Neuropsychology

Visual Field Defect Mapper

Pick a point on the pathway, predict which parts of which eye's field go dark, then find out - and then find out how much the pattern could have told you in reverse.

Simulated — a schematic pathway, textbook mappings, fictional cases

Learning objective

By the end you should be able to predict the field consequence of damage before, at and after the chiasm.

About 25 minutes. Nothing you do here is saved or sent anywhere.

Not an eye test

Nothing on this page examines your vision or anybody else's. The field diagrams are schematic quadrants, not perimetry, and no result here means anything about the person reading it. If you have concerns about your own vision, see an optometrist or a doctor.

  1. Choose a point on the pathway.
  2. Tick the quadrants you think go dark, in each eye, before revealing anything.
  3. Reveal, read why, and try the next point.
  4. Then answer the harder question in the challenge: given a field pattern, where could the damage be?

First, the fact everything else rests on

About half the fibres leaving each eye cross to the other side at the optic chiasm. Which half, and why it matters, is what everything below turns on.

Which fibres cross at the chiasm, and what do they carry?

Challenge - reading the pattern backwards

A fictional person's field examination shows the whole left half of the field missing in both eyes, upper and lower, with a sharp border down the middle. There is no other finding.

Tick every point on the pathway that is compatible with this pattern.

What this demonstrates

The crossing is what makes the pattern informative

Fibres from the nasal half of each retina cross at the chiasm. The nasal retina sees the outer half of that eye's field, so after the chiasm each side of the brain carries the opposite half of the world from both eyes rather than one whole eye. That single fact does all the work. Damage before the chiasm affects one eye, damage at the chiasm affects the outer half of both, and damage after it affects the same half of the world in both.

Where the border falls tells you which side of the chiasm

A defect confined to one eye is in front of the chiasm. A defect that respects the vertical midline in both eyes is behind it. That distinction is genuinely diagnostic, it is available from a bedside examination, and it is one of the tidiest structure-to- function mappings anywhere in the nervous system - which is precisely why it is a bad model for the rest of neuropsychology.

The pattern cannot say which structure

Damage to the right optic tract and damage to the right occipital cortex both remove the left half of both fields. So does damage to both parts of the right optic radiation together, and so does damage to the right lateral geniculate nucleus. The field pattern locates the failure to one side and to somewhere behind the chiasm, and stops. Congruity - how closely the two eyes' defects match - and macular sparing are the traditional clues for going further, and both are unreliable enough that imaging settles it in practice.

Quadrants are a teaching fiction

Real defects have soft edges, vary in depth rather than being simply present or absent, and rarely align with a quadrant boundary. A field chart is a map of sensitivity, not a map of which squares are lit. Every diagram in this tool is a simplification chosen so that a prediction can be marked right or wrong, and the marking is a consequence of the simplification.

What the person notices is a third thing again

A homonymous hemianopia is not experienced as a black rectangle. Many people are unaware of it until they bump into something, and some report nothing missing at all. Field loss and awareness of field loss are separate, which is one of the reasons the previous tool in this module spends its time on the difference between not seeing and not attending.