This inventor holds 1 USPTO granted patent. Top assignee: Bio-Logic Systems Corp.. Active years: 1990.
Company Filing History:
Years Active: 1990
Title: Dean Koester - Innovator in Biologically Induced Electrical Activity Display
Introduction
Dean Koester is an accomplished inventor based in Grayslake, Illinois. He has made significant contributions to the field of biomedical engineering, particularly in the display of electrical activity generated within living organisms. His innovative work has the potential to enhance the understanding of biological processes through advanced visualization techniques.
Latest Patents
Dean Koester holds a patent for an "Apparatus and method for displaying electrical activity generated within." This invention includes sensors that measure EEG or MEG signals from a living body. The apparatus computes dipoles representative of the measured electrical activity, allowing for a detailed analysis of the electrical activity at discrete locations on or within the body. The operator can input various computational specifications to facilitate dipole computation. The resulting data can be displayed in multiple formats, including three-dimensional representations, movie-like series of dipoles, and topographic maps.
Career Highlights
Throughout his career, Dean has been associated with Bio-Logic Systems Corporation, where he has applied his expertise in developing innovative solutions for biomedical applications. His work has contributed to advancements in the visualization of electrical activity, which is crucial for both research and clinical settings.
Collaborations
Dean Koester has collaborated with notable colleagues, including David Kripal and James N Towle. These partnerships have fostered a collaborative environment that encourages innovation and the sharing of ideas in the field of biomedical engineering.
Conclusion
Dean Koester's contributions to the field of biomedical engineering through his innovative patent demonstrate his commitment to advancing the understanding of biologically induced electrical activity. His work continues to inspire future developments in this important area of research.