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At least 163 records · Page 9Linked to original sources

[From a registry to a clinical information system. Development of the Datacor system at the surgery department A, Rikshospitalet].

Based on a simple register for thoracic and cardiovascular operations a modulated system has been built up at Department of Surgery A. The register covers waiting list, a basic patient record, extensive operative data, the postoperative course and the final outcome. A local area network includes 36 microcomputers with approximately 75 users. Owing to lack of commercially available programs, local applications based on dBase have been developed. In this article we discuss our positive experiences from use of the local system with respect to administration, quality assurance and local research, its future place within a larger hospital system interconnected via a backbone, the need for better support and graphic user interface.

Cardiac Surgical Procedures↗

A high-speed network for cardiac image review.

A high-speed fiber-based network for the transmission and display of digitized full-motion cardiac images has been developed. Based on Asynchronous Transfer Mode (ATM), the network is scaleable, meaning that the same software and hardware is used for a small local area network or for a large multi-institutional network. The system can handle uncompressed digital angiographic images, considered to be at the "high-end" of the bandwidth requirements. Along with the networking, a general-purpose multi-modality review station has been implemented without specialized hardware. This station can store a full injection sequence in "loop RAM" in a 512 x 512 format, then interpolate to 1024 x 1024 while displaying at 30 frames per second. The network and review stations connect to a central file server that uses a virtual file system to make a large high-speed RAID storage disk and associated off-line storage tapes and cartridges all appear as a single large file system to the software. In addition to supporting archival storage and review, the system can also digitize live video using high-speed Direct Memory Access (DMA) from the frame grabber to present uncompressed data to the network. Fully functional prototypes have provided the proof of concept, with full deployment in the institution planned as the next stage.

Cardiology↗

Simulation of patient flow in a picture archival and communications system network.

As hospital radiology departments expand their use of digitally formatted imaging devices, these machines will be connected in local area networks called Picture Archival and Communications Systems (PACS). The purpose of this paper is to demonstrate the use of computer simulation to analyze the process of patients using a PACS. The flexibility of using simulation on a proposed PACS is shown, starting with the description of a basic model. Different machine networks are run and the results compared. Simulation modeling provides a valuable tool to hospital and department administrators in detecting possible problem areas which may occur with proposed PACS configurations under assumed patient loads.

Computer Communication Networks↗

Wide-area network connecting a hospital drug informatics center with a university.

A wide-area network (WAN) connecting a new drug informatics center in a university-affiliated hospital with the university's campus-based computer network is described. In 1994 a pharmacy school developed a drug informatics center in an affiliated hospital. The center was originally designed around a local-area network (LAN) to be located at the hospital and planned to provide clients with easy access to typical productivity software and various electronic information resources. Only occasional modem connections to the university network were envisioned. However, large price increases in information retrieval systems and decreases in the cost of a frame relay connection (T1 line) to the campus network led to the installation of a WAN when the drug informatics center was established. Technical, political, and legal problems were overcome, and the connection was made. The WAN gave faculty and students at the hospital access to many of the university's computing and Internet resources. In addition, the faculty and students have access to various files and programs available only on the drug informatics center's file server at the affiliated hospital. It cost about $6500 to install all WAN equipment and maintain the frame relay for the first year, or a third of what would have been necessary for information retrieval software had a separate LAN been established at the hospital. A WAN connecting a drug informatics center and a university's computer network gave the center access to more electronic information resources at lower cost than would have been possible with a separate LAN.

Computer Communication Networks↗

How to maintain blood supply during computer network breakdown: a manual backup system.

