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Field of View Calculator

Last updated Researched from published specifications and owner reviews, not tested in person

Quick answer

Field of view scales linearly with distance and inversely with magnification. A scope showing 35 feet at 100 yards shows 70 feet at 200 and 175 feet at 500. Doubling the magnification roughly halves the field.

Manufacturers publish field of view as feet at 100 yards in North America and as degrees or metres at 1,000 metres elsewhere, which makes comparing two optics from different catalogues needlessly hard. This converts between all of them.

Two relationships do the work and both are simple. Field of view scales linearly with distance, so whatever you see at 100 yards you see twice as much of at 200. And it scales inversely with magnification, so going from 3x to 9x cuts the field to roughly a third.

That second relationship is why a wide field and high magnification are in direct tension, and why the honest answer to "what magnification do I need" usually involves turning it down.

Field of view calculator

As in "3 to 9", to see what zooming costs you. Leave blank to skip.

What you see

70.0 ft

The formula

feet at distance = feet at 100 yd x (yards / 100)    degrees = 2 x arctan(feet / 2 / 300)    field is inversely proportional to magnification

Optics where field of view is the point

Top matches update when you change your numbers.

What typical optics actually show you

Representative published figures for common configurations, converted into degrees and projected out to distance. These are typical values for the class rather than a specification for any particular model.

A 3-9x40 typically shows about 35 feet at 100 yards at 3x and only about 13 feet at 9x, which is the cost of magnification made concrete.

Shooter convention

Field of view for common optic configurations
ConfigurationAt 100 ydIn degreesAt 200 ydAt 500 yd
Typical 3-9x40 at 3x35 ft6.68 degrees70 ft175 ft
Typical 3-9x40 at 9x13 ft2.48 degrees26 ft65 ft
Typical 1-6x24 at 1x110 ft20.78 degrees220 ft550 ft
Typical 4-16x44 at 16x7.5 ft1.43 degrees15 ft37.5 ft
Typical 10x42 binocular340 ft59.08 degrees680 ft1700 ft

These are representative figures for the class, not published specifications for a particular model. Always use the figure in your own manual, which manufacturers do publish for field of view.

Why field of view matters more than people expect

Three situations where it decides the outcome.

  • Finding the target at all. At 16x a scope might show seven feet at 100 yards. Locating a stationary animal through that is genuinely hard, which is why experienced shooters find the target at low magnification and then zoom in.
  • Tracking something moving. A narrow field means a moving animal leaves the picture, and once it is gone you have to find it again from scratch.
  • Shooting fast up close. This is the entire argument for a true 1x on a low power variable: a wide field lets you shoot with both eyes open and keep peripheral awareness.

Field of view is also a reasonable proxy for eyepiece quality within a price class. A wide field at a given magnification is optically harder to deliver, so a maker offering one is usually spending money on the eyepiece.

Field of view and eye relief pull against each other

Designing a wide field and generous eye relief into the same eyepiece is difficult, and inexpensive optics usually sacrifice one.

That matters most on a hard recoiling rifle, where eye relief is a safety consideration rather than a comfort one. Given the choice on a magnum, take the eye relief. Given the choice on a rimfire or a low power variable used up close, take the field.

Note also that on most variable scopes, eye relief changes across the magnification range. Set your eye relief at the magnification you expect to shoot at, which for a hunting scope is usually the top of the range rather than the bottom.

Sources

  • Exact trigonometry for angular field of view, and manufacturer published field of view figures

Frequently asked questions

How is field of view measured on a riflescope?

In North America as the width in feet visible at 100 yards. European makers usually publish degrees, or metres at 1,000 metres. All three describe the same angle, so they convert exactly between each other. Field of view is one of the figures manufacturers do reliably publish, so use the number in your own manual.

How does magnification affect field of view?

Inversely and almost exactly. Doubling the magnification roughly halves the field of view. A scope showing 35 feet at 100 yards at 3x will show about 12 feet at 9x. This is the concrete cost of magnification and it is the main reason to leave a variable scope turned down until you need it.

What is a good field of view for hunting?

At the magnification you actually hunt at, as wide as you can get. On a 3-9x used mostly at 4x or 5x, something in the region of 25 feet at 100 yards is comfortable for finding and tracking. Very narrow fields at high magnification make locating an animal slow, which is when shots get missed.

Does a bigger objective give a wider field of view?

No. Field of view is determined by the eyepiece design and the magnification, not the objective diameter. A bigger objective gives you a larger exit pupil and therefore a brighter image at a given magnification, which is a different benefit entirely and is frequently confused with this one.

Why does my field of view seem smaller than the specification?

Usually eye position. If your eye is not at the correct eye relief distance and centred, you see a smaller circle with dark edges. Check that the scope is set for your actual shooting position, and on a variable scope remember that eye relief shifts as you change magnification.

Is a wider field of view always better?

Not always, because it competes with eye relief in the eyepiece design. On a hard recoiling rifle, take the eye relief, which is a safety matter rather than a comfort one. On a low power variable used fast and up close, take the field. On a high magnification target scope neither is usually the limiting factor.

Researched, not professional advice. This page is compiled from published manufacturer specifications, published optical and ballistic formulas, and owner-review consensus, not hands-on testing. Figures described as a rule of thumb are shooter convention rather than sourced numbers, and they are labelled that way wherever they appear. Ballistic figures come from a point mass model using the ballistic coefficient the maker publishes, so treat them as a starting point and confirm them on paper at a measured distance. Confirm your firearm is unloaded with the action open before you mount, level, torque or bore sight anything. Verify a zero only on a supervised range or a safe, legal backstop, know what lies beyond your target, and follow the law where you hunt and shoot, including rules on land access and permitted cartridges.