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</style><table class="infobox"><tbody><tr><th colspan="2" class="infobox-above" style="background-color: lightblue">Evoked potential</th></tr><tr><th scope="row" class="infobox-label"><a href="Medical_Subject_Headings" title="Medical Subject Headings">MeSH</a></th><td class="infobox-data"><span class="reflink nourlexpansion"><a rel="nofollow" class="external text" href="https://meshb.nlm.nih.gov/record/ui?ui=D005071">D005071</a></span></td></tr></tbody></table>
<p>An <b>evoked potential</b> or <b>evoked response</b> (<b>EV</b>)<sup id="cite_ref-1" class="reference"><a href="#cite_note-1"><span class="cite-bracket">[</span>1<span class="cite-bracket">]</span></a></sup> is an <a href="Electrical_potential" class="mw-redirect" title="Electrical potential">electrical potential</a> in a specific pattern recorded from a specific part of the <a href="Nervous_system" title="Nervous system">nervous system</a>, especially the <a href="Brain" title="Brain">brain</a>, of a <a href="Human" title="Human">human</a> or other <a href="Animals" class="mw-redirect" title="Animals">animals</a> following presentation of a <a href="Stimulus_(physiology)" title="Stimulus (physiology)">stimulus</a> such as a light flash or a <a href="Pure_tone" title="Pure tone">pure tone</a>. Different types of potentials result from stimuli of different <a href="Stimulus_modality" title="Stimulus modality">modalities</a> and types.<sup id="cite_ref-VandenBos2015_2-0" class="reference"><a href="#cite_note-VandenBos2015-2"><span class="cite-bracket">[</span>2<span class="cite-bracket">]</span></a></sup>
Evoked potential is distinct from spontaneous potentials as detected by <a href="Electroencephalography" title="Electroencephalography">electroencephalography</a> (EEG), <a href="Electromyography" title="Electromyography">electromyography</a> (EMG), or other <a href="Electrophysiology" title="Electrophysiology">electrophysiologic</a> recording method. Such potentials are useful for <a href="Electrodiagnostic_medicine" title="Electrodiagnostic medicine">electrodiagnosis</a> and <a href="Monitoring_(medicine)" title="Monitoring (medicine)">monitoring</a> that include detections of disease and drug-related sensory dysfunction and intraoperative monitoring of sensory pathway integrity.<sup id="cite_ref-3" class="reference"><a href="#cite_note-3"><span class="cite-bracket">[</span>3<span class="cite-bracket">]</span></a></sup>
</p><p>Evoked potential <a href="Amplitude" title="Amplitude">amplitudes</a> tend to be low, ranging from less than a <a href="Microvolt" class="mw-redirect" title="Microvolt">microvolt</a> to several microvolts, compared to tens of microvolts for EEG, millivolts for EMG, and often close to 20 millivolts for <a href="Electrocardiogram" class="mw-redirect" title="Electrocardiogram">ECG</a>. To resolve these low-amplitude potentials against the background of ongoing EEG, ECG, EMG, and other biological signals and ambient noise, signal <a href="Averaging" class="mw-redirect" title="Averaging">averaging</a> is usually required. The signal is time-locked to the stimulus and most of the <a href="Noise" title="Noise">noise</a> occurs randomly, allowing the noise to be averaged out with averaging of repeated responses.<sup id="cite_ref-4" class="reference"><a href="#cite_note-4"><span class="cite-bracket">[</span>4<span class="cite-bracket">]</span></a></sup>
</p><p>Signals can be recorded from <a href="Cerebral_cortex" title="Cerebral cortex">cerebral cortex</a>, <a href="Brain_stem" class="mw-redirect" title="Brain stem">brain stem</a>, <a href="Spinal_cord" title="Spinal cord">spinal cord</a>, <a href="Peripheral_nervous_system" title="Peripheral nervous system">peripheral nerves</a> and <a href="Muscles" class="mw-redirect" title="Muscles">muscles</a>. Usually the term "evoked potential" is reserved for responses involving either recording from, or stimulation of, central nervous system structures. Thus evoked compound motor action potentials (CMAP) or sensory nerve action potentials (SNAP) as used in <a href="Nerve_conduction_study" title="Nerve conduction study">nerve conduction studies</a> (NCS) are generally not thought of as evoked potentials, though they do meet the above definition.
</p><p>Evoked potential is different from <a href="Event-related_potential" title="Event-related potential">event-related potential</a> (ERP), although the terms are sometimes used synonymously, because ERP has higher latency, and is associated with higher cognitive processing.<sup id="cite_ref-VandenBos2015_2-1" class="reference"><a href="#cite_note-VandenBos2015-2"><span class="cite-bracket">[</span>2<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-Kwasnica2011_5-0" class="reference"><a href="#cite_note-Kwasnica2011-5"><span class="cite-bracket">[</span>5<span class="cite-bracket">]</span></a></sup> Evoked potentials are mainly classified by the type of stimulus: somatosensory, auditory, visual. But they could also be classified according to stimulus frequency, wave latencies, potential origin, location, and derivation.
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<div class="mw-heading mw-heading2"><h2 id="Steady-state_evoked_potential">Steady-state evoked potential</h2></div>
<p>An evoked potential is the electrical response of the brain to a sensory stimulus. Regan constructed an analogue Fourier series analyzer to record harmonics of the evoked potential of flickering (sinusoidally modulated) light. Rather than integrating the sine and cosine products, Regan fed the signals to a two-pen recorder via lowpass filters.<sup id="cite_ref-Neurophysiology_6-0" class="reference"><a href="#cite_note-Neurophysiology-6"><span class="cite-bracket">[</span>6<span class="cite-bracket">]</span></a></sup> This allowed him to demonstrate that the brain attained a steady-state regime in which the amplitude and phase of the harmonics (frequency components) of the response were approximately constant over time. By analogy with the steady-state response of a resonant circuit that follows the initial transient response he defined an idealized steady-state evoked potential (SSEP) as a form of response to repetitive sensory stimulation in which the constituent frequency components of the response remain constant with time in both amplitude and phase.<sup id="cite_ref-Neurophysiology_6-1" class="reference"><a href="#cite_note-Neurophysiology-6"><span class="cite-bracket">[</span>6<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-Electrical_7-0" class="reference"><a href="#cite_note-Electrical-7"><span class="cite-bracket">[</span>7<span class="cite-bracket">]</span></a></sup> Although this definition implies a series of identical temporal waveforms, it is more helpful to define the SSEP in terms of the frequency components that are an alternative description of the time-domain waveform, because different frequency components can have quite different properties.<sup id="cite_ref-Electrical_7-1" class="reference"><a href="#cite_note-Electrical-7"><span class="cite-bracket">[</span>7<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-electrophysiology_8-0" class="reference"><a href="#cite_note-electrophysiology-8"><span class="cite-bracket">[</span>8<span class="cite-bracket">]</span></a></sup> For example, the properties of the high-frequency flicker SSEP (whose peak amplitude is near 40–50&nbsp;Hz) correspond to the properties of the subsequently discovered magnocellular neurons in the retina of the macaque monkey, while the properties of the medium-frequency flicker SSEP ( whose amplitude peak is near 15–20&nbsp;Hz) correspond to the properties of parvocellular neurons.<sup id="cite_ref-9" class="reference"><a href="#cite_note-9"><span class="cite-bracket">[</span>9<span class="cite-bracket">]</span></a></sup> Since a SSEP can be completely described in terms of the amplitude and phase of each frequency component it can be quantified more unequivocally than an averaged transient evoked potential.