Electronic data management systems using computer network systems and client/server architecture are increasingly used in laboratories and transfusion services. Severe problems arise if there is no network access to the database server and critical functions are not available. We describe a manual backup system (MBS) developed to maintain the delivery of blood products to patients in a hospital transfusion service in case of a computer network breakdown. All data are kept on a central SQL database connected to peripheral workstations in a local area network (LAN). Request entry from wards is performed via machine-readable request forms containing self-adhesive specimen labels with barcodes for test tubes. Data entry occurs on-line by bidirectional automated systems or off-line manually. One of the workstations in the laboratory contains a second SQL database which is frequently and incrementally updated. This workstation is run as a stand-alone, read-only database if the central SQL database is not available. In case of a network breakdown, the time-graded MBS is launched. Patient data, requesting ward and ordered tests/requests, are photocopied through a template from the request forms on special MBS worksheets serving as laboratory journal for manual processing and result report (a copy is left in the laboratory). As soon as the network is running again the data from the off-line period are entered into the primary SQL server. The MBS was successfully used at several occasions. The documentation of a 90-min breakdown period is presented in detail. Additional work resulted from the copy work and the belated manual data entry after restoration of the system. There was no delay in issue of blood products or result reporting. The backup system described has been proven to be simple, quick and safe to maintain urgent blood supply and distribution of laboratory results in case of unexpected network breakdown.

Blood Transfusion↗

Sharing digital micrographs and other data files between computers.

It ought to be easy to exchange digital micrographs and other computer data files with a colleague even on another continent. In practice, this often is not the case. The advantages and disadvantages of various methods that are available for exchanging data files between computers are discussed. When possible, data should be transferred through computer networking. When data are to be exchanged locally between computers with similar operating systems, the use of a local area network is recommended. For computers in commercial or academic environments that have dissimilar operating systems or are more widely spaced, the use of FTPs is recommended. Failing this, posting the data on a website and transferring by hypertext transfer protocol is suggested. If peer to peer exchange between computers in domestic environments is needed, the use of Messenger services such as Microsoft Messenger or Yahoo Messenger is the method of choice. When it is not possible to transfer the data files over the internet, single use, writable CD ROMs are the best media for transferring data. If for some reason this is not possible, DVD-R/RW, DVD+R/RW, 100 MB ZIP disks and USB flash media are potentially useful media for exchanging data files.

Computer Communication Networks↗

Rural telemedicine infrastructure and services in the Department of Cauca, Colombia.

The development of telemedicine programs for the public health network of the Department of Cauca, Colombia, (Department is the major political and territorial division of the country. The Department of Cauca is located on the Pacific coast in the southwest of the country.) would make it possible to satisfy many identified needs such as medical coordination, continuing education, epidemiologic surveillance, patient referral and counterreferral, and an end to the feeling of isolation among professionals who work in rural health centers. Nevertheless, geographic, economic, and social difficulties, and the lack of a telecommunication infrastructure in areas with these characteristics present a challenge of such magnitude that the majority of existing telemedicine projects in Colombia have been centered in urban or other areas which present fewer difficulties. In the municipality of Silvia, the University of Cauca has established a prototype network using the "Hispano-American Health Link" (EHAS in Spanish) program technologies, which uses very high frequency (VHF) and wireless fidelity, (WiFi, a set of standards for wireless local area networks) radio systems for the deployment of low-cost voice and data networks. Over this network information access and exchange services have been developed, in order to meet the needs identified above. The objectives were to obtain information about the development of the project's activities and their possible impact. Project telecommunication network and information services are described, and the results and conclusions of the first evaluation are presented.

Colombia↗

Processing haematological data on a network environment.

A system for computerising full blood picture reporting developed in-house using dBASE IV on IBM-compatible microcomputers in a local area network environment is described. The software package has a user-friendly interface which consists of a horizontal main menu bar with associated pull-down submenus. The package captures data directly from an automatic blood cell counter and provides options to modify or delete records, search for records, print interim, final or cumulative reports, record differential counts with an emulator, facilitate house-keeping activities which include backing-up databases and repairing corrupted indices. The implementation of this system has helped to improve the efficiency of reporting full blood picture in the haematology laboratory.

Blood Cell Count↗

An audio-video system for automated data acquisition in the clinical environment. LOTAS Group.

