii) reading outputs of said photoelectric conversion devices constituting said area sensor,
wherein said surface light source is constituted of an organic EL device.
67. A radiation image read-out apparatus, comprising:
i) a line light source for linearly irradiating stimulating rays onto an area of a front surface of a stimulable phosphor sheet, on which a radiation image has been stored, the stimulating rays causing the stimulable phosphor sheet to emit light in proportion to an amount of energy stored thereon during its exposure to radiation,
ii) a line sensor for receiving light, which is emitted from the linear area of the front surface of the stimulable phosphor sheet exposed to the linear stimulating rays or from a linear area of a back surface of the stimulable phosphor sheet corresponding to said linear area of the front surface of the stimulable phosphor sheet, and performing photoelectric conversion of the received light, said line sensor comprising a plurality of photoelectric conversion devices arrayed along each of a length direction of said linear area of the stimulable phosphor sheet and a direction normal to said length direction,
iii) scanning means for moving the stimulable phosphor sheet with respect to said line light source and said line sensor and in a direction different from said length direction of said linear area of the stimulable phosphor sheet, and
iv) reading means for successively reading outputs of said line sensor in accordance with said movement, said reading means being provided with operation means for performing operation processing on the outputs of said photoelectric conversion devices, which outputs have been obtained at respective positions of movement performed by said scanning means and correspond to an identical site on the stimulable phosphor sheet.
68. An apparatus as defined in claim 67 wherein said line sensor comprises a plurality of sensor chips arrayed in a straight line along said length direction of said linear area of the stimulable phosphor sheet.
69. An apparatus as defined in claim 67 wherein said line sensor comprises a plurality of sensor chips arrayed in a zigzag pattern along said length direction of said linear area of the stimulable phosphor sheet.
70. An apparatus as defined in claim 68 or 69 wherein each of said sensor chips comprises a plurality of photoelectric conversion devices arrayed in two-dimensional directions.
71. An apparatus as defined in claim 67, 68, or 69 wherein said line light source is a broad area laser, which linearly radiates out the stimulating rays.
72. An apparatus as defined in claim 67, 68, or 69 wherein the apparatus further comprises stimulating ray guiding means for guiding the linear stimulating rays to the area of the stimulable phosphor sheet, and emitted light guiding means for guiding the light, which is emitted from said linear area of the stimulable phosphor sheet, to said line sensor, and
at least part of an optical path of the stimulating rays from said line light source to the stimulable phosphor sheet and at least part of an optical path of the emitted light from the stimulable phosphor sheet to said line sensor overlap each other.
73. An apparatus as defined in claim 72 wherein at least part of optical elements, which constitute said stimulating ray guiding means, and at least part of optical elements, which constitute said emitted light guiding means, are utilized in common with each other.
74. An apparatus as defined in claim 67, 68, or 69 wherein a light emission region of the stimulable phosphor sheet is partitioned by a stimulating ray reflecting partition member, which extends in a thickness direction of the stimulable phosphor sheet, into a plurality of fine cells.
75. An apparatus as defined in claim 67, 68, or 69 wherein the stimulable phosphor sheet is capable of emitting light from the front and back surfaces,
two line sensors are utilized, each of which is located on one of the front and back surface sides of the stimulable phosphor sheet, said two line sensors detecting two image signals, each of which is made up of a series of image signal components representing pixels in the radiation image, from the front and back surfaces of the stimulable phosphor sheet, and
said reading means performs operation processing on image signal components of said two image signals, which image signal components represent corresponding pixels on the front and back surfaces of the stimulable phosphor sheet.
76. An apparatus as defined in claim 75 wherein two line light sources are utilized, each of which is located on one of the front and back surface sides of the stimulable phosphor sheet.
77. An apparatus as defined in claim 67, 68, or 69 wherein the stimulable phosphor sheet is capable of emitting light from the front and back surfaces,
the apparatus further comprises sensor shifting means for operating such that, after detection of the emitted light from one of the front and back surfaces of the stimulable phosphor sheet has been finished, said sensor shifting means shifts said line sensor to the opposite surface side of the stimulable phosphor sheet, said line sensor thereby detecting two image signals, each of which is made up of a series of image signal components representing pixels in the radiation image, from the front and back surfaces of the stimulable phosphor sheet, and
said reading means performs operation processing on image signal components of said two image signals, which image signal components represent corresponding pixels on the front and back surfaces of the stimulable phosphor sheet.
78. An apparatus as defined in claim 77 wherein said sensor shifting means shifts both said line sensor and said line light source to the opposite surface side of the stimulable phosphor sheet.
79. An apparatus as defined in claim 67, 68, or 69 wherein the stimulable phosphor sheet is capable of emitting light from the front and back surfaces,
the apparatus further comprises sheet reversing means for operating such that, after detection of the emitted light from one of the front and back surfaces of the stimulable phosphor sheet has been finished, said sheet reversing means reverses the front and back surfaces of the stimulable phosphor sheet, said line sensor thereby detecting two image signals, each of which is made up of a series of image signal components representing pixels in the radiation image, from the front and back surfaces of the stimulable phosphor sheet, and
said reading means performs operation processing on image signal components of said two image signals, which image signal components represent corresponding pixels on the front and back surfaces of the stimulable phosphor sheet.
80. An apparatus as defined in claim 75 wherein a light emission region of the stimulable phosphor sheet is partitioned by a stimulating ray reflecting partition member, which extends in a thickness direction of the stimulable phosphor sheet, into a plurality of fine cells.
81. An apparatus as defined in claim 77 wherein a light emission region of the stimulable phosphor sheet is partitioned by a stimulating ray reflecting partition member, which extends in a thickness direction of the stimulable phosphor sheet, into a plurality of fine cells.
82. An apparatus as defined in claim 79 wherein a light emission region of the stimulable phosphor sheet is partitioned by a stimulating ray reflecting partition member, which extends in a thickness direction of the stimulable phosphor sheet, into a plurality of fine cells.
83. An apparatus as defined in claim 75 wherein, in cases where said line light source and said line sensor are located on the same surface side of the stimulable phosphor sheet, at least part of an optical path of the stimulating rays from said line light source to the stimulable phosphor sheet and at least part of an optical path of the emitted light from the stimulable phosphor sheet to said line sensor overlap each other.
84. An apparatus as defined in claim 77 wherein, in cases where said line light source and said line sensor are located on the same surface side of the stimulable phosphor sheet, at least part of an optical path of the stimulating rays from said line light source to the stimulable phosphor sheet and at least part of an optical path of the emitted light from the stimulable phosphor sheet to said line sensor overlap each other.
85. An apparatus as defined in claim 79 wherein, in cases where said line light source and said line sensor are located on the same surface side of the stimulable phosphor sheet, at least part of an optical path of the stimulating rays from said line light source to the stimulable phosphor sheet and at least part of an optical path of the emitted light from the stimulable phosphor sheet to said line sensor overlap each other.
86. An apparatus as defined in claim 67, 68, or 69 wherein the stimulable phosphor sheet is a stimulable phosphor sheet for energy subtraction processing, which stores two radiation images of a single object formed with radiation having different energy distributions, the stimulable phosphor sheet being capable of emitting light, which carries information of one of the two radiation images, from the front surface, and emitting light, which carries information of the other radiation image, from the back surface,
two line sensors are utilized, each of which is located on one of the front and back surface sides of the stimulable phosphor sheet, said two line sensors detecting two image signals, each of which is made up of a series of image signal components representing pixels in the radiation image, from the front and back surfaces of the stimulable phosphor sheet, and
said reading means is provided with means for performing a subtraction process on image signal components of said two image signals, which image signal components represent corresponding pixels on the front and back surfaces of the stimulable phosphor sheet.
87. An apparatus as defined in claim 86 wherein two line light sources are utilized, each of which is located on one of the front and back surface sides of the stimulable phosphor sheet.