</p><p>It is sometimes said that SSEPs are elicited only by stimuli of high repetition frequency, but this is not generally correct. In principle, a sinusoidally modulated stimulus can elicit a SSEP even when its repetition frequency is low. Because of the high-frequency <a href="Rolloff" class="mw-redirect" title="Rolloff">rolloff</a> of the SSEP, high frequency stimulation can produce a near-sinusoidal SSEP waveform, but this is not germane to the definition of a SSEP.
By using zoom-FFT to record SSEPs at the theoretical limit of spectral resolution ΔF (where ΔF in Hz is the reciprocal of the recording duration in seconds) Regan and Regan discovered that the amplitude and phase variability of the SSEP can be sufficiently small that the bandwidth of the SSEP's constituent frequency components can be at the theoretical limit of spectral resolution up to at least a 500-second recording duration (0.002&nbsp;Hz in this case).<sup id="cite_ref-10" class="reference"><a href="#cite_note-10"><span class="cite-bracket">[</span>10<span class="cite-bracket">]</span></a></sup>
Repetitive sensory stimulation elicits a steady-state magnetic brain response that can be analysed in the same way as the SSEP.<sup id="cite_ref-electrophysiology_8-1" class="reference"><a href="#cite_note-electrophysiology-8"><span class="cite-bracket">[</span>8<span class="cite-bracket">]</span></a></sup>
</p>
<div class="mw-heading mw-heading3"><h3 id="The_&quot;simultaneous_stimulation&quot;_technique">The "simultaneous stimulation" technique</h3></div>
<p>This technique allows several (e.g., four) SSEPs to be recorded simultaneously from any given location on the scalp.<sup id="cite_ref-Psychiatry_11-0" class="reference"><a href="#cite_note-Psychiatry-11"><span class="cite-bracket">[</span>11<span class="cite-bracket">]</span></a></sup> Different sites of stimulation or different stimuli can be tagged with slightly different frequencies that are virtually identical to the brain, but easily separated by Fourier series analyzers.<sup id="cite_ref-Psychiatry_11-1" class="reference"><a href="#cite_note-Psychiatry-11"><span class="cite-bracket">[</span>11<span class="cite-bracket">]</span></a></sup> For example, when two unpatterned lights are modulated at slightly different frequencies (F1 and F2) and superimposed, multiple nonlinear cross-modulation components of frequency (mF1 ± nF2) are created in the SSEP, where m and n are integers.<sup id="cite_ref-electrophysiology_8-2" class="reference"><a href="#cite_note-electrophysiology-8"><span class="cite-bracket">[</span>8<span class="cite-bracket">]</span></a></sup> These components allow nonlinear processing in the brain to be investigated. By frequency-tagging two superimposed gratings, spatial frequency and orientation tuning properties of the brain mechanisms that process spatial form can be isolated and studied.<sup id="cite_ref-12" class="reference"><a href="#cite_note-12"><span class="cite-bracket">[</span>12<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-13" class="reference"><a href="#cite_note-13"><span class="cite-bracket">[</span>13<span class="cite-bracket">]</span></a></sup> Stimuli of different sensory modalities can also be tagged. For example, a visual stimulus was flickered at Fv Hz and a simultaneously presented auditory tone was amplitude modulated at Fa Hz. The existence of a (2Fv + 2Fa) component in the evoked magnetic brain response demonstrated an audio-visual convergence area in the human brain, and the distribution of this response over the head allowed this brain area to be localized.<sup id="cite_ref-14" class="reference"><a href="#cite_note-14"><span class="cite-bracket">[</span>14<span class="cite-bracket">]</span></a></sup> More recently, frequency tagging has been extended from studies of sensory processing to studies of selective attention<sup id="cite_ref-Selective_15-0" class="reference"><a href="#cite_note-Selective-15"><span class="cite-bracket">[</span>15<span class="cite-bracket">]</span></a></sup> and of consciousness.<sup id="cite_ref-Srinivasan_16-0" class="reference"><a href="#cite_note-Srinivasan-16"><span class="cite-bracket">[</span>16<span class="cite-bracket">]</span></a></sup>
</p>
<div class="mw-heading mw-heading3"><h3 id="The_&quot;sweep&quot;_technique">The "sweep" technique</h3></div>
<p>The sweep technique is a hybrid frequency domain/time domain technique.<sup id="cite_ref-Rapid_17-0" class="reference"><a href="#cite_note-Rapid-17"><span class="cite-bracket">[</span>17<span class="cite-bracket">]</span></a></sup> A plot of, for example, response amplitude versus the check size of a stimulus checkerboard pattern plot can be obtained in 10 seconds, far faster than when time-domain averaging is used to record an evoked potential for each of several check sizes.<sup id="cite_ref-Rapid_17-1" class="reference"><a href="#cite_note-Rapid-17"><span class="cite-bracket">[</span>17<span class="cite-bracket">]</span></a></sup>
In the original demonstration of the technique the sine and cosine products were fed through lowpass filters (as when recording a SSEP ) while viewing a pattern of fine checks whose black and white squares exchanged place six times per second. Then the size of the squares was progressively increased so as to give a plot of evoked potential amplitude versus check size (hence "sweep"). Subsequent authors have implemented the sweep technique by using computer software to increment the spatial frequency of a grating in a series of small steps and to compute a time-domain average for each discrete spatial frequency.<sup id="cite_ref-Infant_18-0" class="reference"><a href="#cite_note-Infant-18"><span class="cite-bracket">[</span>18<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-19" class="reference"><a href="#cite_note-19"><span class="cite-bracket">[</span>19<span class="cite-bracket">]</span></a></sup>
A single sweep may be adequate or it may be necessary to average the graphs obtained in several sweeps with the averager triggered by the sweep cycle.<sup id="cite_ref-pattern_20-0" class="reference"><a href="#cite_note-pattern-20"><span class="cite-bracket">[</span>20<span class="cite-bracket">]</span></a></sup> Averaging 16 sweeps can improve the signal-to-noise ratio of the graph by a factor of four.<sup id="cite_ref-pattern_20-1" class="reference"><a href="#cite_note-pattern-20"><span class="cite-bracket">[</span>20<span class="cite-bracket">]</span></a></sup>
The sweep technique has proved useful in measuring rapidly adapting visual processes<sup id="cite_ref-21" class="reference"><a href="#cite_note-21"><span class="cite-bracket">[</span>21<span class="cite-bracket">]</span></a></sup> and also for recording from babies, where recording duration is necessarily short. Norcia and Tyler have used the technique to document the development of visual acuity<sup id="cite_ref-Infant_18-1" class="reference"><a href="#cite_note-Infant-18"><span class="cite-bracket">[</span>18<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-Spatial_22-0" class="reference"><a href="#cite_note-Spatial-22"><span class="cite-bracket">[</span>22<span class="cite-bracket">]</span></a></sup> and contrast sensitivity<sup id="cite_ref-Electrophysiological_23-0" class="reference"><a href="#cite_note-Electrophysiological-23"><span class="cite-bracket">[</span>23<span class="cite-bracket">]</span></a></sup> through the first years of life. They have emphasized that, in diagnosing abnormal visual development, the more precise the developmental norms, the more sharply can the abnormal be distinguished from the normal, and to that end have documented normal visual development in a large group of infants.<sup id="cite_ref-Infant_18-2" class="reference"><a href="#cite_note-Infant-18"><span class="cite-bracket">[</span>18<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-Spatial_22-1" class="reference"><a href="#cite_note-Spatial-22"><span class="cite-bracket">[</span>22<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-Electrophysiological_23-1" class="reference"><a href="#cite_note-Electrophysiological-23"><span class="cite-bracket">[</span>23<span class="cite-bracket">]</span></a></sup> For many years the sweep technique has been used in paediatric ophthalmology (<a href="Electrodiagnosis" class="mw-redirect" title="Electrodiagnosis">electrodiagnosis</a>) clinics worldwide.
