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Corrections

Roland Meynart, "Diffraction halo in speckle photography erratum," Appl. Opt. 23, 4462-4462 (1984)
https://www.osapublishing.org/ao/abstract.cfm?uri=ao-23-24-4462

References

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  1. B. Ineichen, P. Eglin, R. Dandliker, “Hybrid Optical and Electronic Image Processing for Strain Measurements by Speckle Photography,” Appl. Opt. 19, 2191 (1980).
    [CrossRef] [PubMed]
  2. G. H. Kaufmann, A. E. Ennos, B. Gale, D. J. Pugh, “An Electro-Optical Read-Out System for Analysis of Speckle Photographs,” J. Phys. E 13, 579 (1980).
    [CrossRef]
  3. C. S. Vikram, “Simple Approach to Process Speckle-Photography Data,” Opt. Lett. 7, 374 (1982).
    [CrossRef] [PubMed]
  4. G. H. Kaufmann, “Numerical Processing of Speckle Photography Data by Fourier Transform,” Appl. Opt. 20, 4277 (1981).
    [CrossRef] [PubMed]
  5. C. S. Vikram, K. Vedam, “Processing Speckle Photography Data: Circular Imaging Aperture,” Appl. Opt. 22, 653 (1983).
    [CrossRef] [PubMed]
  6. J. W. Goodman, in Laser Speckle and Related Phenomena, J. C. Dainty, Ed. (Springer, New York, 1975), Chap. 2.
  7. S. Lowenthal, H. H. Arsenault, “Image Formation for Coherent Diffuse Objects,” J. Opt. Soc. Am. 60, 1478 (1970).
    [CrossRef]
  8. J. C. Dainty, “The Statistics of Speckle Patterns,” Prog. Opt. 14, 3 (1976).
  9. R. P. Khetan, F-P. Chiang, “Strain Analysis by One-Beam Laser Speckle Interferometry. 1: Single Aperture Method,” Appl. Opt. 15, 2205 (1976).
    [CrossRef] [PubMed]
  10. F-P. Chiang, A. Asundi, “White Light Speckle Method of Experimental Strain Analysis,” Appl. Opt. 18, 409 (1979).
    [CrossRef] [PubMed]
  11. R. Meynart, “Instantaneous Velocity Field Measurements in Unsteady Gas Flow by Speckle Velocimetry,” Appl. Opt. 22, 535 (1983).
    [CrossRef] [PubMed]
  12. I. Yamaguchi, “Fringe Formation in Speckle Photography,” J. Opt. Soc. Am. A 1, 81 (1984).
    [CrossRef]

1984 (1)

1983 (2)

1982 (1)

1981 (1)

1980 (2)

G. H. Kaufmann, A. E. Ennos, B. Gale, D. J. Pugh, “An Electro-Optical Read-Out System for Analysis of Speckle Photographs,” J. Phys. E 13, 579 (1980).
[CrossRef]

B. Ineichen, P. Eglin, R. Dandliker, “Hybrid Optical and Electronic Image Processing for Strain Measurements by Speckle Photography,” Appl. Opt. 19, 2191 (1980).
[CrossRef] [PubMed]

1979 (1)

1976 (2)

1970 (1)

Arsenault, H. H.

Asundi, A.

Chiang, F-P.

Dainty, J. C.

J. C. Dainty, “The Statistics of Speckle Patterns,” Prog. Opt. 14, 3 (1976).

Dandliker, R.

Eglin, P.

Ennos, A. E.

G. H. Kaufmann, A. E. Ennos, B. Gale, D. J. Pugh, “An Electro-Optical Read-Out System for Analysis of Speckle Photographs,” J. Phys. E 13, 579 (1980).
[CrossRef]

Gale, B.

G. H. Kaufmann, A. E. Ennos, B. Gale, D. J. Pugh, “An Electro-Optical Read-Out System for Analysis of Speckle Photographs,” J. Phys. E 13, 579 (1980).
[CrossRef]

Goodman, J. W.

J. W. Goodman, in Laser Speckle and Related Phenomena, J. C. Dainty, Ed. (Springer, New York, 1975), Chap. 2.

Ineichen, B.

Kaufmann, G. H.

G. H. Kaufmann, “Numerical Processing of Speckle Photography Data by Fourier Transform,” Appl. Opt. 20, 4277 (1981).
[CrossRef] [PubMed]

G. H. Kaufmann, A. E. Ennos, B. Gale, D. J. Pugh, “An Electro-Optical Read-Out System for Analysis of Speckle Photographs,” J. Phys. E 13, 579 (1980).
[CrossRef]

Khetan, R. P.

Lowenthal, S.

Meynart, R.

Pugh, D. J.

G. H. Kaufmann, A. E. Ennos, B. Gale, D. J. Pugh, “An Electro-Optical Read-Out System for Analysis of Speckle Photographs,” J. Phys. E 13, 579 (1980).
[CrossRef]

Vedam, K.

Vikram, C. S.

Yamaguchi, I.

Appl. Opt. (6)

J. Opt. Soc. Am. (1)

J. Opt. Soc. Am. A (1)

J. Phys. E (1)

G. H. Kaufmann, A. E. Ennos, B. Gale, D. J. Pugh, “An Electro-Optical Read-Out System for Analysis of Speckle Photographs,” J. Phys. E 13, 579 (1980).
[CrossRef]

Opt. Lett. (1)

Prog. Opt. (1)

J. C. Dainty, “The Statistics of Speckle Patterns,” Prog. Opt. 14, 3 (1976).

Other (1)

J. W. Goodman, in Laser Speckle and Related Phenomena, J. C. Dainty, Ed. (Springer, New York, 1975), Chap. 2.

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Equations (13)

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t ( r ) = a - b [ C ( r ) + C ( r - d ) ] ,
I ( r f ) = | - + t ( r ) exp - i 2 π λ f r · r f d r | 2 .
I ( r f ) = G ( r f ) 2 cos 2 π λ f r f · d ,
G ( r f ) = - + C ( r ) exp - i 2 π λ f r · r f d r
G ( r f ) 2 = G ( r f ) 2 + S ( r f ) ,
I 1 ( r f ) - G ( r f ) 2 cos 2 π λ f d · r f ,
G ( r f ) 2 = | C ( r ) exp - i 2 π λ f r · r f d r | 2 .
G ( r f ) 2 = W ( r f ) - + P ( ξ ) 2 | P ( ξ - r f d i f ) | 2 d ξ ,
W ( r f ) = ( 1 - x f d i a f ) · ( 1 - y f d i a f ) .
G ( r f ) 2 = ( 1 - x f d i a f ) 2 · ( 1 - y f d i a f ) 2 .
C ( r ) = | - + [ k δ ( r - r k - ζ ) ] [ - + P ( ξ ) × exp - i 2 π λ d i ξ ζ d ξ ] d ζ | 2
= k | - + P ( ξ ) exp - i 2 π λ d i ξ ( r - r k ) d ξ | 2
G ( r f ) 2 = | - + P ( ξ ) P ( ξ - r f d i f ) d ξ | 2 ,

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