METHOD OF EVALUATING CORE MUSCLES BY BIOIMPEDANCE TECHNOLOGY
20230320607 · 2023-10-12
Inventors
Cpc classification
A61B5/053
HUMAN NECESSITIES
International classification
Abstract
A method of evaluating core muscles by bioimpedance technology, includes the steps of: (a) measuring the resistance and reactance of a subject by a bioimpedance measuring instrument, and obtaining the subject's age, gender, and impedance factor (h2/Z), and (b) calculating the subject's core muscles by the following formula: BIA=a−b×age+c×h2/Z+d×Sex. Thereby, the present invention measures the cross-sectional area of the core muscles by means of bioimpedance analysis. The core muscles can be evaluated by the cross-sectional area of the core muscles, which can effectively reduce the measurement cost, reduce the measurement time and improve the convenience of measurement.
Claims
1. A method of evaluating core muscles by bioimpedance technology, comprising the steps of: (a) measuring the resistance and reactance of a subject by a bioimpedance measuring instrument, and obtaining the subject's age, gender, and impedance factor (h2/Z); and (b) calculating the subject's core muscles by the following formula: BIA=a−b×age+c×h2/Z+d×Sex.
2. The method of evaluating core muscles by bioimpedance technology as claimed in claim 1, wherein said core muscles are one or all of the psoas major, quadratus lumborum, erector spinae, and abdominal muscles.
3. The method of evaluating core muscles by bioimpedance technology as claimed in claim 1, wherein when said core muscles are the abdominal muscles, the formula of said core muscles is AM.sub.BIA=CM.sub.BIA−PM.sub.BIA−QM.sub.BIA−ES.sub.BIA.
4. The method of evaluating core muscles by bioimpedance technology as claimed in claim 1, wherein the a-d in the calculation formula are the regression coefficients in the regression analysis.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0010]
[0011]
[0012]
[0013]
DETAILED DESCRIPTION OF THE INVENTION
[0014] In order to explain the technical features of the present invention in detail, the following is a preferred embodiment, and the descriptions are as follows in conjunction with
[0015] Step (a): Measure the resistance and reactance of a subject by a bioimpedance measuring instrument, and obtain the subject's age, gender, and impedance factor (h2/Z). The bioimpedance measuring instrument is a commonly used instrument in the field of bioimpedance technology, so it is not shown in the drawings. In this preferred embodiment, the bioimpedance measuring instrument is an example of a standing eight-pole plate bioimpedance measuring technology.
[0016] Step (b): Calculate the subject's core muscles by the following formula: CM BIA=a−b×age+c×h2/Z+d×Sex (r.sup.2=0.910, SEE=13.42 cm.sup.2, n=286, p<0.001). In this preferred embodiment, the core muscles comprise psoas major, quadratus muscle (QM), erector spinae (ES), abdominal muscles (AM). The a-d in the calculation formula are the regression coefficients in the regression analysis.
[0017] The measurement methods of the present invention can be divided into multiple types, as shown in
[0018] As shown in
[0019] As shown in
[0020] As shown in
[0021] As shown in
[0022] As shown in
[0023] As shown in
[0024] In other preferred embodiments, this core muscles can also be one of psoas major, quadratus lumborum, erector spinae or abdominal muscles, and its calculation formula is:
PM.sub.BIA=a−b×age+c×h2/Z+d×Sex(r.sup.2=0.919,SEE=3.31 cm.sup.2,n=286,p<0.001).
QM.sub.BIA=a−b×age+c×h2/Z+d×Sex(r.sup.2=0.920,SEE=5.07 cm.sup.2,n=286,p<0.001).
ES.sub.BIA=a−b×age+c×h2/Z+d×Sex(r.sup.2=0.934,SEE=13.07 cm.sup.2,n=286,p<0.001).
AM.sub.BIA=CM.sub.BIA−PM.sub.BIA−QM.sub.BIA−ES.sub.BIA.
