1460940866-9f5d071b-b434-43f4-9c35-de0f56d61db6

1. A facial image-processing system comprising:
means for illuminating a face with multiple different light sources;
means for measuring range map data from said illuminating;
means for measuring image data from said illuminating;
means for deriving a 3-dimensional surface from the range map data;
means for computing surface normals to the 3-dimensional surface; and
means for processing the surface normals and the image data to derive an albedo map; and
means for applying a generic face template to the range map data to reject noise that is associated with the range map data.
2. The system of claim 1, wherein at least one of the light sources is polarized.
3. The system of claim 1, wherein all of the light sources are polarized.
4. The system of claim 1 further comprising means for filtering the range map data.
5. A facial image processing method comprising:
providing multiple different light sources, one of which providing structured light that can be projected onto the face of a subject, another of which providing light from which specularly-suppressed, diffuse reflectance data from the subject’s face can be ascertained;
providing a camera configured to capture structure and reflectance data from an illumination of the subject’s face with the multiple different light sources; and
providing a computerized image processor configured to process the structure and reflectance data to provide an albedo map that describes specular-suppressed diffuse reflectance properties of the subject’s face and dimensional data that describes dimensional aspects of the subject’s face, wherein the computerized image processor filters the range map data by applying a generic face template to the data.
6. The method of claim 5, wherein said providing a computerized image processor provides a computerized image processor that is configured to:
measure range map data;
compute a 3-dimensional surface from the range map data;
compute surface normals to the 3-dimensional surface; and
derive the albedo map from the surface normals and the reflectance data.
7. The method of claim 6, wherein said providing a computerized image processor provides a computerized image processor that is configured to filter the range map data prior to deriving the 3-dimensional surface.
8. A facial image-processing system comprising:
one or more processors;
one or more computer-readable media;
computer-readable instructions on the one or more computer-readable media which, when executed by the one or more processors, cause the one or more processors to execute a method comprising:
illuminating a face with multiple different light sources;
measuring range map data from said illuminating;
measuring image data from said illuminating;
deriving a 3-dimensional surface from the range map data;
computing surface normals to the 3-dimensional surface; and
processing the surface normals and the image data to derive an albedo map; and
applying a generic face template to the range map data to reject noise that is associated with the range map data.
9. The system of claim 8, wherein at least one of the light sources is polarized.
10. The system of claim 8, wherein all of the light sources are polarized.
11. The system of claim 8, wherein the method further comprises filtering the range map data.

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. A method of electrically inducing osteogenesis in the spine of a patient, comprising the steps of:
placing a pair of electrodes on respective sides of the patient’s spine; and
applying at least one of a first electrical signal to the pair of electrodes when the pair of electrodes is placed in a treatment area of the lumbar region of the patient’s spine, a second electrical signal to the pair of electrodes when the pair of electrodes is placed in a treatment area of the thoracic region of the patient’s spine, and a third electrical signal to the pair of electrodes when the pair of electrodes is placed in a treatment area of the cervical region of the patient’s spine, wherein the first, second, and third electrical signals are each effective to induce osteogenesis in the respective treatment areas of the patient’s spine, and wherein the first, second, and third electrical signals respectively generate different electrode currents in the respective treatment areas.
2. The method of claim 1, wherein a pair of electrodes is placed on respective sides of the patient’s spine in each of the lumbar, thoracic and cervical regions of the patient’s spine and wherein the first, second and third electrical signals are simultaneously applied to the respective electrodes in the respective treatment areas to create current densities that are approximately equal in the respective treatment areas.
3. The method of claim 1, wherein the electrodes are placed on the patient’s skin.
4. The method of claim 1, wherein the electrodes comprise respective pairs of electrodes placed in each of said treatment areas in said placing step.
5. The method of claim 1, wherein the electrodes comprise respective strip electrodes each placed in said placing step so as to run vertically along the back on respective sides of the patient’s spine.
6. The method of claim 1, wherein a current stimulated by the first electrical signal is greater than the current stimulated by the second electrical signal, and the current stimulated by the second electrical signal is greater than the current stimulated by the third electrical signal.
7. The method of claim 6, wherein the current stimulated by the second electrical signal is approximately \u2154 the current stimulated by the first electrical signal, and the current stimulated by the third electrical signal is approximately \u2154 the current stimulated by the second electrical signal.
8. The method of claim 7, wherein the electrode current stimulated by the first electrical signal is in the current range of 7\u201310 mA, the electrode current stimulated by the second electrical signal is in the current range of 4.7\u20136.7 mA, and the electrode current stimulated by the third electrical signal is in the current range of 3.1\u20134.5 mA.
9. A device for electrically inducing osteogenesis in the spine of a patient, comprising:
a pair of electrodes adapted for application on respective sides of the patient’s spine in respective treatment regions of the patient’s spine; and
a power source that is adapted to selectively apply a first electrical signal to the electrode pair when applied in a treatment area of the lumbar region of the patient’s spine, a second electrical signal to the electrode pair when applied in a treatment area of the thoracic region of the patient’s spine, and a third electrical signal to the electrode pair when placed in a treatment area of the cervical region of the patient’s spine, wherein the first, second, and third electrical signals are each effective to induce osteogenesis in the respective treatment areas of the patient’s spine and wherein the first, second, and third electrical signals respectively generate different electrode currents in the respective treatment areas.
