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Biomedical subjects

A Quanbury

Publications and source records attributed to A Quanbury.

5 recordsLinked to original sources

Computerized ultrasonic digitization in the measurement of spinal curvature.

A major concern in school screening programs as well as in the clinical assessment of spinal curvature has been the frequent radiation exposure required to ascertain curve progression. Various techniques have been developed to identify scoliosis such as the Moire and ISIS techniques, but these are very sophisticated and expensive. The authors have developed a simple procedure of identifying and documenting spinal curvature during the performance of the Adams forward bend test, using an ultrasonic sound probe, four sound receivers, and a micro-computer. The probe is run along the spinous processes emitting an ultrasonic sound, which is picked up by four receivers mounted at the corners of a rectangle above the patient. The signal is fed into a micro-computer and the spinal curvature is plotted out. The magnitude of the curve is calculated by the computer, and the actual curve plus the magnitude is printed in hard copy to be placed in the chart. The reproducibility error and intermeasurer error has been less than 5%. A series of 30 patients with varying magnitudes of scoliosis from 15 degrees to 73 degrees were examined. The results of the ultrasonic digitization were compared with standard scoliosis radiographs of the patient taken the same week. The average curvature measured from the radiographs was 38 degrees, and from the ultrasonic digitization technique, 30 degrees: The forward bend position contributed to smaller curvature measurement, and measurement in the standing position was thought to be a better technique. Ultrasonic digitization as a method of curve measurement is most accurate in curves over 30 degrees.(ABSTRACT TRUNCATED AT 250 WORDS)

Diagnosis, Computer-Assisted

A microcomputer-based prosthetic limb controller: design and implementation.

This paper describes the design and implementation of a microcomputer based myoelectric limb controller. This controller was constructed for use as a feasibility study of, and a development tool for, microcomputer-based myoelectric limb controller applications. Features of this approach include flexibility and computational power. The present design uses low-power CMOS technology to provide a system in which most of the new computationally and decision orientated myoelectric signal processing algorithms can be used. Two CMOS microprocessors, a CD80C86 and a MC146805E2, are used, but microcomputer power consumption is only 120 mA.

Biomedical Engineering

Gait kinematics in below-knee child amputees: a force plate analysis.

A complete gait analysis was performed on six children with below-knee amputations to determine the kinematics and kinetics of amputee gait in children. A relatively new method of analysis--the inverse dynamic relationship--was used to determine the joint moments in the sagittal plane of the joints in the intact limb and the remaining portion of the amputated limb. The joint moments in the sagittal plane of the intact limb in the child amputee were found to be normal or below normal during level walking. From this study, it was concluded that providing a child amputee has a good prosthetic fit, there will be no increased forces across the joints of the intact or amputated limb and consequently no predisposition to premature degenerative arthritis.

Adolescent

A low-power multichannel electromyographic signal data acquisition system.

The development of a stand-alone low-power EMG data acquisition system is described. The resulting design operates at low power (approximately 350 mW) and gives four channels of signal measurement with a maximum sampling rate of 10 kHz. Therefore, the data acquisition system described is ideal for low power data acquisition using a microcomputer. The digitized results are available to the microcomputer in a 12 bit signed magnitude form. This system was designed and implemented for use in a microcomputer-based myoelectric limb controller, however, its use is not limited to this application.

Biomedical Engineering