Claims
- 1. A light shape altering device, comprising:
a memory, storing information indicative of at least one light shape to shape a perimeter of a light beam to be projected; and a control system, producing a control signal indicative of said one of said shapes, and producing said control signal as an output in a format to control a digitally controllable light shape altering device.
- 2. A device as in claim 1, said memory stores a plurality of said light shapes, and where said control system selects one of said plurality of light shapes from said memory, as a shape of the light beam to be projected.
- 3. A device as in claim 1, wherein said control system also allows effects processing on said shape.
- 4. A device as in claim 1, wherein said control signal is in a form that controls a projection of light using a digital micromirror device.
- 5. A device as in claim 1, wherein said plurality of light shapes are stored in said memory in a compressed form.
- 6. A device as in claim 1, wherein said plurality of light shapes are stored in said memory in a vectorized form.
- 7. A device as in claim 1, wherein said plurality of light shapes represent moving light shapes.
- 8. A device as in claim 1, wherein said memory stores a light shape indicative of two unconnected light shape parts.
- 9. A device as in claim 1 wherein said control system is operable to change some aspect of the image over time.
- 10. A device as in claim 9, wherein said control system controls on amount of movement of said image and an amount of time that said amount of movement will take.
- 11. A device as in claim 9, wherein said aspect of said image that is moved is a position of said image.
- 12. A device as in claim 9, wherein said aspect of said image that is moved is a rotation of said image.
- 13. A device as in claim 10, wherein said control system controls a velocity of movement of said image.
- 14. A device as in claim 1, wherein said control system produces a first control signal indicative of a shape for a first primary color, a second control signal indicative of a shape for a second primary color, and a third control signal indicative of a shape for a third primary color.
- 15. A device as in claim 5, wherein said first, second and third primary colors are red and green and blue.
- 16. A device as in claim 1, wherein said control system produces said control signal with a duty cycle to cause dimming of the image.
- 17. A device as in claim 1, further comprising a light source of high-intensity greater than 600 watts.
- 18. A lighting controller, comprising:
a memory, storing an image in a computer readable format; a processor, reading said image from said memory, allowing changing of an aspect of said image and producing an output signal indicative of said image as a signal indicative of a shape of a light beam to be projected.
- 19. A lighting controller as in claim 18, wherein said processor allows changing a rotational orientation of said image.
- 20. A lighting controller as in claim 19, wherein said processor changes said rotational orientation overtime, thereby rotating said image.
- 21. A lighting controller as in claim 18, wherein said memory stores a plurality of said images.
- 22. A lighting controller as in claim 18, wherein said processor allows changing a position of said image.
- 23. A lighting controller as in claim 22, wherein said processor changes of position of said image at a specified velocity.
- 24. A lighting controller as in claim 18, wherein said processor is further operative to convert an image from a first format stored in said memory into a second format for processing.
- 25. A controller as in claim 24, wherein said first format stored in said memory is a compressed format, and said second format is an uncompressed format.
- 26. A controller as in claim 18, wherein said processor further enables image manipulation of said image, followed by using the manipulated image to project a new shapes light beam.
- 27. A controller as in claim 26, wherein said processor manipulates said image to effect edges of the image.
- 28. A controller as in claim 26, wherein said processor manipulates said image to change a shape of an image over time.
- 29. A controller as in claim 26, wherein said processor manipulates said image to change an intensity of said image.
- 30. A controller as in claim 29, wherein said processor changes a duty cycle of image projection.
- 31. A controller as in claim 18, wherein said aspect of said image that is changed includes morphing from a first image to a second image.
- 32. A controller as in claim 18, wherein said aspect of said image that is changed includes an outer shape of said image.
- 33. A controller as in claim 18, wherein said processor changes a said shape at a specified time frame.
- 34. A controller as in claim 33, wherein said time frame defines an interval of image changes, and changes said image by a specified amount at each interval.
- 35. A controller as in claim 34, wherein said interval moves said image by more than one pixel at each interval.