88. An apparatus as defined in claim 67, 68, or 69 wherein the stimulable phosphor sheet is a stimulable phosphor sheet for energy subtraction processing, which stores two radiation images of a single object formed with radiation having different energy distributions, the stimulable phosphor sheet being capable of emitting light, which carries information of one of the two radiation images, from the front surface, and emitting light, which carries information of the other radiation image, from the back surface,
the apparatus further comprises sensor shifting means for operating such that, after detection of the emitted light from one of the front and back surfaces of the stimulable phosphor sheet has been finished, said sensor shifting means shifts said line sensor to the opposite surface side of the stimulable phosphor sheet, said line sensor thereby detecting two image signals, each of which is made up of a series of image signal components representing pixels in the radiation image, from the front and back surfaces of the stimulable phosphor sheet, and
said reading means is provided with means for performing a subtraction process on image signal components of said two image signals, which image signal components represent corresponding pixels on the front and back surfaces of the stimulable phosphor sheet.
89. An apparatus as defined in claim 88 wherein said sensor shifting means shifts both said line sensor and said line light source to the opposite surface side of the stimulable phosphor sheet.
90. An apparatus as defined in claim 67, 68, or 69 wherein the stimulable phosphor sheet is a stimulable phosphor sheet for energy subtraction processing, which stores two radiation images of a single object formed with radiation having different energy distributions, the stimulable phosphor sheet being capable of emitting light, which carries information of one of the two radiation images, from the front surface, and emitting light, which carries information of the other radiation image, from the back surface,
the apparatus further comprises sheet reversing means for operating such that, after detection of the emitted light from one of the front and back surfaces of the stimulable phosphor sheet has been finished, said sheet reversing means reverses the front and back surfaces of the stimulable phosphor sheet, said line sensor thereby detecting two image signals, each of which is made up of a series of image signal components representing pixels in the radiation image, from the front and back surfaces of the stimulable phosphor sheet, and
said reading means is provided with means for performing a subtraction process on image signal components of said two image signals, which image signal components represent corresponding pixels on the front and back surfaces of the stimulable phosphor sheet.
91. An apparatus as defined in claim 86 wherein a light emission region of the stimulable phosphor sheet is partitioned by a stimulating ray reflecting partition member, which extends in a thickness direction of the stimulable phosphor sheet, into a plurality of fine cells.
92. An apparatus as defined in claim 88 wherein a light emission region of the stimulable phosphor sheet is partitioned by a stimulating ray reflecting partition member, which extends in a thickness direction of the stimulable phosphor sheet, into a plurality of fine cells.
93. An apparatus as defined in claim 90 wherein a light emission region of the stimulable phosphor sheet is partitioned by a stimulating ray reflecting partition member, which extends in a thickness direction of the stimulable phosphor sheet, into a plurality of fine cells.
94. An apparatus as defined in claim 86 wherein, in cases where said line light source and said line sensor are located on the same surface side of the stimulable phosphor sheet, at least part of an optical path of the stimulating rays from said line light source to the stimulable phosphor sheet and at least part of an optical path of the emitted light from the stimulable phosphor sheet to said line sensor overlap each other.
95. An apparatus as defined in claim 88 wherein, in cases where said line light source and said line sensor are located on the same surface side of the stimulable phosphor sheet, at least part of an optical path of the stimulating rays from said line light source to the stimulable phosphor sheet and at least part of an optical path of the emitted light from the stimulable phosphor sheet to said line sensor overlap each other.
96. An apparatus as defined in claim 90 wherein, in cases where said line light source and said line sensor are located on the same surface side of the stimulable phosphor sheet, at least part of an optical path of the stimulating rays from said line light source to the stimulable phosphor sheet and at least part of an optical path of the emitted light from the stimulable phosphor sheet to said line sensor overlap each other.
97. An apparatus as defined in claim 67 wherein said area sensor is a back illuminated type of CCD image sensor.
98. An apparatus as defined in claim 97 wherein said back illuminated type of CCD image sensor comprises a plurality of back illuminated type of CCD image sensor chips arrayed in a straight line along said length direction of said linear area of the stimulable phosphor sheet.
99. An apparatus as defined in claim 97 wherein said back illuminated type of CCD image sensor comprises a plurality of back illuminated type of CCD image sensor chips arrayed in a zigzag pattern along said length direction of said linear area of the stimulable phosphor sheet.
100. An apparatus as defined in claim 98 or 99 wherein each of said back illuminated type of CCD image sensor chips comprises a plurality of photoelectric conversion devices arrayed in two-dimensional directions.
101. An apparatus as defined in claim 97, 98, or 99 wherein the apparatus further comprises cooling means for cooling said back illuminated type of CCD image sensor.
102. An apparatus as defined in claim 67, 68, or 69 wherein said line light source is constituted of an organic EL device.
103. An apparatus as defined in claim 67, 68, or 69 wherein the apparatus further comprises light guiding optical system for guiding the light, which is emitted by the stimulable phosphor sheet, to the line sensor,
said scanning means moves the stimulable phosphor sheet with respect to said line light source, said light guiding optical system, and said line sensor, and
said light guiding optical system has been subjected to coloring for transmitting only the emitted light and filtering out the stimulating rays.
104. A radiation image read-out apparatus, comprising:
i) a line light source for linearly irradiating stimulating rays onto an area of a front surface of a stimulable phosphor sheet, on which a radiation image has been stored, the stimulating rays causing the stimulable phosphor sheet to emit light in proportion to an amount of energy stored thereon during its exposure to radiation,
ii) a line sensor for receiving light, which is emitted from the linear area of the front surface of the stimulable phosphor sheet exposed to the linear stimulating rays or from a linear area of a back surface of the stimulable phosphor sheet corresponding to said linear area of the front surface of the stimulable phosphor sheet, and performing photoelectric conversion of the received light, said line sensor comprising a plurality of photoelectric conversion devices arrayed along a length direction of said linear area of the stimulable phosphor sheet,
iii) scanning means for moving the stimulable phosphor sheet with respect to said line light source and said line sensor and in a direction different from a length direction of said linear area of the stimulable phosphor sheet, and
iv) reading means for successively reading outputs of said photoelectric conversion devices of said line sensor in accordance with said movement,
wherein said line light source is a broad area laser, which linearly radiates out the stimulating rays.
105. A radiation image read-out apparatus, comprising:
i) a line light source for linearly radiating stimulating rays, which have been produced by a line light source,
ii) stimulating ray guiding means for guiding the linear stimulating rays to an area of a stimulable phosphor sheet, on which a radiation image has been stored, the stimulating rays causing the stimulable phosphor sheet to emit light in proportion to an amount of energy stored thereon during its exposure to radiation,
iii) a line sensor for receiving light, which is emitted from the linear area of the stimulable phosphor sheet exposed to the linear stimulating rays, and performing photoelectric conversion of the received light, said line sensor comprising a plurality of photoelectric conversion devices arrayed along a length direction of said linear area of the stimulable phosphor sheet,
iv) emitted light guiding means for guiding the light, which is emitted from the linear area of the stimulable phosphor sheet exposed to the linear stimulating rays, to said line sensor,
v) scanning means for moving the stimulable phosphor sheet with respect to said line light source and said line sensor and in a direction different from the length direction of said linear area of the stimulable phosphor sheet, and
vi) reading means for successively reading outputs of said line sensor in accordance with said movement,
wherein at least part of an optical path of the stimulating rays from said line light source to the stimulable phosphor sheet and at least part of an optical path of the emitted light from the stimulable phosphor sheet to said line sensor overlap each other.
106. An apparatus as defined in claim 105 wherein at least part of optical elements, which constitute said stimulating ray guiding means, and at least part of optical elements, which constitute said emitted light guiding means, are utilized in common with each other.
107. A radiation image read-out apparatus, comprising:
i) a line light source for linearly irradiating stimulating rays onto an area of a front surface of a stimulable phosphor sheet, on which a radiation image has been stored, the stimulating rays causing the stimulable phosphor sheet to emit light in proportion to an amount of energy stored thereon during its exposure to radiation,
ii) a line sensor for receiving light, which is emitted from the linear area of the front surface of the stimulable phosphor sheet exposed to the linear stimulating rays or from a linear area of a back surface of the stimulable phosphor sheet corresponding to said linear area of the front surface of the stimulable phosphor sheet, and performing photoelectric conversion of the received light, said line sensor comprising a plurality of photoelectric conversion devices arrayed along a length direction of said linear area of the stimulable phosphor sheet,
iii) scanning means for moving the stimulable phosphor sheet with respect to said line light source and said line sensor and in a direction different from said length direction of said linear area of the stimulable phosphor sheet, and
iv) reading means for successively reading outputs of said line sensor in accordance with said movement,
wherein a light emission region of the stimulable phosphor sheet is partitioned by a stimulating ray reflecting partition member, which extends in a thickness direction of the stimulable phosphor sheet, into a plurality of fine cells.