</p>
<div class="mw-heading mw-heading3"><h3 id="Evoked_potential_feedback">Evoked potential feedback</h3></div>
<p>This technique allows the SSEP to directly control the stimulus that elicits the SSEP without the conscious intervention of the experimental subject.<sup id="cite_ref-Neurophysiology_6-2" class="reference"><a href="#cite_note-Neurophysiology-6"><span class="cite-bracket">[</span>6<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-pattern_20-2" class="reference"><a href="#cite_note-pattern-20"><span class="cite-bracket">[</span>20<span class="cite-bracket">]</span></a></sup> For example, the running average of the SSEP can be arranged to increase the luminance of a checkerboard stimulus if the amplitude of the SSEP falls below some predetermined value, and to decrease luminance if it rises above this value. The amplitude of the SSEP then hovers about this predetermined value. Now the wavelength (colour) of the stimulus is progressively changed. The resulting plot of stimulus luminance versus wavelength is a plot of the spectral sensitivity of the visual system.<sup id="cite_ref-Electrical_7-2" class="reference"><a href="#cite_note-Electrical-7"><span class="cite-bracket">[</span>7<span class="cite-bracket">]</span></a></sup><sup id="cite_ref-pattern_20-3" class="reference"><a href="#cite_note-pattern-20"><span class="cite-bracket">[</span>20<span class="cite-bracket">]</span></a></sup>
</p>
<div class="mw-heading mw-heading2"><h2 id="Sensory_evoked_potentials">Sensory evoked potentials</h2></div>
<p>Sensory evoked potentials (SEP) are recorded from the <a href="Central_nervous_system" title="Central nervous system">central nervous system</a> following stimulation of <a href="Sense_organ" class="mw-redirect" title="Sense organ">sense organs</a>, for example, <a href="Visual" class="mw-redirect" title="Visual">visual</a> evoked potentials elicited by a flashing light or changing pattern on a monitor,<sup id="cite_ref-osheaetal_24-0" class="reference"><a href="#cite_note-osheaetal-24"><span class="cite-bracket">[</span>24<span class="cite-bracket">]</span></a></sup> <a href="Auditory_system" title="Auditory system">auditory</a> evoked potentials by a click or tone stimulus presented through earphones), or tactile or <a href="Somatosensory" class="mw-redirect" title="Somatosensory">somatosensory</a> evoked potential (SSEP) elicited by tactile or electrical stimulation of a sensory or mixed nerve in the <a href="Peripheral_nervous_system" title="Peripheral nervous system">periphery</a>. Sensory evoked potentials have been widely used in <a href="Clinical_diagnosis" class="mw-redirect" title="Clinical diagnosis">clinical diagnostic</a> medicine since the 1970s, and also in intraoperative neurophysiology monitoring (IONM), also known as surgical neurophysiology.
</p><p>There are three kinds of evoked potentials in widespread clinical use: auditory evoked potentials, usually recorded from the scalp but originating at <a href="Brainstem" title="Brainstem">brainstem</a> level; visual evoked potentials, and <a href="Somatosensory_evoked_potentials" class="mw-redirect" title="Somatosensory evoked potentials">somatosensory evoked potentials</a>, which are elicited by electrical stimulation of peripheral nerve. Examples of SEP usage include:<sup id="cite_ref-Kwasnica2011_5-1" class="reference"><a href="#cite_note-Kwasnica2011-5"><span class="cite-bracket">[</span>5<span class="cite-bracket">]</span></a></sup>
</p>
<ul><li>SSEP can be used to locate lesions such as peripheral nerve or spinal cord.</li>
<li>VEP and BAEP can supplement <a href="Neuroimaging" title="Neuroimaging">neuroimaging</a> as part of workups to diagnose diseases such as <a href="Multiple_sclerosis" title="Multiple sclerosis">multiple sclerosis</a>.</li>
<li>Short latency EPs such as SSEP, VEP, and BAEP can be used to indicate prognosis for traumatic and anoxic brain injury. Early after anoxic brain injury, no response indicates mortality accurately. In traumatic brain injury, abnormal responses indicates failure to recover from coma. In both types of injury, normal responses may indicate good outcome. Moreover, recovery in responses often indicates clinical recovery.</li></ul>
<p>Long and Allen<sup id="cite_ref-25" class="reference"><a href="#cite_note-25"><span class="cite-bracket">[</span>25<span class="cite-bracket">]</span></a></sup> were the first investigators to report the abnormal brainstem auditory evoked potentials (BAEPs) in an alcoholic woman who recovered from <a href="Acquired_central_hypoventilation_syndrome" class="mw-redirect" title="Acquired central hypoventilation syndrome">acquired central hypoventilation syndrome</a>. These investigators hypothesized that their patient's <a href="Brainstem" title="Brainstem">brainstem</a> was poisoned, but not destroyed, by her chronic alcoholism.