- 36. A lighting controller, comprising:
a memory, storing at least a plurality of images representing a plurality of shapes of light beam production; a user interface, allowing selecting one of said plurality of shapes to use to shape an outer perimeter of a light beam and to select a change to be made to said outer perimeter and at a speed of making said change; and a processor, which operates to change the outer shape of said image according to a selection done by said user interface and producing an output signal indicative of an outer perimeter of a light beam to be projected.
- 37. A controller as in claim 36, wherein said changing comprises determining an amount of movement to carry out at each of a plurality of time intervals, and changing said output signal at each of said plurality of time intervals.
- 38. A controller as in claim 36, wherein said time intervals are an amount of time effective to avoid perception of jerky motion.
- 39. A controller as in claim 36, wherein said processor operates to change a total motion into a plurality of different motions along the desired path, and to produce changed output signals at different times indicative of said different positions along the path.
- 40. A controller as in claim 36, wherein said change the outer shape comprises morphing between a first image and a second image.
- 41. A controller as in claim 40, wherein said morphing occurs at a specified velocity.
- 42. A controller as in claim 40, wherein said change the outer shape comprises rotating the image.
- 43. A controller as in claim 40, wherein said change the outer shape comprises carrying out a special effect on the image.
- 44. A controller as in claim 36 wherein said processor is operative to convert an image representation from said memory into another format used for controlling the outer shape of the image.
- 45. A controller as in claim 44, wherein said memory stores said plurality of images in a compressed form.
- 46. A controller as in claim 44, wherein said memory stores said plurality of images in a compressed form, and said processor is operative to convert said images into an uncompressed form.
- 47. A lighting control system, comprising:
a memory, storing an image representing a shape of a light beam to be projected; and a processor, converting said image into a map representing states of elements of the digital light reflecting device, and producing an output signal to control said digital light reflecting device to project said light beam of said shape.
- 48. A system as in claim 47, wherein said memory stores of plurality of said light shapes.
- 49. A system as in claim 47, wherein said memory stores said image in a compressed format.
- 50. A system as in claim 49, wherein said processor converts said image from said compressed format to said map which represents an uncompressed format.
- 51. A system as in claim 47, wherein said processor also is operative to rotate said map to rotate the shape of the light beam being projected.
- 52. A system as in claim 47, wherein said processor also is operative to move said map to move the position of the shape of the light enough being projected.
- 53. A system as in claim wherein said processor is operative to change a duty cycle of states of elements of the digital light reflecting device to thereby change a brightness of the image being projected.
- 54. A system, comprising:
an image memory, storing at least one image; a user interface, producing an output indicative of an image representing an aspect of light projection and a position of said light projection; and a processor, receiving said output from said user interface, and producing an output signal of a form that controls a digital micrometer device to produce said image at said position.
- 55. A system as in claim 54, wherein said user interface controls at least a shape of light beam being projected, and a speed of change of said shape.
- 56. A lighting system, comprising
a memory, storing at least one compressed image; and a computer part, producing an output indicative of said at least one compressed image, said computer part operable to produce an output indicative of said at least one compressed image in a form that controls a digital light shape altering device.
- 57. A system as in claim 56, wherein said computer part includes software for morphing between a first of said compressed images and a second of said compressed images.
- 58. A method, comprising:
selecting a shape to be used as a shape for projecting a beam of light, and producing a control signal indicative thereof; and using said control signal to control a digital light shape altering device which produces a projected beam having a shape that is based on said control signal.
- 59. A method as in claim 58, wherein said using comprises using said control signal to control a digital micromirror device.
- 60. A method as in claim 58, further comprising selecting an additional aspect of a beam of light, wherein said control signal is also indicative of said additional aspect, and said using comprises using said control signal to control said digital light shape altering device to produce said beam that is also indicative of said additional aspect.
- 61. A method as in claim 58, wherein said using comprises using said control signal to control said digital light altering device to shape form a colored beam.
- 62. A method as in claim 60, wherein said selecting an additional aspect comprises selecting a rotation of the shape used for projecting the beam of light, said control signal at a specified being indicative of said shape at any time during the rotation.
- 63. A method as in claim 58, further comprising image processing said shape to produce a control signal based on an image processed shape.
- 64. A method as in claim 63, wherein said image processing comprises processing an edge of a shape to form an effect on said edge of said beam of light.
