Claims
- 1. A processor-readable medium comprising processor-executable instructions for:
using calibration indicia to produce calibration data; marking a disk using a laser in a first position; deflecting the laser, from the first position into a second position, by applying an input according to the calibration data; and marking the disk using the laser in the second position.
- 2. A processor-readable medium as recited in claim 1, additionally comprising processor-executable instructions for:
marking a second disk, wherein the second disk does not have calibration indicia, using the calibration data.
- 3. A processor-readable medium comprising processor-executable instructions for:
sensing, with an optical sensor, reflection of a laser striking calibration indicia defined on an optical disk; correlating input used to deflect the laser with output of the optical sensor; and calibrating the input to result in laser deflection by a radial distance associated with a height of a pixel to be marked, thereby producing calibration data.
- 4. A processor-readable medium as recited in claim 3, additionally comprising processor-executable instructions for:
marking the optical disk using the laser in a first position; and deflecting the laser from the first position into a second position, by applying an input according to the calibration data; and marking the optical disk using the laser in the second position.
- 5. A processor-readable medium as recited in claim 3, additionally comprising processor-executable instructions for:
marking a second optical disk, wherein the second disk does not have calibration indicia, using the calibration data.
- 6. A processor-readable medium as recited in claim 3, wherein the calibrating additionally comprises processor-executable instructions for:
producing deflection vs. reflection information to correlate the input used to deflect the laser with reflection of the laser sensed by the optical sensor; and inferring the calibration data based on the deflection vs. reflection information.
- 7. A processor-readable medium as recited in claim 3, wherein the calibration additionally comprises processor-executable instructions for:
producing deflection vs. reflection information to correlate deflection of the laser as measured by reflection off non-annular elements in the calibration indicia and sensed by the optical sensor with the input used to deflect the laser; and inferring the calibration data based on the deflection vs. reflection information.
- 8. A processor-readable medium as recited in claim 3, wherein the calibrating comprises processor-executable instructions for:
determining a voltage to be applied to a tracking coil to result in deflection of the laser by a radial height of at least one annular row of pixels.
- 9. A processor-readable medium as recited in claim 3, additionally comprising processor-executable instructions for:
generating label data, through operation of a user interface, for marking on a surface of the optical disk by the laser; and mapping the label data according to a pixel resolution supported by the calibration data.
- 10. A processor-readable medium as recited in claim 3, additionally comprising processor-executable instructions for:
receiving label data, over a network, for marking on a surface of the optical disk by the laser; and mapping the label data according to a pixel resolution supported by the calibration data.
- 11. A processor-readable medium as recited in claim 3, additionally comprising processor-executable instructions for:
positioning a sled, carrying the laser and the optical sensor, near the calibration indicia; producing deflection vs. reflection information to correlate input used to deflect the laser with reflection sensed by the optical sensor and based on the calibration indicia; inferring the calibration data based the deflection vs. reflection information; determining a voltage to be applied to a tracking coil to result in deflection of the laser by a radial height of at least one annular row of pixels by analysis of the deflection vs. reflection information; obtaining label data for marking by the laser on a surface of the optical disk; mapping the label data according to a pixel resolution supported by the calibration data; advancing the sled to a label portion of the optical disk; marking the optical disk using the laser in a first position; deflecting the laser from the first position into a second position, by applying the voltage; marking the optical disk using the laser in the second position; and advancing the sled.
- 12. A method for printing on a rotating disk, comprising:
sensing a laser striking calibration indicia defined on the rotating disk; correlating an input used to deflect the laser with a deflection of the laser; and calibrating a first input used to deflect the laser by an amount required to mark a first annular ring of pixels and a second input used to deflect the laser by an amount required to mark a second annular ring of pixels.
- 13. The method as recited in claim 12, additionally comprising:
utilizing the first and second inputs, obtained when operating the rotating disk, to mark a second disk, not having calibration indicia.
- 14. The method as recited in claim 12, additionally comprising:
moving a sled carrying the laser and an optical sensor to a plurality of locations on the rotating disk; and at each of the plurality of locations, marking first and second annular rings of pixels using the first and second inputs to deflect the laser by first and second amounts.
