The purpose of this study is to Predicting female pelvic tilt and lumbar angle using machine learning in case of urinary incontinence and sexual dysfunction
92 patients were distributed randomly into two groups. The first group will be measured pelvic tilt, lumbar angle by spinal mouse and force of contraction of pelvic floor muscles by ultrasound imaging, UDI-6 and FSFI questionnaires for urinary incontinence female The second group will be measured pelvic tilt, lumbar angle by spinal mouse device and force of contraction of pelvic floor muscles by ultrasound imaging, UDI-6 and FSFI questionnaires for normal females. Patients will be examined by radiologist with medical ultrasound imaging and by me with spinal mouse device.
Study Type
OBSERVATIONAL
Enrollment
92
Deraya university
Minya, Egypt
Pelvic tilt, lumbar angle
by spinal mouse device evaluation was carried out with the individuals standing erect and in the maximum trunk flexion and extension postures. The sagittal curvatures of the thoracic spine (T1-2 to T11-12) and lumbar spine (T12-L1 to the sacrum) were measured, as well as the position of the sacrum and hips (difference between the sacral angle and the vertical position).
Time frame: 2 months
Force of contraction of pelvic floor muscles
muscles by ultrasound imaging, convex transducer was used at a frequency of 5 MHz for evaluating. Voluntary PFM contractions' force (strength) of all patients
Time frame: 2 months
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