- 65. A method as in claim 63, wherein said image processing comprises processing said shape to rotate said shape.
- 66. A method as in claim 63, further comprising selecting a second shape, and wherein said image processing comprises morphing the beam of light from said shape to said second shape.
- 67. A method as in claim 63, wherein said image processing comprises duty cycle processing said shape to duty cycle process the beam of light.
- 68. A method as in claim 64, wherein said effect comprises graying of an edge of said shape by a specified amount to corresponding by gray and edge of said beam of light.
- 69. A method as in claim 67, wherein said duty cycle processing comprises changing an entire part of the shape to effect an effective perceived brightness of the projected beam.
- 70. A method as in claim 67, wherein said duty cycle processing comprises forming a stroboscopic effect on the projected beam.
- 71. A method as in claim 63, wherein said duty cycle processing comprises stretching some part of an outline defined by said projected beam.
- 72. A method as in claim 63, wherein said image processing comprises processing said image to change a position of said projected beam.
- 73. A method as in claim 63, wherein said image processing comprises determining a new shape to be used in a display of a new projected beam, and selecting a speed with which a current beam will be changed to the new shape of the new projected beam.
- 74. A method as in claim 73, wherein said speed comprises a rate at which the image will appear to move between the projected beam and the new projected beam.
- 75. A method as in claim 74, further comprising updating the shape at specified intervals, and changing the content of the beam shape by a specified amount, related to said rate, at each of said specified intervals.
- 76. A method as in claim on 63, wherein said image processing comprises correlating the image against a reference.
- 77. A method as in claim 63, wherein said image processing comprises cross fading between a first image shape used for projecting the beam, and a second image shape used for projecting the beam at another time.
- 78. A method as in claim 63, wherein said image processing comprises dynamically controlling the image shape to dynamically control the shape of the beam.
- 79. A method as in claim 58, wherein said selecting a shape comprises reading a digital file indicative of a selected shape from a memory, and converting said digital file into a map representing an array of pixels, said map having values for each of a plurality of pixels, which values represents states of said each pixel.
- 80. A method as in claim 79, wherein said map includes multiple color values for each of said pixels of said array.
- 81. A method, comprising:
using a digital device to produce a first color shape at a first time, and to produce a second color shape at a second time, where an interval between said first and second times is shorter than a human's persistence of vision; and projecting a composite color beam that is based on a combination of said first color shape at said first time, and said second color shape at said second time, wherein said composite color beam has an outer shape that is controlled by said first and second color shapes.
- 82. A method as in claim 81, wherein said first and second colors are primary colors.
- 83. A method as in claim 81, further comprising producing a third color shape at a third time, wherein said first second and third times are sufficiently close to be within said persistence of vision, and said composite color beam is shaped based on said first, second and third color images.
- 84. A method as in claim 83, wherein said first, second and third colors are primary colors.
- 85. A method as in claim 81, wherein said projecting comprises using a rotating color wheel whose rotation is synchronized with said projecting.
- 86. A method as in claim 81, further comprising image processing to produce said first and second shapes based on an image processed shapes.
- 87. A method as in claim 86, wherein said image processing comprises processing an edge of said shapes to form an effect on said edge of said shapes.
- 88. A method as in claim 86, wherein said image processing comprises processing said shapes to rotate said composite shape.
- 89. A method as in claim 86, further comprising morphing from said composite shape to another shape.
- 90. A method as in claim 86, wherein said image processing comprises duty cycle processing of the composite shape.
- 91. A method as in claim 90, wherein said duty cycle processing comprises changing the projected composite beam to effect and effective perceived brightness of the projected beam.
- 92. A method as in claim 90, wherein said duty cycle processing comprises forming a stroboscopic effect on the projected composite beam.
- 93. A method as in claim 91, wherein said duty cycle processing comprises stretching some part of an outline defining by said projected composite beam.
- 94. A method as in claim 91, wherein said image processing comprises changing a position of said projected composite beam.
- 95. A method as in claim 91, wherein said image processing comprises determining a new shape to be used in a display of a new projected composite beam, and selecting a speed with which a current beam will be changed to the new projected composite beam.
