Image registration aligns preoperative MRI or CT data with the patient’s position in the operating setting. This alignment creates a correspondence between the patient’s anatomy and the three-dimensional images displayed by the navigation system. When registration is appropriate, clinicians can use the imaging dataset to orient instruments spatially and relate their position to planned targets and nearby brain structures.
Instrument tracking provides the system with the real-time location of surgical tools relative to the registered anatomical images. The display helps clinicians determine where an instrument lies within the patient’s anatomy and maintain spatial orientation during an intervention. This information supports targeting and operative decision-making, particularly when a procedure occurs near structures that require careful localization.
Brain shift can reduce accuracy because the anatomy may change after the preoperative images have been acquired and registered. As the brain moves or operative conditions alter anatomical relationships, the displayed image may no longer correspond perfectly to the current position of tissue. Clinicians therefore need to interpret navigation information within the changing intraoperative anatomical context.
The process begins with patient-specific brain imaging, typically MRI or CT, obtained before surgery. These data are used to create the three-dimensional anatomical reference for planning and intraoperative localization. During the procedure, the imaging dataset is registered to the patient’s position so the navigation display can relate tracked instruments to the individual’s anatomy.
Neuronavigation can support planning and targeting in several neurosurgical interventions, including brain tumor resection, biopsy, vascular procedures, and operations near critical structures. Its value is greatest when precise spatial orientation helps clinicians connect the operative field with patient-specific imaging. The technique provides guidance for decision-making, but anatomical changes during surgery may limit its accuracy.
During surgery, the system displays the tracked location of instruments in relation to three-dimensional brain images. This information helps clinicians assess spatial relationships between the operative tool, the intended target, and surrounding anatomy. In medicine, that added orientation can support more precise planning and targeting while integrating imaging findings with ongoing operative decisions.