108. A radiation image read-out apparatus, comprising:
i) a line light source for linearly irradiating stimulating rays onto an area of a stimulable phosphor sheet, on which a radiation image has been stored, the stimulating rays causing the stimulable phosphor sheet to emit light in proportion to an amount of energy stored thereon during its exposure to radiation,
ii) a line sensor for receiving light, which is emitted from the linear area of the stimulable phosphor sheet exposed to the linear stimulating rays, and performing photoelectric conversion of the received light, said line sensor comprising a plurality of photoelectric conversion devices arrayed along a length direction of said linear area of the stimulable phosphor sheet,
iii) scanning means for moving the stimulable phosphor sheet with respect to said line light source and said line sensor, and
iv) reading means for reading outputs of said photoelectric conversion devices constituting said line sensor, which outputs are obtained at respective positions of movement performed by said scanning means,
wherein the stimulable phosphor sheet is capable of emitting light from front and back surfaces,
two line sensors are utilized, each of which is located on one of the front and back surface sides of the stimulable phosphor sheet, said two line sensors detecting two image signals, each of which is made up of a series of image signal components representing pixels in the radiation image, from the front and back surfaces of the stimulable phosphor sheet, and
said reading means performs operation processing on image signal components of said two image signals, which image signal components represent corresponding pixels on the front and back surfaces of the stimulable phosphor sheet.
109. An apparatus as defined in claim 108 wherein two line light sources are utilized, each of which is located on one of the front and back surface sides of the stimulable phosphor sheet.
110. A radiation image read-out apparatus, comprising:
i) a line light source for linearly irradiating stimulating rays onto an area of a stimulable phosphor sheet, on which a radiation image has been stored, the stimulating rays causing the stimulable phosphor sheet to emit light in proportion to an amount of energy stored thereon during its exposure to radiation,
ii) a line sensor for receiving light, which is emitted from the linear area of the stimulable phosphor sheet exposed to the linear stimulating rays, and performing photoelectric conversion of the received light, said line sensor comprising a plurality of photoelectric conversion devices arrayed along a length direction of said linear area of the stimulable phosphor sheet,
iii) scanning means for moving the stimulable phosphor sheet with respect to said line light source and said line sensor, and
iv) reading means for reading outputs of said photoelectric conversion devices constituting said line sensor, which outputs are obtained at respective positions of movement performed by said scanning means,
wherein the stimulable phosphor sheet is capable of emitting light from front and back surfaces,
the apparatus further comprises sensor shifting means for operating such that, after detection of the emitted light from one of the front and back surfaces of the stimulable phosphor sheet has been finished, said sensor shifting means shifts said line sensor to the opposite surface side of the stimulable phosphor sheet, said line sensor thereby detecting two image signals, each of which is made up of a series of image signal components representing pixels in the radiation image, from the front and back surfaces of the stimulable phosphor sheet, and
said reading means performs operation processing on image signal components of said two image signals, which image signal components represent corresponding pixels on the front and back surfaces of the stimulable phosphor sheet.
111. An apparatus as defined in claim 110 wherein said sensor shifting means shifts both said line sensor and said line light source to the opposite surface side of the stimulable phosphor sheet.
112. A radiation image read-out apparatus, comprising:
i) a line light source for linearly irradiating stimulating rays onto an area of a stimulable phosphor sheet, on which a radiation image has been stored, the stimulating rays causing the stimulable phosphor sheet to emit light in proportion to an amount of energy stored thereon during its exposure to radiation,
ii) a line sensor for receiving light, which is emitted from the linear area of the stimulable phosphor sheet exposed to the linear stimulating rays, and performing photoelectric conversion of the received light, said line sensor comprising a plurality of photoelectric conversion devices arrayed along a length direction of said linear area of the stimulable phosphor sheet,
iii) scanning means for moving the stimulable phosphor sheet with respect to said line light source and said line sensor, and
iv) reading means for reading outputs of said photoelectric conversion devices constituting said line sensor, which outputs are obtained at respective positions of movement performed by said scanning means,
wherein the stimulable phosphor sheet is capable of emitting light from front and back surfaces,
the apparatus further comprises sheet reversing means for operating such that, after detection of the emitted light from one of the front and back surfaces of the stimulable phosphor sheet has been finished, said sheet reversing means reverses the front and back surfaces of the stimulable phosphor sheet, said line sensor thereby detecting two image signals, each of which is made up of a series of image signal components representing pixels in the radiation image, from the front and back surfaces of the stimulable phosphor sheet, and
said reading means performs operation processing on image signal components of said two image signals, which image signal components represent corresponding pixels on the front and back surfaces of the stimulable phosphor sheet.
113. An apparatus as defined in any of claims 108 to 112 wherein a light emission region of the stimulable phosphor sheet is partitioned by a stimulating ray reflecting partition member, which extends in a thickness direction of the stimulable phosphor sheet, into a plurality of fine cells.
114. An apparatus as defined in any of claims 108 to 112 wherein, in cases where said line light source and said line sensor are located on the same surface side of the stimulable phosphor sheet, at least part of an optical path of the stimulating rays from said line light source to the stimulable phosphor sheet and at least part of an optical path of the emitted light from the stimulable phosphor sheet to said line sensor overlap each other.
115. A radiation image read-out apparatus, comprising:
i) a line light source for linearly irradiating stimulating rays onto an area of a stimulable phosphor sheet, on which a radiation image has been stored, the stimulating rays causing the stimulable phosphor sheet to emit light in proportion to an amount of energy stored thereon during its exposure to radiation,
ii) a line sensor for receiving light, which is emitted from the linear area of the stimulable phosphor sheet exposed to the linear stimulating rays, and performing photoelectric conversion of the received light, said line sensor comprising a plurality of photoelectric conversion devices arrayed along a length direction of said linear area of the stimulable phosphor sheet,
iii) scanning means for moving the stimulable phosphor sheet with respect to said line light source and said line sensor, and
iv) reading means for reading outputs of said photoelectric conversion devices constituting said line sensor, which outputs are obtained at respective positions of movement performed by said scanning means,
wherein the stimulable phosphor sheet is a stimulable phosphor sheet for energy subtraction processing, which stores two radiation images of a single object formed with radiation having different energy distributions, the stimulable phosphor sheet being capable of emitting light, which carries information of one of the two radiation images, from a front surface, and emitting light, which carries information of the other radiation image, from a back surface,
two line sensors are utilized, each of which is located on one of the front and back surface sides of the stimulable phosphor sheet, said two line sensors detecting two image signals, each of which is made up of a series of image signal components representing pixels in the radiation image, from the front and back surfaces of the stimulable phosphor sheet, and
said reading means is provided with means for performing a subtraction process on image signal components of said two image signals, which image signal components represent corresponding pixels on the front and back surfaces of the stimulable phosphor sheet.
116. An apparatus as defined in claim 115 wherein two line light sources are utilized, each of which is located on one of the front and back surface sides of the stimulable phosphor sheet.
117. A radiation image read-out apparatus, comprising:
i) a line light source for linearly irradiating stimulating rays onto an area of a stimulable phosphor sheet, on which a radiation image has been stored, the stimulating rays causing the stimulable phosphor sheet to emit light in proportion to an amount of energy stored thereon during its exposure to radiation,
ii) a line sensor for receiving light, which is emitted from the linear area of the stimulable phosphor sheet exposed to the linear stimulating rays, and performing photoelectric conversion of the received light, said line sensor comprising a plurality of photoelectric conversion devices arrayed along a length direction of said linear area of the stimulable phosphor sheet,
iii) scanning means for moving the stimulable phosphor sheet with respect to said line light source and said line sensor, and
iv) reading means for reading outputs of said photoelectric conversion devices constituting said line sensor, which outputs are obtained at respective positions of movement performed by said scanning means,
wherein the stimulable phosphor sheet is a stimulable phosphor sheet for energy subtraction processing, which stores two radiation images of a single object formed with radiation having different energy distributions, the stimulable phosphor sheet being capable of emitting light, which carries information of one of the two radiation images, from a front surface, and emitting light, which carries information of the other radiation image, from a back surface,
the apparatus further comprises sensor shifting means for operating such that, after detection of the emitted light from one of the front and back surfaces of the stimulable phosphor sheet has been finished, said sensor shifting means shifts said line sensor to the opposite surface side of the stimulable phosphor sheet, said line sensor thereby detecting two image signals, each of which is made up of a series of image signal components representing pixels in the radiation image, from the front and back surfaces of the stimulable phosphor sheet, and
said reading means is provided with means for performing a subtraction process on image signal components of said two image signals, which image signal components represent corresponding pixels on the front and back surfaces of the stimulable phosphor sheet.