- 96. A method as in claim 95, wherein said speed comprises a rate at which the image will appear to move between the projected composite beam and the new projected beam.
- 97. A method as in claim 96, further comprising updating the beam shape at specified intervals, and changing the content of the beam shape by a specified amount, related to said rate, at each of said specified intervals.
- 98. A method as in claim 86, wherein said image processing comprises correlating against a reference to determine said shapes.
- 99. A method as in claim 86, wherein said image processing comprises cross fading between a first image shape used for projecting the beam, and a second image shape used for projecting the beam.
- 100. A method as in claim 81, wherein said first and second color shapes are formed by reading a digital file indicative of a selected shape from a memory, and converting said digital file into a map representing an array of pixels, said map having a value for each of a plurality of pixels, which value represents a state of said each pixel.
- 101. A method as in claim 79, wherein said map includes multiple color values for each of said pixels of said array respectively used for said first and second color shapes.
- 102. A method comprising:
selecting an image to be used as a shape for a projection spot; image processing said image to change some aspect of said image to produce an image processed image; and producing an output signal indicative of a shape of said image processed image, said output signal in a format to control a digital light shape altering device.
- 103. A method as in claim 102, wherein said using comprises producing an output signal in a format to control a circuit containing a digital micromirror device.
- 104. A method as in claim 102, further comprising using said output signal to control said digital light shape altering device to produce a projection spot in a shape based on said image as modified by said image processing.
- 105. A method as in claim 102, further comprising using said output signal to control a circuit including a digital micromirror device, to produce a projection spot based on said basic image as modified by said image processing.
- 106. A method as in claim 102, wherein said image processing comprises processing an edge of said image to form an effect on a shape of said projection spot.
- 107. A method as in claim 102, wherein said image processing comprises processing an image to rotate a shape of said projection spot.
- 108. A method as in claim 102, further comprising selecting a second image, and wherein said image processing comprises morphing a shape of said projection shape from a shape of said image to a shape of said second image.
- 109. A method as in claim 102, wherein said image processing comprises duty cycle processing the projection spot.
- 110. A method as in claim 102, wherein said effect comprises graying of an edge of said shape of said projection spot by a specified amount.
- 111. A method as in claim 109, wherein said duty cycle processing comprises changing the entire image to effect an effective perceived brightness of the projection spot.
- 112. A method as in claim 109, wherein said duty cycle processing comprises forming a stroboscopic effect on the projection spot.
- 113. A method as in claim 102, wherein said duty cycle processing comprises stretching some part of an outline defined by said shape.
- 114. A method as in claim 102, wherein said image processing comprises processing said image to change a position of said projection spot.
- 115. A method as in claim 102, wherein said image processing comprises determining a new image to be used as a display of a new projected beam shape, and selecting a speed with which a current beam shape will be changed to the new projected beam shape.
- 116. A method as in claim 115, wherein said speed comprises a rate at which the image will appear to move between the projected beam shape and the new projected beam shape.
- 117. A method as in claim 116, further comprising updating the shape at specified intervals, and changing the content of the shape by a specified amount, related to said rate, at each of said specified intervals.
- 118. A method as in claim on 102, wherein said image processing comprises correlating the image against a reference.
- 119. A method as in claim 102, wherein said image processing comprises cross fading between a first image shape used for projecting the beam, and a second image shape used for projecting the beam.
- 120. A method as in claim 102, wherein said image processing comprises dynamically controlling the image shape to dynamically control the shape of the beam.
- 121. A method as in claim 102, wherein said selecting a shape comprises reading a digital file indicative of a selected shape from a memory, and converting said digital file into a map representing an array of pixels, said map having a value for each of a plurality of pixels, which value represents a state of said each pixel.
- 122. A method as in claim 121, wherein said map includes multiple color values for each of said pixels of said array.
- 123. A method, comprising:
determining a first electronic file indicative of a first shape a light beam to be projected at a first time; determining a second electronic file indicative of a second shape of a second light beam to be projected at a second time, after said first time; determining interim files indicative of interim shapes between said first and second light shapes; and outputting said files to control said shapes of said light beams.
- 124. A method as in claim 123, further comprising using said files to control a digital light shape altering device, to produce said first and second shapes at said times.