</p>
<div class="mw-heading mw-heading3"><h3 id="Visual_evoked_potential">Visual evoked potential</h3></div>
<p>Visual evoked potential (VEP or EVP or EVR)<sup id="cite_ref-LoganAbbrev_26-0" class="reference"><a href="#cite_note-LoganAbbrev-26"><span class="cite-bracket">[</span>26<span class="cite-bracket">]</span></a></sup> is an evoked potential elicited by presenting light flash or pattern stimulus which can be used to confirm damage to visual pathway<sup id="cite_ref-27" class="reference"><a href="#cite_note-27"><span class="cite-bracket">[</span>27<span class="cite-bracket">]</span></a></sup>
including <a href="Retina" title="Retina">retina</a>, <a href="Optic_nerve" title="Optic nerve">optic nerve</a>, <a href="Optic_chiasm" title="Optic chiasm">optic chiasm</a>, <a href="Optic_radiations" class="mw-redirect" title="Optic radiations">optic radiations</a>, and <a href="Occipital_cortex" class="mw-redirect" title="Occipital cortex">occipital cortex</a>.<sup id="cite_ref-HammondGrafton2011_28-0" class="reference"><a href="#cite_note-HammondGrafton2011-28"><span class="cite-bracket">[</span>28<span class="cite-bracket">]</span></a></sup>
One application is in measuring infant's visual acuity. Electrodes are placed on infant's head over <a href="Visual_cortex" title="Visual cortex">visual cortex</a> and a gray field is presented alternately with a checkerboard or grating pattern. If the checker's boxes or stripes are large enough to be detected, VEP is generated; otherwise, none is generated. It's an objective way to measure infant's visual acuity.<sup id="cite_ref-29" class="reference"><a href="#cite_note-29"><span class="cite-bracket">[</span>29<span class="cite-bracket">]</span></a></sup>
</p><p>VEP can be sensitive to visual dysfunctions that may not be found with just physical examinations or MRI, even if it cannot indicate etiologies.<sup id="cite_ref-HammondGrafton2011_28-1" class="reference"><a href="#cite_note-HammondGrafton2011-28"><span class="cite-bracket">[</span>28<span class="cite-bracket">]</span></a></sup>
VEP may be abnormal in <a href="Optic_neuritis" title="Optic neuritis">optic neuritis</a>, <a href="Optic_neuropathy" title="Optic neuropathy">optic neuropathy</a>, <a href="Demyelinating_disease" title="Demyelinating disease">demyelinating disease</a>, <a href="Multiple_sclerosis" title="Multiple sclerosis">multiple sclerosis</a>, <a href="Friedreich%E2%80%99s_ataxia" class="mw-redirect" title="Friedreich’s ataxia">Friedreich’s ataxia</a>, <a href="Vitamin_B12_deficiency" title="Vitamin B12 deficiency">vitamin B<sub>12</sub> deficiency</a>, <a href="Neurosyphilis" title="Neurosyphilis">neurosyphilis</a>, <a href="Migraine" title="Migraine">migraine</a>, ischemic disease, tumor compressing the optic nerve, <a href="Ocular_hypertension" title="Ocular hypertension">ocular hypertension</a>, <a href="Glaucoma" title="Glaucoma">glaucoma</a>, <a href="Diabetes" title="Diabetes">diabetes</a>, <a href="Toxic_amblyopia" title="Toxic amblyopia">toxic amblyopia</a>, aluminum neurotoxicity, <a href="Manganism" title="Manganism">manganese intoxication</a>, <a href="Retrobulbar_neuritis" class="mw-redirect" title="Retrobulbar neuritis">retrobulbar neuritis</a>, and <a href="Brain_injury" title="Brain injury">brain injury</a>.<sup id="cite_ref-30" class="reference"><a href="#cite_note-30"><span class="cite-bracket">[</span>30<span class="cite-bracket">]</span></a></sup>
It can be used to examine infant's visual impairment for abnormal visual pathways which may be due to delayed maturation.<sup id="cite_ref-HammondGrafton2011_28-2" class="reference"><a href="#cite_note-HammondGrafton2011-28"><span class="cite-bracket">[</span>28<span class="cite-bracket">]</span></a></sup>
</p><p>The P100 component of VEP response, which is the positive peak with the delay about 100 ms, has a major clinical importance. The visual pathway dysfunction anterior to the optic chiasm maybe where VEPs are most useful. For example, patients with acute severe optic neuritis often lose the P100 response or have highly attenuated responses. Clinical recovery and visual improvement come with P100 restoration but with an abnormal increased latency that continues indefinitely, and hence, it maybe useful as an indicator of previous or subclinical optic neuritis.<sup id="cite_ref-Aminoff2001_31-0" class="reference"><a href="#cite_note-Aminoff2001-31"><span class="cite-bracket">[</span>31<span class="cite-bracket">]</span></a></sup>
</p><p>In 1934, Adrian and Matthew noticed potential changes of the occipital EEG can be observed under stimulation of light. Ciganek developed the first nomenclature for occipital EEG components in 1961. During that same year, Hirsch and colleagues recorded a visual evoked potential (VEP) on the occipital lobe (externally and internally), and they discovered amplitudes recorded along the <a href="Calcarine_fissure" class="mw-redirect" title="Calcarine fissure">calcarine fissure</a> were the largest. In 1965, Spehlmann used a checkerboard stimulation to describe human VEPs. An attempt to localize structures in the primary visual pathway was completed by Szikla and colleagues. Halliday and colleagues completed the first clinical investigations using VEP by recording delayed VEPs in a patient with retrobulbar neuritis in 1972. A wide variety of extensive research to improve procedures and theories has been conducted from the 1970s to today and the method has also been described in animals.<sup id="cite_ref-32" class="reference"><a href="#cite_note-32"><span class="cite-bracket">[</span>32<span class="cite-bracket">]</span></a></sup>
</p>
<div class="mw-heading mw-heading4"><h4 id="VEP_Stimuli">VEP Stimuli</h4></div>
<p>The diffuse-light flash stimulus is rarely used nowadays due to the high variability within and across subjects. However, it is beneficial to use this type of stimulus when testing infants, animals or individuals with poor visual acuity. The checkerboard and grating patterns use light and dark squares and stripes, respectively. These squares and stripes are equal in size and are presented, one image at a time, via a computer screen.
</p>
<div class="mw-heading mw-heading4"><h4 id="VEP_Electrode_Placement">VEP Electrode Placement</h4></div>
<p>Electrode placement is extremely important to elicit a good VEP response free of artifact. In a typical (one channel) setup, one electrode is placed 2.5&nbsp;cm above the <a href="Inion" class="mw-redirect" title="Inion">inion</a> and a reference electrode is placed at Fz. For a more detailed response, two additional electrodes can be placed 2.5 &nbsp;cm to the right and left of Oz.
</p>
<div class="mw-heading mw-heading4"><h4 id="VEP_Waves">VEP Waves</h4></div>

<p>The VEP nomenclature is determined by using capital letters stating whether the peak is positive (P) or negative (N) followed by a number which indicates the average peak latency for that particular wave. For example, P100 is a wave with a positive peak at approximately 100 ms following stimulus onset. The average amplitude for VEP waves usually falls between 5 and 20 microvolts.
</p><p>Normal values are depending on used stimulation hardware (flash stimulus vs. <a href="Cathode-ray_tube" title="Cathode-ray tube">cathode-ray tube</a> or <a href="Liquid_crystal_display" class="mw-redirect" title="Liquid crystal display">liquid crystal display</a>, checkerboard field size, etc.).
</p>
<div class="mw-heading mw-heading4"><h4 id="Types_of_VEP">Types of VEP</h4></div>
<p>Some specific VEPs are:
</p>
<ul><li>Monocular pattern reversal (most common)</li>
<li>Sweep visual evoked potential</li>
<li>Binocular visual evoked potential</li>
<li>Chromatic visual evoked potential</li>
<li>Hemi-field visual evoked potential</li>
<li>Flash visual evoked potential</li>
<li>LED Goggle visual evoked potential</li>
<li>Motion visual evoked potential</li>
<li><a href="Multifocal_visual_evoked_potential" class="mw-redirect" title="Multifocal visual evoked potential">Multifocal visual evoked potential</a></li>
<li>Multi-channel visual evoked potential</li>
<li>Multi-frequency visual evoked potential</li>
<li>Stereo-elicited visual evoked potential</li>
<li><a href="Steady_state_visually_evoked_potential" title="Steady state visually evoked potential">Steady state visually evoked potential</a></li></ul>
<div class="mw-heading mw-heading3"><h3 id="Auditory_evoked_potential">Auditory evoked potential</h3></div>
<p>Auditory evoked potentials (AEP) can be used to trace the signal generated by a sound through the ascending auditory pathway. The evoked potential is generated in the cochlea, goes through the <a href="Cochlear_nerve" title="Cochlear nerve">cochlear nerve</a>, through the <a href="Cochlear_nucleus" title="Cochlear nucleus">cochlear nucleus</a>, <a href="Superior_olivary_complex" title="Superior olivary complex">superior olivary complex</a>, <a href="Lateral_lemniscus" title="Lateral lemniscus">lateral lemniscus</a>, to the <a href="Inferior_colliculus" title="Inferior colliculus">inferior colliculus</a> in the midbrain, on to the <a href="Medial_geniculate_body" class="mw-redirect" title="Medial geniculate body">medial geniculate body</a>, and finally to the <a href="Auditory_cortex" title="Auditory cortex">cortex</a>.<sup id="cite_ref-33" class="reference"><a href="#cite_note-33"><span class="cite-bracket">[</span>33<span class="cite-bracket">]</span></a></sup>
</p><p>Auditory evoked potentials (AEPs) are a subclass of <a href="Event-related_potentials" class="mw-redirect" title="Event-related potentials">event-related potentials</a> (ERPs). ERPs are brain responses that are time-locked to some "event", such as a sensory stimulus, a mental event (such as recognition of a target stimulus), or the omission of a stimulus. For AEPs, the "event" is a sound. AEPs (and ERPs) are very small electrical voltage potentials originating from the brain recorded from the scalp in response to an auditory stimulus, such as different tones, speech sounds, etc.