118. An apparatus as defined in claim 117 wherein said sensor shifting means shifts both said line sensor and said line light source to the opposite surface side of the stimulable phosphor sheet.
119. A radiation image read-out apparatus, comprising:
i) a line light source for linearly irradiating stimulating rays onto an area of a stimulable phosphor sheet, on which a radiation image has been stored, the stimulating rays causing the stimulable phosphor sheet to emit light in proportion to an amount of energy stored thereon during its exposure to radiation,
ii) a line sensor for receiving light, which is emitted from the linear area of the stimulable phosphor sheet exposed to the linear stimulating rays, and performing photoelectric conversion of the received light, said line sensor comprising a plurality of photoelectric conversion devices arrayed along a length direction of said linear area of the stimulable phosphor sheet,
iii) scanning means for moving the stimulable phosphor sheet with respect to said line light source and said line sensor, and
iv) reading means for reading outputs of said photoelectric conversion devices constituting said line sensor, which outputs are obtained at respective positions of movement performed by said scanning means,
wherein the stimulable phosphor sheet is a stimulable phosphor sheet for energy subtraction processing, which stores two radiation images of a single object formed with radiation having different energy distributions, the stimulable phosphor sheet being capable of emitting light, which carries information of one of the two radiation images, from a front surface, and emitting light, which carries information of the other radiation image, from a back surface,
the apparatus further comprises sheet reversing means for operating such that, after detection of the emitted light from one of the front and back surfaces of the stimulable phosphor sheet has been finished, said sheet reversing means reverses the front and back surfaces of the stimulable phosphor sheet, said line sensor thereby detecting two image signals, each of which is made up of a series of image signal components representing pixels in the radiation image, from the front and back surfaces of the stimulable phosphor sheet, and
said reading means is provided with means for performing a subtraction process on image signal components of said two image signals, which image signal components represent corresponding pixels on the front and back surfaces of the stimulable phosphor sheet.
120. An apparatus as defined in any of claims 115 to 119 wherein a light emission region of the stimulable phosphor sheet is partitioned by a stimulating ray reflecting partition member, which extends in a thickness direction of the stimulable phosphor sheet, into a plurality of fine cells.
121. An apparatus as defined in any of claims 115 to 119 wherein, in cases where said line light source and said line sensor are located on the same surface side of the stimulable phosphor sheet, at least part of an optical path of the stimulating rays from said line light source to the stimulable phosphor sheet and at least part of an optical path of the emitted light from the stimulable phosphor sheet to said line sensor overlap each other.
122. A radiation image read-out apparatus, comprising:
i) a line light source for linearly irradiating stimulating rays onto an area of a front surface of a stimulable phosphor sheet, on which a radiation image has been stored, the stimulating rays causing the stimulable phosphor sheet to emit light in proportion to an amount of energy stored thereon during its exposure to radiation,
ii) a line sensor for receiving light, which is emitted from the linear area of the front surface of the stimulable phosphor sheet exposed to the linear stimulating rays or from a linear area of a back surface of the stimulable phosphor sheet corresponding to said linear area of the front surface of the stimulable phosphor sheet, and performing photoelectric conversion of the received light, said line sensor comprising a plurality of photoelectric conversion devices arrayed along a length direction of said linear area of the stimulable phosphor sheet,
iii) scanning means for moving the stimulable phosphor sheet with respect to said line light source and said line sensor and in a direction different from a length direction of said linear area of the stimulable phosphor sheet,
iv) reading means for successively reading outputs of said photoelectric conversion devices of said line sensor in accordance with said movement,
wherein said line sensor is a back illuminated type of CCD image sensor.
123. An apparatus as defined in claim 122 wherein said back illuminated type of CCD image sensor comprises a plurality of back illuminated type of CCD image sensor chips arrayed in a straight line along said length direction of said linear area of the stimulable phosphor sheet.
124. An apparatus as defined in claim 122 wherein said back illuminated type of CCD image sensor comprises a plurality of back illuminated type of CCD image sensor chips arrayed in a zigzag pattern along said length direction of said linear area of the stimulable phosphor sheet.
125. An apparatus as defined in claim 122, 123, or 124 wherein the apparatus further comprises cooling means for cooling said back illuminated type of CCD image sensor.
126. A radiation image read-out apparatus, comprising:
i) a line light source for linearly irradiating stimulating rays onto an area of a front surface of a stimulable phosphor sheet, on which a radiation image has been stored, the stimulating rays causing the stimulable phosphor sheet to emit light in proportion to an amount of energy stored thereon during its exposure to radiation,
ii) a line sensor for receiving light, which is emitted from the linear area of the front surface of the stimulable phosphor sheet exposed to the linear stimulating rays or from a linear area of a back surface of the stimulable phosphor sheet corresponding to said linear area of the front surface of the stimulable phosphor sheet, and performing photoelectric conversion of the received light, said line sensor comprising a plurality of photoelectric conversion devices arrayed along a length direction of said linear area of the stimulable phosphor sheet,
iii) scanning means for moving the stimulable phosphor sheet with respect to said line light source and said line sensor and in a direction different from a length direction of said linear area of the stimulable phosphor sheet, and
iv) reading means for successively reading outputs of said photoelectric conversion devices of said line sensor in accordance with said movement,
wherein said line light source is constituted of an organic EL device.
127. A radiation image read-out apparatus, comprising:
i) line light source for linearly irradiating stimulating rays onto an area of a front surface of a stimulable phosphor sheet, on which a radiation image has been stored, the stimulating rays causing the stimulable phosphor sheet to emit light in proportion to an amount of energy stored thereon during its exposure to radiation,
ii) a line sensor for receiving light, which is emitted from the linear area of the front surface of the stimulable phosphor sheet exposed to the linear stimulating rays or from a linear area of a back surface of the stimulable phosphor sheet corresponding to said linear area of the front surface of the stimulable phosphor sheet, and performing photoelectric conversion of the received light, said line sensor comprising a plurality of photoelectric conversion devices arrayed along a length direction of said linear area of the stimulable phosphor sheet,
iii) a light guiding optical system for guiding the emitted light, said light guiding optical system being located between the stimulable phosphor sheet and said line sensor, and
iv) scanning means for moving the stimulable phosphor sheet with respect to said line light source, said light guiding optical system, and said line sensor and in a direction different from a length direction of said linear area of the stimulable phosphor sheet,
wherein said light guiding optical system has been subjected to coloring for transmitting only the emitted light and filtering out the stimulating rays.
128. A radiation image read-out apparatus, comprising:
i) a surface light source for irradiating stimulating rays onto a front surface of a stimulable phosphor sheet, on which a radiation image has been stored, the stimulating rays causing the stimulable phosphor sheet to emit light in proportion to an amount of energy stored thereon during its exposure to radiation,
ii) an area sensor for receiving light, which is emitted from the area of the front surface of the stimulable phosphor sheet exposed to the stimulating rays or from an area of a back surface of the stimulable phosphor sheet corresponding to said area of the front surface of the stimulable phosphor sheet, and performing photoelectric conversion of the received light, said area sensor comprising a plurality of arrayed photoelectric conversion devices, and
iii) reading means for reading outputs of said photoelectric conversion devices constituting said area sensor,
wherein said area sensor is a back illuminated type of CCD image sensor.
129. An apparatus as defined in claim 128 wherein said back illuminated type of CCD image sensor comprises a plurality of arrayed back illuminated type of CCD image sensor chips.
130. An apparatus as defined in claim 129 wherein each of said back illuminated type of CCD image sensor chips comprises a plurality of photoelectric conversion devices arrayed in two-dimensional directions.
131. An apparatus as defined in claim 128, 129, or 130 wherein the apparatus further comprises cooling means for cooling said back illuminated type of CCD image sensor.
