IP Library Granted Patent US 9,400,242
Granted Patent B2
US 9,400,242 · App. 14/115,780 · Granted Jul 26, 2016

Bio-imaging method and system

Inventors: Lorène Allano (Sèvres, FR); Léontine Jacolin (Paris, FR); Dominique Decaux (Chaponost, FR); Frédéric Pinston (Grenoble, FR); Denis Desseree (Montluel, FR); Guillaume Boissier (Lyons, FR); Christophe Tachier (Lyons, FR); Corine Fulchiron (Serrières de Briord, FR); Lorette Lapierre (Ambronay, FR); Guillaume Sutra (Chilly-Mazarin, FR)
Assignees: bioMérieux; Commissariat à l'Energie Atomique et aux Energies Alternatives
G01N21/01G01N21/17G01N21/255G01N21/27G06T7/0012G01N2201/0626
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Quick Facts
Patent No.
US 9,400,242
App. No.
14/115,780
Granted
Jul 26, 2016
Kind
B2
Abstract

A method for enhancing an image of a biological sample, which biological sample has been grown in a vessel on a culture medium.

Claims (28)

1. A method of detecting characteristics associated with a vessel containing a sample, the method comprising:

obtaining, via a camera, one or more images of the vessel containing the sample using one or more of a plurality of illumination sources, each illumination source disposed in an imaging system having a head unit, a base unit, and at least one intermediate unit, each illumination source being capable of illuminating the vessel containing the sample from a different direction;

applying, via a processing unit, an object detection transformation to the one or more images of the vessel containing the sample to identify edges of the vessel containing the sample, the object detection transformation being at least one of a linear transformation, a Bezier type transformation, a two dimensional Fourier transformation, and a circular Hough transformation; and

determining, via the processing unit, the image of an interior of the vessel containing the sample.

2. A method according to claim 1 , wherein determining the image of the interior of the vessel containing the sample comprises masking the edges of the vessel containing the sample from the image to produce a resultant image showing the interior of the vessel containing the sample.

3. The method of claim 1 , further comprising identifying an absence of any microorganism colonies within the vessel containing the sample.

4. A method of detecting objects of a predetermined format having non-biological characteristics on a vessel containing a sample comprising:

obtaining, via a camera, one or more images of the vessel containing the sample using one or more of a plurality of illumination sources, each illumination source disposed in an imaging system having a head unit, a base unit, and at least one intermediate unit, each illumination source being capable of illuminating the vessel containing the sample from a different direction;

forming, via a processing unit, a digital image of the one or more images;

identifying, via the processing unit, objects of the predetermined format having non-biological characteristics, the non-biological characteristic being at least one of a shape, a serigraphy, a bar code, a ticket, and a label; and

masking the identified objects to produce a resultant image in which resultant image the objects are not visible.

5. The method of claim 4 , wherein forming the digital image of the one or more images comprises retrieving objects having a point shape and a dark color in the one or more images of the vessel containing the sample.

6. A method of isolating microorganism colonies in a vessel containing a sample including a culture medium, the method comprising:

obtaining, via a camera, one or more images of the vessel containing the sample using one or more of a plurality of illumination sources, each illumination source disposed in an imaging system having a head unit, a base unit, and at least one intermediate unit, each illumination source being capable of illuminating the vessel containing the sample from a different direction;

selecting, via a processing unit, an image or combination of images for further processing;

applying, via the processing unit, a circular object detection transformation to identify one or more substantially circular objects in the vessel containing the sample, which circular objects are representative of isolated colonies in the vessel containing the sample; and

for each identified substantially circular object, determining, via the processing unit, an area of isolation for that object, wherein determining the area of isolation of an object comprises:

determining a centre of the identified substantially circular object;

forming a digitized image of the identified substantially circular object by applying a binarization step to obtain a binarized image, wherein a centre of the binarized image corresponds to the centre of the identified substantially circular object;

verifying a circularity of the object in the binarized image; and

carrying out a test to identify an area of isolation of the object to determine a size of the colony and the area of isolation of that colony from other colonies.

7. A method of detecting at least one of a mass of colonies and non-circular colonies in a vessel containing a sample including a culture medium, the method comprising:

obtaining, via a camera, one or more images of the vessel containing the sample using one or more of a plurality of illumination sources, each illumination source disposed in an imaging system having a head unit, a base unit, and at least one intermediate unit, each illumination source being capable of illuminating the vessel containing the sample from a different direction;

forming, via a processing unit, a digitized image of the one or more images;

detecting, via the processing unit, growth by identifying high density of colonies and non-circular colonies;

wherein identifying high density of colonies and non-circular colonies comprises determining areas having a contrast above a predetermined value; and

wherein determining areas having a contrast above a predetermined value comprises comparing zones of contour in the digitized image and zones having a contrast above said predetermined value.

8. The method of claim 7 , wherein forming a digitized image of the one or more images comprises segmenting the one or more images using a region-based segmentation technique.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 30, 2019
From: COMMISSARIAT À L'ENERGIE ATOMIQUE ET AUX ENERGIES ALTERNATIVES
To: BIOMÉRIEUX
Reel/Frame 050240/0698 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 27, 2014
From: ALLANO, LORÈNE; JACOLIN, LÉONTINE; SUTRA, GUILLAUME
To: COMMISSARIAT A L'ENERGIE ATOMIQUE ET AUX ENERGIES ALTERNATIVES
Reel/Frame 032311/0525 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Feb 27, 2014
From: DECAUX, DOMINIQUE; PINSTON, FRÉDÉRIC; DESSEREE, DENIS; BOISSIER, GUILLAUME; TACHIER, CHRISTOPHE; FULCHIRON, CORINE; LAPIERRE, LORETTE
To: BIOMÉRIEUX
Reel/Frame 032311/0802 →
Priority Claims (1)
EP 11305542 · May 6, 2011 · regional
Continuity (1)
Related Publication 20140161330A1 · Jun 12, 2014