</p><p><a href="Brainstem_auditory_evoked_potential" title="Brainstem auditory evoked potential">Brainstem auditory evoked potentials</a> are small AEPs that are recorded in response to an auditory stimulus from electrodes placed on the scalp.
</p><p>AEPs serve for assessment of the functioning of the <a href="Auditory_system" title="Auditory system">auditory system</a> and <a href="Neuroplasticity" title="Neuroplasticity">neuroplasticity</a>.<sup id="cite_ref-Kumar2016_34-0" class="reference"><a href="#cite_note-Kumar2016-34"><span class="cite-bracket">[</span>34<span class="cite-bracket">]</span></a></sup>
They can be used to diagnose learning disabilities in children, aiding in the development of tailored educational programs for those with hearing and or cognition problems.<sup id="cite_ref-35" class="reference"><a href="#cite_note-35"><span class="cite-bracket">[</span>35<span class="cite-bracket">]</span></a></sup>
</p>
<div class="mw-heading mw-heading3"><h3 id="Somatosensory_evoked_potential">Somatosensory evoked potential</h3></div>

<p><a href="Somatosensory_evoked_potential" title="Somatosensory evoked potential">Somatosensory evoked potentials</a> (SSEPs) are EP recorded from the brain or spinal cord when stimulating peripheral nerve repeatedly.<sup id="cite_ref-McElligott2011_36-0" class="reference"><a href="#cite_note-McElligott2011-36"><span class="cite-bracket">[</span>36<span class="cite-bracket">]</span></a></sup> SSEPs are used in <a href="Neuromonitoring" class="mw-redirect" title="Neuromonitoring">neuromonitoring</a> to assess the function of a patient's <a href="Spinal_cord" title="Spinal cord">spinal cord</a> during <a href="Surgery" title="Surgery">surgery</a>. They are recorded by stimulating peripheral nerves, most commonly the <a href="Tibial_nerve" title="Tibial nerve">tibial nerve</a>, <a href="Median_nerve" title="Median nerve">median nerve</a> or <a href="Ulnar_nerve" title="Ulnar nerve">ulnar nerve</a>, typically with an <a href="Electrical" class="mw-redirect" title="Electrical">electrical</a> stimulus. The response is then recorded from the patient's <a href="Scalp" title="Scalp">scalp</a>.
</p><p>Although stimuli such as touch, vibration, and pain can be used for SSEP, electrical stimuli are most common because of ease and reliability.<sup id="cite_ref-McElligott2011_36-1" class="reference"><a href="#cite_note-McElligott2011-36"><span class="cite-bracket">[</span>36<span class="cite-bracket">]</span></a></sup>
SSEP can be used for prognosis in patients with severe traumatic head injury.<sup id="cite_ref-37" class="reference"><a href="#cite_note-37"><span class="cite-bracket">[</span>37<span class="cite-bracket">]</span></a></sup>
Because SSEP with latency less than 50 ms is relatively independent of consciousness, if used early in comatose patient, it can predict outcome reliably and efficiently.<sup id="cite_ref-38" class="reference"><a href="#cite_note-38"><span class="cite-bracket">[</span>38<span class="cite-bracket">]</span></a></sup>
For example, comatose patients with no responses bilaterally has 95% chance of not recovering from coma.<sup id="cite_ref-39" class="reference"><a href="#cite_note-39"><span class="cite-bracket">[</span>39<span class="cite-bracket">]</span></a></sup>
But care should be taken analyzing the result. For example, increased sedation and other CNS injuries such as the spinal cord can affect SEP.<sup id="cite_ref-McElligott2011_36-2" class="reference"><a href="#cite_note-McElligott2011-36"><span class="cite-bracket">[</span>36<span class="cite-bracket">]</span></a></sup>
</p><p>Because of the low <a href="Amplitude" title="Amplitude">amplitude</a> of the signal once it reaches the patient's scalp and the relatively high amount of electrical noise caused by background <a href="EEG" class="mw-redirect" title="EEG">EEG</a>, scalp muscle <a href="Electromyography" title="Electromyography">EMG</a> or electrical devices in the room, the signal must be averaged. The use of averaging improves the <a href="Signal-to-noise_ratio" title="Signal-to-noise ratio">signal-to-noise ratio</a>. Typically, in the operating room, over 100 and up to 1,000 averages must be used to adequately resolve the evoked potential.
</p><p>The two most looked at aspects of an SSEP are the amplitude and latency of the peaks. The most predominant peaks have been studied and named in labs. Each peak is given a letter and a number in its name. For example, N20 refers to a negative peak (N) at 20ms. This peak is recorded from the cortex when the median nerve is stimulated. It most likely corresponds to the signal reaching the <a href="Somatosensory_cortex" class="mw-redirect" title="Somatosensory cortex">somatosensory cortex</a>. When used in intraoperative monitoring, the latency and amplitude of the peak relative to the patient's post-intubation baseline is a crucial piece of information. Dramatic increases in latency or decreases in amplitude are indicators of neurological <a href="https://en.wiktionary.org/wiki/dysfunction" class="extiw external" title="wikt:dysfunction">dysfunction</a>.
</p><p>During surgery, the large amounts of <a href="Anesthetic" title="Anesthetic">anesthetic</a> gases used can affect the amplitude and latencies of SSEPs. Any of the <a href="Halogenated" class="mw-redirect" title="Halogenated">halogenated</a> agents or <a href="Nitrous_oxide" title="Nitrous oxide">nitrous oxide</a> will increase latencies and decrease amplitudes of responses, sometimes to the point where a response can no longer be detected. For this reason, an anesthetic utilizing less halogenated agent and more intravenous hypnotic and narcotic is typically used.
</p>
<div class="mw-heading mw-heading4"><h4 id="Clinical_Uses">Clinical Uses</h4></div>
<p>SEP findings do not by themselves lead to a specific diagnosis, and organic diseases cannot necessarily be excluded with normal SEP findings. Findings must be interpreted in the context of the patient’s clinical presentation. Evaluating the peripheral responses with SEPs could contribute to the diagnosis of peripheral nerve damage.
</p><p>Furthermore, SEPs could be abnormal in different pathologies such as <a href="Multiple_sclerosis" title="Multiple sclerosis">multiple sclerosis</a> (MS), hereditary spinocerebellar degenerations, hereditary spastic paraplegia, AIDS and vitamin B<sub>12</sub> or vitamin E deficiency. In patients with MS, evoked potential findings often complement findings on MRI.
</p><p>In the acute stage after a traumatic spinal injury or brain trauma, the absence of SEP responses do not correlate with prognosis. However, an early return to normal or preserved cortical responses in the subacute stage correlate with a positive outcome.