[0025] CT Scanning
[0026] In this preferred embodiment, the cross-sectional area of the core muscles measured by a computed tomography scanner is used as the estimation target of the present invention. The method of the present invention utilizes variables such as body parameter measurement and bioimpedance measurement of the subject measured by the bioimpedance measuring instrument as predictive variables to establish and verify the estimation model of the cross-sectional area of the core muscles. In other preferred embodiments, the cross-sectional area of the core muscles measured by magnetic resonance imaging can also be used as the estimation target of the present invention.
[0027] In this preferred embodiment, a 64-slice computed tomography scan (Somatom Sensation 64 CT system, Siemens Corp., Germany) is performed on the abdomen of each subject, and the data is analyzed using Syngo CT2005A software. Each subject measured the abdominal segment of 2-5 lumbar vertebrae with a computed tomography scanner, but not limited to this.
[0028] Image Analysis
[0029] As shown in
[0030] Statistical Analysis
[0031] In this preferred embodiment, as shown in Table 1, the descriptive data are represented by the mean and standard deviation, and their ranges are displayed.
[0032] The Student's t-test was used to compare the distribution types, and the Kolmogorov-Smirnov test was used to test the normal distribution of the data. All statistical analyses were performed using SPSS Ver.20 (Statistical Package for the Social Sciences, IBM SPSS statistics for Windows, Armonk, NY: IBM Corp), and the significance level was set at p<0.05 (two-tailed). Spearman correlation coefficient analysis was used to describe the correlation between variables, and stepwise regression analysis was used to analyze the relationship between gender, age, impedance factor and the core muscles, psoas, abdominal muscles, quadratus lumborum, erector spinae and area.
TABLE-US-00001 TABLE 1 Female (n = 146) Male ( n = 140) Items mean ± SD Range mean ± SD Range P Age (years) 32.1 ± 16.5 18.5-74.8 33.8 ± 14.4 18.5-77.0 >0.05 Height (cm) 160.3 ± 6.4 145.0-178.0 170.8 ± 5.9 151.5-186.0 <0.01 Weight (kg) 59.7 ± 10.9 42.0-105.0 73.9 ± 12.9 47.0-120.0 <0.001 BMI (kg/m.sup.2) 23.2 ± 4.1 16.2-38.0 25.3 ± 4.0 18.2-39.9 <0.01 Waist (cm) 81.6 ± 11.2 63.0-122.0 83.3 ± 10.7 64.0-122.0 <0.05 Hip (cm) 98.8 ± 9.8 81.0-129.0 98.9 ± 7.4 80.0-122.0 >0.05 WHR 0.83 ± 0.06 0.71-1.08 0.84 ± 0.07 0.72-1.03 <0.05 Bioimpedance Z (Ω) 658.5 ± 89.4 421.7-892.3 515.3 ± 62.8 372.0-668.0 <0.01 CT CM.sub.CT (cm.sup.2) 121.6 ± 28.8 53.6-209.6 217.6 ± 44.8 112.0-350.4 <0.01 ACSA.sub.CT (cm.sup.2) 450.7 ± 120.2 293.2 -988.9 499.0 ± 131.8 309.7-1026.4 <0.01
[0033] where, mean±SD (Standard Deviation) is the mean value, and the standard deviation; WHR is waist-hip ratio; BMI is the body mass index; CM is the core muscles; ACSA is the abdominal cross-sectional area.
[0034] Thereby, a method of evaluating core muscles by bioimpedance technology 10 provided by the present invention can use the bioimpedance value measured by the bioimpedance measuring instrument without the need for computed tomography or magnetic resonance imaging, and estimate the cross-sectional area of the subject's core muscles by the calculation formula, which is used as the basis for evaluating the subject's core muscles. Compared with computed tomography or magnetic resonance imaging, it can effectively reduce the measurement cost, reduce the measurement time, and improve the convenience of measurement.
[0035] The above-mentioned preferred embodiments are intended to help understand the principles and methods of the present invention, and the present invention is not limited to the above-mentioned preferred embodiments. Any combination and modification within the spirit and principle of the present invention shall fall within the protection scope of the present invention.