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Review of Optics Austin Roorda, Ph.D. University of California, Berkeley victorhorvath.com

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Page 1: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Review of Optics Austin Roorda, Ph.D.

University of California, Berkeley

victorhorvath.com

Page 2: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Geometrical Optics

Relationships between pupil size, refractive error and

blur

Page 3: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

2 mm 4 mm 6 mm

Optics of the eye: Depth of Focus

Page 4: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

2 mm 4 mm 6 mm

In focus

Focused in front of retina

Focused behind retina

Optics of the eye: Depth of Focus

Page 5: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Demonstration Role of Pupil Size and Defocus on Retinal Blur

Draw a cross like this one on a page. Hold it so close that is it completely out of focus, then squint. You should see the horizontal line become clear. The line becomes clear because you have used your eyelids to make your effective pupil size smaller, thereby reducing the blur due to defocus on the retina image. Only the horizontal line appears clear because you have only reduced the blur in the horizontal direction.

Page 6: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Computation of Geometrical Blur Size

where D is the defocus in diopters

Page 7: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Application of Blur Equation

• 1 D defocus, 8 mm pupil produces 27.52 minute blur size ~ 0.5 degrees

Page 8: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Physical Optics

The Wavefront

Page 9: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

What is the Wavefront?

converging beam =

spherical wavefront

parallel beam =

plane wavefront

Page 10: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

What is the Wavefront?

ideal wavefront parallel beam =

plane wavefront defocused wavefront

Page 11: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

What is the Wavefront? parallel beam

= plane wavefront aberrated beam

= irregular wavefront

ideal wavefront

Page 12: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

What is the Wavefront?

aberrated beam =

irregular wavefront

diverging beam =

spherical wavefront

ideal wavefront

Page 13: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

The Wave Aberration

Page 14: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

What is the Wave Aberration? diverging beam

= spherical wavefront wave aberration

Page 15: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

-2 -1 0 1 2 -2.5

-2

-1.5

-1

-0.5

0

0.5

1

1.5

2

mm (right-left)

mm

(sup

erio

r-in

ferio

r)

Wave Aberration Contour Map

Page 16: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

-3 -2 -1 0 1 2 3

-3

-2

-1

0

1

2

3

Wavefront Aberration

mm (right-left)

mm

(sup

erio

r-in

ferio

r)

Wave Aberration: Defocus

Page 17: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

-3 -2 -1 0 1 2 3

-3

-2

-1

0

1

2

3

Wavefront Aberration

mm (right-left)

mm

(sup

erio

r-in

ferio

r)

Wave Aberration: Coma

Page 18: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

-3 -2 -1 0 1 2 3

-3

-2

-1

0

1

2

3

Wavefront Aberration

mm (right-left) m

m (s

uper

ior-

infe

rior)

Wave Aberration: Complex Aberration

Page 19: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Zernike Polynomials

•  It’s convenient to have a mathematical

expression to describe the wave aberration

–  allows us to compute metrics

–  allows to display data in different forms

–  allows us to breakdown data into different

components (remove defocus, for example)

• Zernike polynomials are a convenient equation

to use to fit wave aberration data for the eye

Page 20: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Zernike Polynomials are not a big deal!

• they are just an equation used to fit data –  y=mx+b is used to fit linear data

–  y=ax2+bx+c is used to fit parabolic data

– Z(x,y) are useful for fitting ocular wave aberration data

Page 21: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Zernike polynomial components

what magnitude of each of these shapes is present in my wave

aberration data?

Page 22: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Breakdown of Zernike Terms

-0.5 0 0.5 1 1.5 2 1 2 3 4 5 6 7 8 9

10 11 12 13 14 15 16 17 18 19 20

Zern

ike

term

Coefficient value (microns)

astig. defocus

astig. trefoil coma coma trefoil

spherical aberration

2nd order

3rd order

4th order

5th order

Page 23: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

OTF (optical transfer function)

PTF (phase) MTF (contrast)

PSF (point spread function)

Image Quality Metrics

The Reason we Measure the Wave Aberration

Page 24: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

The Point Spread Function

Page 25: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

The Point Spread Function, or PSF, is the image that an optical system forms of a point source.

The point source is the most fundamental object, and forms the basis for any complex

object.

The PSF is analogous to the Impulse Response Function in electronics.

Page 26: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Airy Disc

The PSF for a perfect optical system is not a point, but is made up a core surrounded by

concentric rings of diminishing intensity

It is called the Airy disc.

The Point Spread Function

Page 27: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Airy Disk

θ

Page 28: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

0

0.5

1

1.5

2

2.5

1 2 3 4 5 6 7 8 pupil diameter (mm)

PS

F A

iry D

isk

radi

us (m

inut

es)

As the pupil size gets larger, the Airy disc gets smaller.

Page 29: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Point Spread Function vs. Pupil Size

1 mm 2 mm 3 mm 4 mm 5 mm 6 mm 7 mm

Perfect Eye

Typical Eye

Page 30: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Resolution

Page 31: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Rayleigh resolution

limit

Unresolved point sources

Resolved

Page 32: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

0

0.5

1

1.5

2

2.5

1 2 3 4 5 6 7 8 pupil diameter (mm)

reso

lutio

n in

min

utes

of a

rc

As the pupil size gets larger, the potential resolution improves

Page 33: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Minutes of arc

20/20 20/10 5

arcm

in

2.5

arcm

in

1 arcmin

Page 34: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Keck telescope (10 m pupil)

About 4500 times better than the eye!

