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量子效率和假阳性率。

Quantum efficiency and false positive rate.

作者信息

Hallett P E

出版信息

J Physiol. 1969 Jun;202(2):421-36. doi: 10.1113/jphysiol.1969.sp008819.

DOI:10.1113/jphysiol.1969.sp008819
PMID:5784295
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1351490/
Abstract
  1. This paper presents an analysis of the efficiency of performance at the absolute threshold of human vision. The data are from the same series as the previous papers (Hallett, 1969b, c) and consist of frequency-of-seeing curves, thresholds, false positive rates and equivalent background measurements, accumulated as small samples over a number of days.2. Quantum efficiency is defined here as the ratio of the thresholds of an ideal and a real detector performing the same task with the same sampling error. This avoids the problem as to whether the frequency-of-seeing curve of the real detector is exactly a Poisson sum or not.3. The long-term quantum efficiency can be low (about 0.04) as a result of drifts in the mean threshold.4. The average short-term quantum efficiency is in the region of 0.1, which is roughly the physiological limit set by Rushton's (1956b) measurements of rhodopsin density in the living rods. If this is correct, then the absorption of a quantum, and not the bleaching of a rhodopsin molecule, is sufficient for the generation of a neural event.5. Application of a simple signal/noise theory to the data gives solutions close to those suggested by Barlow (1956) and shows that false positives almost invariably arise from errors subsequent to the signal/noise decision process.
摘要
  1. 本文对人眼视觉绝对阈值下的性能效率进行了分析。数据来自与之前论文(哈雷特,1969b,c)相同的系列,由视见频率曲线、阈值、误报率和等效背景测量值组成,这些数据是在数天内作为小样本积累起来的。

  2. 这里将量子效率定义为执行相同任务且具有相同采样误差的理想探测器和实际探测器阈值的比值。这避免了实际探测器的视见频率曲线是否恰好为泊松和的问题。

  3. 由于平均阈值的漂移,长期量子效率可能较低(约为0.04)。

  4. 平均短期量子效率在0.1左右,这大致是拉什顿(1956b)对活体视杆细胞中视紫红质密度测量所设定的生理极限。如果这是正确的,那么吸收一个量子,而非视紫红质分子的漂白,就足以引发一个神经事件。

  5. 将简单的信号/噪声理论应用于这些数据,得到的结果与巴洛(1956)提出的结果相近,并且表明误报几乎总是由信号/噪声决策过程之后的误差引起的。

相似文献

1
Quantum efficiency and false positive rate.量子效率和假阳性率。
J Physiol. 1969 Jun;202(2):421-36. doi: 10.1113/jphysiol.1969.sp008819.
2
The variations in visual threshold measurement.视觉阈值测量中的变化。
J Physiol. 1969 Jun;202(2):403-19. doi: 10.1113/jphysiol.1969.sp008818.
3
Spatial organization of sensitivity regulation in rod vision.视杆细胞视觉中敏感性调节的空间组织
Vision Res. 1989;29(8):965-78. doi: 10.1016/0042-6989(89)90111-9.
4
Rhodopsin kinetics in the human eye.人眼中视紫红质的动力学
J Physiol. 1971 Sep;217(2):447-71. doi: 10.1113/jphysiol.1971.sp009580.
5
The frequency of isomerization-like 'dark' events in rhodopsin and porphyropsin rods of the bull-frog retina.牛蛙视网膜视紫红质和视紫蓝质视杆中类异构化“暗”事件的频率。
J Physiol. 1990 Sep;428:673-92. doi: 10.1113/jphysiol.1990.sp018234.
6
Rushton's paradox: rod dark adaptation after flash photolysis.拉什顿悖论:闪光光解后的视杆暗适应
J Physiol. 1975 Jun;248(2):413-31. doi: 10.1113/jphysiol.1975.sp010982.
7
Impulse functions for human rod vision.人类视杆视觉的脉冲函数。
J Physiol. 1969 Jun;202(2):379-402. doi: 10.1113/jphysiol.1969.sp008817.
8
Visual adaptation of the rhodopsin rods in the frogs retina.青蛙视网膜中视紫红质视杆细胞的视觉适应。
J Physiol. 1968 Nov;199(1):59-87. doi: 10.1113/jphysiol.1968.sp008639.
9
Ganglion cell performance at absolute threshold in toad retina: effects of dark events in rods.蟾蜍视网膜中神经节细胞在绝对阈值下的表现:视杆细胞中暗事件的影响。
J Physiol. 1987 Dec;393:667-80. doi: 10.1113/jphysiol.1987.sp016847.
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Multiplication noise in the human visual system at threshold: 2. Probit estimation of parameters.阈值下人类视觉系统中的乘法噪声:2. 参数的概率单位估计
Biol Cybern. 1982;43(2):87-96. doi: 10.1007/BF00336971.