</p><p>SEPs can be helpful to evaluate subcortical and cortical function in comatose patients and are less sensitive to sedative drugs than EEG. SEP´s and BAEP´s together are the best tools to assist in the confirmation of brain death in comatose patients
</p>
<div class="mw-heading mw-heading4"><h4 id="Clinical_consideration_in_children">Clinical consideration in children</h4></div>
<p>As in the adult, SEP findings in combination with the clinical assessment and EEG findings can contribute to the determination of prognosis in comatose children. In high risk newborns, tracking SEP findings over time can be helpful for outcome prognostication. Several neurodegenerative disorders have abnormal findings in spinal and cortical SEP components. Moreover, compressive lesions on the spine (e.g. Arnold-Chiari malformation or mucopolysaccharidosis) are associated with abnormal SEPs, which may precede abnormalities on MRI.
</p>
<div class="mw-heading mw-heading4"><h4 id="Laser_evoked_potential">Laser evoked potential</h4></div>
<p>Conventional SSEPs monitor the functioning of the part of the somatosensory system involved in sensations such as touch and vibration. The part of the somatosensory system that transmits pain and temperature signals is monitored using laser evoked potentials (LEP). LEPs are evoked by applying finely focused, rapidly rising heat to bare skin using a laser. In the central nervous system they can detect damage to the <a href="Spinothalamic_tract" title="Spinothalamic tract">spinothalamic tract</a>, lateral <a href="Brain_stem" class="mw-redirect" title="Brain stem">brain stem</a>, and fibers carrying pain and temperature signals from the <a href="Thalamus" title="Thalamus">thalamus</a> to the <a href="Cerebral_cortex" title="Cerebral cortex">cortex</a>. In the peripheral nervous system pain and heat signals are carried along thin (<a href="C_fiber" class="mw-redirect" title="C fiber">C</a> and <a href="A_delta_fiber" class="mw-redirect" title="A delta fiber">A delta</a>) fibers to the spinal cord, and LEPs can be used to determine whether a <a href="Neuropathy" class="mw-redirect" title="Neuropathy">neuropathy</a> is located in these small fibers as opposed to larger (touch, vibration) fibers.<sup id="cite_ref-Treede_40-0" class="reference"><a href="#cite_note-Treede-40"><span class="cite-bracket">[</span>40<span class="cite-bracket">]</span></a></sup>
</p>
<div class="mw-heading mw-heading2"><h2 id="Motor_evoked_potentials">Motor evoked potentials</h2></div>
<p>Motor evoked potentials (MEP) are recorded from muscles following direct stimulation of exposed motor cortex, or transcranial stimulation of motor cortex, either <a href="Transcranial_magnetic_stimulation" title="Transcranial magnetic stimulation">magnetic</a> or electrical. Transcranial magnetic MEP (TCmMEP) potentially offer clinical diagnostic applications. Transcranial electrical MEP (TCeMEP) has been in widespread use for several years for intraoperative monitoring of pyramidal tract functional integrity.
</p><p>During the 1990s, there were attempts to monitor "motor evoked potentials", including "neurogenic motor evoked potentials" recorded from peripheral nerves, following direct electrical stimulation of the spinal cord. It has become clear that these "motor" potentials were almost entirely elicited by antidromic stimulation of sensory tracts—even when the recording was from muscles (antidromic sensory tract stimulation triggers myogenic responses through synapses at the root entry level). TCMEP, whether electrical or magnetic, is the most practical way to ensure pure motor responses, since stimulation of sensory cortex cannot result in descending impulses beyond the first synapse (synapses cannot be backfired).
</p><p><a href="Transcranial_magnetic_stimulation" title="Transcranial magnetic stimulation">TMS</a>-induced MEPs have been used in many experiments in <a href="Cognitive_neuroscience" title="Cognitive neuroscience">cognitive neuroscience</a>. Because MEP amplitude is correlated with motor excitability, they offer a quantitative way to test the role of various types of intervention on the motor system (pharmacological, behavioral, lesion, etc.). TMS-induced MEPs may thus serve as an index of covert <a href="Premovement_neuronal_activity" title="Premovement neuronal activity">motor preparation</a> or facilitation, e.g., induced by the <a href="Mirror_neuron" title="Mirror neuron">mirror neuron</a> system when seeing someone's else actions.<sup id="cite_ref-41" class="reference"><a href="#cite_note-41"><span class="cite-bracket">[</span>41<span class="cite-bracket">]</span></a></sup> In addition, MEPs are used as a reference to adjust the intensity of stimulation that needs to be delivered by TMS when targeting cortical regions whose response might not be as easily measurable, e.g., in the context of TMS-based therapy.
</p>
<div class="mw-heading mw-heading2"><h2 id="Intraoperative_monitoring">Intraoperative monitoring</h2></div>
<p>Somatosensory evoked potentials provide monitoring for the dorsal columns of the spinal cord. Sensory evoked potentials may also be used during surgeries which place brain structures at risk. They are effectively used to determine cortical ischemia during carotid endarterectomy surgeries and for mapping the sensory areas of the brain during brain surgery.
</p><p>Electrical stimulation of the scalp can produce an electric current within the brain that activates the motor pathways of the pyramidal tracts. This technique is known as transcranial electrical motor potential (TcMEP) monitoring. This technique effectively evaluates the motor pathways in the central nervous system during surgeries which place these structures at risk. These motor pathways, including the lateral corticospinal tract, are located in the lateral and ventral funiculi of the spinal cord. Since the ventral and dorsal spinal cord have separate blood supply with very limited collateral flow, an anterior cord syndrome (paralysis or paresis with some preserved sensory function) is a possible surgical sequela, so it is important to have monitoring specific to the motor tracts as well as dorsal column monitoring.
</p><p>Transcranial magnetic stimulation versus electrical stimulation is generally regarded as unsuitable for intraoperative monitoring because it is more sensitive to anesthesia. Electrical stimulation is too painful for clinical use in awake patients. The two modalities are thus complementary, electrical stimulation being the choice for intraoperative monitoring, and magnetic for clinical applications.
