Co-Authors
This is a "connection" page, showing publications co-authored by Laura Frishman and Han Cheng.
Connection Strength
1.266
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The relationship between visual field and retinal nerve fiber layer measurements in patients with multiple sclerosis. Invest Ophthalmol Vis Sci. 2007 Dec; 48(12):5798-805.
Score: 0.301
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Multifocal visual evoked potentials and contrast sensitivity correlate with ganglion cell-inner plexiform layer thickness in multiple sclerosis. Clin Neurophysiol. 2019 01; 130(1):180-188.
Score: 0.161
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Longitudinal Evaluation of Visual Function in Multiple Sclerosis. Optom Vis Sci. 2015 Oct; 92(10):976-85.
Score: 0.129
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Reproducibility of multifocal visual evoked potential and traditional visual evoked potential in normal and multiple sclerosis eyes. Doc Ophthalmol. 2015 Feb; 130(1):31-41.
Score: 0.121
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Tracking changes over time in retinal nerve fiber layer and ganglion cell-inner plexiform layer thickness in multiple sclerosis. Mult Scler. 2014 Sep; 20(10):1331-41.
Score: 0.116
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The photopic negative response of the flash electroretinogram in multiple sclerosis. Invest Ophthalmol Vis Sci. 2012 Mar; 53(3):1315-23.
Score: 0.101
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Comparison of multifocal visual evoked potential, standard automated perimetry and optical coherence tomography in assessing visual pathway in multiple sclerosis patients. Mult Scler. 2010 Apr; 16(4):412-26.
Score: 0.088
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Assessing visual pathway function in multiple sclerosis patients with multifocal visual evoked potentials. Mult Scler. 2009 Dec; 15(12):1431-41.
Score: 0.086
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The effect of eccentricity on the contrast response function of multifocal visual evoked potentials (mfVEPs). Vision Res. 2009 Jul; 49(14):1711-6.
Score: 0.082
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Custom Optical Coherence Tomography Parameters for Distinguishing Papilledema from Pseudopapilledema. Optom Vis Sci. 2019 08; 96(8):599-608.
Score: 0.042
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Use of A-scan Ultrasound and Optical Coherence Tomography to Differentiate Papilledema From Pseudopapilledema. Optom Vis Sci. 2017 12; 94(12):1081-1089.
Score: 0.038