Search PubMedSearch

Biomedical subjects

R M Satava

Publications and source records attributed to R M Satava.

At least 19 recordsLinked to original sources

Otolaryngology in the information age: enabling technologies for the future of surgery. Enabling technologies for the future of surgery.

Enabling technologies for the future, whether exemplified by endoscopic, minimally invasive, or microdexterity systems or surgical and nonsurgical image-guided procedures, continue with an evolution so rapid that before one change has been accepted and perfected, another even more dramatic change promises to replace it. These information-based surgical and procedural interventions are just now becoming accepted standards of surgical, radiologic, and medical practice, and yet the promise of more advanced technologies blurs even these new boundaries, constantly redefining the concept of "surgery." It is essential that otolaryngologists, as part of the broader spectrum of physicians, understand these changes and prepare to adapt and improve each and every one of their technical and cognitive skills.

Computer Simulation

Laparoscopic surgery. Transition to the future.

The twenty-first century will usher in a fundamentally new approach to the practice of medicine. It will be based heavily on information technologies, broadly defined as the devices that acquire information; those that process, transmit, and distribute information; and those that use information to provide therapy. Although conventional surgery will continue to have a presence, there will be radically different surgical approaches and technologies that may become the predominant form of surgery. The medical record may become a three-dimensional visual representation of the individual patient (like the Visible Human Project), which can be the vehicle that integrates the entire spectrum of health care. Examples of the technologies and infrastructures that support this new approach to medicine are discussed and illustrated, with emphasis on how technologies improve individual patient care.

Forecasting

Accelerating technology transfer: new relationships for academia, industry and government.

The budget deficit, reduction in Defense spending and the lack of return in the "peace dividend" has resulted in reduced federal funding for research. A number of programs have attempted to remedy the problem, with the use of collaborative funding as one of the major solutions. However, within the medical research community, there continues to be a very long technology transfer cycle. By mimicking the processes of non-medical high technology research and employing a number of these innovative solutions to medical research could afford the pathway to success. A template of how this could be accomplished through cooperative efforts of academia, industry and government is presented by using examples of success and failure in the past.

Academic Medical Centers

Virtual reality and telepresence for military medicine.

For decades, warfighters have been putting in place a sophisticated "digital battlefield", an electronic communication and information system to support advanced technology. Medicine is now in a position to leverage these technologies to produce a fundamental revolution, and the keystone is the digital physician. Today nearly all information about a patient can be acquired electronically, and with the new technologies of teleoperation and telesurgery we can provide remote treatment and even surgery through telemedicine. The following framework for military medicine will leverage upon the current electronic battlefield. A personnel status monitor (PSM) will have a global positioning locator to tell the position of each soldier and a suite of vital signs sensors. When a soldier is wounded, the medic will instantly know the location of the soldier, and how serious is the casualty. This will permit the medic to locate the most critically wounded soldier. Once stabilised, he will be placed in a critical care pod, a fully automated intensive care unit in a stretcher, which will monitor his vital signs, administer fluids and medications and provide environmental protection. If immediate surgery is needed, a remote telepresence surgery vehicle will come to the wounded soldier, the medic will place him in the vehicle, and a surgeon will operate remotely using telepresence surgery from a distant Mobile Advance Surgical Hospital (MASH) to the combat zone. Also, the expertise from any specialist will be available from the rear echelons as far back as the home country. For education and training in combat casualty care, virtual reality simulators are being implemented. This same scenario can be utilised in civilian health care, especially in providing care to patients in remote areas who do not currently have access to simple, let alone sophisticated, health care.

Computer Simulation

Virtual reality and telemedicine: exploring advanced concepts.

Virtual reality (VR) has provided a new methodology for interacting with information. Since telemedicine is principally involved with transmitting medical information, VR has the potential to enhance the telemedicine experience. The two principle ways in which VR can be applied are as an interface, which enables a more intuitive manner of interacting with information, and as an environment that enhances the feeling of presence during the interaction. Since there are no current clinical applications of VR in the telemedicine experience, this report reviews concepts and experiences with the potential to enhance the delivery of telemedicine.

Humans

Virtual endoscopy of the head and neck. Diagnosis using three-dimensional visualization and virtual representation.

BACKGROUND: Although flexible endoscopy is only 25 years old, a new technology may soon be used to provide the same view of internal organs without inserting an instrument. This is virtual endoscopy. METHODS: By acquiring patient specific high resolution digital images with a helical CT scan or MRI, individual organs can be graphically isolated or "segmented" into fully interactive 3-D reconstructions on a computer monitor. Applying sophisticated flight-tracking programs from military pilots, the organs can be "flown through", giving a view identical to endoscopy. CONCLUSIONS: In the future we will fly through data instead of inserting endoscopic instruments for gastrointestinal endoscopic diagnosis.