132. A radiation image read-out apparatus, comprising:
i) a surface light source for irradiating stimulating rays onto a front surface of a stimulable phosphor sheet, on which a radiation image has been stored, the stimulating rays causing the stimulable phosphor sheet to emit light in proportion to an amount of energy stored thereon during its exposure to radiation,
ii) an area sensor for receiving light, which is emitted from the area of the front surface of the stimulable phosphor sheet exposed to the stimulating rays or from an area of a back surface of the stimulable phosphor sheet corresponding to said area of the front surface of the stimulable phosphor sheet, and performing photoelectric conversion of the received light; said area sensor comprising a plurality of arrayed photoelectric conversion devices, and
iii) reading means for reading outputs of said photoelectric conversion devices constituting said area sensor,
wherein said surface light source is constituted of an organic EL device.

The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.

1. An apparatus comprising:
a linear light source including a light diffuser;
a sheet having a first edge, the linear light source placed along the first edge; and
a primary light source near one end of the linear light source;
wherein the linear light source diffuses light from the primary light source such that light emanates along the first edge of the sheet; and
the linear light source is substantially transparent to light exiting the sheet through the first edge.
2. The apparatus of claim 1, wherein the light diffuser comprises particles that are included in a sparse distribution such that the linear light source remains substantially transparent to light entering it from outside.
3. The apparatus of claim 1, wherein the light diffuser comprises transparent particles.
4. The apparatus of claim 1, wherein the light diffuser comprises particles that are included in a varying concentration such that the linear light source produces uniform light.
5. The apparatus of claim 1, further comprising another primary light source near another end of the linear light source.
6. The apparatus of claim 1, wherein the primary light source is a light emitting diode.

1460740354-d51b79a1-9219-4e48-a883-71e4d211b3d0

We claim:

1. A method for making transcription product corresponding to a target nucleic acid sequence, the method comprising:
(a) obtaining an RNA polymerase that can transcribe RNA using a single-stranded promoter;
(b) obtaining a single-stranded DNA wherein the single-stranded DNA comprises a target nucleic sequence that is present in or complementary to at least a portion of a target nucleic acid in a sample;
(c) obtaining a single-stranded transcription substrate by operably joining to the single-stranded DNA a single-stranded polynucleotide comprising a promoter sequence that binds the RNA polymerase;
(d) obtaining nucleoside triphosphates (NTPs) that are substrates for the RNA polymerase and that are complementary to canonical nucleic acid bases;
(e) admixing the RNA polymerase, the single-stranded transcription substrate and the NTPs; and
(f) incubating the RNA polymerase and the single-stranded transcription substrate under conditions effective to allow synthesis of transcription product.
2. A method for making transcription product corresponding to a target nucleic acid sequence, the method comprising:
(a) obtaining an RNA polymerase that can transcribe RNA using a single-stranded promoter;
(b) obtaining a single-stranded DNA wherein the single-stranded DNA comprises a target nucleic acid sequence that is present in or complementary to at least a portion of a target nucleic acid in a sample;
(c) obtaining a single-stranded transcription substrate by operably joining to the single-stranded DNA a single-stranded polynucleotide comprising a promoter sequence that binds the RNA polymerase;
(d) admixing the RNA polymerase and the single-stranded transcription substrate; and
(e) incubating the RNA polymerase and the single-stranded ssDNA transcription substrate under conditions effective to allow synthesis of transcription product.
3. A method for obtaining additional rounds of synthesis of transcription product corresponding to a target nucleic acid sequence, the method comprising:
(a) obtaining an RNA polymerase that can transcribe RNA using a single-stranded promoter;
(b) obtaining a first transcription product by transcription of a first single-stranded transcription substrate comprising a polynucleotide corresponding to a target nucleic acid sequence;
(c) obtaining a reverse transcriptase;
(d) reverse transcribing the first single-stranded transcription product;
(e) obtaining first-strand cDNA complementary to the first single-stranded transcription product;
(f) obtaining a second single-stranded transcription substrate by operably joining to the first-strand cDNA a single-stranded polynucleotide comprising a promoter sequence that binds the RNA polymerase;
(g) admixing the RNA polymerase and the second single-stranded transcription substrate; and
(h) incubating the RNA polymerase and the second single-stranded transcription substrate under conditions effective to allow synthesis of a second transcription product.
4. The method of claim 1 wherein the RNA polymerase comprises a region encoding a polypeptide having an amino acid sequence set forth in SEQ ID NO:2, SEQ ID NO:4, SEQ ID NO:6, SEQ ID NO:8 or SEQ ID NO:15.
5. The method of claim 1 wherein the RNA polymerase comprises a polypeptide encoded by the nucleic acid sequence of SEQ ID NO:1, SEQ ID NO:3, SEQ ID NO:5, SEQ ID NO:7 or SEQ ID NO:14.
6. The method of claim 1 wherein the promoter is an N4 vRNAP promoter set forth in SEQ ID NO:16, SEQ ID NO:19, SEQ ID NO:27, SEQ ID NO:28 or SEQ ID NO:29.
7. The method of claim 1 wherein the promoter is a P2 sequence set forth in SEQ ID NO:16 or SEQ ID NO:28.
8. The method of claim 1 wherein the RNA polymerase is E. coli RNAP and the promoter is a single-stranded pseudopromoter for E. coli RNAP.
9. The method of claim 1 wherein the RNA polymerase is a T7-type RNAP and the promoter is a cognate single-stranded pseudopromoter for the T7-type RNAP.
10. The method of claim 1 wherein the RNA polymerase is T7 RNAP and the promoter is a single-stranded pseudopromoter for T7 RNAP.
11. The method of claim 1 wherein the RNA polymerase is T3 RNAP and the promoter is a single-stranded pseudopromoter for T3 RNAP.
12. The method of claim 1 wherein the RNA polymerase is SP6 RNAP and the promoter is a single-stranded pseudopromoter for SP6 RNAP.
13. The method of claim 1 wherein the single-stranded DNA comprises a target nucleic acid sequence comprising an RNA target nucleic acid.
14. The method of claim 1 wherein the single-stranded DNA comprises a target nucleic acid sequence comprising an mRNA target nucleic acid.
15. The method of claim 1 wherein the single-stranded DNA comprises a target nucleic acid sequence comprising an mRNA target nucleic acid that is full-length.
16. The method of claim 1 wherein the single-stranded DNA comprises a target nucleic acid sequence comprising mRNA target nucleic acid corresponding to substantially all mRNA in the sample.
17. The method of claim 1 wherein the single-stranded DNA comprises a target nucleic acid sequence comprising a DNA target nucleic acid.
18. The method of claim 1 wherein the single-stranded DNA comprises a target nucleic acid sequence comprising a DNA target nucleic acid that is a product of an amplification reaction.
19. The method of claim 1 wherein the amplification reaction is selected from the group consisting of PCR, RT-PCR, NASBA, TMA, 3SR, LCR, LLA, SDA, RCA, Multiple Displacement Amplification, ICAN, UCAN, Loop-AMP, SPIA and Ribo-SPIA.
20. The method of claim 1 wherein the single-stranded DNA comprises a target nucleic acid sequence that is obtained by primer extension of a larger DNA target nucleic acid.
21. The method of claim 1 wherein the single-stranded DNA comprises a target nucleic acid sequence that is obtained by reverse transcriptase primer extension of at least one mRNA target nucleic acid.
22. The method of claim 1 wherein the single-stranded DNA comprises a target nucleic acid sequence that is obtained by reverse transcriptase primer extension of substantially all mRNA target nucleic acid in a sample.
23. The method of claim 1 wherein the single-stranded DNA comprises a target nucleic acid sequence that has a tail sequence comprising at least two nucleotides.
24. The method of claim 1 wherein the single-stranded DNA comprises a target nucleic acid sequence that has a tail sequence comprising of dCMP nucleotides.
25. The method of claim 1 wherein the single-stranded DNA comprises a target nucleic acid sequence that has a tail sequence between two to ten nucleotides.
26. The method of claim 1 wherein the ssDNA transcription substrate of step (c) is obtained using a promoter splice template oligo.
27. The method of claim 26 wherein the single-stranded DNA is obtained by reverse transcription of a transcription product.
28. The method of claim 1 wherein the single-stranded DNA in step (c) is obtained by reverse transcription of a transcription product prepared using the method of claim 26.
29. The method of claim 1, wherein the ssDNA transcription substrate is obtained by using a promoter ligation oligo and a ligation splint.
