IP Library › Granted Patent US 8,923,954
Granted Patent B2
US 8,923,954 · App. 13/809,541 · Granted Dec 30, 2014

Three-dimensional thermal imaging for the detection of skin lesions and other natural and abnormal conditions

Inventor: Cila Herman (Towson, MD)
Assignee: The Johns Hopkins University
A61B5/015A61B5/4836A61B5/7246A61B5/444A61B5/0064A61B5/0075A61B5/441
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Quick Facts
Patent No.
US 8,923,954
App. No.
13/809,541
Granted
Dec 30, 2014
Kind
B2
Abstract

A thermal imaging system includes a data processing system and a geometrical scanning system constructed to communicate with the data processing system. The geometrical scanning system is adapted to scan at least a section of a surface of a subject under observation. The thermal imaging system also includes an infrared imaging system constructed to communicate with the data processing system. The infrared imaging system is adapted to image at least a portion of the section of the surface of the subject under observation. The data processing system is configured to receive data from the geometrical scanning system and to construct a surface map of the section of the surface of the subject under observation and to identify geometrical markers on the surface map based on the data from the geometrical scanning system. The data processing system is also configured to receive data from the infrared imaging system and to construct a thermal map of the portion of the section of the surface, to identify thermal markers on the thermal map based on the data from the infrared imaging system, and to register the thermal map to the surface map based on a correspondence between at least some of the geometrical and thermal markers. The data processor is configured to correct temperatures of the thermal map based on the surface map subsequent to the registering.

Claims (56)

1. A thermal imaging system, comprising:

a data processing system;

a geometrical scanning system constructed to communicate with said data processing system, said geometrical scanning system being adapted to scan at least a section of a surface of a subject under observation; and

an infrared imaging system constructed to communicate with said data processing system, said infrared imaging system being adapted to image at least a portion of said section of said surface,

wherein said data processing system is configured to receive data from said geometrical scanning system and to construct a surface map of said section of said surface of said subject under observation and to identify geometrical markers on said surface map based on said data from said geometrical scanning system,

wherein said data processing system is configured to receive data from said infrared imaging system and to construct a thermal map of said portion of said section of said surface, to identify thermal markers on said thermal map based on said data from said infrared imaging system, and to register said thermal map to said surface map based on a correspondence between at least some of said geometrical and thermal markers, and

wherein said data processor is configured to correct temperatures of said thermal map based on said surface map subsequent to said registering.

2. The thermal imaging system according to claim 1 , wherein said geometrical scanning system and said thermal imaging system each have a resolution of at least 0.25 mm×0.25 mm.

3. The thermal imaging system according to claim 1 , wherein said thermal imaging system has a temperature sensitivity of at least 0.025° K.

4. The thermal imaging system according to claim 1 , further comprising a thermal stimulation system arranged to thermally stimulate at least a portion of said section of said surface of said subject under observation.

5. The thermal imaging system according to claim 4 , wherein said data processing system is configured to receive data from said infrared imaging system at a plurality of times including at least one time prior to and at least one time subsequent to a thermal stimulation from said thermal stimulation system, said data processing system being configured to construct a plurality of thermal maps of said portion of said section of said surface corresponding to each of said plurality of times and to register each of said plurality of thermal maps to a corresponding surface map, and

wherein said data processor is configured to correct temperatures of each of said plurality of thermal maps based on said corresponding surface map subsequent to said registering.

6. The thermal imaging system according to claim 5 , wherein each surface map corresponding to each of said plurality of thermal maps is the same surface map.

7. The thermal imaging system according to claim 5 , wherein at least one surface map corresponding to one of said plurality of thermal maps is corrected for motion of said subject.

8. The thermal imaging system according to claim 5 , wherein said data processor is further configured to process said plurality of thermal maps to identify regions having abnormalities in thermal response.

9. The thermal imaging system according to claim 8 , wherein said data processor is further configured to process said plurality of thermal maps using a thermodynamic model to identify regions having abnormalities in thermal response.

10. The thermal imaging system according to claim 9 , wherein said thermodynamic model comprises a three-dimensional model of a section of said subject's body.

11. The thermal imaging system according to claim 9 , wherein said thermodynamic model further comprises a thermodynamic model of melanoma.

12. The thermal imaging system according to claim 1 , wherein said geometrical scanning system is adapted to scan one of a front or back half of said subject under observation, and said infrared imaging system is adapted to image one of a front or back half of said subject under observation to provide a half-body thermal imaging system.

13. The thermal imaging system according to claim 1 , wherein said geometrical scanning system is adapted to scan substantially a full body of said subject under observation, and said infrared imaging system is adapted to image said substantially full body of said subject under observation to provide a full-body thermal imaging system.