- 15. A method as recited in claim 12, wherein the calibrating additionally comprises:
producing deflection vs. reflection information to correlate input used to deflect the laser with reflection sensed by an optical sensor; and inferring calibration data based on the deflection vs. reflection information.
- 16. A method as recited in claim 12, wherein the calibration additionally comprises:
producing deflection vs. reflection information to correlate input used to deflect the laser with laser reflection off non-annular elements in the calibration indicia sensed by the optical sensor; and inferring calibration data based on the deflection vs. reflection information.
- 17. A method as recited in claim 12, wherein the calibration additionally comprises:
determining first and second voltages to be applied to a tracking coil to result in deflection of the laser consistent with marking the first and the second annular rings of pixels.
- 18. A method, comprising:
configuring an optical disk, having an information side and a label side; coating a label region defined on the label side with a thermally reactive coating; and defining calibration indicia on the label side, wherein the calibration indicia are configured to allow production of calibration data comprising first and second inputs required to result in first and second laser deflections sufficient to mark first and second concentric rings of pixels within the label region.
- 19. The method as recited in claim 18, wherein the defining additionally comprises:
marking first and second concentric circles on the label side.
- 20. The method as recited in claim 18, wherein the defining additionally comprises:
marking a saw tooth pattern on the label side.
- 21. A disk labeling system, comprising:
a label design application to produce label data; a calibration module to associate a signal to deflect a laser with a response from a sensor tracking laser light reflected off calibration indicia, and to calculate calibration data comprising a deflection input required to deflect the laser by an amount of a radial height of a pixel to be marked on a label region of a disk; and a label burn application, to consume the label data and to associate pixels contained within the label data with the calibration data from the calibration module.
- 22. The disk labeling system of claim 21, additionally comprising:
a spindle controller to control disk speed, wherein the disk speed is governed in part by the calibration data, and wherein greater disk speed is associated with calibration data resulting in greater pixel density.
- 23. The disk labeling system of claim 21, additionally comprising:
a sled controller to control sled speed, wherein the sled speed is calculated to allow at least two deflection inputs to be applied to the laser before a sled position is incremented.
- 24. The disk labeling system of claim 21, additionally comprising:
a tracking coil to receive the deflection input, and to deflect the laser an amount calculated to allow an inner row of pixels to be applied adjacent to an outer row of pixels.
- 25. The disk labeling system of claim 21, wherein the deflection input is a voltage level applied to a tracking coil, and wherein the sensor tracking laser light is a focus sensor.
- 26. A processor-readable medium comprising processor-executable instructions for labeling a disk, the processor-executable instructions comprising instructions for:
producing label data according to user input; calibrating a signal to deflect a laser with a response from a sensor tracking laser light reflected off calibration indicia, wherein the calibrating comprises calculating an input required to deflect the laser by a radial height of a pixel to be marked on a label region of the disk; and marking the disk with the label data, wherein the input required to deflect the laser is used to mark pixels.
- 27. A processor-readable medium as recited in claim 26, wherein the calibrating comprises processor-executable instructions for:
sending a signal to a tracking coil to deflect the laser and receiving a signal from a focus sensor based on laser light reflected from the calibration indicia.
- 28. A processor-readable medium as recited in claim 26, additionally comprising processor-executable instructions for:
controlling disk speed as a function of calibration data, wherein greater disk speed is associated with calibration data resulting in greater pixel density.
- 29. A processor-readable medium as recited in claim 26, additionally comprising processor-executable instructions for:
controlling sled speed, wherein the sled speed is calculated to allow at least two deflection inputs to be applied to the laser before a sled position is incremented.
- 30. A processor-readable medium as recited in claim 26, additionally comprising processor-executable instructions for:
for a given sled position, applying a first voltage to a tracking coil to deflect the laser a first amount calculated to allow a first row of pixels to be applied to the disk, and applying a second voltage to the tracking coil to deflect the laser a second amount calculated to allow a second row of pixels to be applied to the disk, wherein calibration data, derived from the calibrating, comprises the first and second voltages.
