Publication | Closed Access
Computational Framework for Simulating Fluorescence Microscope Images With Cell Populations
202
Citations
27
References
2007
Year
EngineeringMicroscopyBiomedical EngineeringComputational ImagingLight MicroscopyBiophysicsNovel Imaging MethodMedical ImagingBiomedical AnalysisCell BiologyFluorescence MicroscopeFluorescence MicroscopySynthetic ImagesMicroscope Image ProcessingBioimage AnalysisBiomedical ImagingSimulation PlatformMedicineCell ImagingCell Detection
Fluorescence microscopy combined with digital imaging constructs a basic platform for numerous biomedical studies in the field of cellular imaging. As the studies relying on analysis of digital images have become popular, the validation of image processing methods used in automated image cytometry has become an important topic. Especially, the need for efficient validation has arisen from emerging high-throughput microscopy systems where manual validation is impractical. We present a simulation platform for generating synthetic images of fluorescence-stained cell populations with realistic properties. Moreover, we show that the synthetic images enable the validation of analysis methods for automated image cytometry and comparison of their performance. Finally, we suggest additional usage scenarios for the simulator. The presented simulation framework, with several user-controllable parameters, forms a versatile tool for many kinds of validation tasks, and is freely available at http://www.cs.tut.fi/sgn/csb/simcep.
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