30. The method of claim 1, wherein the single-stranded DNA is obtained by reverse transcription of a transcription product prepared using a promoter ligation oligo and a ligation splint.
31. The method of claim 1 wherein a single-stranded transcription substrate is obtained by DNA polymerase-catalyzed primer extension of a promoter primer using the target nucleic acid in the sample as a template, followed by ligation of the 5-end of the primer-extended promoter primer to the 3-end primer extension, comprising the single-stranded DNA comprising the target nucleic acid sequence, thereby operably joining the promoter to the target nucleic acid sequence to form a circular single-stranded transcription substrate.
32. The method of claim 31 wherein the target nucleic acid in the sample comprises RNA and the DNA polymerase used for primer extension is an enzyme with reverse transcriptase activity.
33. The method of claim 31 wherein the target nucleic acid in the sample comprises mRNA.
34. The method of claim 31 further comprising the DNA polymerase used for primer extension is an enzyme with reverse transcriptase activity.
35. The method of claim 31 wherein the single-stranded DNA comprising a target nucleic acid sequence is obtained by reverse transcription of a transcription product prepared using the method of claim 1.
36. The method of claim 1 wherein a linear single-stranded transcription substrate is obtained by cleaving a circular single-stranded transcription substrate obtained using the method of claim 31 at a site that is 3-of the promoter sequence and 5-of the target nucleic acid sequence.
37. The method of claim 1 wherein the single-stranded DNA comprising a target nucleic acid sequence is obtained by reverse transcription of a transcription product prepared using the method of claim 31.
38. The method of claim 1, wherein at least one of the NTPs comprises a 2-amino-deoxynucleoside triphosphate.
39. The method of claim 1, wherein at least one of the NTPs comprises a 2-amino-dCTP.
40. The method of claim 1, wherein at least one of the NTPs comprises a 2-fluoro-deoxynucleoside triphosphate.
41. The method of claim 1, wherein at least one of the NTPs comprises a 2-fluoro-dCTP.
42. The method of claim 1, wherein at least one of the NTPs comprises a 2-fluoro-dUTP.
43. The method of claim 1, wherein at least one of the NTPs comprises a 2-azido-deoxynucleoside triphosphate.
44. The method of claim 1, wherein at least one of the NTPs comprises a 2-azido-dCTP.
45. The method of claim 1 wherein the NTPs are complementary to canonical nucleic acid bases.
46. A kit for performing the method of claim 1 wherein the kit comprises an RNA polymerase that can use a single-stranded promoter for transcription of RNA and a promoter splice template oligo.
47. The kit of claim 46 wherein the RNA polymerase comprises a region encoding a polypeptide having an amino acid sequence set forth in SEQ ID NO:2, SEQ ID NO:4, SEQ ID NO:6, SEQ ID NO:8 or SEQ ID NO:15.
48. The kit of claim 47 wherein the promoter is an N4 vRNAP promoter set forth in SEQ ID NO:16, SEQ ID NO:19, SEQ ID NO:27, SEQ ID NO:28 or SEQ ID NO:29.
49. The kit of claim 47 wherein the promoter is a P2 sequence set forth in SEQ ID NO:16 or SEQ ID NO:28.
50. The kit of claim 46 wherein the RNA polymerase comprises a polypeptide encoded by the nucleic acid sequence of SEQ ID NO:1, SEQ ID NO:3, SEQ ID NO:5, SEQ ID NO:7 or SEQ ID NO:14.
51. The kit of claim 46 wherein the RNA polymerase comprises E. coli RNAP and the promoter splice template comprises a single-stranded pseudopromoter for E. coli RNAP.
52. The kit of claim 46 wherein the RNA polymerase comprises T7-type RNAP and the promoter splice template oligo comprises a single-stranded pseudopromoter for the T7-type RNAP.
53. The kit of claim 46 wherein the RNA polymerase comprises T7 RNAP and the promoter splice template oligo comprises a single-stranded pseudopromoter for T7 RNAP.
54. The kit of claim 46 wherein the RNA polymerase comprises T3 RNAP and the promoter splice template oligo comprises a single-stranded pseudopromoter for T3 RNAP.
55. The kit of claim 46 wherein the RNA polymerase comprises SP6 RNAP and the promoter splice template oligo comprises a single-stranded pseudopromoter for SP6 RNAP.
56. A kit for performing the method of claim 1 wherein the kit comprises an RNA polymerase that can use a single-stranded promoter for transcription of RNA and a promoter ligation oligo.
57. The kit of claim 56 wherein the RNA polymerase comprises a region encoding a polypeptide having an amino acid sequence set forth in SEQ ID NO:2, SEQ ID NO:4, SEQ ID NO:6, SEQ ID NO:8 or SEQ ID NO:15.
58. The kit of claim 57 wherein the promoter is an N4 vRNAP promoter set forth in SEQ ID NO:16, SEQ ID NO:19, SEQ ID NO:27, SEQ ID NO:28 or SEQ ID NO:29.
59. The kit of claim 57 wherein the promoter is a P2 sequence set forth in SEQ ID NO:16 or SEQ ID NO:28.
60. The kit of claim 56 wherein the RNA polymerase comprises a polypeptide encoded by the nucleic acid sequence of SEQ ID NO:1, SEQ ID NO:3, SEQ ID NO:5, SEQ ID NO:7 or SEQ ID NO:14.
61. The kit of claim 56 wherein the promoter is an N4 vRNAP promoter set forth in SEQ ID NO:16, SEQ ID NO:19, SEQ ID NO:27, SEQ ID NO:28 or SEQ ID NO:29.
62. The kit of claim 56 wherein the promoter is a P2 sequence set forth in SEQ ID NO:16 or SEQ ID NO:28.
63. The kit of claim 56 wherein the RNA polymerase comprises E. coli RNAP and the promoter ligation oligo comprises a single-stranded pseudopromoter for E. coli RNAP.
64. The kit of claim 56 wherein the RNA polymerase comprises T7-type RNAP and the promoter ligation oligo comprises a single-stranded pseudopromoter for the T7-type RNAP.
65. The kit of claim 56 wherein the RNA polymerase comprises T7 RNAP and the promoter ligation oligo comprises a single-stranded pseudopromoter for T7 RNAP.
66. The kit of claim 56 wherein the RNA polymerase comprises T3 RNAP and the promoter ligation oligo comprises a single-stranded pseudopromoter for T3 RNAP.
67. The kit of claim 56 wherein the RNA polymerase comprises SP6 RNAP and the promoter ligation oligo comprises a single-stranded pseudopromoter for SP6 RNAP
68. A kit for performing the method of claim 1 wherein the kit comprises an RNA polymerase that can use a single-stranded promoter for transcription of RNA and a promoter primer.
69. The kit of claim 68 wherein the RNA polymerase comprises a region encoding a polypeptide having an amino acid sequence set forth in SEQ ID NO:2, SEQ ID NO:4, SEQ ID NO:7, SEQ ID NO:8 or SEQ ID NO:15.
70. The kit of claim 69 wherein the promoter is an N4 vRNAP promoter set forth in SEQ ID NO:16, SEQ ID NO:19, SEQ ID NO:27, SEQ ID NO:28 or SEQ ID NO:29.
71. The kit of claim 69 wherein the promoter is a P2 sequence set forth in SEQ ID NO:16 or SEQ ID NO:28.
72. The kit of claim 68 wherein the RNA polymerase comprises a polypeptide encoded by the nucleic acid sequence of SEQ ID NO:1, SEQ ID NO:3, SEQ ID NO:5, SEQ ID NO:7 or SEQ ID NO:14.
73. The kit of claim 68 wherein the promoter is an N4 vRNAP promoter set forth in SEQ ID NO:16, SEQ ID NO:19, SEQ ID NO:27, SEQ ID NO:28 or SEQ ID NO:29.
74. The kit of claim 68 wherein the promoter is a P2 sequence set forth in SEQ ID NO:16 or SEQ ID NO:28.
75. The kit of claim 68 wherein the RNA polymerase comprises E. coli RNAP and the promoter primer comprises a single-stranded pseudopromoter for E. coli RNAP.
76. The kit of claim 68 wherein the RNA polymerase comprises T7-type RNAP and the promoter primer comprises a single-stranded pseudopromoter for the T7-type RNAP.