OBJECTIVE: Our objective was to develop an audiovideo data acquisition system that facilitates studying the activities of anesthesia care providers in the clinical environment. METHOD: Ceiling-mounted miniature video cameras, vital sign monitors, and videocassette recorders (VCRs) were interfaced to digital computers in two patient admitting areas and two operating rooms of a trauma center. This video data acquisition system network (VASNET) is simple to operate. Insertion of a videotape activates the system and begins video overlay of updated vital signs onto the video image every 5 sec. Recorded data is passed via a local area network, allowing remote monitoring of the data acquisition process. To facilitate analysis of the video at a later time, the image, soundtrack, and vital signs data are stamped with the same time code. Each tape is initialized by recording the data file name and wall clock time for 30 sec at the start of taping. This initialization enables comparison of the video recordings with anesthesia, surgical, and nursing records. RESULTS: During 2 years of operation, VASNET was used to record over 100 cases of acute trauma management. Vital signs overlaid onto the video image identified when patient monitors were in use and providing data. Participants found videotape review useful in assessing their own performance. VASNET was nonintrusive and acquired data with minimum user interaction. In one operating room, separate from the trauma center, VASNET was installed to function as a remote monitor, with the option of videotaping. Although users were aware of when videotaping occurred, once patient management was underway, the activities of the anesthesia care providers did not appear to be influenced by the videocassette recording. Equipment maintenance was not excessive. The most frequent problems were changes to the VCR control settings and disconnection of the power supply or interface connections. CONCLUSIONS: Videotapes of the process of anesthetizing and resuscitating trauma patients provided a record of the activities of anesthesia care providers. Video vignettes may be useful training tools. Excerpts from real scenarios can be incorporated into anesthesia stimulators. The soundtrack and timing of real events from such video acquisition may be useful in the development of multimedia simulations of trauma patient resuscitation. The data collection may be useful for research into human performance, ergonomics, training techniques, quality assurance, and certification of anesthesia care providers in trauma patient management. Potential additional applications of VASNET include remote monitoring of patients in the operating room, in the intensive care unit, during transportation, in hazardous environments, and in the field. Such VASNET telemetry may facilitate the availability of expert opinions during medical and other consultations.

Anesthesia↗

Building a computer-supported quality improvement system in one year: the experience of a large state psychiatric hospital.

BACKGROUND: G. Pierce Wood Memorial Hospital, a large state psychiatric hospital, implemented a data-intensive quality improvement (QI) program as part of its efforts to attain Joint Commission accreditation. EARLY STEPS OF QI IMPLEMENTATION: With the December 1993 Joint Commission survey date in mind, the Executive QI Committee started weekly meetings in December 1992 to plan initiatives and establish a viable information management system for the QI process. A QI coach was hired to help plan all phases of the QI program, and a 40-hour training program on statistics and QI principles was provided to key middle managers. SOFTWARE CHOICE ISSUES: Software options can be examined in terms of data cleaning, data manipulation, statistical flexibility, graphics strength, word processor compatibility, and utility strength. SOFTWARE CONFIGURATION: The present configuration of our statistical software is relatively elaborate. Organizations new to using statistical software should start off modestly to avoid being overwhelmed by the infinite possibilities that large numbers of interlinked modules present. DATA NETWORK CONFIGURATION: The technical core of the computerized QI system and how it operates are discussed. The data interface between the local area network (LAN) and statistical system data is described in three stages: (1) the creation of the "system" file; (2) the generation of the raw data; and (3) the transference of the raw data into the system file. QI ACTIONS: A QI reporting form was developed on which each report user states his/her analysis of the monthly indicator data report and identifies root causes, describes the actions taken to resolve the problems, or evaluates the effectiveness of prior actions taken. In addition, each indicator manager presents a quarterly verbal report to the Executive QI Committee on QI occurrences in his/her area of responsibility. CASE STUDIES: A nursing department indicator revealed an insufficient amount of supplies being placed in the code-blue ambulance. Determination of root causes led to the identification of a breakdown in the process whereby each shift adds and reviews supplies. As another example, the initiation of the stat IM (use of intramuscular injections or tranquilizing medications to restrain persons) indicator report led to a decrease in the number of IMs ordered. CONCLUSIONS: If we could have developed this statistical software-based QI program in only one year, then virtually any organization, large or small, can attain the technical capability to conduct "state of the art" QI.

