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Fahimeh Dehkhoda

Publications and source records attributed to Fahimeh Dehkhoda.

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Single Pixel Image Classification using an Ultrafast Digital Light Projector

Pattern recognition and image classification are essential tasks in machine vision. Autonomous vehicles, for example, require being able to collect the complex information contained in a changing environment and classify it in real time. Here, we experimentally demonstrate image classification at multi-kHz frame rates combining the technique of single pixel imaging (SPI) with a low complexity machine learning model. The use of a microLED-on-CMOS digital light projector for SPI enables ultrafast pattern generation for sub-ms image encoding. We investigate the classification accuracy of our experimental system against the broadly accepted benchmarking task of the MNIST digits classification. We compare the classification performance of two machine learning models: An extreme learning machine (ELM) and a backpropagation trained deep neural network. The complexity of both models is kept low so the overhead added to the inference time is comparable to the image generation time. Crucially, our single pixel image classification approach is based on a spatiotemporal transformation of the information, entirely bypassing the need for image reconstruction. By exploring the performance of our SPI based ELM as binary classifier we demonstrate its potential for efficient anomaly detection in ultrafast imaging scenarios.

cs.CV

Ultra-high frame rate digital light projector using chipscale LED-on-CMOS technology

Digital light projector systems are crucial components in applications including computational imaging, fluorescence microscopy and highly parallel data communications. Here we present a chip-scale projector system based on emissive micro-LED pixels directly bonded to a smart pixel CMOS drive chip. Enabled by the high modulation bandwidth of the LED devices, the 128x128 pixel array can project binary patterns at up to 0.5 Mfps and toggle between two stored frames at MHz rates. The projector has a 5-bit grayscale resolution that can be updated at rates up to 83 kfps, and can be held in memory as a constant bias for the binary pattern projection. Finally, the projector can be operated in a pulsed mode, with individual pixels emitting pulses down to a few nanoseconds in duration. Again, this mode can be used in conjunction with the high-speed spatial pattern projection. The design of the smart pixels and LED devices are presented along with measurements of each mode of operation. As a demonstration of the data throughput achievable with this system we present an optical camera communications application, exhibiting data rates of >5 Gbps, over three orders of magnitude improvement on current demonstrations.

physics.app-ph