</p>
<div class="mw-heading mw-heading2"><h2 id="See_also">See also</h2></div>
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<ul><li><span title="German-language text"><i lang="de"><a href="Bereitschaftspotential" title="Bereitschaftspotential">Bereitschaftspotential</a></i></span></li>
<li><a href="Contingent_negative_variation" title="Contingent negative variation">Contingent negative variation</a></li>
<li><a href="Difference_due_to_memory" title="Difference due to memory">Difference due to memory</a></li>
<li><a href="Early_left_anterior_negativity" title="Early left anterior negativity">Early left anterior negativity</a></li>
<li><a href="Error-related_negativity" title="Error-related negativity">Error-related negativity</a></li>
<li><a href="Event-related_potential" title="Event-related potential">Event-related potential</a></li>
<li><a href="Evoked_field" title="Evoked field">Evoked field</a></li>
<li><a href="Electroencephalography" title="Electroencephalography">Electroencephalography</a></li>
<li><a href="Electroretinography" title="Electroretinography">Electroretinography</a></li>
<li><a href="Slow_vertex_response" title="Slow vertex response">Slow vertex response</a></li>
<li><a href="Event-related_potential" title="Event-related potential">Event-related potential</a>
<ul><li><a href="N100_(neuroscience)" class="mw-redirect" title="N100 (neuroscience)">N100</a>, <a href="N200_(neuroscience)" title="N200 (neuroscience)">N200</a>, <a href="N2pc" title="N2pc">N2pc</a>, <a href="N170" title="N170">N170</a>, <a href="N400_(neuroscience)" title="N400 (neuroscience)">N400</a>, <a href="Visual_N1" title="Visual N1">Visual N1</a></li>
<li><a href="C1_and_P1_(neuroscience)" class="mw-redirect" title="C1 and P1 (neuroscience)">C1 and P1</a>, <a href="P200" title="P200">P200</a>, <a href="P300_(neuroscience)" title="P300 (neuroscience)">P300</a>, <a href="P3a" title="P3a">P3a</a>, <a href="P3b" title="P3b">P3b</a>, <a href="P600_(neuroscience)" title="P600 (neuroscience)">P600 (neuroscience)</a></li></ul></li>
<li><a href="International_Society_for_Clinical_Electrophysiology_of_Vision" title="International Society for Clinical Electrophysiology of Vision">International Society for Clinical Electrophysiology of Vision</a></li>
<li><a href="Late_positive_component" title="Late positive component">Late positive component</a></li>
<li><a href="Lateralized_readiness_potential" title="Lateralized readiness potential">Lateralized readiness potential</a></li>
<li><a href="Mismatch_negativity" title="Mismatch negativity">Mismatch negativity</a></li>
<li><a href="Neural_oscillation" title="Neural oscillation">Neural oscillation</a></li>
<li><a href="Oddball_paradigm" title="Oddball paradigm">Oddball paradigm</a></li>
<li><a href="Somatosensory_evoked_potential" title="Somatosensory evoked potential">Somatosensory evoked potential</a></li></ul>
</div>
<div class="mw-heading mw-heading2"><h2 id="References">References</h2></div>
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<li id="cite_note-Electrophysiological-23"><span class="mw-cite-backlink">^ <a href="#cite_ref-Electrophysiological_23-0"><sup><i><b>a</b></i></sup></a> <a href="#cite_ref-Electrophysiological_23-1"><sup><i><b>b</b></i></sup></a></span> <span class="reference-text"><cite id="CITEREFNorcia_A._M.Tyler_C._W.Allen_D.1986" class="citation journal cs1">Norcia A. M.; Tyler C. W.; Allen D. (1986). "Electrophysiological assessment of contrast sensitivity in human infants". <i>American Journal of Optometry and Physiological Optics</i>. <b>63</b> (1): <span class="nowrap">12–</span>15. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1097%2F00006324-198601000-00003">10.1097/00006324-198601000-00003</a>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/3942183">3942183</a>. <a href="S2CID_(identifier)" class="mw-redirect" title="S2CID (identifier)">S2CID</a>&nbsp;<a rel="nofollow" class="external text" href="https://api.semanticscholar.org/CorpusID:19809242">19809242</a>.</cite></span>
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<li id="cite_note-osheaetal-24"><span class="mw-cite-backlink"><b><a href="#cite_ref-osheaetal_24-0">^</a></b></span> <span class="reference-text">O'Shea, R. P., Roeber, U., &amp; Bach, M. (2010). Evoked potentials: Vision. In E. B. Goldstein (Ed.), Encyclopedia of Perception (Vol. 1, pp. 399-400, xli). Los Angeles: Sage. <a href="ISBN_(identifier)" class="mw-redirect" title="ISBN (identifier)">ISBN</a>&nbsp;<bdi>978-1-4129-4081-8</bdi></span>
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<li id="cite_note-30"><span class="mw-cite-backlink"><b><a href="#cite_ref-30">^</a></b></span> <span class="reference-text"><a href="#CITEREFHammondGrafton2011">Hammond &amp; Grafton (2011)</a> cited <cite id="CITEREFHuszar2006" class="citation web cs1">Huszar, L (2006). <a rel="nofollow" class="external text" href="http://www.emedicine.com/neuro/topic69.htm">"Clinical utility of evoked potentials"</a>. eMedicine<span class="reference-accessdate">. Retrieved <span class="nowrap">2007-07-09</span></span>.</cite></span>
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<li id="cite_note-Aminoff2001-31"><span class="mw-cite-backlink"><b><a href="#cite_ref-Aminoff2001_31-0">^</a></b></span> <span class="reference-text"><cite id="CITEREFAminoff2001" class="citation book cs1">Aminoff, Michael J (2001). Braunwald, Eugene; Fauci, Anthony S; Kasper, Dennis L; Hauser, Stephen L; Longo, Dan L; Jameson, J Larry (eds.). <i>357. ELECTROPHYSIOLOGIC STUDIES OF THE CENTRAL AND PERIPHERAL NERVOUS SYSTEMS</i> (15th&nbsp;ed.). McGraw-Hill. EVOKED POTENTIALS. <a href="ISBN_(identifier)" class="mw-redirect" title="ISBN (identifier)">ISBN</a>&nbsp;<bdi>0-07-007272-8</bdi>.</cite> <span class="cs1-visible-error citation-comment"><code class="cs1-code">{{cite book}}</code>: </span><span class="cs1-visible-error citation-comment"><code class="cs1-code">|work=</code> ignored (help)</span></span>
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<li id="cite_note-32"><span class="mw-cite-backlink"><b><a href="#cite_ref-32">^</a></b></span> <span class="reference-text"><cite id="CITEREFStrainJacksonTedford1990" class="citation journal cs1">Strain, George M.; Jackson, Rose M.; Tedford, Bruce L. (1990-07-01). <a rel="nofollow" class="external text" href="https://doi.org/10.1111%2Fj.1939-1676.1990.tb00901.x">"Visual Evoked Potentials in the Clinically Normal Dog"</a>. <i>Journal of Veterinary Internal Medicine</i>. <b>4</b> (4): <span class="nowrap">222–</span>225. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://doi.org/10.1111%2Fj.1939-1676.1990.tb00901.x">10.1111/j.1939-1676.1990.tb00901.x</a></span>. <a href="ISSN_(identifier)" class="mw-redirect" title="ISSN (identifier)">ISSN</a>&nbsp;<a rel="nofollow" class="external text" href="https://search.worldcat.org/issn/1939-1676">1939-1676</a>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/2401969">2401969</a>.</cite></span>
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<li id="cite_note-33"><span class="mw-cite-backlink"><b><a href="#cite_ref-33">^</a></b></span> <span class="reference-text"><cite id="CITEREFMusiek,_FEBaran,_JA2007" class="citation book cs1">Musiek, FE &amp; Baran, JA (2007). <i>The Auditory system</i>. Boston, MA: Pearson Education, Inc.</cite></span>