Data Interpretation, Statistical↗

[Networks for image communication. Current status].

Networks for the transport of digital images are key components of PACS systems. In order to create a platform for the selection of appropriate network technology, first the quantitative requirements for image data communication in a PACS system are analyzed. State-of-the-art local area networks as well as developments in progress are mentioned, and their performance is discussed with respect to the PACS requirements. Furthermore, the linkage of PACS systems and hospital or radiology information systems is discussed. Finally, a scenario is outlined for extra-mural applications of medical image communication.

Computer Communication Networks↗

MicroPACS: a PC-based small PACS implementation.

To make picture archiving and communication systems (PACS) a practical reality for small-scale structures, it appears necessary to build a network that integrates and optimises production management, analysis and storage of images, and to include the ability to communicate with other similar remote structures. To solve the various technical problems related to small-scale PACS implementation, MicroPACS, a local area network, was developed around PC-like microcomputers. Every necessary function is assessed and implemented, including a centralised data-base, a distributed image bank, different storage levels and a specific task for image exchanges. An additional protocol was also developed for remote consultation through ISDN. Standardisation of image encapsulation and a point-to-point link between remote sites ensure easy transfers between heterogeneous local networks or bases and integrity of local databases.

Computer Communication Networks↗

Web-based video for real-time monitoring of radiological procedures.

A web-based video transmission of images from CT and MRI consoles was implemented in an Intranet environment for real-time monitoring of ongoing procedures. Images captured from the consoles are compressed to video resolution and broadcast through a web server. When called upon, the attending radiologists can view these live images on any computer within the secured Intranet network. With adequate compression, these images can be displayed simultaneously in different locations at a rate of 2 to 5 images/s through a standard local-area network. While the quality of the images was insufficient for diagnostic purposes, our users survey showed that they were suitable for supervising a procedure, positioning the imaging slices, and for routine quality checking before completion of a study. The system was implemented at UCLA to monitor nine CT's and six MRI's distributed in four different buildings. This system significantly improved the radiologists productivity by saving valuable time spent in trips between reading rooms and examination rooms. It also improved patient care and throughput by reducing the time spent waiting for the radiologists to check a study before removing the patient from the scanner.

Internet↗

[NIHS information and computing infrastructure (NICI)].

We describe the information and computing infrastructure in National Institute of Health Sciences, which were constructed until May, 1996. The in house computer network and computing facilities for common usage in NIHS have been developed under the initiative of Division of Chem-Bio Informatics since 1989. The present LAN (Local Area Network) consists of coaxial cables and optic fibers which are connected by a LAN Switch. The LAN is connected to the Internet via IMnet, the inter ministry network back bone of the Science and Technology Agency. Various types of workstations and personal computers such as SUN WS, Silicon Graphics WS, IBM WS & PC, Macintosh, and NEC PC are connected to the LAN. This computing network environment which we named NICI (NIHS Information and Computing Infrastructure) not only provides network communications but also facilitates advanced computating systems for chemical safety research at NIHS as a COE.

Biological Science Disciplines↗

Network system: the integrated picture archiving and communication system with the hospital information system.

We describe the outline of Hokkaido University picture archiving and communication system (HU-PACS) and its network functions. HU-PACS processes 0.5 Gbytes of images daily through 10 acquisition devices. Functional integration of hospital information system (HIS) and PACS has been implemented. The HU-PACS can access common data base with HIS. Multi-image data-base systems provide fast throughput of image retrieval. The system is composed of 4 modules: (1) 2 image data-base systems (IDS), (2) 1 image management system (IMS), (3) image display terminals (IDT), and (4) 8 image acquisition nodes interfaced to 10 modalities and 1 film scanner. These 4 modules are connected by branch and loop type local area networks (LAN). HU-PACS has functions other than basic PACS functions. Images in optical disk library (ODL) are loaded onto magnetic disks (MD) in advance according to patient booking information, the images expected to be viewed are transferred to the local storage automatically, and the desired images can be pre-downloaded into local storage by instruction through HIS terminals.

