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Research Direction 楊博凱.

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Presentation on theme: "Research Direction 楊博凱."— Presentation transcript:

1 Research Direction 楊博凱

2 Problem How to optimally select the embryo with the highest potential for pregnancy? ?

3 Background Birth of Louis Brown (July 25, 1978)
Mother had blocked fallopian tubes First IVF baby

4 In-Vitro Fertilization
In-Vitro Fertilization (IVF) Fertilization step completed in the test tube Early embryo culture Place in uterus for further development

5 In-Vitro Fertilization
High pregnancy rates but also high multiple pregnancy rates: NTUH: Pregnancy 60%; > 1 baby ~ 30% Tiitinen et al. (2003): 34%; >1 baby ~25%

6 Problem How to optimally select the embryo with the highest potential for pregnancy? ?

7 Classical Method Morphological analysis Number of cells
Quality of cells

8 Classical Method Morphological analysis

9 Classical Method Morphological analysis

10 Classical Method

11 Competing Methodologies

12 Time Lapse PubMed: > 7900 Used in embryo research for a century
First: Lewis & Gregory, 1929 (Science, 69) First in human: Eriksson et al. 1981 Second: Payne et al. 1997

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15 Data Structure Phase contrast technique called Hoffman Modulation Contrast (HMC): transparent embryos and their substructures have a complex, 3D-like sidelit appearance Multiple focal planes Multiple time points

16 Current Methods Morphokinetic study Vitrolife Embryoscope

17 Vitrolife Embryoscope

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19 EEVA system

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21 Variational Segmentation
IEEE conference paper, 2004

22 Variational Segmentation
IEEE conference paper, 2004

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26 Time consuming and require expertise
水平集,階段一致性  曲線擬合 Using level set, phase congruency and fitting of ellipse methods  evaluate blastocyst extension (BE), inner cell mass (ICM), Trophectoderm area (TE)  classifier BE: 67% to 92% ICM: 67% to 82% TE: 53% to 92% Time consuming and require expertise

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29 Deep Learning 10,148 de-identified embryos at 110 hpi (hours post-insemination) Taken at seven focal depths (+45, +30, +15, 0, -15, -30, and -45)  50,392 total images Classed into 3 groups: good-quality, fair-quality, poor-quality) Inception-V1 deep learning-based algorithm

30 Deep Learning Evaluated performance using a randomly selected independent test set: 964 good-quality embryo images (141 embryos) 966 poor-quality embryo images (142 embryos) 96.94% accuracy (1,871 correct predictions out of 1,930 images) Voting system  final assessment of embryo 97.53% accuracy (276 correct predictions out of 283 embryos)

31 Accuracy: 90.4% Precision: 95.7%

32 Aspiration Morphological analyses of multi-focal, multi-temporal datasets Minimal user input of labels and features Create an objective benchmark to assess against clinical results Ability to search for similar images through the embryo database


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