Claims
- 1. A method for reducing noise in a substance raw data image having substance and noise data which is associated to one detection microcavity and one substance is present in the detection microcavity of a microchannel structure of a microfluidic device, the substance raw data information obtained by use of a detector arrangement capable of scanning and collecting radiation data in a search area associated to a detection area, the collected radiation data are stored as measure data for the amount of the substance as substance raw data in a set in a data storage, said method comprises the step of:
reducing background radiation data either by use of a image comprising background radiation data and no substance data information, a background radiation image, or by use of a calculated median value of the background radiation data.
- 2. The method of claim 1, wherein the method further comprises the steps of:
accessing a background radiation image or generating a background radiation image; accessing corresponding substance raw data image or generating a substance raw data image; correlating the two images and generating a correlation image; locating the positions of the largest pixel values; and positioning the images correctly, subtracting corresponding pixel values and storing the generated background processed image.
- 3. The method of claim 1, wherein the method further comprises the steps of:
accessing corresponding substance raw data image or generating a background radiation image substance raw data image; determining a Median value for background radiation; and subtracting pixel values of substance raw data image with the median value contribution, and storing the background processed image.
- 4. The method of claim 1, wherein the method further comprises the step of reducing peak disturbances (Step β).
- 5. The method of claim 4, wherein the step of reducing peak disturbances (Step β) comprises the steps of:
generating a Laplacian processed image from the earlier stored image by using a Laplacian filter in two dimensions; calculating a disturbance threshold value from the earlier stored image; generating binary encoding Laplacian processed image by use of the disturbance threshold limit; finding the start points in clusters; determining a minimum rectangular area surrounding the start points; and calculating an interpolated value within each peak area and substituting the original data of the peaks, and storing the disturbance filtered image.
- 6. The method of claim 1, wherein the method further comprises the step of: determining a global threshold value.
- 7. The method of claim 6, wherein the step of determining a global threshold value comprises the steps of:
generating a y-summation graph; median filtering of the y-summation graph; determining center position of detection area; determining radial directed edges of detection area; generating a x-summation graph; median filtering of the x-summation graph; determining an edge curve; restraining disturbance peaks in the edge curve); determining the start and end positions of the detection area); determining a start value of the global threshold value; adjusting the global threshold value to the value giving correct detection area width; and generating a binary encoded disturbance filtered image by use of the global threshold value.
- 8. The method of claim 1, wherein the method further comprises the step of: removing binary objects outside the detection area.
- 9. The method of claim 8, wherein the step of removing binary objects outside the detection area comprises the steps of:
labeling of all the objects in the binary coded disturbance filtered image, wherein the number of connected pixels of each object is determined; and generating a binary detection area image by removing all but the largest objects that are inside the approximate detection area position.
- 10. The method of claim 1, wherein the method comprises the step of: removing unwanted areas of the detection area.
- 11. The method of claim 10, wherein the step of removing unwanted areas of the detection area comprises the steps of:
generating a normalized area image by setting all binary high indicated pixels outside the location of the normalized area to binary “low” in the binary detection area image; and multiplying each corresponding pixel in the disturbance filtered image, generated and stored earlier in the invented process, and the normalized area image with each other and performing the calculation on the normalized area.
- 12. The method of claim 1, wherein the method further comprises the step of: applying default detection area in noisy images.
- 13. The method of claim 12, wherein the step of applying default detection area in noisy images comprises the steps of:
saving automatically all detection area positions fulfilling high confidence criterion; calculating an average detection area position; and using automatically the average detection area position if one or more predetermined condition is fulfilled.
- 14. A method for determining a measure of at least one substance comprising the steps of:
(a) providing a microfluidic device and a detector arrangement, wherein said microfluidic device comprises a plurality of microchannel structures, each of which has an inlet port and a detection microcavity, and a plurality of detection areas, each of which is associated with one of said detection microcavities; and wherein said detector arrangement is capable of collecting radiation from individual subareas of each of said detection areas; (b) processing one or more liquid aliquots in at least one of said plurality of microchannel structures so that said substance is retained in the detection microcavity of each of said at least one of said plurality of microchannel structures; (c) scanning the detection areas associated with the detection microcavities that are part of microchannel structures in which step (b) has been carried out to obtain radiation from individual subareas (pixels) of each scanned detection area, said scanning being performed by the use of said detector arrangement; (d) integrating radiation as a function of subarea for each scanned detection area to obtain the amount of radiation from each detection area; and (e) characterizing for each of the amounts obtained in step (d) a reaction variable that has been included in the process protocol used for each microchannel structure.
- 15. The method of claim 14, wherein claim 1 is carried out in step (d).
- 16. The method of claim 15, wherein integration only is on a portion of each detection area, a normalized area.
- 17. A computer program product directly loadable into an internal memory storage of a processing unit within the computer means comprises the software code means for performing the step of claim 1.
- 18. A computer program product stored on a computer usable medium, comprising readable program for causing a processing unit in a computer means to control an execution of the method of claim 1.
- 19. The computer program product of claim 18, wherein the computer usable medium is a record medium.
- 20. The computer program product of claim 18, wherein the computer usable medium is a computer memory.
- 21. The computer program product of claim 18, wherein the computer usable medium is a read-only Memory.
