EP1579372B1

Method and apparatus for three-dimensional imaging in the fourier domain

Abstract

Two or more two-dimensional Fourier transforms are acquired from different perspectives of a three-dimensional object region. A three-dimensional Fourier transform is then constructed using tomographic methods, permitting the application of image analysis algorithms analogous to those used for two-dimensional images.

EP1579372B1, drawing sheet 1
Sheet 1 of 7

Term

Term ended

Expired 25 November 2023, 2.8 years ago.

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19 claims: 3 independent, 16 dependent

  1. 1
    A method for multi-dimensional imaging of an object region (9), the method comprising the steps of:a) passing light through an object region (9) to produce transmitted light rays (36);b) capturing the transmitted light rays (36) by at least one optical element (13), the at least one optical element (13) having a back focal plane;c) using at least one detector (12) to capture a power spectrum of a two-dimensional Fourier transform, where the at least one detector (12) is located in a back focal plane of the at least one optical element (13);and d) repeating steps a)-c) for two or more viewpoints about an arc at least partially encircling the object region (9) to obtain multiple two-dimensional Fourier transforms.
  2. 13
    A system for multi-dimensional imaging of an object region (9), the system comprising:a light source (11);an object region (9) including at least one feature of interest (21, 22, 23), the object region (9) being disposed in an optical path to be illuminated by the light source (11);at least one detector (12) located in the optical path to receive light passing through the object region (9);at least one lens (13) located in the optical path between the object region (9) and the at least one detector (12) such that a Fourier plane is created in the back focal plane of the lens, where the at least one detector (12) is located in the Fourier plane;and wherein the light source (11), the at least one detector (12) and the at least one lens (13) are arranged to provide multiple views of the object region (9) for mapping at least one n-dimensional spatial frequency distribution of the at least one feature of interest (21, 22, 23) at each view so as to provide a plurality of spatial frequency distributions used for constructing an (n+1)-dimensional data set, where n is greater than or equal to 1, whereby an n-dimensional Fourier transform may be reconstructed as an (n+1)-dimensional Fourier transform.
  3. 18
    The system of any one of claims 13 to 17 further comprising:an object containing tube (2) located along the optical path, wherein the object of interest (1) is held within the object containing tube (2).