(0.022 arcseconds resolution)

Page 35: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Convolution

Page 36: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Convolution

Page 37: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Simulated Images

20/40 letters

20/20 letters

Page 38: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

MTF Modulation Transfer

Function

Page 39: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

low medium high

object: 100% contrast

image

spatial frequency

cont

rast

1

0

Page 40: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

0

0.5

1

0 50 100 150 200 250 300

1 mm 2 mm 4 mm 6 mm 8 mm

mod

ulat

ion

tran

sfer

spatial frequency (c/deg)

cut-off frequency

Rule of thumb: cutoff frequency increases by ~30 c/d for each mm increase in pupil size

MTF: Cutoff Frequency

Page 41: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Spatial frequency

20/20 20/10

5 ar

cmin

2.5

arcm

in 30 cyc/deg

60 cyc/deg

Page 42: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Modulation Transfer Function

vertical spatial frequency (c/d)

horizontal spatial frequency (c/d) c/deg -100 0 100

0.2 0.4 0.6 0.8

Page 43: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

PTF Phase Transfer

Function

Page 44: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

object

image

spatial frequency

phas

e sh

ift 180

0

-180

low medium high

Page 45: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Phase Transfer Function

• Contains information about asymmetry in the PSF

• Contains information about contrast reversals (spurious resolution)

Page 46: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

The Importance of Phase

Page 47: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Relationships Between Wave Aberration,

PSF and MTF

Page 48: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

PSF (point spread function)

OTF (optical transfer function)

PTF (phase) MTF (contrast)

Image Quality Metrics

The Reason we Measure the Wave Aberration

Page 49: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

The PSF is the Fourier Transform (FT) of the pupil function

The MTF is the amplitude component of the FT of the PSF

The PTF is the phase component of the FT of the PSF

The OTF (MTF and PTF) can also be computed as the autocorrelation of the pupil function

Page 50: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

mm (right-left) -2 -1 0 1 2

-0.5 0 0.5

c/deg -100 0 100 0.2 0.4 0.6 0.8

c/deg -100 0 100

-0.5 0 0.5

arcsec -200 -100 0 100 200

Point Spread Function Wavefront Aberration

Modulation Transfer Function Phase Transfer Function

Page 51: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

-200 -100 0 100 200 mm (right-left)

Wavefront Aberration

-2 -1 0 1 2 -0.5

0

0.5

c/deg

Modulation Transfer Function

-100 0 100 0.2 0.4 0.6 0.8

c/deg

Phase Transfer Function

-100 0 100 -150 -100 -50 0 50 100 150

arcsec

Point Spread Function

Page 52: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

c/deg -100 0 100 -150 -100 -50 0 50 100 150

c/deg -100 0 100 0.2 0.4 0.6 0.8

mm (right-left) -2 -1 0 1 2 -0.5 0 0.5 1 1.5

-1000 -500 0 500 1000

Wavefront Aberration

Modulation Transfer Function Phase Transfer Function

arcsec

Point Spread Function

Page 53: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Conventional Metrics to Define Imagine Quality

Page 54: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Root Mean Square

Page 55: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Root Mean Square: Advantage of Using Zernikes to Represent

the Wavefront

……

Page 56: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Strehl Ratio

diffraction-limited PSF

Hdl

Heye

actual PSF

Page 57: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Modulation Transfer Function

0 0.1 0.2 0.3 0.4 0.5 0.6 0.7 0.8 0.9

1

0 50 100 150 spatial frequency (c/deg)

cont

rast

Area under the MTF

20/20 20/10

Page 58: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Retinal Sampling

Page 59: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Projected Image Sampled Image

5 arc minutes 20/20 letter

Sampling by Foveal Cones

Page 60: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

5 arc minutes 20/5 letter

Projected Image Sampled Image

Sampling by Foveal Cones

Page 61: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Nyquist Sampling Theorem

Page 62: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

I

0

1

I

0

1

nearly 100% transmitted

Photoreceptor Sampling >> Spatial Frequency

Page 63: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

I

0

1

I

0

1

nearly 100% transmitted

Photoreceptor Sampling = 2 x Spatial Frequency

Page 64: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

I

0

1

I

0

1

nothing transmitted

Photoreceptor Sampling = Spatial Frequency

Page 65: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

I

0

1

I

0

1

alias transmitted

Photoreceptor Sampling < Spatial Frequency

Page 66: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

Nyquist theorem: The maximum spatial frequency that can be detected is equal to ½ of the sampling frequency.

foveal cone spacing ~ 120 samples/deg

maximum spatial frequency: 60 cycles/deg (20/10 or 6/3 acuity)

Page 67: Review of Optics - Visual Optics Institutevoi.opt.uh.edu/1_Roorda_OpticPrinciples.pdf · 2 mm 4 mm 6 mm In focus Focused in front of retina Focused behind retina Optics of the eye:

0

0.5

1

0 50 100 150 200 250 300

1 mm 2 mm 4 mm 6 mm 8 mm

mod

ulat

ion

tran

sfer

spatial frequency (c/deg)

cut-off frequency

Rule of thumb: cutoff frequency increases by ~30 c/d for each mm increase in pupil size

Nyquist limit

MTF: Cutoff Frequency