NON-INVASIVE METHOD AND SYSTEM FOR ASSESSING SURVIVAL OF TRANSPLANTED FLAP
20180008164 · 2018-01-11
Inventors
Cpc classification
A61B5/4848
HUMAN NECESSITIES
A61B5/7282
HUMAN NECESSITIES
International classification
A61B5/053
HUMAN NECESSITIES
Abstract
A non-invasive method and system for assessing the survival of a transplanted flap involve the following steps. A control unit instructs a variable-frequency current generator circuit to generate a constant current at a fixed frequency and pass the constant current through a detection electrode. The detection electrode detects a bioelectrical impedance of the skin to which the flap has been transplanted, and the bioelectrical impedance of the skin is compared with a pre-defined threshold value. If the bioelectrical impedance of the skin exceeds the pre-defined threshold value, it is determined that an abnormal condition has occurred.
Claims
1. A non-invasive method for assessing survival of a transplanted flap, comprising the steps of: A. generating a constant current at a fixed frequency, and passing the constant current through a detection electrode; B. detecting with the detection electrode a bioelectrical impedance of a skin with a transplanted flap; and C. comparing the bioelectrical impedance of the skin with the transplanted flap with a pre-defined threshold value, and if the bioelectrical impedance of the skin with the transplanted flap exceeds the pre-defined threshold value, determining that an abnormal condition has occurred.
2. The non-invasive method of claim 1, wherein the step C comprises subtracting a pre-transplantation bioelectrical impedance of the skin with the transplanted flap from a post-transplantation bioelectrical impedance of the skin with the transplanted flap to produce a difference, and if the difference exceeds a pre-defined threshold value, determining that the abnormal condition has occurred.
3. The non-invasive method of claim 1, wherein the step C comprises dividing a post-transplantation bioelectrical impedance of the skin with the transplanted flap that is detected with a current of a relatively low frequency by a post-transplantation bioelectrical impedance of the skin with the transplanted flap that is detected with a current of a relatively high frequency to produce a quotient, and if the quotient exceeds a pre-defined threshold value, determining that the abnormal condition has occurred.
4. The non-invasive method of claim 1, wherein the step C comprises standardizing a bioelectrical impedance of the skin with the transplanted flap, and if Im1(t)/Im1(0) or Im1(t)/Im2(0) is greater than a pre-defined threshold value, determining that the abnormal condition has occurred, wherein Im1(t) is a ratio of a post-transplantation bioelectrical impedance of the skin with the transplanted flap that is detected over time with a current of a relatively low frequency to a post-transplantation bioelectrical impedance of the skin with the transplanted flap that is detected over time with a current of a relatively high frequency, Im1(0) is a ratio of a pre-transplantation bioelectrical impedance of the skin with the transplanted flap that is detected with the current of the relatively low frequency to a pre-transplantation bioelectrical impedance of the skin with the transplanted flap that is detected with the current of the relatively high frequency, and Im2(0) is a ratio of a bioelectrical impedance of a normal skin that is detected with the current of the relatively low frequency to a bioelectrical impedance of the normal skin that is detected with the current of the relatively high frequency.
5. A non-invasive system for assessing survival of a transplanted flap by the non-invasive method of claim 1, comprising: a control unit; a variable-frequency current generator circuit electrically connected to the control unit; a pair of said detection electrodes electrically connected to the variable-frequency current generator circuit; and a voltage-reading circuit electrically connected to the detection electrodes and the control unit; wherein the control unit instructs the variable-frequency current generator circuit to generate the fixed current, the voltage-reading circuit reads a potential difference between the detection electrodes, and the control unit calculates the bioelectrical impedance of the skin with the transplanted flap according to the constant current and the potential difference and compares the bioelectrical impedance with the pre-defined threshold value.
6. The non-invasive system of claim 5, further comprising a control input interface circuit electrically connected to the control unit to enable input of a desired frequency value.
7. The non-invasive system of claim 5, further comprising a wireless transmission circuit electrically connected to the control unit to output data obtained by the control unit.
8. The non-invasive system of claim 5, further comprising a display interface circuit electrically connected to the control unit to output data obtained by the control unit.
9. A non-invasive system for assessing survival of a transplanted flap by the non-invasive method of claim 2, comprising: a control unit; a variable-frequency current generator circuit electrically connected to the control unit; a pair of said detection electrodes electrically connected to the variable-frequency current generator circuit; and a voltage-reading circuit electrically connected to the detection electrodes and the control unit; wherein the control unit instructs the variable-frequency current generator circuit to generate the fixed current, the voltage-reading circuit reads a potential difference between the detection electrodes, and the control unit calculates the bioelectrical impedance of the skin with the transplanted flap according to the constant current and the potential difference and compares the bioelectrical impedance with the pre-defined threshold value.
10. The non-invasive system of claim 9, further comprising a control input interface circuit electrically connected to the control unit to enable input of a desired frequency value.
11. The non-invasive system of claim 9, further comprising a wireless transmission circuit electrically connected to the control unit to output data obtained by the control unit.
12. The non-invasive system of claim 9, further comprising a display interface circuit electrically connected to the control unit to output data obtained by the control unit.
Description
BRIEF DESCRIPTION OF THE SEVERAL VIEWS OF THE DRAWINGS
[0020]
[0021]
[0022]
[0023]
[0024]
DETAILED DESCRIPTION OF THE INVENTION
[0025] The present invention incorporates the foregoing technical features into a non-invasive method and system for assessing the survival of a transplanted flap, whose major effects are demonstrated by the following embodiments.
[0026] Referring to
[0027] In this embodiment, the foregoing system is configured to perform a method including the following steps:
[0028] A. The control unit 1 instructs the variable-frequency current generator circuit 2 to generate a constant current at a fixed frequency and pass the constant current through the detection electrodes 3. The desired frequency value can be input through the control input interface circuit 5.
[0029] B. The detection electrodes 3 detect a bioelectrical impedance of a skin to which a flap has been transplanted and of a normal skin. More specifically, the voltage-reading circuit 4 reads the potential difference between the detection electrodes 3, in order for the control unit 1 to calculate the bioelectrical impedance of the skin with the transplanted flap or of the normal skin according to the constant current and the potential difference.
[0030] C. The bioelectrical impedance of the skin with the transplanted flap is compared with a pre-defined threshold value. When the bioelectrical impedance of the skin with the transplanted flap exceeds the pre-defined threshold value, it is determined that an abnormal condition has occurred. The pre-defined threshold value is determined by a medical professional. For example, the difference in bioelectrical impedance between the skin with the transplanted flap and the normal skin (i.e., the variation of bioelectrical impedance of the skin with the transplanted flap) is calculated. When the ratio of the variation to the bioelectrical impedance of the normal skin exceeds a certain percentage (meaning the variation is significant), it is determined that the skin with the transplanted flap is in an abnormal condition (e.g., necrosis has taken place). The pre-defined threshold value will be dealt with further below in association with different determination methods.
[0031] The wireless transmission circuit 6 is configured to transmit the data obtained by the control unit 1 to a backend PC or other processer. The display interface circuit 7 is configured to output the data obtained by the control unit 1.
[0032]
[0033]
[0034] Referring to
[0035] Referring to
[0036] The embodiments described above should be able to enable a person of ordinary skill in the art to fully understand the operation, use, and effects of the present invention. Those embodiments, however, are but some preferred embodiments of the invention and are not intended to be restrictive of the scope of the invention. All simple, equivalent changes and modifications made according to the appended claims and the disclosure of this specification should fall within the scope of the present invention.