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C L Baker

Publications and source records attributed to C L Baker.

At least 37 records · Page 2Linked to original sources

Two mechanisms underlie processing of stochastic motion stimuli.

We have constructed "limited lifetime" stochastic motion stimuli using Gabor functions instead of dots, thereby controlling the local attributes of spatial frequency and orientation. Human psychophysical data for direction discrimination using these stimuli reveal two qualitatively distinct kinds of processing. For small displacements, direction discrimination performance as a function of displacement is scaled with spatial frequency in a manner consistent with a linear filtering motion mechanism. Motion perception for relatively large displacements is not directly related to the spatial frequency, and is consistent with a nonlinear process which signals motion of contrast envelopes.

Discrimination, Psychological↗

A cortical locus for the processing of contrast-defined contours.

Object boundaries in the natural environment are often defined by changes in luminance; in other cases, however, there may be no difference in average luminance across the boundary, which is instead defined by more subtle 'second-order' cues, such as changes in the contrast of a fine-grained texture. The detection of luminance boundaries may be readily explained in terms of visual cortical neurons, which compute the linear sum of the excitatory and inhibitory inputs to different parts of their receptive field. The detection of second-order stimuli is less well understood, but is thought to involve a separate nonlinear processing stream, in which boundary detectors would receive inputs from many smaller subunits. To address this, we have examined the properties of cortical neurons which respond to both first- and second-order stimuli. We show that the inputs to these neurons are also oriented, but with no fixed orientational relationship to the neurons they subserve. Our results suggest a flexible mechanism by which the visual cortex can detect object boundaries regardless of whether they are defined by luminance or texture.

Animals↗

Temporal and spatial response to second-order stimuli in cat area 18.

Temporal and spatial response to second-order stimuli in cat area 18. J. Neurophysiol. 80: 2811-2823, 1998. Approximately one-half of the neurons in cat area 18 respond to contrast envelope stimuli, consisting of a sinewave carrier whose contrast is modulated by a drifting sinewave envelope of lower spatial frequency. These stimuli should fail to elicit a response from a conventional linear neuron because they are designed to contain no spatial frequency components within the cell's luminance-defined frequency passband. We measured neurons' responses to envelope stimuli by varying both the drift rate and spatial frequency of the contrast modulation. These data were then compared with the same neurons' spatial and temporal properties obtained with luminance-defined sinewave gratings. Most neurons' responses to the envelope stimuli were spatially and temporally bandpass, with bandwidths comparable with those measured with luminance gratings. The temporal responses of these neurons (temporal frequency tuning and latency) were systematically slower when tested with envelope stimuli than with luminance gratings. The simplest kind of model that can accommodate these results is one having separate, parallel streams of bandpass processing for luminance and envelope stimuli.

Algorithms↗

Patellofemoral arthrosis: the treatment options.

Patellofemoral arthritis is a relatively common and frequently complex problem encountered by those who treat patients with anterior knee pain. Because the pathologic conditions that precipitate this pain are so varied, the treatment options must also be varied. Using the Insall classification system for chondral injuries, we explored the treatment options available. Special emphasis was placed on grade IV changes and the surgical treatment of this condition. We reviewed the following options: spongialization, tibial tubercle elevation, patellectomy, patellar resurfacing, patellofemoral arthroplasty, and autologous chondrocyte transplantation. Regardless of the procedure favored, proper patellar tracking must be restored. Without such attention to patellar alignment, patients cannot achieve pain-free function.

Algorithms↗

The effects of distractor elements on direction discrimination in random Gabor kinematograms.

For both Fourier and non-Fourier moving patterns, models have been proposed which detect motion based on either the net orientation of energy in the stimulus (after nonlinear stage for non-Fourier motion stimuli) or on the changes in the relative locations of spatial primitives in the image. Both approaches have been successful in accounting for detection of simple translational displacements, but we examined how such models coped with more demanding stimuli. We examined direction discrimination using two-flash random Gabor kinematograms which selectively reveal Fourier and non-Fourier motion mechanisms. In addition to target elements, multiple distractor elements were added, either static or randomly moving. It was found that detection of Fourier motion was relatively unaffected by the distractors unless they were of orthogonal orientation. Detection of non-Fourier motion was possible, but with a slightly higher error rate, even with many distractors and was not at all affected by orthogonal distractors. The results for distractors of the same orientation as targets are in better agreement with predictions of energy than with edge-matching models. The differing effects of orthogonal distractors further strengthen the proposed dichotomy of quasi-linear and nonlinear motion mechanisms, but indicate that the latter operates on a more complex representation than a simple contrast envelope.

