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At least 91 records · Page 5Linked to original sources

Integrating pharmacokinetics into point-of-care information systems.

Computer-based patient care information systems (PCIS) have emerged as an integral component of healthcare organisations. Currently, 4 models of PCIS exist: the centralised model, the hub-and-spoke model, the network model, and the distributed model. The centralised model has the advantage of a central patient database; however, a major disadvantage of this model is the inability to easily interface with other software packages. The hub-and-spoke model links satellite or feeder systems into a mainframe computer; thus, each satellite has the ability to work independently. This system is limited by the ability to interface satellite systems with the mainframe computer. The network model works via a local area network (LAN) using client server technology which allows for high speed data access and transfer. The network model does not provide an integrated view of patient information and can access only 1 host system at a time. The distributed model is similar to the network model in design but provides for data and system integration via relational databases. This allows for the creation of a central data repository and support for decision-support tools. Computer-assisted decision support has the potential to significantly improve clinical decision-making. Six types of computer-assisted decision-support have been defined: alerting, interpreting, assisting, critiquing, diagnosing and managing. Software representing each type of decision-support software has been incorporated into clinical practice; however, with the exception of drug interaction programs, widespread incorporation of decision-support software into PCIS is uncommon. Clinical pharmacokinetic programs are a category of pharmacy-related decision-support software, and current clinical pharmacokinetic software systems can be categorised as interpreting, assisting or critiquing decision-support. Despite the potential for significant clinical contributions, the integration of clinical pharmacokinetic software into PCIS is uncommon. Most packages are available only as stand alone programs or as a module of a pharmacy information system. These packages usually maintain their own centralised database and require special file transfer protocols for integration. Although PCIS are becoming more commonplace, the integration of commercial clinical pharmacokinetic packages into PCIS is limited. New technology using standardised and relational databases should allow for easier integration in the future.

Computers, Mainframe↗

Digital image management: networking, display, and archiving.

The requirements for implementing a radiology imaging network are similar to those for local area networks now being designed for other purposes to manage large data films. A radiology department serving a 500-bed hospital generates about 927 megabytes of digitally formatted data per working day. These data are expected to be on line for the patient's hospitalization period. The retrieval rate of these data among the interactive diagnosis display stations requires data throughput rates of between 2 and 5 megabits per second. This throughput rate requires signaling rates of between 20 and 50 megabits per second. Analog hard-copy generation of the images on the network is required by the referring physician for selected images that support the consultation report. Digital laser recorders using paper may be quite satisfactory. Long-term archiving must be low in cost and requires a database scheme capable of managing more than a terabyte of image data. Radiology networks must be required to bridge with other hospital information systems.

Archives↗

The strategy to be "paperless" via a cost-effective filmless plan.

The group of folks assigned to the project were identified, and on April 23, 2001, an Request For Information (RFI) was released to 11 preidentified Picture Archiving Communication System (PACS) vendors. Our project was unique in 2 respects. First, there was an aggressive timeline. Second there was specific outpatient environment requirements. There was a need to move images and other patient-related data between several sites while depending heavily on the Wide Area Network (WAN) design rather than the typical Local Area Network (LAN) configuration. We learned quickly that there was not one live site, at which we could visit to observe our vision in action, nor had any solution been built to accomplish our specific objectives. The months of May, June, and July consisted of vendor meetings, RFI response reviews and, clinical and corporate visits ending on August 9, 2001 when our prime vendor of choice was selected. During this process, we identified deal breakers outlining specific needs for "go live," which is targeted for Q2 (2nd Quarter) 2002. The biggest workflow opportunity is to be paperless as well as filmless. By this we not only mean traditional RIS information but also patient documents (insurance information, physician script) as well as modality-patient-specific information. All of this information needs to be available electronically to accomplish) any patient record, any place, any time! The month of August was filled with WAN and LAN solution investigations. The solution of choice will be both cost effective and challenged to achieve 99.9% reliability. A cost-benefit analysis was performed and reviewed to better understand our return on investment. The months of September and October have been dedicated to Computerized Radiography (CR) technology. The TEAM reviewed 3 solutions, which consisted of both sit-down sessions as well as clinical site assessments. Again, "deal breaker" criteria were summarized and a solution chosen. Contract negotiations will soon conclude, and an aggressive implementation will begin!

Ambulatory Care Facilities↗

Making the case to fund networked access to electronic information services.

The establishment of a local area network can greatly widen access to an organization's electronic information services, create improved conditions for staffing the delivery of these services and improve training and user support. Such a project is, however, expensive to fund. This article describes the approach taken at the Royal Free Hospital School of Medicine to secure funds for networking MEDLINE on hard disk and other information services. The importance of close collaboration between library and computer departments in planning and promoting a project of this nature is emphasized.

Budgets↗

[Data networks in the surgical clinic].

In the last 5 years, a powerful local area network was established in the Surgical Clinic of the Technical University of Munich. It is based on ATM and Ethernet technology. About 70 nodes including approximately 100 peripherals in our clinic have access to services around this network.