14. A method of processing thermal imaging data, comprising:

receiving data from a geometrical scanning system taken from a scan of at least a section of a surface of a subject under observation;

receiving data from an infrared imaging system for at least a portion of said section of said surface;

constructing a surface map of said section of said surface of said subject under observation and identifying geometrical markers on said surface map based on said data from said geometrical scanning system;

constructing a thermal map of said portion of said section of said surface, identifying thermal markers on said thermal map based on said data from said infrared imaging system, and registering said thermal map to said surface map based on a correspondence between at least some of said geometrical and thermal markers; and

correcting temperatures of said thermal map based on said surface map subsequent to said registering said thermal map to said surface map.

15. The method of processing thermal imaging data according to claim 14 , further comprising receiving data from a thermal stimulation system arranged to thermally stimulate at least a portion of said section of said surface of said subject under observation.

16. The method of processing thermal imaging data according to claim 15 , further comprising:

receiving data from said infrared imaging system at a plurality of times including at least one time prior to and at least one time subsequent to a thermal stimulation from said thermal stimulation system;

constructing a plurality of thermal maps of said portion of said section of said surface corresponding to each of said plurality of times;

registering each of said plurality of thermal maps to a corresponding surface map; and

correcting temperatures of each of said plurality of thermal maps based on said corresponding surface map subsequent to said registering.

17. The method of processing thermal imaging data according to claim 16 , wherein each surface map corresponding to each of said plurality of thermal maps is the same surface map.

18. The method of processing thermal imaging data according to claim 16 , wherein at least one surface map corresponding to one of said plurality of thermal maps is corrected for motion of said subject.

19. The method of processing thermal imaging data according to claim 16 , further comprising processing said plurality of thermal maps to identify regions having abnormalities in thermal response.

20. The method of processing thermal imaging data according to claim 19 , further comprising processing said plurality of thermal maps using a thermodynamic model to identify regions having abnormalities in thermal response.

21. The method of processing thermal imaging data according to claim 20 , wherein said thermodynamic model comprises a three-dimensional model of a section of said subject's body.

22. The method of processing thermal imaging data according to claim 20 , wherein said thermodynamic model further comprises a thermodynamic model of melanoma.

23. A non-transitory computer readable medium comprising software, which software, when executed by a computer, causes the computer to:

receive data from a geometrical scanning system taken from a scan of at least a section of a surface of a subject under observation;

receive data from an infrared imaging system for at least a portion of said section of said surface;

construct a surface map of said section of said surface of said subject under observation and identify geometrical markers on said surface map based on said data from said geometrical scanning system;

construct a thermal map of said portion of said section of said surface, identify thermal markers on said thermal map based on said data from said infrared imaging system, and register said thermal map to said surface map based on a correspondence between at least some of said geometrical and thermal markers; and

correct temperatures of said thermal map based on said surface map subsequent to said registering said thermal map to said surface map.

24. The computer readable medium according to claim 23 , which software, when executed by a computer, further causes the computer to receive data from a thermal stimulation system arranged to thermally stimulate at least a portion of said section of said surface of said subject under observation.

25. The computer readable medium according to claim 24 , which software, when executed by a computer, further causes the computer to:

receive data from said infrared imaging system at a plurality of times including at least one time prior to and at least one time subsequent to a thermal stimulation from said thermal stimulation system;

construct a plurality of thermal maps of said portion of said section of said surface corresponding to each of said plurality of times;

register each of said plurality of thermal maps to a corresponding surface map; and

correct temperatures of each of said plurality of thermal maps based on said corresponding surface map subsequent to said registering.

26. The computer readable medium according to claim 25 , wherein each surface map corresponding to each of said plurality of thermal maps is the same surface map.

27. The computer readable medium according to claim 25 , wherein at least one surface map corresponding to one of said plurality of thermal maps is corrected for motion of said subject.

28. The computer readable medium according to claim 25 , which software, when executed by a computer, further causes the computer to process said plurality of thermal maps to identify regions having abnormalities in thermal response.

29. The computer readable medium according to claim 28 , which software, when executed by a computer, further causes the computer to process said plurality of thermal maps using a thermodynamic model to identify regions having abnormalities in thermal response.

30. The computer readable medium according to claim 29 , wherein said thermodynamic model comprises a three-dimensional model of a section of said subject's body.

31. The computer readable medium according to claim 29 , wherein said thermodynamic model further comprises a thermodynamic model of melanoma.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 5, 2013
From: HERMAN, CILA
To: THE JOHNS HOPKINS UNIVERSITY
Reel/Frame 029758/0702 →
Continuity (2)
Provisional Application 61363466 · Jul 12, 2010
Related Publication 20130116573A1 · May 9, 2013