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A New Way of Thinking—Object Detection with Deep Learning

Image analysis is widely used in life science to quantify and understand events in biological samples. Object detection and segmentation are key processes for image analysis to identify our area of interest in the images. Then we can quantify morphological information, intensities, velocities in tracking, etc.

Conventional segmentation has not always been accurate and efficient; however, our eyes and brains can identify where our areas of interest are from experience. Using deep learning, we can train a neural network with ground truth information to carry out this complex task. Once the neural network has been created properly, it can help segment objects in a similar way as your brain. Deep learning sounds like it requires programming skills, but our software does not require programming skills and is easy to use.

In this session, we will discuss object segmentation with deep learning and its applications in life science. We will also demo Olympus deep-learning software.

Presenter: Akira Saito
Assistant Manager, Marketing and Applications, Olympus Singapore

Akira studied veterinary medicine at Tokyo University of Agriculture and Technology, Japan and graduated in 2007. Shortly after, he joined Olympus as application specialist responsible for in vivo imaging systems, high-content analysis systems, and laser confocal systems to support customers in Japan. In 2013, he took over sales promotion for all Olympus life science products. From 2018, he moved to Singapore and joined to support the marketing and application support for the APAC market.


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A New Way of Thinking—Object Detection with Deep Learning

Image analysis is widely used in life science to quantify and understand events in biological samples. Object detection and segmentation are key processes for image analysis to identify our area of interest in the images. Then we can quantify morphological information, intensities, velocities in tracking, etc.

Conventional segmentation has not always been accurate and efficient; however, our eyes and brains can identify where our areas of interest are from experience. Using deep learning, we can train a neural network with ground truth information to carry out this complex task. Once the neural network has been created properly, it can help segment objects in a similar way as your brain. Deep learning sounds like it requires programming skills, but our software does not require programming skills and is easy to use.

In this session, we will discuss object segmentation with deep learning and its applications in life science. We will also demo Olympus deep-learning software.

Presenter: Akira Saito
Assistant Manager, Marketing and Applications, Olympus Singapore

Akira studied veterinary medicine at Tokyo University of Agriculture and Technology, Japan and graduated in 2007. Shortly after, he joined Olympus as application specialist responsible for in vivo imaging systems, high-content analysis systems, and laser confocal systems to support customers in Japan. In 2013, he took over sales promotion for all Olympus life science products. From 2018, he moved to Singapore and joined to support the marketing and application support for the APAC market.


相关产品

成像软件

cellSens

cellSens软件的用户界面可自定义,提供直观的操作和流畅无缝的工作流程,让您可以控制布局。cellSens软件具有一系列软件包,可提供各种针对您的具体成像需求进行了优化的功能。它的图形化试验管理器和孔导航器功能简化了5D图像采集。通过TruSight反卷积实现更高的分辨率,并使用会议模式共享图像。

  • 通过TruAI深度学习分割分析提高实验效率,从而提供非标记细胞核检测和细胞计数
  • 模块化成像软件平台
  • 直观的应用驱动型用户界面
  • 从简单的捕获到高级多维实时实验的大范围功能集
Experts
Akira Saito
Assistant Manager, Marketing and Applications
Olympus Singapore

Akira studied veterinary medicine at Tokyo University of Agriculture and Technology, Japan and graduated in 2007. Shortly after, he joined Olympus as application specialist responsible for in vivo imaging systems, high-content analysis systems, and laser confocal systems to support customers in Japan. In 2013, he took over sales promotion for all Olympus life science products. From 2018, he moved to Singapore and joined to support the marketing and application support for the APAC market.

A New Way of Thinking—Object Detection with Deep Learning2024年10月28日
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