Discrimination, Psychological↗

Second-order motion perception in peripheral vision: limits of early filtering.

Spatial and temporal analysis of contrast-modulated sine-wave gratings reveals that the second-order motion stimulus contains two sidebands, with equal energy but moving in opposite directions, flanking a stationary carrier. Any early linear spatial filtering process in the visual system that attenuates one sideband more than the other will be detrimental to the balance between the two sidebands, so that the perceived direction of the carrier might be opposite to that of the envelope motion. We tested this hypothesis by using contrast-modulated gratings presented centrally or at 20 deg in the horizontal nasal field with a two-alternative forced-choice staircase paradigm. We found that when the envelope frequency was close to that of the carrier, a second-order stimulus whose envelope motion direction was correctly identified in the fovea appeared to drift in the opposite direction in the periphery. Further increasing the envelope spatial frequency resulted in a reversed motion percept in both central and peripheral viewing conditions. For subjects to identify correctly the direction of motion of the envelope, the spatial frequency ratio of the carrier to the envelope had to be more than 2 in the fovea and more than 6 in the periphery. These phenomena in second-order motion perception can be explained by a linear model of motion detection with an early spatial filtering process. Further experiments and computer simulation show that undersampling of the carrier has little effect on second-order motion perception in the periphery, as long as the carrier is detectable.

Adult↗

Lower extremity problems in female athletes.

Women are participating in sports in greater numbers than ever before. As physicians, our job is to help them enjoy and benefit from their participation by treating injuries quickly and appropriately when they occur and preventing them wherever possible. Although certain injuries do occur more in female athletes than in male athletes, taking the proper precautions to prevent injury (e.g., using the right equipment, training properly, warming up and stretching before activity) can lessen the risk of injuries for all athletes.

Adolescent↗

Spatial properties of envelope-responsive cells in area 17 and 18 neurons of the cat.

1. Many neurons in areas 17 and 18 respond to spatial contrast envelope stimuli whose Fourier components fall outside the cell's spatial-frequency-selective range. The spatial properties of such envelope responses are investigated here and compared with responses to conventional luminance-defined gratings to explore the underlying receptive-field mechanism. 2. Three spatial properties of envelope responses are reported more extensively in this paper. First, the envelope responses were selective to the carrier spatial frequency in a narrow range of frequencies higher than a given cell's luminance spatial frequency selective range (luminance passband). Second, a given cell's dependence on envelope spatial frequency often differed from its luminance passband. Last, the optimal carrier spatial frequency did not shift systematically with the envelope spatial frequency, supporting the hypothesis that the carrier and envelope spatial-frequency dependencies were mediated by distinct mechanisms. 3. In contrast to the direction selectivity to the envelope motion in many envelope-responsive cells, no direction preference to carrier motion was found for envelope responses. The direction of carrier motion did not alter the direction selectivity for envelope motion, further supporting the hypothesis that the carrier and envelope temporal properties were mediated by separate mechanisms. 4. The distributions of the optimal carrier and luminance spatial frequencies among envelope-responsive cells were analyzed. The optimal carrier spatial frequencies were randomly distributed from five times the cell's optimal luminance spatial frequency to the upper resolution limit of the X-retinal ganglion cells at the same retinal eccentricity, suggesting that the selective ranges of envelope responses and luminance responses are not strongly correlated over the population of envelope-responsive cells. 5. Our data support a "two-stream" receptive-field model for envelope-responsive cells. One stream is a conventional, spatially linear receptive-field mechanism, mediating luminance responses for the cell; the other mediates envelope responses and consists of a two-stage processing: a set of spatially small and distributed nonlinear neural subunits whose outputs are spatially pooled at the second stage. 6. In conclusion, this study indicates that envelope responses in area 17 and 18 neurons cannot be due to a nonlinearity that is common to all visual stimuli before narrowband spatial-frequency-selective filtering; instead, a specialized processing stream, parallel to the conventional luminance response stream, is needed to supplement the traditional luminance processing stream in these cells. This specialized stream responds to the envelope stimuli and is selective to their carrier and envelope spatial frequencies. The distributions of the optimal luminance and carrier spatial frequencies indicate a rich variety of possible integration between luminance and envelope information.