- 125. A method as in claim 123, wherein said interim files are each produced at times which are sufficiently close together to prevent a user from perceiving uneven motion of the shapes.
- 126. A method as in claim 123, wherein said interim files are each produced to cause a maximum pixel shift of x, where x is a number of pixels selected to minimize a chance that a user will perceive uneven motion in the moving shape.
- 127. A method as in claim 126, wherein x is 100 pixels.
- 128. A method as in claim 123, wherein said first and second electronic files are representative of maps which represent on and off states of each of a plurality of pixels of an array of pixels.
- 129. A method as in claim 123, further comprising determining said second electronic file by image processing operation.
- 130. A method as in claim 124, further comprising processing an edge of said image to form an effect on said edge of said image.
- 131. A method as in claim 123, further comprising processing an image to rotate said image.
- 132. A method as in claim 123, wherein said interim files represent morphing from said first shape to said second shape.
- 133. A method as in claim 123, further comprising duty cycle processing the image.
- 134. A method as in claim 130, wherein said effect comprises graying an edge of said shape by a specified amount.
- 135. A method as in claim 133, wherein said duty cycle processing comprises changing the entire image to effect an effective perceived brightness of the image.
- 136. A method as in claim 133, wherein said duty cycle processing comprises forming a stroboscopic effect on the image.
- 137. A method as in claim 133, wherein said duty cycle processing comprises stretching some part of an outline defined by said shape.
- 138. A method as in claim 123, further comprising updating the shapes at specified intervals, and changing the content of the beam shape by a specified amount, related to said rate, at each of said specified intervals.
- 139. A method as in claim 123, further comprising cross fading between said first and second image shapes.
- 140. A method as in claim 123, wherein said image processing comprises dynamically controlling the image shape to dynamically control the shape of the beam.
- 141. A method as in claim 123, wherein said determining a shape comprises reading a digital file indicative of a selected shape from a memory, and converting said digital file into a map representing an array of pixels, said map having a value for each of a plurality of pixels, which value represents a state of said each pixel.
- 142. A method as in claim 137, wherein said map includes multiple color values for each of said pixels of said array.
- 143. A method, comprising:
reading a first electronic file indicative of a beam shape, for a beam of light, from a memory; forming a map from said compressed electronic file, said map indicative of states of an array of pixels of size x by y to form said beam shape; and outputting said map.
- 144. A method as in claim 143, further comprising using said map to control a digital light shape altering device.
- 145. A method as in claim 143, further comprising using said map to control a digital Micro mirror device.
- 146. A method as in claim 143, wherein said reading comprises reading a compressed electronic file, and said forming a map comprises forming said map using an uncompressed version of said first electronic file.
- 147. A method as in claim 146, wherein said forming a map comprises converting said first electronic file to a second format different then said first format.
- 148. A method as in claim 147, wherein said second format comprises a bit map format, where each of a plurality of pixels is represented by a plurality of bits.
- 149. A method as in claim 147, further comprising carrying out an image processing operation on said first electronic file to form and image processed file, and using said image processed file to form said map.
- 150. A method as in claim 149, wherein said image processing comprises processing an edge of an image represented by said first electronic file to form an effect on said edge of said image.
- 151. A method as in claim 149, wherein said image processing comprises processing an image represented by said first electronic file to rotate said image.
- 152. A method as in claim 149, further comprising selecting a second shape, and wherein said image processing comprises morphing from said beam shape to said second shape.
- 153. A method as in claim 149, wherein said image processing comprises duty cycle processing the image represented by said first electronic file.
- 154. A method as in claim 149, wherein said image processing comprises cross fading between a first image shape used for projecting the beam, and a second image shape used for projecting the beam.
- 155. A method as in claim 149, wherein said image processing comprises dynamically controlling the image shape to dynamically control the shape of the beam.
- 156. A method as in claim 143, wherein said selecting a shape comprises reading a digital file indicative of a selecting shape from a memory, and converting said digital file into a map representing an array of pixels, said map having a value for each of a plurality of pixels, which value represents a state of said each pixel.
- 157. A method as in claim 156, wherein said map includes multiple color values for each of said pixels of said array.