- 22. The computer program product of claim 18, wherein the computer usable medium is an electrical carrier signal.
- 23. An arrangement for reducing noise in a substance raw data image of having substance and noise data which is associated to one detection microcavity and one substance retained in the detection microcavity of a microfluidic structure of a microfluidic device, the substance raw data information obtained by use of a detector arrangement capable of scanning and collecting radiation data in a search area associated to a detection area, which is associated to the detection microcavity, the collected radiation data are stored as measure data for the amount of the substance as substance raw data in a set in a data storage, the arrangement further comprises a processing unit for controlling the arrangement, the arrangement comprises:
means for reducing background radiation data either by use of an image comprising background radiation data and no substance data information or by use of a calculated median value of the background radiation data.
- 24. The arrangement of claim 23, wherein the arrangement further comprises:
means for accessing a background radiation image and means for generating a background radiation image; means for accessing corresponding substance raw data image and means for generating a substance raw data image; means for correlating the two images and generating a correlation image; means for locating the positions of the largest pixel values; and means for positioning the images correctly, means for subtracting corresponding pixel values and means for storing the generated background processed image.
- 25. The arrangement of claim 23, wherein the arrangement further comprises:
means for accessing corresponding substance raw data image and means for generating a background radiation image substance raw data image; means for determining a Median value for background radiation data; and means for subtracting pixel values of substance raw data image with the median value contribution, and means for storing the background processed image.
- 26. The arrangement of claim 23, wherein the arrangement further comprises means for reducing peak disturbances.
- 27. The arrangement of claim 26, wherein the means for reducing peak disturbances (Step β) comprises:
means for generating a Laplacian processed image from the earlier stored background processed image by using a Laplacian filter in two dimensions); means for calculating a disturbance threshold value from the background processed image; means for generating binary encoding Laplacian processed image by use of the disturbance threshold limit; means for finding the start points in clusters; means for determining a minimum rectangular area surrounding the start points; and means for calculating an interpolated value within each peak area and substituting the original data of the peaks, and storing the disturbance filtered image.
- 28. The arrangement of claim 23, wherein the arrangement further comprises means for determining a global threshold value.
- 29. The arrangement of claim 28, wherein means for determining a global threshold value comprises:
means for generating a y-summation graph; means for Median filtering of the y-summation graph; means for determining center position of detection area; means for determining radial directed edges of detection area; means for generating a x-summation graph; means for median filtering of the x-summation graph; means for determining an edge curve; means for restraining disturbance peaks in the edge curve; means for determining the start and end positions of the detection area; means for determining a start value of the global threshold value; means for adjusting the global threshold value to the value giving correct detection area width; and means for generating a binary encoded disturbance filtered image by use of the global threshold value.
- 30. The arrangement of claim 23, the arrangement further comprises means for removing binary objects outside the detection area.
- 31. The arrangement of claim 30, wherein the means for removing binary objects outside the detection area comprises:
means for labeling of all the objects in the binary coded disturbance filtered image, wherein the number of connected pixels of each object is determined; and means for generating a binary detection area image by removing all but the largest objects that are inside the approximate detection area position.
- 32. The arrangement of claim 23, wherein the arrangement comprises means for removing unwanted areas of the detection area.
- 33. The arrangement of claim 32, wherein the means for removing unwanted areas of the detection area comprises:
means for generating a normalized area image by setting all binary high indicated pixels outside the location of the normalized area to binary “low” in the binary detection area image; and means for multiplying each corresponding pixel in the disturbance filtered image, generated and stored earlier in the invented process, and the normalized area image with each other and perform the calculation on the normalized area.
- 34. The arrangement of claim 23, wherein the arrangement further comprises means for applying default detection area in noisy images.
- 35. The arrangement of claim 34, wherein the means for applying default detection area in noisy images comprises:
means for having automatically all detection area positions fulfilling high confidence criterion; means for calculating an average detection area position; and means for using automatically the average detection area position if one or more predetermined condition is fulfilled.
- 36. An arrangement for determining a measure of at least one substance, the arrangement comprises:
(a) a microfluidic device and a detector arrangement, wherein said microfluidic device comprises a plurality of microchannel structures, each of which has an inlet port and a detection microcavity, and a plurality of detection areas, each of which is associated with one of said detection microcavities; and wherein said detector arrangement is capable of collecting radiation from individual subareas of each of said detection areas; (b) means for integrating radiation as a function of subarea for each scanned detection area to obtain the amount of radiation from each detection area; and (c) means for characterizing for each of the amounts obtained in step (d) a reaction variable that has been included in the process protocol used for each microchannel structure.
- 37. The arrangement of claim 36, wherein means for integrating in step (b) further comprises the arrangement of claim 1.
- 38. The arrangement of claim 37, wherein the subarea in step d) is a normalized area.
Priority Claims (2)
Number |
Date |
Country |
Kind |
0104464-9 |
Dec 2001 |
SE |
|
PCT/SE02/01678 |
Oct 2002 |
WO |
|
Parent Case Info
[0001] This application claims priority to Swedish Application No. SE0104464-9 filed on Dec. 31, 2001, U.S. application Ser. No. 10/062,258 filed on Jan. 31, 2002 and International Application No. PCT/SE02/01678 filed on Sep. 17, 2002.