77. The kit of claim 68 wherein the RNA polymerase comprises T7 RNAP and the promoter primer comprises a single-stranded pseudopromoter for T7 RNAP.
78. The kit of claim 68 wherein the RNA polymerase comprises T3 RNAP and the promoter primer comprises a single-stranded pseudopromoter for T3 RNAP.
79. The kit of claim 68 wherein the RNA polymerase comprises SP6 RNAP and the promoter primer comprises a single-stranded pseudopromoter for SP6 RNAP
80. The method of claim 1 wherein the target nucleic acid sequence comprises a 3-portion that encodes a first sequence, a 5-portion that encodes a second sequence that is complementary to the first sequence, and a middle portion that joins the 3portion and the 5portion, wherein the middle portion comprises a sequence that is not complementary to either the 3-portion or the 5portion and wherein the transcription product comprises a hairpin RNA.
81. The method of claim 80, wherein the hairpin RNA corresponds to a target nucleic acid sequence in a target nucleic acid comprising an mRNA.
82. The method of claim 80, wherein the hairpin RNA has RNA interference activity in a cell that synthesizes an mRNA target nucleic acid comprising the target nucleic acid sequence.
83. The method of claim 80 wherein the hairpin RNA comprises siRNA.
84. The method of claim 80 wherein the hairpin RNA comprises at least one modified nucleoside triphoshate.
85. The method of claim 84 wherein the modified nucleoside triphosphate is selected from the group consisting of 2-amino-deoxynucleoside triphosphate, 2-amino-dCTP, 2-fluoro-deoxynucleoside triphosphate, 2-fluoro-dCTP, 2-fluoro-dUTP, 2-azido-deoxynucleoside triphosphate, and 2-azido-dCTP.
86. The method of claim 80 wherein the hairpin RNA is at least 40 nucleotides in length.
87. The method of claim 80 wherein the hairpin RNA is at least 100 nucleotides in length.
88. The method of claim 80 wherein the hairpin RNA is made with an RNA polymerase that can use a single-stranded promoter for transcription of RNA
89. The method of claim 88, wherein the RNA polymerase comprises a region encoding a polypeptide having an amino acid sequence set forth in SEQ ID NO:2, SEQ ID NO:4, SEQ ID NO:6, SEQ ID NO:8 or SEQ ID NO:15.
90. The method of claim 88, wherein the single-stranded promoter is an N4 vRNAP promoter set forth in SEQ ID NO:16, SEQ ID NO:19, SEQ ID NO:27, SEQ ID NO:28 or SEQ ID NO:29.
91. The method of claim 88 wherein the single-stranded promoter is a P2 sequence set forth in SEQ ID NO:16 or SEQ ID NO:28.
92. The method of claim 88, wherein the RNA polymerase comprises a polypeptide encoded by the nucleic acid sequence of SEQ ID NO:1, SEQ ID NO:3, SEQ ID NO:5, SEQ ID NO:7 or SEQ ID NO:14.
93. The method of claim 88 wherein the RNA polymerase comprises E. coli RNAP and the single-stranded promoter comprises a single-stranded pseudopromoter for E. coli RNAP.
94. The method of claim 88 wherein the RNA polymerase comprises T7-type RNAP and the single-stranded promoter comprises a single-stranded pseudopromoter for the T7-type RNAP.
95. The method of claim 88 wherein the RNA polymerase comprises T7 RNAP and the single-stranded promoter comprises a single-stranded pseudopromoter for T7 RNAP.
96. The method of claim 88, wherein the RNA polymerase comprises T3 RNAP and the single-stranded promoter comprises a single-stranded pseudopromoter for T3 RNAP.
97. The method of claim 88 wherein the RNA polymerase comprises SP6 RNAP and the single-stranded promoter comprises a single-stranded pseudopromoter for SP6 RNAP.
98. The method of claim 80 wherein the hairpin RNA is made in vitro.
99. The method of claim 80 wherein the hairpin RNA is made in vivo.
100. A method for attenuating expression of a target gene in a cell comprising introducing the hairpin RNA of claim 80 into the cell.
101. The method of claim 100 wherein the expression of a target gene in the cell is attenuated in vitro.
102. The method of claim 100 wherein the expression of the target gene in the cell is attenuated in vivo.
103. The method of claim 100, wherein the cell comprises a mammalian cell.
104. The method of claim 103, wherein the mammalian cell comprises a human cell.
105. A hairpin RNA made by the method of claim 80.
106. A cell comprising a hairpin RNA made by the method of claim 80.
107. A kit for making the hairpin of claim 80, the kit comprising an RNA polymerase that can use a single-stranded promoter for transcription of RNA and an oligonucleotide comprising a sequence corresponding to a single-stranded promoter sequence.
108. A method of cloning a target nucleic acid, the method comprising:
a) obtaining a single-stranded DNA wherein the single-stranded DNA comprises a target nucleic acid sequence that is present in or complementary to the target nucleic acid;
b) joining to the single-stranded DNA a single-stranded polynucleotide comprising a single-stranded origin of replication and a marker gene;
c) making a circular ssDNA molecule by covalently joining the 3-end and the 5-end of the product of step (b);
d) transforming the circular ssDNA molecule into a host cell, in which the marker gene is expressible, wherein the host cell is capable of replicating the circular ssDNA molecule; and
e) growing the host cell under conditions that support the expression of the marker gene.
109. The method of claim 108, wherein the target nucleic acid comprises an RNA target nucleic acid.
110. The method of claim 108, wherein the target nucleic acid comprises an mRNA target nucleic acid.
111. The method of claim 108, wherein the target nucleic acid sequence comprises an mRNA target nucleic acid that is full-length.
112. The method of claim 108, wherein the target nucleic acid comprises an mRNA target nucleic acid corresponding to substantially all mRNA within a sample.
113. The method of claim 108, wherein the target nucleic acid comprises a DNA target nucleic acid.
114. The method of claim 108, wherein the target nucleic acid comprises a target nucleic acid that is a product of an amplification reaction.
115. The method of claim 114 wherein the amplification reaction is selected from the group consisting of PCR, RT-PCR, NASBA, TMA, 3SR, LCR, LLA, SDA, RCA, Multiple Displacement Amplification, ICAN, UCAN, Loop-AMP, SPIA and Ribo-SPIA.
116. The method of claim 108 wherein the target nucleic is obtained by primer extension of a larger DNA target nucleic acid.
117. The method of claim 108 wherein the target nucleic acid is obtained by reverse transcriptase primer extension of at least one mRNA target nucleic acid.
118. The method of claim 108 wherein the target nucleic acid sequence is obtained by reverse transcriptase primer extension of substantially all mRNA target nucleic acids in a sample.
119. The method of claim 108, wherein the single-stranded polynucleotide comprising a single-stranded origin of replication and a marker gene are joined to the single-stranded DNA by using a promoter splice template oligo.
120. The method of claim 108, wherein the single-stranded polynucleotide comprising a single-stranded origin of replication and a marker gene are joined to the single-stranded DNA by using a promoter ligation oligo.
121. The method of claim 108, wherein the single-stranded origin of replication comprises an M13 origin of replication.
122. The method of claim 108, wherein the marker gene comprises an antibiotic-resistance gene.
123. The method of claim 108, wherein the marker gene comprises a beta-galactosidase gene.
124. The method of claim 108, wherein the single stranded polynucleotide comprises a transposon recognition sequence.
125. The method of claim 108, wherein the single-stranded polynucleotide comprises a site that can be recognized by a recombinase.
126. The method of claim 108, wherein the circular ssDNA molecule is made by using a ligase that catalyzes non-homologous intramolecular ligation.
127. The method of claim 126, wherein the ligase is ThermoPhage RNA Ligase II.
128. The method of claim 108, wherein the circular DNA molecule is made by DNA polymerase-catalyzed primer extension of a primer using the target nucleic acid as a template, followed by ligation of the 3-end of the primer extension product to the 5-end of the primer extension product, wherein the primer comprises a single-stranded origin of replication and a marker gene.
129. A method of constructing a nucleic acid library comprising clones of substantially all nucleic acids within a sample by using the method of claim 108.
130. The method of claim 108, wherein the single-stranded polynucleotide comprises a single-stranded promoter that binds a RNA polymerase that can transcribe RNA using a promoter that is single-stranded.