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<li id="cite_note-Kumar2016-34"><span class="mw-cite-backlink"><b><a href="#cite_ref-Kumar2016_34-0">^</a></b></span> <span class="reference-text"><cite id="CITEREFSanjuKumar2016" class="citation journal cs1">Sanju, Himanshu Kumar; Kumar, Prawin (2016). <a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6002589">"Enhanced auditory evoked potentials in musicians: A review of recent findings"</a>. <i>Journal of Otology</i>. <b>11</b> (2): <span class="nowrap">63–</span>72. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1016%2Fj.joto.2016.04.002">10.1016/j.joto.2016.04.002</a>. <a href="ISSN_(identifier)" class="mw-redirect" title="ISSN (identifier)">ISSN</a>&nbsp;<a rel="nofollow" class="external text" href="https://search.worldcat.org/issn/1672-2930">1672-2930</a>. <a href="PMC_(identifier)" class="mw-redirect" title="PMC (identifier)">PMC</a>&nbsp;<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6002589">6002589</a></span>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/29937812">29937812</a>.</cite></span>
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<li id="cite_note-35"><span class="mw-cite-backlink"><b><a href="#cite_ref-35">^</a></b></span> <span class="reference-text"><cite id="CITEREFFrizzo2015" class="citation journal cs1">Frizzo, Ana C. F. (10 June 2015). <a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4461809">"Auditory evoked potential: a proposal for further evaluation in children with learning disabilities"</a>. <i>Frontiers in Psychology</i>. <b>6</b>: 788. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://doi.org/10.3389%2Ffpsyg.2015.00788">10.3389/fpsyg.2015.00788</a></span>. <a href="PMC_(identifier)" class="mw-redirect" title="PMC (identifier)">PMC</a>&nbsp;<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4461809">4461809</a></span>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/26113833">26113833</a>.</cite></span>
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<li id="cite_note-McElligott2011-36"><span class="mw-cite-backlink">^ <a href="#cite_ref-McElligott2011_36-0"><sup><i><b>a</b></i></sup></a> <a href="#cite_ref-McElligott2011_36-1"><sup><i><b>b</b></i></sup></a> <a href="#cite_ref-McElligott2011_36-2"><sup><i><b>c</b></i></sup></a></span> <span class="reference-text"><cite id="CITEREFMcElligott2011" class="citation book cs1">McElligott, Jacinta (2011). Kreutzer, Jeffrey S; DeLuca, John; Caplan, Bruce (eds.). <i>Somatosensory Evoked Potentials</i>. Springer. pp.&nbsp;<span class="nowrap">2319–</span>2320. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1007%2F978-0-387-79948-3">10.1007/978-0-387-79948-3</a>. <a href="ISBN_(identifier)" class="mw-redirect" title="ISBN (identifier)">ISBN</a>&nbsp;<bdi>978-0-387-79947-6</bdi>.</cite> <span class="cs1-visible-error citation-comment"><code class="cs1-code">{{cite book}}</code>: </span><span class="cs1-visible-error citation-comment"><code class="cs1-code">|work=</code> ignored (help)</span></span>
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<li id="cite_note-37"><span class="mw-cite-backlink"><b><a href="#cite_ref-37">^</a></b></span> <span class="reference-text"><a href="#CITEREFMcElligott2011">McElligott (2011)</a> cited <cite id="CITEREFLewLeePanChiang2007" class="citation book cs1">Lew, HL; Lee, EH; Pan, SS L; Chiang, JYP (2007). Zasler, ND; Katz, DL; Zafonte, RD (eds.). <i>Electrophysiological assessment techniques: Evoked potentials and electroencephalography</i>.</cite> <span class="cs1-visible-error citation-comment"><code class="cs1-code">{{cite book}}</code>: </span><span class="cs1-visible-error citation-comment"><code class="cs1-code">|work=</code> ignored (help)</span></span>
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<li id="cite_note-38"><span class="mw-cite-backlink"><b><a href="#cite_ref-38">^</a></b></span> <span class="reference-text"><a href="#CITEREFMcElligott2011">McElligott (2011)</a> cited <cite id="CITEREFLewDikmanSlimpTemkin2003" class="citation journal cs1">Lew, HL; Dikman, S; Slimp, J; Temkin, N; Lee, EH; Newell, D; et&nbsp;al. (2003). "Use of somatosensory evoked potentials and cognitive event related potentials in predicting outcome in patients with severe traumatic brain injury". <i>American Journal of Physical Medicine &amp; Rehabilitation</i>. <b>82</b> (1): <span class="nowrap">53–</span>61. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1097%2F00002060-200301000-00009">10.1097/00002060-200301000-00009</a>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/12510186">12510186</a>. <a href="S2CID_(identifier)" class="mw-redirect" title="S2CID (identifier)">S2CID</a>&nbsp;<a rel="nofollow" class="external text" href="https://api.semanticscholar.org/CorpusID:45096294">45096294</a>.</cite></span>
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<li id="cite_note-39"><span class="mw-cite-backlink"><b><a href="#cite_ref-39">^</a></b></span> <span class="reference-text"><a href="#CITEREFMcElligott2011">McElligott (2011)</a> อ้างอิง <cite id="CITEREFRobinson2004" class="citation book cs1">Robinson, L. R. (2004). Kraft, GL; Lew, HL (eds.). <i>Somatosensory evoked potentials in coma prognosis</i>. Vol.&nbsp;15. Philadelphia: WB Saunders. pp.&nbsp;<span class="nowrap">43–</span>61. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1016%2Fs1047-9651%2803%2900102-5">10.1016/s1047-9651(03)00102-5</a>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/15029898">15029898</a>.</cite> <span class="cs1-visible-error citation-comment"><code class="cs1-code">{{cite book}}</code>: </span><span class="cs1-visible-error citation-comment"><code class="cs1-code">|work=</code> ignored (help)</span></span>
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<li id="cite_note-Treede-40"><span class="mw-cite-backlink"><b><a href="#cite_ref-Treede_40-0">^</a></b></span> <span class="reference-text"><cite id="CITEREFTreedeLorenzBaumgärtner2003" class="citation journal cs1">Treede RD, Lorenz J, Baumgärtner U (December 2003). "Clinical usefulness of laser-evoked potentials". <i>Neurophysiol Clin</i>. <b>33</b> (6): <span class="nowrap">303–</span>14. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<a rel="nofollow" class="external text" href="https://doi.org/10.1016%2Fj.neucli.2003.10.009">10.1016/j.neucli.2003.10.009</a>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/14678844">14678844</a>. <a href="S2CID_(identifier)" class="mw-redirect" title="S2CID (identifier)">S2CID</a>&nbsp;<a rel="nofollow" class="external text" href="https://api.semanticscholar.org/CorpusID:18486576">18486576</a>.</cite></span>
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<li id="cite_note-41"><span class="mw-cite-backlink"><b><a href="#cite_ref-41">^</a></b></span> <span class="reference-text"><cite id="CITEREFCatmur_C.Walsh_V.Heyes_C.2007" class="citation journal cs1">Catmur C.; Walsh V.; Heyes C. (2007). <a rel="nofollow" class="external text" href="https://doi.org/10.1016%2Fj.cub.2007.08.006">"Sensorimotor learning configures the human mirror system"</a>. <i>Curr. Biol</i>. <b>17</b> (17): <span class="nowrap">1527–</span>1531. <a href="Bibcode_(identifier)" class="mw-redirect" title="Bibcode (identifier)">Bibcode</a>:<a rel="nofollow" class="external text" href="https://ui.adsabs.harvard.edu/abs/2007CBio...17.1527C">2007CBio...17.1527C</a>. <a href="Doi_(identifier)" class="mw-redirect" title="Doi (identifier)">doi</a>:<span class="id-lock-free" title="Freely accessible"><a rel="nofollow" class="external text" href="https://doi.org/10.1016%2Fj.cub.2007.08.006">10.1016/j.cub.2007.08.006</a></span>. <a href="PMID_(identifier)" class="mw-redirect" title="PMID (identifier)">PMID</a>&nbsp;<a rel="nofollow" class="external text" href="https://pubmed.ncbi.nlm.nih.gov/17716898">17716898</a>.</cite></span>
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</ol></div></div>
<div class="mw-heading mw-heading2"><h2 id="External_links">External links</h2></div>
<ul><li><a rel="nofollow" class="external text" href="https://meshb.nlm.nih.gov/record/ui?name=Evoked+Potentials">Evoked+Potentials</a> at the U.S. National Library of Medicine <a href="Medical_Subject_Headings" title="Medical Subject Headings">Medical Subject Headings</a> (MeSH)</li></ul>
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