- 158. A method, comprising:
using a first file to form an output signal to control a digital light shape altering device to produce a first shape at a first time; at a second time, subsequent to said first time, recalculating a new image representing a desired incremental change in said shape and using said new image to control said digital light shape altering device, wherein said desired incremental change represents an incremental change between said first shape and a desired second shape to be produced at a second time after said first shape.
- 159. A method as in claim 158, further comprising selecting said second shape, and selecting a time associated with producing said second shape, and wherein said recalculating comprises recalculating an incremental part between said first shape and said second shape.
- 160. A method as in claim 159, further comprising selecting an action on said first file which action results in said second shape, and wherein said action includes an image processing action.
- 161. A method as in claim 160, wherein in said image processing action comprises processing an edge of an image to form an effect on said edge of said image.
- 162. A method as in claim 160, wherein said image processing action comprises processing an image to rotate said image.
- 163. A method as in claim 160, wherein said image processing comprises morphing from said image to said new image.
- 164. A method as in claim 160, wherein said image processing comprises duty cycle processing the image.
- 165. A method as in claim 164, wherein said duty cycle processing comprises changing the entire image to effect an effective perceived brightness of the image.
- 166. A method as in claim 158, further comprising updating a beam shape at specified intervals, and changing the content of the beam shape by a specified amount, related to said rate, at each of said specified intervals.
- 167. A method as in claim 158, wherein said incremental change is part of a cross fading a first image shape used for projecting the beam, and a second image shape used for projecting the beam.
- 168. A method as in claim 158, wherein said selecting a shape comprises reading a digital file indicative of a selecting shape from a memory, and converting said digital file into a map representing an array of pixels, said map having a value for each of a plurality of pixels, which value represents a state of said each pixel.
- 169. A method, comprising:
producing a beam of light to be used as a stage lighting beam, said beam of light having an intensity greater than 600 watts; filtering said beam of light using a filter that reflects at least some of its infrared energy; and digitally controlling and element in a path of said beam of light after said filtering to shape said beam of light according to said digitally controlling.
- 170. A method as in claim 169, wherein said filtering comprises using a cold mirror.
- 171. A method as in claim 169, wherein said digitally controlling an element comprises digitally controlling a digital micromirror device.
- 172. A method as in claim 169, wherein said digitally controlling comprises an image processing said shape to produce a control signal based on an image processed shape.
- 173. A method as in claim 172, wherein in said image processing comprises processing an edge of said shape to form an effect on said edge of said beam.
- 174. A method as in claim 172, wherein said image processing comprises processing an image to rotate said image.
- 175. A method as in claim 172, further comprising selecting a second shape, and wherein said image processing comprises morphing from said shape to said second shape.
- 176. A method as in claim 172, wherein said image processing comprises duty cycle processing the image.
- 177. A method as in claim 176, wherein said duty cycle processing comprises changing an entire image to effect an effective perceived brightness of the image.
- 178. A method as in claim 169, wherein said image processing comprises cross fading between a first image shape used for projecting the beam, and a second image shape used for projecting the beam.
- 179. A method as in claim 169, wherein said selecting a shape comprises reading a digital file indicative of a selected shape from a memory, and converting said digital file into a map representing an array of pixels, said map having a value for each of a plurality of pixels, which value represents a state of said each pixel.
- 180. A method as in claim 179, wherein said map includes multiple color values for each of said pixels of said array.
- 181. A method, comprising:
selecting a basic Aperture shape from a memory; converting said basic Aperture shape to a plurality of states, each representing a state of a pixel of an array; and producing and output signal indicative thereof.
- 182. A method as in claim 181, further comprising using said output signal to control a digital light shape altering device.
- 183. A method as in claim 181, further comprising using said output signal to control a digital Micromirror device.
- 184. A method as in claim 181, further comprising changing said Aperture shape according to an image processing operation.
- 185. A method, comprising:
displaying a beam of light in a specified and controlled shape; and digitally dimming said beam of light by adjusting a duty cycle between on and off times of said beam of light at a speed faster than human persistence of vision.
- 186. A method as in claim 185, further comprising controlling said shape of said beam of light such that light inside an outline is passed and light outside the outline is blocked.