131. The method of claim 130, wherein the RNA polymerase comprises a region encoding a polypeptide having an amino acid sequence set forth in SEQ ID NO:2, SEQ ID NO:4, SEQ ID NO:6, SEQ ID NO:8 or SEQ ID NO:15.
132. The method of claim 130, wherein the single-stranded promoter is an N4 vRNAP promoter set forth in SEQ ID NO:16, SEQ ID NO: 19, SEQ ID NO:27, SEQ ID NO:28 or SEQ ID NO:29.
133. The method of claim 130 wherein the single-stranded promoter is a P2 sequence set forth in SEQ ID NO: 16 or SEQ ID NO:28.
134. The method of claim 130, wherein the RNA polymerase comprises a polypeptide encoded by the nucleic acid sequence of SEQ ID NO: 1, SEQ ID NO:3, SEQ ID NO:5, SEQ ID NO:7 or SEQ ID NO:14.
135. The method of claim 130 wherein the RNA polymerase comprises E. coli RNAP and the single-stranded promoter comprises a single-stranded pseudopromoter for E. coli RNAP.
136. The method of claim 130 wherein the RNA polymerase comprises T7-type RNAP and the single-stranded promoter comprises a single-stranded pseudopromoter for the T7-type RNAP.
137. The method of claim 130 wherein the RNA polymerase comprises T7 RNAP and the single-stranded promoter comprises a single-stranded pseudopromoter for T7 RNAP.
138. The method of claim 130, wherein the RNA polymerase comprises T3 RNAP and the single-stranded promoter comprises a single-stranded pseudopromoter for T3 RNAP.
139. The method of claim 130 wherein the RNA polymerase comprises SP6 RNAP and the single-stranded promoter comprises a single-stranded pseudopromoter for SP6 RNAP.
140. The method of claim 108, wherein the single-stranded polynucleotide comprises a single-stranded promoter that binds a RNA polymerase that can transcribe RNA using a promoter that is single-stranded and wherein the host cell comprises an expressible gene encoding an RNA polymerase that can transcribe RNA using the single-stranded promoter.
141. The method of claim 140, wherein the expressible gene is operably joined to an inducible promoter.
142. The method of claim 141, wherein the inducible promoter is selected from the group consisting of a bad promoter, a lac promoter, a trp promoter, a tac promoter and a lambda promoter.
143. A method of constructing a nucleic acid library comprising clones of substantially all nucleic acids within a sample by using the method of any one of claims 130 or 140.
144. A method of constructing a nucleic acid library comprising clones of substantially all mRNAs within a sample by using the method of any one of claims 130 or 140.
145. A composition comprising a clone made by using the method of any one of claims 108-144.
146. A composition comprising a nucleic acid library made by using the method of claim 129.
147. A host cell comprising a circular DNA molecule made by using the method of claim 108.
148. A circular DNA molecule made by using the method of claim 108.
149. A kit for performing the method of claim 108.
150. A method for detecting an analyte in a sample, the method comprising:
a) obtaining a transcription signaling system comprising a ssDNA comprising:
i) a promoter sequence that binds an RNA polymerase that can transcribe RNA using a single-stranded promoter, and
ii) a signal sequence that is operably joined to the promoter sequence;

b) joining the transcription signaling system to an analyte-binding substance;
c) contacting the analyte-binding substance to which the transcription signaling system is joined with a sample under conditions effective to allow binding of an analyte to the analyte-binding substance and forming a specific binding pair;
d) removing the specific binding pair from the sample;
e) incubating the specific-binding pair with an RNA polymerase that can transcribe RNA using a single-stranded promoter under conditions effective to allow synthesis of a transcription product; and
f) detecting the transcription product.
151. The method of claim 150, wherein the analyte is selected from the group consisting of a biochemical molecule, a biopolymer a protein, a glycoprotein, a lipoprotein, an enzyme, a hormone, a receptor, an antigen, an antibody, a nucleic acid, a DNA, an RNA, a polysaccharide and a lipid.
152. The method of claim 150 wherein the promoter sequence is an N4 vRNAP promoter sequence set forth in SEQ ID NO:16, SEQ ID NO:19, SEQ ID NO:27, SEQ ID NO:28 or SEQ ID NO:29.
153. The method of claim 150 wherein the promoter sequence is a P2 sequence set forth in SEQ ID NO:16 or SEQ ID NO:28.
154. The method of claim 150, wherein the RNA polymerase comprises a region encoding a polypeptide having an amino acid sequence set forth in SEQ ID NO:2, SEQ ID NO:4, SEQ ID NO:6, SEQ ID NO:8 or SEQ ID NO:15.
155. The method of claim 150, wherein the RNA polymerase comprises a polypeptide encoded by the nucleic acid sequence of SEQ ID NO:1, SEQ ID NO:3, SEQ ID NO:5, SEQ ID NO:7 or SEQ ID NO:14.
156. The method of claim 150 wherein the RNA polymerase comprises E. coli RNAP and the promoter sequence comprises a single-stranded pseudopromoter for E. coli RNAP.
157. The method of claim 150 wherein the RNA polymerase comprises T7-type RNAP and the promoter sequence comprises a single-stranded pseudopromoter for the T7-type RNAP.
158. The method of claim 150 wherein the RNA polymerase comprises T7 RNAP and the promoter sequence comprises a single-stranded pseudopromoter for T7 RNAP.
159. The method of claim 150, wherein the RNA polymerase comprises T3 RNAP and the promoter sequence comprises a single-stranded pseudopromoter for T3 RNAP.
160. The method of claim 150 wherein the RNA polymerase comprises SP6 RNAP and the promoter sequence comprises a single-stranded pseudopromoter for SP6 RNAP.
161. The method of claim 150 wherein the signal sequence comprises a substrate for Q-beta replicase.
162. The method of claim 150 wherein the signal sequence comprises a sequence that encodes a detectable protein.
163. The method of claim 162 wherein the detectable protein is green fluorescent protein.
164. The method of claim 150 wherein the signal sequence comprises a sequence that is detectable by a probe.
165. The method of claim 164 wherein the sequence that is detectable by a probe comprises a molecular beacon.
166. The method of claim 150, wherein the analyte-binding substance is selected from the group consisting of a nucleic acid, a polynucleotide, an oligonucleotide, a segment of a nucleic acid or polynucleotide, a DNA,an RNA, a molecule comprising both DNA and RNA mononucleosides, modified DNA mononucleosides, a molecule obtained by a method termed SELEX, a nucleic acid molecule having an affinity for protein molecules, a polynucleotide molecule having an affinity for protein molecules, an operator, a promoter, an origin of replication, a restriction endonuclease recognition sequence, a ribosomal nucleic acid sequence, a sequence recognized by steroid hormone-receptor complexes, a peptide nucleic acid (PAN), a nucleic acid and a PNA, a molecule prepared by using a combinatorial library of randomized peptide nucleic acids, an oligonucleotide or polynucleotide with a modified backbone that is not an amino acid, a molecule identified by using high throughput screening methods, lectin,a receptor for a hormone, a hormone, and an enzyme inhibitor.
167. The method of claim 150 wherein the binding of step (c) comprises non-covalent bonds.
168. The method of claim 167 wherein the non-covalent bonds comprise hydrogen-bonds.
169. The method of claim 167 wherein the non-covalent bonds comprise hydrophobic interactions.
170. The method of claim 167 wherein the non-covalent bonds comprise van der Waals forces.
171. The method of claim 167 wherein the non-covalent bonds comprise salt bridges.

The claims below are in addition to those above.
All refrences to claim(s) which appear below refer to the numbering after this setence.

1. canceled
2. canceled
3. canceled
4. A ball pick sphere constructed of rubber or other material that is 40 to 50 mm in diameter 45 mm being optimal secured by set screws with a center mounting hole located below the horizontal plane of the axel mounting locations on the frame allowing the sphere to extend beyond the forward outer channels of the frame exposing the ball pick sphere surface 180 degrees both longitudinally and laterally allowing for maximum available contact surface thus allowing the skater to achieve extreme angles required for certain spins, jumps, and footwork common in figure skating while protecting the frame.
5. The ball pick sphere may be reversed when worn, simply remove the ball pick sphere from the frame flip over and re-mount.
6. In a variation of claim 4 the ball pick sphere may have varied surface configurations to enhance the properties of grip and rebound.