Computer Communication Networks↗

[Diagnostic imaging and patient database managing systems: The integration of digital information in the experience of an intensive care center].

AIM: To present our experience with integrating digital information on Intensive Care Unit patients (clinical data, laboratory findings, imaging, etc) to create electronic patient records. MATERIAL AND METHODS: Using the hospital Intranet, a connection was established between the Local area Network (LAN) of the Intensive Care Unit (ICU) and the Digital Imaging and Communications in Medicine (DICOM(R)) network of the Radiology Department allowing to receive, process and archive digital images locally at the ICU. Using the software RADclient-RADimage, the information received was managed by an electronic patient record system (DIGISTAT by UMS-Unterberger Medical Software, Florence). All the above software runs on Microsoft WindowsNT 4.0 platforms. RESULTS: Images of various kinds and formats (CT, MRI, etc.) pertaining to the ICU patients were semi-automatically handled and filed on a local server acting as a central databank. The images were then included in the electronic patient record and made available to the end user who could view them using either web technologies (hypertexts were automatically generated that could be viewed through the widely available World Wide Web browsers) or specific viewing utilities supplied with DIGISTAT . DISCUSSION AND CONCLUSIONS: For the intensivist, the handling and filing of data on hospitalised or discharged patients for treatment or research purposes involves having to process large amounts of information. Furthermore, in the event of patients being re-admitted to the unit, it is crucial to have ready access to all the information regarding previous hospital stays, including diagnostic images, to avoid the need for time-consuming searches through the hospital s paper-based archives. The possibility to access clinical information and diagnostic images using a single computer programme proved to be useful both for evaluating the patient s conditions immediately after the imaging procedure and for monitoring the patient s progress over time by comparing the different diagnostic images and imaging procedures. This pilot experience could be seen to provide the basic know-how for applying the method in the future Emergency Department of the A. Gemelli Hospital in Rome.

Computer Communication Networks↗

[Computer networks in clinical practice--a histology data bank system].

In hospital and in private practice huge amounts of data have to be managed. Conventional storage and documentation techniques are being replaced more and more by the use of computers. Local area networks based on the interconnection of stand-alone PC workstations offer several advantages over non-communicating systems. The use of computer networks solves many communication problems and in this way improves the flow of information. The interconnection may be achieved by step-by-step integration of preexisting elements. This paper presents a database system for archiving routine histology data and illustrates the use of a computer network in a dermatology department.

Computer Communication Networks↗

[Server World-Wide Web on the Internet for the provision of clinical cases and digital radiologic images for training and continuing education in radiology].

The Internet, as a global computer network, provides opportunities to make available multimedia educational materials, such as teaching files and image databases, that can be accessed using "World-Wide Web" client browser to provide continuing medical education. Since August, 1995, at the Institute of Radiology-University of Palermo, we developed a World-Wide Web server on the Internet to provide a collection of interactive radiology educational resources such as teaching files and image database for continuing medical education in radiology. Our server is based on a UNIX workstation connected to the Internet via our campus Ethernet network and reachable at the uniform resource locator (URL) address: http:/(/)mbox.unipa.it/approximately radpa/ radpa.html. Digital CT and MR images for teaching files and image database are downloaded through an Ethernet local area network from a GE Advantage Windows workstation. US images will be acquired on-line through a video digitizing board. Radiographs will be digitized by means of a Charge Coupled Device (CCD) scanner. To set up teaching files, image database and all other documents, we use the standard "HyperText Markup Language" (HTML) to edit the documents, and the Graphics Interchange Format (GIF) or Joint Photographic Expert Group (JPEG) format to store the images. Nine teaching files are presently available on the server, together with 49 images in the database, a list of international radiological servers, a section devoted to the museum of radiology hosted by our Institute, the electronic version of the Journal Eido Electa. In the first 12 months of public access through the Internet, 12,280 users accessed the server worldwide: 45% of them to retrieve teaching files; 35% to retrieve images from the database; the remaining 20% to retrieve other documents. Placing teaching files and image database on a World-Wide Web server makes these cases more available to residents and radiologists to provide continuing medical education in radiology.

Computer Communication Networks↗