Animals↗

Arthroscopy of the elbow.

As our understanding of the anatomy and function of the elbow joint continues to grow and technology continues to advance, our ability to correct disorders of the elbow with arthroscopic techniques will expand. Today, we are at the brink of major advances in the arthroscopic evaluation and treatment of elbow ailments. Many open surgical procedures currently being performed will undoubtedly be adapted for an arthroscopic approach, as we are already seeing in the treatment of radiocapitellar arthrosis, tennis elbow, arthrofibrosis, and ulnohumeral arthroplasty. Elbow procedures, such as ligamentous tightening, fracture treatment with bioabsorbable devices, and biologic joint replacement will be commonly performed in the future with the aid of the arthroscope. Although elbow arthroscopy is technically demanding, it is a highly effective surgical technique in treating many intra-articular disorders with minimal morbidity. Most of the complications associated with elbow arthroscopy can be avoided by adhering to strict and proper surgical technique. Successful elbow arthroscopy requires a thorough understanding of local gross and arthroscopic anatomy. To maintain proper orientation at all times, the skin should be properly marked before starting the procedure. The joint should be kept distended during initiation of portals to move the neurovascular structures away from the arthroscopic instruments. Nonvented cannulas with blunt trocars should be used to allow for safe passage of instruments and to avoid multiple capsular punctures. Finally, the elbow should remain flexed to 90 deg during most of the procedure, thus keeping the neurovascular structures in the antecubital fossa relaxed. If these techniques are followed, the surgical morbidity should remain low, and surgeon and patient will find elbow arthroscopy tremendously effective.

Arthroplasty↗

Arthroscopically assisted rotator cuff repair: correlation of functional results with integrity of the cuff.

Thirty-three patients (35 full-thickness rotator cuff tears) who underwent arthroscopically assisted mini open repair between June 1987 and January 1990 were evaluated for shoulder function and cuff integrity. The study population was composed of 19 women and 14 men with an average age of 63 years (range 35-76) and an average follow-up of 3.7 years (range 2.5-5.1). Functional results were obtained using the UCLA Shoulder Rating Scale. Integrity of the rotator cuff was established by shoulder arthrography at a minimum 2 years postoperatively. UCLA Shoulder Rating Scale showed 86% good/excellent results with 92% patient satisfaction. The shoulder arthrography showed 12 (34%) full-thickness tears, seven (20%) partial tears, and 16 (46%) no tears. The size of the arthrographic defect correlated well with the size of the intraoperative tear. Seventy percent of the large tears had follow-up full-thickness defects and 80% of the small tears had no defect. Eighty percent and 88% good/excellent functional results were achieved in patients with full-thickness defects and no defects, respectively, without significant differences. The size of the tear at the time of the repair is a major determinant of the integrity of the cuff after repair. The integrity of the cuff at follow-up does not determine the functional outcome of the operated shoulder.

Adult↗

Envelope-responsive neurons in areas 17 and 18 of cat.

1. Single cortical neurons are known to respond to visual stimuli containing Fourier components only in a narrow range of spatial frequencies. This investigation demonstrates that some neurons in cat area 17 and 18 can also respond to certain stimuli that have no Fourier components inside the cell's luminance spatial frequency passband. 2. To study such "non-Fourier" responses, we used envelope stimuli that consisted of a high-spatial-frequency sinusoidal luminance grating (carrier) whose contrast was modulated by a low-spatial frequency sine wave (envelope). There was no Fourier component at the apparent periodicity of the envelope spatial frequency. However, some cells responded to such a "phantom" component of the envelope modulation when it fell inside the cell's luminance spatial frequency passband while all the real Fourier components in the stimuli were outside. 3. We conducted extensive control experiments to eliminate the possibility of producing artifactual responses to the envelope stimuli due to any small residual nonlinearity of the z-linearized CRT screen. The control experiments included 1) testing of screen linearity to ensure that the effect from the residual screen nonlinearity was no larger than the sensitivity level of visual responses and 2) comparing the responses to envelope stimuli with the responses to the equivalent contrast of the artifact produced by the screen nonlinearity. All these control experiments indicated that any effect of screen nonlinearity did not contribute significantly to the neural envelope responses. 4. We performed a statistical analysis to obtain an index of relative strength of envelope responses for each cell and to objectively classify cells as "envelope-responsive" or "non-envelope-responsive."(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Direction identification thresholds for second-order motion in central and peripheral vision.