Computer Peripherals↗

Optimization of wide-area ATM and local-area ethernet/FDDI network configurations for high-speed telemedicine communications employing NASA's ACTS.

A high data rate terrestrial and satellite network was implemented to transfer medical images and data. This article describes the a optimization of the workstations and switching equipment incorporated into the network. Topics discussed in this article include tuning of the network software, the configuration of the Sun Microsystems workstations, the FORE Systems asynchronous transfer mode switches, as well as the throughput results of two telemedicine experiments undertaken by Mayo's physician staff. The technical staff was successful in achieving the data throughput needed by the telemedicine software; particularly important was the proper determination of peak throughput and TCP window sizes to ensure optimum use of the resources available on the Sun Microsystems and Hewlett Packard workstations.

Angiography↗

[Hospital infection control in the 21st century--importance of network for hospital infection control and role of clinical laboratory].

The clinical laboratory is important as a department which provides diagnostic and advisory services to clinicians and support surveillance for hospital infection control. Though the link between clinical laboratory and other departments including infection control team is paramount for infection control, there are the communication delays by the documented reports. The use of the hospital information system can streamline the work of infection control, because laboratory(including microbiology) data can be obtained quickly. In order to implement efficient infection control, it is necessary to construct the information network by utilizing the local area network in the hospital. Since the community-acquired infections due to resistant micro-organisms are increasing in 1990s, we should expand the information network in community and nation-wide in the 21st century.

Cross Infection↗

Initial experience with asynchronous transfer mode for use in a medical imaging network.

Picture archiving and communication Systems (PACS) for medical imaging have always suffered from band-width limitations, throughput, and proprietary protocols. Commercially available local area networks have been hard pressed to meet the requirements of image transfer in a time consistent with patient-care needs. Recent technologic advances provide potential solutions to these constraints. Asynchronous transfer mode (ATM) provides the aggregate bandwidth and throughput that may be sufficient to satisfy the medical imaging community. Networks using prototype ATM technology have been available and commercial hardware is now becoming available. This report presents initial performance results of an ATM network and its suitability for use in a digital imaging network. Throughput of 10 Mbytes/sec was attained with Transmission Control Protocol/Internet Protocol using commercially available hardware.

Computer Communication Networks↗

Networking computers.

This decade the role of the personal computer has shifted dramatically from a desktop device designed to increase individual productivity and efficiency to an instrument of communication linking people and machines in different places with one another. A computer in one city can communicate with another that may be thousands of miles away. Networking is how this is accomplished. Just like the voice network used by the telephone, computer networks transmit data and other information via modems over these same telephone lines. A network can be created over both short and long distances. Networks can be established within a hospital or medical building or over many hospitals or buildings covering many geographic areas. Those confined to one location are called LANs, local area networks. Those that link computers in one building to those at other locations are known as WANs, or wide area networks. The ultimate wide area network is the one we've all been hearing so much about these days--the Internet, and its World Wide Web. Setting up a network is a process that requires careful planning and commitment. To avoid potential pitfalls and to make certain the network you establish meets your needs today and several years down the road, several steps need to be followed. This article reviews the initial steps involved in getting ready to network.

Computer Communication Networks↗

RADPLANET--a functional radiology digital image network.

RADPLANET is a functioning LAN (Local Area Network) designed to integrate the many and varied facilities of a university medical center radiology department (Department of Radiation Sciences) into an efficient unified resource providing state-of-the-art diagnostic capabilities and delivering precision radiotherapy. RADPLANET links diagnostic work stations, radiation-therapy planning work stations, and therapy machine stations into an integrated whole. The RADPLANET project exploits technology currently evolving in the PACS (Picture Archiving and Communicating Systems) community but also addresses digital image networking requirements peculiar to radiation therapy. RADPLANET is designed as a modular, expandable, piecemeal updatable system in order to incorporate new, more cost-effective technology as it becomes available and to provide new resources to meet the needs of a growing department and an increasingly sophisticated medical profession. The paper discusses design criteria and rationale, current status of the network, and plans for continuing expansion and enhancement.

Hospital Departments↗

Picture archiving and communication system-asynchronous transfer mode network in a midsized hospital.

This article describes the pathway to full implementation of a hospital information system-picture archiving and communication system-wide area network (HIS-PACS-WAN) in a 300-bed acute care hospital, and the linking of that system to two other off-site medical centers. The PACS included direct digital capture of computed tomography (CT), magnetic resonance (MR) imaging, nuclear medicine, and ultrasonography images into an Olicon archive. Plain radiographs and fluoroscopy images were digitized manually and archived into an Olicon system. The active archive included current images on each Olicon workstation and the juke box. Long-term archiving of the images on removable optical discs, which would be loaded manually by an operator every time a request for one of these studies appeared on the operator's monitor, also was implemented. Ability to store, retrieve, and display simultaneously the physician's report of each procedure along with the images was an ultimate goal. The WAN is to be used for teleradiology and teleconferencing among the three medical centers involved in this study as well as other off-site locations. Phase I included the design and installation of the local area network (LAN) in the Department of Radiology at Olive View-UCLA Medical Center. This included the clinics and the inpatient and hospital-wide fiber-optic network and its linkage to the local telephone company. Phase II involved linkage of the Olicon workstations to imaging equipment. This implementation has been delayed significantly because of inadequate needs assessment, absence of planning for forward-compatibility to imaging equipment, and incompatibilities in DICOM conformance among vendors. Every PACS project must include an in-depth needs analysis, which should be updated yearly because of rapid turnover of technology. Although this analysis should have a heavy emphasis on clinical needs, it must incorporate the hospital-wide needs for an integrated information systems network. Integration of PACS, HIS, RIS, and a dictation/transcription system is a complex task that requires a full-time, clinically oriented project officer for successful completion.