Computer Simulation

Virtual endoscopy: diagnosis using 3-D visualization and virtual representation.

Although flexible endoscopy is only 25 years old, a new technology may soon be used to provide the same view of internal organs without inserting an instrument. This is virtual endoscopy. By acquiring patient-specific high-resolution digital images with a helical CT scan or MRI, individual organs can be graphically isolated or "segmented" into fully interactive 3-D reconstructions on a computer monitor. Applying sophisticated flight-tracking programs from military pilots, the organs can be "flown through," giving a view identical to endoscopy. In the future we will fly through data instead of inserting endoscopic instruments for gastrointestinal endoscopic diagnosis.

Endoscopes

Virtual reality, telesurgery, and the new world order of medicine.

We are seeing the emergence of medical applications for virtual reality (VR). These include telepresence surgery, three-dimensional (3-D) visualization of anatomy for medical education, VR surgical simulators, and virtual prototyping of surgical equipment and operating rooms. Today, approximately 90% of the knowledge a physician requires can be obtained through electronic means, such as diagnostic sensors and imaging modalities, directly seeing the patient with a video camera for medical consultation, or using electronic medical records. In addition, with telepresence, a therapy can be effected electronically, regardless of the physical location of the patient. Therefore, it makes sense to send the electronic information or manipulation, rather than sending the patient or blood samples, to obtain tests or to produce a cure. In that these applications are mediated through the computer interface, they are the embodiment of VR as the major force for change in the field of medicine. The Green Telepresence Surgery System consists of two components, the surgical workstation and the remote worksite. At the remote site are a 3-D camera system and responsive manipulators with sensory input. At the workstation are a 3-D monitor and dexterous handles with force feedback. The next generation in medical education can learn anatomy from a new perspective by "flying" inside and around the organs, using sophisticated computer systems and 3-D visualization. The VR surgical simulator is a stylized recreation of the human abdomen with several essential organs. Using this, students and surgeons can practice surgical procedures with virtual scalpels and clamps. To support these advanced technologies, the operating room and hospital of the future will first be designed and tested in virtual reality, allowing multiple iterations of equipment and surgical rooms before they are actually built. Insofar as all these technologies are based on digital information, they are the building blocks for the digital physician of the 21st century.

Computer Simulation

Medical applications of virtual reality.

Medical applications for virtual reality (VR) are just beginning to emerge. These include VR surgical simulators, telepresence surgery, complex medical database visualization, and rehabilitation. These applications are mediated through the computer interface and as such are the embodiment of VR as an integral part of the paradigm shift in the field of medicine. The Green Telepresence Surgery System consists of two components, the surgical workstation and remote worksite. At the remote site there is a 3-D camera system and responsive manipulators with sensory input. At the workstation there is a 3-D monitor and dexterous handles with force feedback. The VR surgical simulator is a stylized recreation of the human abdomen with several essential organs. Using a helmet mounted display and DataGlove, a person can learn anatomy from a new perspective by 'flying' inside and around the organs, or can practice surgical procedures with a scalpel and clamps. Database visualization creates 3-D images of complex medical data for new perspectives in analysis. Rehabilitation medicine permits impaired individuals to explore worlds not otherwise available to them, allows accurate assessment and therapy for their disabilities, and helps architects understand their critical needs in public or personal space. And to support these advanced technologies, the operating room and hospital of the future will be first designed and tested in virtual reality, bringing together the full power of the digital physician.

Computer Graphics

Virtual reality and telepresence for military medicine.

The profound changes brought about by technology in the past few decades are leading to a total revolution in medicine. The advanced technologies of telepresence and virtual reality are but two of the manifestations emerging from our new information age; now all of medicine can be empowered because of this digital technology. The leading edge is on the digital battlefield, where an entire new concept in military medicine is evolving. Using remote sensors, intelligent systems, telepresence surgery and virtual reality surgical simulations, combat casualty care is prepared for the 21st century.

Artificial Intelligence

Human interface technology. An essential tool for the modern surgeon.

Human interface technology is a new science which must be understood by all surgeons in order to cope with the ever-increasing complexity of surgical practice. This science is the understanding of how humans comprehend, interact, and use the world around them. The increasing use of robotics, computers, and virtual reality depend upon this technology to create a "user-friendly" environment to be able to assimilate the massive amount of data and images and to "naturally" interact with machines and computers. Through careful implementation, more complex systems will become easier to use and enhance the surgeon--the technology must adapt to the surgeon, not the reverse.

General Surgery