- 187. A method as in claim 185, further comprising maintaining a map representing which of a plurality of pixels of an array are passed and which on said plurality of pixels are blocked.
- 188. A method as in claim 187, wherein said displaying comprises using a digital Micro mirror device to display said beam of light.
- 189. A method as in claim 185, further comprising changing said shape.
- 190. A method as in claim 189, wherein said changing said shape comprises changing said shape according to a specified image processing operation.
- 191. A method as in claim 190, wherein in said image processing comprises processing an edge of an image to form an effect on said edge of said image.
- 192. A method as in claim 190, wherein said image processing comprises processing an image to rotate said image.
- 193. A method as in claim 190, further comprising selecting a second shape, and wherein said image processing comprises morphing from said shape to said second shape.
- 194. A method as in claim 190, wherein said image processing comprises duty cycle processing the image.
- 195. A method as in claim 194, wherein said duty cycle processing comprises changing the entire image to effect an effective perceived brightness of the image.
- 196. A method as in claim 190, wherein said image processing comprises determining a new image to be used as in a display of a new projected beam, and selecting a speed with which a current beam will be changed to the new projected beam.
- 197. A method as in claim 196, wherein said speed comprises a rate at which the image will appear to move between the projected beam and the new projected beam.
- 198. A method as in claim 197, further comprising updating the beam shape at specified intervals, and changing the content of the beam shape by a specified amount, related to said rate, at each of said specified intervals.
- 199. A method as in claim 190, wherein said image processing comprises cross fading between a first image shape used for projecting the beam, and a second image shape used for projecting the beam.
- 200. A method as in claim 181, wherein said selecting a shape comprises reading a digital file indicative of a selecting shape from a memory, and converting said digital file into a map representing an array of pixels, said map having a value for each of a plurality of pixels, which value represents a state of said each pixel.
- 201. A method, comprising:
forming a beam of light in a shape that projects completely unconnected shapes of a type that cannot be formed using and etched metal Gobo.
- 202. A method as in claim 201, wherein said unconnected shapes include two concentric circles.
- 203. A method as in claim 201, wherein said forming comprises forming a first stencil outline for a first of said shapes and forming a second stencil outline for a second of said shapes.
- 204. A method as in claim 201, further comprising forming said shapes using an processing operation.
- 205. A method as in claim 201, wherein said forming a beam of light comprises reading a digital file indicative of a selected shape from a memory, and converting said digital file into a map representing an array of pixels, said map having a value for each of a plurality of pixels, which value represents a state of said each pixel.
- 206. A method as in claim 205, wherein said map includes multiple color values for each of said pixels of said array.
- 207. A method, comprising:
projecting a beam of light from a lighting device in a specified shape towards a target; detecting and/action which is occurring at the target; and changing said specified shape according to said action which is occurring.
- 208. A method as in claim 207, wherein said action comprises movement of a performer on a stage.
- 209. A method, comprising
projecting a beam of light from a lighting device in a specified shape towards a target; and updating said specified shape at least 30 times per second.
- 210. A method as in claim 209, wherein said specified shape is in a specified color.
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application is a continuation of U.S. application Ser. No. 09/928,220, filed Aug. 9, 2001, which is a continuation of U.S. application Ser. No. 09/359,064, filed Jul. 21, 1999, which is a divisional of U.S. application Ser. No. 08/962,237, filed Oct. 31, 1997, now U.S. Pat. No. 5,953,151, issued Sep. 14, 1999, which is a divisional of U.S. application Ser. No. 08/598,077, filed Feb. 7, 1996, now U.S. Pat. No. 5,828,485.
Divisions (2)
|
Number |
Date |
Country |
Parent |
08962237 |
Oct 1997 |
US |
Child |
09359064 |
Jul 1999 |
US |
Parent |
08598077 |
Feb 1996 |
US |
Child |
08962237 |
Oct 1997 |
US |
Continuations (2)
|
Number |
Date |
Country |
Parent |
09928220 |
Aug 2001 |
US |
Child |
10197963 |
Jul 2002 |
US |
Parent |
09359064 |
Jul 1999 |
US |
Child |
09928220 |
Aug 2001 |
US |