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Even a machine’s brain needs training – How to train a neural network in OLYMPUS Stream?

Even a machine’s brain needs training – How to train a neural network in OLYMPUS Stream?

Quantitative image analysis is a critical step in many materials science, industrial, and quality assurance applications. Conventional methods that depend on brightness or color can miss critical information or targets in samples—especially when performed by inexperienced users. Since image quality and contrast varies with the sample, image segmentation using classical thresholding methods lacks reproducibility and repeatability.

Join us to learn how OLYMPUS Stream™ TruAI solution offers a more accurate segmentation approach using deep-learning technology for highly reproducible and robust analyses. With an intuitive user interface, even inexperienced operators can efficiently label images and easily train robust models with excellent generalization properties. A pre-trained network can be applied to future analyses for a similar application.

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Senior Trainer, Training Academy

Hello, my name is Heiko Gäthje. My expertise in widefield and confocal fluorescence microscopy and image processing of 3D data began when working as a biologist – I focused on neuronal development of insects and the structure of sialic acid binding neuronal proteins in mammals.

I joined Olympus in 2004 and I have been a microscopy trainer at the Olympus Academy since 2008, where I am responsible for the conception and introduction of digital learning tools. I also support and conduct microscopy training courses at the EMBL Heidelberg and the Zurich Winter School on Advanced Microscopy where I answer a lot of questions related to image processing and image analysis.

2024년11월24일
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