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Image Search Results
Journal: Journal of Rehabilitation and Assistive Technologies Engineering
Article Title: Initial feasibility evaluation of the RISES system: An innovative and activity-based closed-loop framework for spinal cord injury rehabilitation and recovery
doi: 10.1177/20556683241280242
Figure Lengend Snippet: Inclusion and Exclusion criteria.
Article Snippet: Throughout the study, tSCS was delivered via 12 rectangular shaped
Techniques: Muscles
Journal: Journal of Rehabilitation and Assistive Technologies Engineering
Article Title: Initial feasibility evaluation of the RISES system: An innovative and activity-based closed-loop framework for spinal cord injury rehabilitation and recovery
doi: 10.1177/20556683241280242
Figure Lengend Snippet: A schematic shows IMU sensor locations on the subject’s body (a), an IMU sensor on the left forearm (b), electrode placements with corresponding levels (c), and EMG sensor placement on muscles (Extensor Carpi Radialis, Flexor Carpi Radialis, Biceps, Triceps) used for muscle activity analysis (d).
Article Snippet: Throughout the study, tSCS was delivered via 12 rectangular shaped
Techniques: Muscles, Activity Assay
Journal: IEEE transactions on instrumentation and measurement
Article Title: The ACE1 Electrical Impedance Tomography System for Thoracic Imaging
doi: 10.1109/tim.2018.2874127
Figure Lengend Snippet: As shown in this overview of the ACE1 system design, it uses multiplexed digital signals to control current application and acquisition of voltages on the active electrodes (Ve or Vc).
Article Snippet: The electrodes used in all human data collection in this paper were
Techniques: Control
Journal: IEEE transactions on instrumentation and measurement
Article Title: The ACE1 Electrical Impedance Tomography System for Thoracic Imaging
doi: 10.1109/tim.2018.2874127
Figure Lengend Snippet: The design of the ACE1 active electrode allows for determining injected current and measuring electrical potentials arising on the surface of the skin.
Article Snippet: The electrodes used in all human data collection in this paper were
Techniques: Injection
Journal: IEEE transactions on instrumentation and measurement
Article Title: The ACE1 Electrical Impedance Tomography System for Thoracic Imaging
doi: 10.1109/tim.2018.2874127
Figure Lengend Snippet: Experimental signal-to-noise ratio differences were computed for each electrode for current pattern (k) 7 from 5 different datasets using different skip patterns. Each dataset contains 250 frames of data collected on a saline-filled tank at 16 frames/second. In k=7, electrode 7 is an injecting electrode and the skip pattern specifies the number of electrodes in between 7 and the next injecting electrode.
Article Snippet: The electrodes used in all human data collection in this paper were
Techniques: Saline
Journal: IEEE transactions on instrumentation and measurement
Article Title: The ACE1 Electrical Impedance Tomography System for Thoracic Imaging
doi: 10.1109/tim.2018.2874127
Figure Lengend Snippet: Max voltage differences over all electrodes and current patterns for copper and plastic pipe targets in the center of a saline-filled tank compared to voltages in a homogeneous tank with data collected at 125 kHz with 1.8 mS/cm saline and current amplitude of 2.4 mA.
Article Snippet: The electrodes used in all human data collection in this paper were
Techniques: Saline
Journal: IEEE transactions on instrumentation and measurement
Article Title: The ACE1 Electrical Impedance Tomography System for Thoracic Imaging
doi: 10.1109/tim.2018.2874127
Figure Lengend Snippet: The real component of the transfer impedance (TIr) for non-injecting electrodes and the leading injecting electrode or l = 2 for the first current pattern (k =1). Each asterisk corresponds to the sequential series of images shown in Figure 13.
Article Snippet: The electrodes used in all human data collection in this paper were
Techniques:
Journal: IEEE transactions on instrumentation and measurement
Article Title: The ACE1 Electrical Impedance Tomography System for Thoracic Imaging
doi: 10.1109/tim.2018.2874127
Figure Lengend Snippet: The magnitude component of the transfer impedance (TIm) for non-injecting electrodes and the leading injecting electrode or l =2 for the first current pattern (k =1). Each asterisk corresponds to the sequential series of images shown in Figure 13.
Article Snippet: The electrodes used in all human data collection in this paper were
Techniques:
Journal: IEEE transactions on instrumentation and measurement
Article Title: The ACE1 Electrical Impedance Tomography System for Thoracic Imaging
doi: 10.1109/tim.2018.2874127
Figure Lengend Snippet: The imaginary component of the transfer impedance (TIi) for non-injecting electrodes and the leading injecting electrode or l =2 for the first current pattern (k =1). Each asterisk corresponds to the sequential series of images shown in Figure 15.
Article Snippet: The electrodes used in all human data collection in this paper were
Techniques:
Journal: IEEE transactions on instrumentation and measurement
Article Title: The ACE1 Electrical Impedance Tomography System for Thoracic Imaging
doi: 10.1109/tim.2018.2874127
Figure Lengend Snippet: The phase component of the transfer impedance (TIθ) for non-injecting electrodes and the leading injecting electrode or l =2 for the first current pattern (k =1). Each asterisk corresponds to the sequential series of images shown in Figure 15.
Article Snippet: The electrodes used in all human data collection in this paper were
Techniques:
Journal: IEEE transactions on instrumentation and measurement
Article Title: The ACE1 Electrical Impedance Tomography System for Thoracic Imaging
doi: 10.1109/tim.2018.2874127
Figure Lengend Snippet: In a single frame, the number of current patterns is the same as the number of electrodes used. A list of injecting electrodes for each current pattern for skip patterns 0, 1, 2, 3, and 4 is provided. In this example, we assume only 20 electrodes are in use.
Article Snippet: The electrodes used in all human data collection in this paper were
Techniques:
Journal: IEEE transactions on instrumentation and measurement
Article Title: The ACE1 Electrical Impedance Tomography System for Thoracic Imaging
doi: 10.1109/tim.2018.2874127
Figure Lengend Snippet: The magnitude component of the transfer impedance (TIm) for injection electrode l =2, as well as 3 non-injecting electrodes. Each asterisk corresponds to the sequential series of images shown in Figure 15.
Article Snippet: The electrodes used in all human data collection in this paper were
Techniques: Injection
Journal: IEEE transactions on instrumentation and measurement
Article Title: The ACE1 Electrical Impedance Tomography System for Thoracic Imaging
doi: 10.1109/tim.2018.2874127
Figure Lengend Snippet: The phase component of the transfer impedance (TIθ) for injection electrode l = 2, as well as 3 non-injecting electrodes. Each asterisk corresponds to the sequential series of images shown in Figure 15.
Article Snippet: The electrodes used in all human data collection in this paper were
Techniques: Injection