10. The device of claim 9, wherein a pair of electrodes is placed on respective sides of the patient’s spine in each of the lumbar, thoracic and cervical regions of the patient’s spine and wherein the first, second and third electrical signals are simultaneously applied to the respective electrode pairs in the respective treatment areas by the power source to create current densities that are approximately equal in the respective treatment areas and such that all electrodes on one side of the patient’s spine are all positive while all electrodes on another side of the patient’s spine are all negative.
11. The device of claim 9, wherein the electrode pair is adapted to be attached to the patient’s skin and to apply the electrode currents to the patient’s spine through capacitive coupling.
12. The device of claim 9 wherein a current stimulated by the first electrical signal is greater than the current stimulated by the second electrical signal, and the current stimulated by the second electrical signal is greater than the current stimulated by the third electrical signal.
13. The device of claim 12, wherein the current stimulated by the second electrical signal is approximately \u2154 the current stimulated by the first electrical signal, and the current stimulated by the third electrical signal is approximately \u2154 the current stimulated by the second electrical signal.
14. The device of claim 13, wherein the electrode current stimulated by the first electrical signal is in the current range of 7\u201310 mA, the electrode current stimulated by the second electrical signal is in the current range of 4.7\u20136.7 mA, and the electrode current stimulated by the third electrical signal is in the current range of 3.1\u20134.5 mA.
15. The device of claim 9, wherein the power source generates said first, second and third electrical signals and said device further comprises at least one switch that selectively applies said first, second or third electrical signals to the electrode pair in accordance with the treatment area of the spine in which the electrode pair is placed.
16. The device of claim 15, further comprising respective plug-in ports for respective electrode pairs, each electrode pair controlled by a switch that is adjusted in accordance with the treatment area to which the electrode pair is to be applied.
17. A device for electrically inducing osteogenesis in the spine of a patient, comprising:
respective strip electrodes for application on either side of the patient’s spine so as to run vertically along the patient’s back on respective sides of the patient’s spine; and
a power source that selectively applies a first electrical signal to the strip electrodes when the strip electrodes are placed in a treatment area of the lumbar region of the patient’s spine, a second electrical signal to the strip electrodes when the strip electrodes are placed in a treatment area of the thoracic region of the patient’s spine, and a third electrical signal to the strip electrodes when the strip electrodes are placed in a treatment area of the cervical region of the patient’s spine, wherein the first, second, and third electrical signals are each effective to induce osteogenesis in the respective treatment areas of the patient’s spine, and wherein the first, second, and third electrical signals respectively generate different electrode currents in the respective treatment areas.
18. The device of claim 17, wherein the strip electrodes are arranged such that a selected amount of current for each respective treatment area is delivered to the strip electrodes such that every two-vertebra length of the strip electrodes in the respective treatment areas receives the selected amount of current for that respective treatment area.
19. The device of claim 18, wherein the strip electrodes are discontinuous and each two vertebra length of the strip electrodes receives one of the first, second and third electrical signals from the power source based on whether the two vertebra length is placed in the lumbar, thoracic, or cervical region, respectively, of the patient’s spine.
20. The device of claim 17, wherein the strip electrodes are arranged to be used in more than one region of the patient’s spine, each of said strip electrodes including a graded conductivity strip that causes voltage drops along the respective electrode strips so as to cause a decrease in voltage as the current moves along strip electrodes from the lumbar to the thoracic andor from the thoracic to the cervical regions of the patient’s spine.
21. The device of claim 17, wherein the strip electrodes are adapted to be attached to the patient’s skin and to apply the electrode currents to the patient’s spine through capacitive coupling.
22. The device of claim 17, wherein a current stimulated by the first electrical signal is greater than the current stimulated by the second electrical signal, and the current stimulated by the second electrical signal is greater than the current stimulated by the third electrical signal.
23. The device of claim 22, wherein the current stimulated by the second electrical signal is approximately \u2154 the current stimulated by the first electrical signal, and the current stimulated by the third electrical signal is approximately \u2154 the current stimulated by the second electrical signal.
24. The device of claim 23, wherein the electrode current stimulated by the first electrical signal is in the current range of 7\u201310 mA, the electrode current stimulated by the second electrical signal is in the current range of 4.7\u20136.7 mA, and the electrode current stimulated by the third electrical signal is in the current range of 3.1\u20134.5 mA.
25. The device of claim 17, wherein a separate pair of strip electrodes is provided for the lumbar, thoracic and cervical regions of the patient’s spine, the power source comprising respective ports and at least one switch that selectively applies said first, second or third electrical signals to said respective ports in accordance with the treatment area of the spine in which the respective electrode pairs are placed.