Editing 1080: Visual Field

Jump to: navigation, search

Warning: You are not logged in. Your IP address will be publicly visible if you make any edits. If you log in or create an account, your edits will be attributed to your username, along with other benefits.

The edit can be undone. Please check the comparison below to verify that this is what you want to do, and then save the changes below to finish undoing the edit.
Latest revision Your text
Line 13: Line 13:
 
Firstly, there's detail. The eye always sees objects closer to the center with more detail, which [[Randall]] illustrates with progressively smaller images, which are seen with the same level of detail (remember that you're supposed to be looking at the center of the image). This is because the {{w|retina}} is denser near the {{w|fovea}}, in the center.
 
Firstly, there's detail. The eye always sees objects closer to the center with more detail, which [[Randall]] illustrates with progressively smaller images, which are seen with the same level of detail (remember that you're supposed to be looking at the center of the image). This is because the {{w|retina}} is denser near the {{w|fovea}}, in the center.
  
βˆ’
Next, there's the topic of {{w|night vision}}. The color-seeing {{w|cone cells}} don't work so well in the dark, whereas the black-and-white-seeing {{w|rod cells}} do. The rod cells can see shapes well, whereas the cone cells see detail (such as change in color), which Randall uses to explain why we can't read at night.
+
Next, there's the topic of {{w|night vision}}. The colour-seeing {{w|cone cells}} don't work so well in the dark, whereas the black-and-white-seeing {{w|rod cells}} do. The rod cells can see shapes well, whereas the cone cells see detail (such as change in colour), which Randall uses to explain why we can't read at night.
  
 
{{w|Polarization (waves)|Polarization}} direction can be visible when quickly changing your viewing angle. Polarization is essentially the vertical direction of waves. Light, being a wave, has a direction, and is thus polarized. Polarized lenses, for example, would have "slits" to allow only light that is polarized in a certain direction to come through (blocking the light in other directions). {{w|LCD}} screens operate on the principle of blocking and rotating polarized light.
 
{{w|Polarization (waves)|Polarization}} direction can be visible when quickly changing your viewing angle. Polarization is essentially the vertical direction of waves. Light, being a wave, has a direction, and is thus polarized. Polarized lenses, for example, would have "slits" to allow only light that is polarized in a certain direction to come through (blocking the light in other directions). {{w|LCD}} screens operate on the principle of blocking and rotating polarized light.
  
βˆ’
{{w|Floater|Floaters}} are deposits within the eye's {{w|vitreous humor}}. While normally transparent, they can occasionally cause {{w|refraction}} of light, making them visible, particularly on bright, blue surfaces. Randall points out that while some floaters are caused by breakdown over time, the others have a more mysterious origin.
+
{{w|Floater|Floaters}} are deposits within the eye's {{w|vitreous humour}}. While normally transparent, they can occasionally cause {{w|refraction}} of light, making them visible, particularly on bright, blue surfaces. Randall points out that while some floaters are caused by breakdown over time, the others have a more mysterious origin.
  
 
Blue sky sprites, properly known as the {{w|blue field entoptic phenomenon}}, are bright sprites seen over bright blue surfaces, particularly the sky. They are {{w|white blood cells}} moving in front of the {{w|retina}}.
 
Blue sky sprites, properly known as the {{w|blue field entoptic phenomenon}}, are bright sprites seen over bright blue surfaces, particularly the sky. They are {{w|white blood cells}} moving in front of the {{w|retina}}.
  
βˆ’
Randall also points out that colors are mostly seen near the center of our vision, with our brain keeping track of the colors of things near the outside of our visual field. The cones of blue, red and green in the {{w|Quadrant (plane geometry)|third quadrant}} also show how red and green's sensitivity is mostly limited to the center of our vision, whereas we can see blue in a larger field of vision. Our ability to perceive {{w|saturation}} (the intensity of colors) is also stronger near the center of our vision.
+
Randall also points out that colours are mostly seen near the center of our vision, with our brain keeping track of the colours of things near the outside of our visual field. The cones of blue, red and green in the {{w|Quadrant (plane geometry)|third quadrant}} also show how red and green's sensitivity is mostly limited to the center of our vision, whereas we can see blue in a larger field of vision. Our ability to perceive {{w|saturation}} (the intensity of colours) is also stronger near the center of our vision.
  
 
The left and right blind spot are the locations of the {{w|optic disc}}, where there are no sensitive rod or cone cells, making a literal "blind" spot. The mention of the "T-Boz blind spot" and "Chilli blind spot" are a reference to the R&B band {{w|TLC (band)|TLC}}, whose members go by the aliases "Left eye", "T-Boz", and "Chilli".
 
The left and right blind spot are the locations of the {{w|optic disc}}, where there are no sensitive rod or cone cells, making a literal "blind" spot. The mention of the "T-Boz blind spot" and "Chilli blind spot" are a reference to the R&B band {{w|TLC (band)|TLC}}, whose members go by the aliases "Left eye", "T-Boz", and "Chilli".

Please note that all contributions to explain xkcd may be edited, altered, or removed by other contributors. If you do not want your writing to be edited mercilessly, then do not submit it here.
You are also promising us that you wrote this yourself, or copied it from a public domain or similar free resource (see explain xkcd:Copyrights for details). Do not submit copyrighted work without permission!

To protect the wiki against automated edit spam, we kindly ask you to solve the following CAPTCHA:

Cancel | Editing help (opens in new window)