Computer Communication Networks↗

Dynamical monitoring network system for perinatal care.

A new type of monitoring network system for perinatal care is proposed and has been developed. The patient monitoring system and data analyzing system are connected by a local area network (LAN). The doctor can retrieve past sampled data and results of data analysis, and make a detailed analysis at the same time that the patient is being monitored. The mainframe of the hospital information system (HIS) is connected with a data server in the perinatal care area via LAN. The database in perinatal care is supplied to the HIS and the doctor through this monitoring network system. If data sampled at maternity clinics or hospitals are once transmitted to the data server on LAN via the public telephone circuit, these data are available for the specialists on LAN. This function is utilized for supporting the obstetricians.

Computer Systems↗

Experiences with the german teleradiology system MEDICUS.

This paper introduces the teleradiology system, MEDICUS, which has been developed at the Deutsches Krebsforschungszentrum (German Cancer Research Center) in Heidelberg, Germany. The system is designed to work on ISDN lines as well as in a local area network. The global software architecture is explained in the article. Special attention has been given to the design of the user interface and data security, integrity and authentication. The software has been evaluated in a German field test at 13 radiology departments in university clinics, small hospitals, private practices and research institutes. More than 30 thousand images have been transmitted using this system during a 9 month period. Realized application scenarios are: in-house communication, image and report delivery to referring hospitals, remote reporting, radiotherapy treatment planning and research cooperation. Experience has shown that the system is easy to use and saves time. It obviates the need for patient transport and reduces film costs. Experiences of individuals while using the system during the field test helped define the functionality of the second generation teleradiology system which is even more flexible and is also available as a commercial product.

Computer Communication Networks↗

[Basic data in informatics illustrated by their application in surgery].

As an introduction to a study day devoted to informatic in surgery, some basis knowledges are summarized: architecture and function of computers, programmation language, data bases. They are illustrated by various applications made in the "Cliniques St Luc" te Brussel namely patient monitoring, artificial pancreas, office system and operating room management system. The future use of local area network is proposed in order to achieve medical department independence and the needed cooperation between all users of medical and hospital informatic.

Belgium↗

Digital image management: networking, display, and archiving.

The requirements for implementing a radiology imaging network are similar to those for local area networks now being designed for other purposes to manage large data films. A radiology department serving a 500-bed hospital generates about 927 megabytes of digitally formatted data per working day. These data are expected to be on line for the patient's hospitalization period. The retrieval rate of these data among the interactive diagnosis display stations requires data throughput rates of between 2 and 5 megabits per second. This throughput rate requires signaling rates of between 20 and 50 megabits per second. Analog hard-copy generation of the images on the network is required by the referring physician for selected images that support the consultation report. Digital laser recorders using paper may be quite satisfactory. Long-term archiving must be low in cost and requires a database scheme capable of managing more than a terabyte of image data. Radiology networks must be required to bridge with other hospital information systems.

Computers↗

Remote connection to the Kyushu University Medical Center LAN using digital and analog telephone lines.

SOHO (Small Office/Home Office) has recently become popular, as it makes working at home possible. Computers or Local Area Networks(LAN) connected to the office network from home are necessary for the implementation of this concept. Kyushu University has begun a service connecting home computers to the campus LAN for researchers, staff and students of the Faculty of Medicine. We have two different telephone connection methods. One connects the campus LAN and the home computer LAN using routers through the Integrated Services Digital Network (ISDN). The other connects computers at home to the workstation in the university, using modems and the PPP (Point to Point Protocol) through a public telephone analog line. This paper outlines our university SOHO connection system and discusses the merits and demerits of using telephone line connections.

Academic Medical Centers↗

Migrating towards a client server architecture: a successful application in a 2,200-bed general hospital.

Asan Medical Center (AMC) completed a major migration process of the hospital information system from a mainframe towards an open Unix client server architecture from August of 1993 to August of 1996. Along with the east wing extension of AMC, the number of inpatient beds is greatly increased from 1,000 to 2,200 and information transaction increased from 300,000 to 700,000. A gradual departmental migration strategy with local area network connection and data conversion between the two systems were applied. The successful migration process towards a client server architecture provided improved user interface, enhanced flexibility and productivity of the system, better integration with diverse medical devices and improved networking flexibility.

Academic Medical Centers↗