- 31. A disk labeling system:
means for sensing, with an optical sensor, a laser striking calibration indicia defined on an optical disk; means for correlating input used to deflect the laser with output of the optical sensor; and means for calibrating the input to result in laser deflection by a radial distance associated with a height of a pixel to be marked, thereby producing calibration data.
- 32. The disk labeling system of claim 31, additionally comprising:
means for positioning a sled, carrying the laser and the optical sensor, near the calibration indicia.
- 33. The disk labeling system of claim 31, additionally comprising:
means for producing deflection vs. reflection information comprising exemplary voltage levels applied to a deflection coil and resulting deflection.
- 34. The disk labeling system of claim 31, additionally comprising:
means for producing deflection vs. reflection information to based on non-circular calibration indicia, and for deriving deflection inputs from the deflection vs. reflection information which result in generally circular rows of pixels.
- 35. The disk labeling system of claim 31, additionally comprising:
means for determining a voltage to be applied to a tracking coil to result in sufficient deflection by the laser to mark two rings of pixels without moving a sled supporting the laser.
- 36. The disk labeling system of claim 31, additionally comprising:
means for marking the optical disk using the laser in a first position; and means for deflecting the laser from the first position into a second position, by applying information in the calibration data; and means for marking the optical disk using the laser in the second position.
- 37. A disk labeling system:
means for sensing a laser striking calibration indicia defined on a rotating disk; means for correlating an input used to deflect the laser with an amount of deflection; and means for calibrating a first input used to deflect the laser by a first amount required to mark a first annular ring of pixels and a second input used to deflect the laser by a second amount required to mark a second annular ring of pixels.
- 38. The disk labeling system of claim 37, additionally comprising:
means for moving a sled carrying the laser and an optical sensor over a surface of the rotating disk; and means for marking first and second annular rings of pixels by deflecting the laser using the first and second inputs.
- 39. The disk labeling system of claim 37, wherein the means for calibrating additionally comprises:
means for producing deflection vs. reflection information; and means for selecting the first and second input using the deflection vs. reflection information.
- 40. The disk labeling system of claim 37, additionally comprising:
means for producing deflection vs. reflection information responsive to non-annular elements in the calibration indicia; and means for selecting the first and second input using the deflection vs. reflection information.
- 41. The disk labeling system of claim 37, wherein the means for calibrating additionally comprises:
means for determining first and second voltages to be applied to a tracking coil to result in deflection of the laser consistent with marking the first and the second annular rings of pixels.
- 42. A system, comprising:
a label design application to obtain label data; a calibration module to calculate inputs to a laser controller required to deflect a laser sufficiently to mark at least two rings of pixels on a disk without moving a sled supporting the laser; and an image-forming application to mark a disk with the label data, wherein the calculated inputs are used to deflect the laser during marking.
- 43. The system of claim 42, additionally comprising:
a tracking coil to deflect the laser according to the calculated inputs.
- 44. The system of claim 42, additionally comprising:
a tracking coil to deflect the laser by first and second amounts, calculated to mark first and second annular rings of pixels on the disk, in response to first and second inputs to the tracking coil.
- 45. The system of claim 42, additionally comprising:
a disk speed controller to control disk spindle speed, and to increase disk spindle speed in response to calibration data resulting in greater pixel density.
- 46. The system of claim 42, additionally comprising:
a sled controller to regulate sled movement to allow at least two inputs to be used to deflect the laser before a sled position is incremented.
- 47. A disk, comprising:
an information side and a label side; a label region, on the label side, coated with a thermally reactive material; and calibration indicia defined on the label side, wherein the calibration indicia are configured to allow production of calibration data.
- 48. The disk as recited in claim 48, wherein the calibration indicia comprises first and second concentric circles.
- 49. The disk as recited in claim 48, wherein the calibration indicia comprises a saw tooth pattern.
RELATED APPLICATIONS
[0001] This patent application is a continuation-in-part of an application filed 17 Jan. 2003 entitled “Radial Position Registration For A Trackless Optical Disc Surface” having Ser. No. 10/347,074.
Continuation in Parts (1)
|
Number |
Date |
Country |
Parent |
10347074 |
Jan 2003 |
US |
Child |
10423541 |
Apr 2003 |
US |