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Biomedical subjects

J Whiteman

Publications and source records attributed to J Whiteman.

8 recordsLinked to original sources

Dorsalis pedis arterial pulse: palpation using a bony landmark.

INTRODUCTION: The unreliability of the pulse examination of the foot has primarily been due to variability of technique between examiners. Whereas the groove between the medial malleolus and the Achilles tendon more readily defines the location of the posterior tibial pulse, the location of the dorsalis pedis pulse remains vague. In this paper a novel method of locating the dorsalis pedis pulse by physical examination is described. METHODS: Forty one consecutive patients admitted to a general surgery service of a tertiary medical centre within a two month period were examined. Using the dorsal most prominence of the navicular bone as a landmark, the distance to the dorsalis pedis pulse in bilateral lower extremities was measured by palpation and compared to Doppler ultrasound. Measurements were confirmed by two separate examiners blinded to each others' results. RESULTS: The dorsalis pedis artery was palpable in 78% of extremities and present by Doppler ultrasound in 95%. The location of the left dorsalis pedis artery was a mean (SD) 9.8 (1.4) mm by palpation and 11.1 (2.1) mm by Doppler ultrasound from the dorsal most prominence of the navicular bone. The right dorsalis pedis artery was 10.4 (3.4) mm by palpation and 11.5 (0.7) mm from the dorsal most prominence of the navicular bone. No significant differences in location of the dorsalis pedis artery were observed bilaterally between Doppler ultrasound and palpation; No significant differences were observed comparing contralateral dorsalis pedis arteries nor any differences between the examiners' results. CONCLUSION: The dorsal most prominence of the navicular bone provides a bony landmark to readily locate the dorsalis pedis artery. Reliability of the examination may be increased as to the patency of the dorsalis pedis artery by using this dependable anatomic landmark.

Adult↗

Patient identifiers: stumbling blocks or cornerstones for CPRs (computer-based patient records)?

As the computer-based patient record, or CPR, moves closer to reality, patient identification issues remain unresolved. A mechanism already in place would be the Social Security number, or SSN. But legal questions surround its use for specific identification purposes. And not everyone has one. Healthcare Informatics asked several people closely involved with computerizing patient records about alternatives to social security numbers. Their responses may prove enlightening.

Computer Security↗

Electronic data interchange for pharmacy inventory control.

The use of electronic data interchange (EDI) for controlling pharmacy inventory at a 303-bed hospital is described. The hospital, which belongs to a group purchasing consortium, uses EDI to exchange information with its primary drug wholesaler. The pharmacy's personal computer and software provided by the wholesaler are used. EDI enables the pharmacy to (1) select and order items by using hand-held bar-code scanning devices, (2) upload this information into the pharmacy's computer, (3) review the order before transmission, and (4) access the wholesaler's inventory. The pharmacy also uses EDI with its primary i.v. supplier. Using EDI for placing the daily pharmaceutical and i.v.-supply orders reduces by one half the daily time expenditure for purchasing. In addition, EDI provides various inventory-related reports. EDI provides an efficient and effective way to control pharmacy inventory.

Computer Communication Networks↗

Computer recognition of radiopaque myocardial markers.

Radiopaque markers implanted in the heart have been used both clinically and experimentally to examine cardiac function. From the position of the markers, both regional and global function can be determined. A major problem with using radiopaque markers is the excessive time required for data analysis. Each marker in every cine frame must be identified and digitized by the investigator. To circumvent this problem, a computer system was developed to automatically identify the markers. The cine film is projected onto a TV camera from which the video signal is digitized and transferred into a computer. The investigator identifies the markers in the first cine frame and thereafter the computer advances the film and locates the markers. The markers are recognized based on positional information from the previous cine frame and on a video density profile. This system greatly reduced the investigators' time required for data analysis.

Animals↗

Semi-automated ECG processing: A simple method to improve efficiency in ECG laboratories.

A method to expedite processing of electrocardiograms (ECGs) is described. The hardware configuration utilizes conventional equipment, and the ECG data is stored in magnetic data cards. The electrocardiographer's interpretation is made using a specially developed code of 253 diagnostic statements of 2 to 9 words each. A minicomputer converts the code into full alpha-numeric description and 2 characters into English statements. The diagnostic print-out appears in the same page as the reproduction of the original ECG data. This system has significantly reduced the ECG processing time, freed manpower to increase availability of technicians and decreased the size of permanent files.

Diagnosis, Computer-Assisted↗