Evidence bearing on the question of whether first-order and second-order motion are detected by use of the same or different principles has been sought. This question was approached by measuring thresholds for correctly identifying the direction of motion of various second-order motion patterns. The patterns used were contrast-modulated noise patterns in which the contrast of a carrier was modulated sinusoidally in one dimension, and the modulating waveform drifted smoothly while the carrier itself remained stationary. The carrier used was in most cases static two-dimensional noise; other carriers gave similar results. Thresholds were measured in terms of amplitude of contrast modulation (modulation depth) for each of a range of envelope drift speeds and spatial frequencies in the fovea and at several viewing eccentricities. Along with direction-identification thresholds, thresholds for either simple detection of the modulation or for correctly identifying the orientation of the modulation were simultaneously measured. Thresholds for direction identification were generally somewhat higher than those for simple detection. However, they were in most cases very similar to thresholds for identification of orientation, as found for conventional luminance gratings. Contrary to some reports, sensitivity to contrast-modulated patterns declines with eccentricity at a similar rate to that found with luminance gratings. The results suggest that first-order and second-order motion are either detected by a common motion-detection mechanism or are detected by different mechanisms that use a common principle of motion detection.

Humans↗

A processing stream in mammalian visual cortex neurons for non-Fourier responses.

Mammalian striate and circumstriate cortical neurons have long been understood as coding spatially localized retinal luminance variations, providing a basis for computing motion, stereopsis, and contours from the retinal image. However, such perceptual attributes do not always correspond to the retinal luminance variations in natural vision. Recordings from area 17 and 18 neurons of the cat revealed a specialized nonlinear processing stream that responds to stimulus attributes that have no corresponding luminance variations. This nonlinear stream acts in parallel to the conventional luminance processing of single cortical neurons. The two streams were consistent in their preference for orientation and direction of motion but distinct in processing spatial variations of the stimulus attributes.

Animals↗

Dependence on stimulus onset asynchrony in apparent motion: evidence for two mechanisms.

The detection of the direction of motion was measured as a function of the spatial and temporal offset for a kinematogram stimulus presented in two-frame apparent motion. The stimulus was made up of Gabor function micro-patterns randomly distributed across the stimulus field. We show that for short stimulus onset asynchronies (SOA) performance can be predicted from the spatio-temporal Fourier power spectrum of the stimulus, whereas for long SOAs the pattern of performance is qualitatively different from such a prediction. The dependence of motion perception on SOA exhibits an abrupt change from one mode of behaviour to the other. These findings are suggestive of the operation of distinct mechanisms, one "quasi-linear" and one "nonlinear", which can be separated by temporal parameters.

Discrimination, Psychological↗

Spatio-temporal frequency separability in area 18 neurons of the cat.

Spatial frequency tuning curves were obtained at a series of temporal frequencies and/or velocities from neurons of Areas 17 and 18 of the cat, in order to assess the interaction between these spatial and temporal parameters. In the great majority of instances, for neurons in both Areas 17 and 18, we found the optimal spatial frequency invariant with the temporal frequency or velocity at which a neuron was tested. Thus in this respect, responses of neurons in Area 18, like those of Area 17, are separable in their dependence on spatial and temporal frequency.

Animals↗

Different parameters control motion perception above and below a critical density.

The maximum displacement for the detection of apparent motion (Dmax) is measured using stimuli made up of Gabor function micro-patterns randomly distributed across the stimulus field. Previous studies using high densities of micro-patterns have demonstrated Dmax to be dependent on the spatial frequency content of the stimulus and not the size of the stimulus elements. Here we report that Dmax increases suddenly when the number of micro-patterns in the visual field is reduced beyond some critical point. The number of micro-patterns at which the transition in Dmax occurs is found to be inversely proportional to the width of the micro-patterns along the axis of motion. Beyond this transition, for low density stimuli, Dmax is found to be dependent on both the number and size of micro-patterns in the stimulus field. These results are suggestive of the operation of different motion mechanisms under conditions of low vs high micro-pattern density.

Female↗