引用本文的文献

1
Retinal and post-retinal contributions to the quantum efficiency of the human eye revealed by electrical neuroimaging.视网膜和视网膜后对人眼量子效率的电神经成像揭示。
Front Psychol. 2013 Nov 18;4:845. doi: 10.3389/fpsyg.2013.00845. eCollection 2013.
2
Models and mechanistic insight.模型与机制洞察。
J Gen Physiol. 2008 Jun;131(6):515-9. doi: 10.1085/jgp.200810041.
3
Temporal and spatial summation in the human rod visual system.人类视杆视觉系统中的时间和空间总和
J Physiol. 1993 Apr;463:325-48. doi: 10.1113/jphysiol.1993.sp019597.
4
Rod increment thresholds on steady and flashed backgrounds.稳定背景和闪烁背景下的视杆细胞增量阈值。
J Physiol. 1969 Jun;202(2):355-77. doi: 10.1113/jphysiol.1969.sp008816.
5
Why rods and cones?为什么是视杆细胞和视锥细胞?
Biol Cybern. 1979 Aug 1;33(3):125-35. doi: 10.1007/BF00337290.

本文引用的文献

1
Measurements of the quantum efficiency of discrimination in human scotopic vision.人类暗视觉中辨别量子效率的测量。
J Physiol. 1962 Jan;160(1):169-88. doi: 10.1113/jphysiol.1962.sp006839.
2
VISUAL ADAPTATION.视觉适应。
Proc R Soc Lond B Biol Sci. 1965 Mar 16;162:20-46. doi: 10.1098/rspb.1965.0024.
3
The relationship of visual threshold to retinal position and area.视觉阈值与视网膜位置和面积的关系。
J Physiol. 1962 Feb;160(2):364-73. doi: 10.1113/jphysiol.1962.sp006851.
4
A method of determining the over-all quantum efficiency of visual discriminations.一种测定视觉辨别总体量子效率的方法。
J Physiol. 1962 Jan;160(1):155-68. doi: 10.1113/jphysiol.1962.sp006838.
5
Temporal and spatial summation in human vision at different background intensities.不同背景强度下人类视觉中的时间和空间总和。
J Physiol. 1958 Apr 30;141(2):337-50. doi: 10.1113/jphysiol.1958.sp005978.
6
Increment thresholds at low intensities considered as signal/noise discriminations.低强度下的增量阈值被视为信号/噪声辨别。
J Physiol. 1957 May 23;136(3):469-88. doi: 10.1113/jphysiol.1957.sp005774.
7
The rhodopsin density in the human rods.人类视杆细胞中的视紫红质密度。
J Physiol. 1956 Oct 29;134(1):30-46. doi: 10.1113/jphysiol.1956.sp005623.
8
The difference spectrum and the photosensitivity of rhodopsin in the living human eye.活体人眼中视紫红质的差示光谱和光敏性。
J Physiol. 1956 Oct 29;134(1):11-29. doi: 10.1113/jphysiol.1956.sp005622.
9
Retinal noise and absolute threshold.视网膜噪声与绝对阈值。
J Opt Soc Am. 1956 Aug;46(8):634-9. doi: 10.1364/josa.46.000634.
10
The photosensitivity of mammalian rhodopsin in situ.哺乳动物视紫红质原位的光敏性。
J Physiol. 1954 Nov 29;126(2):37P.