Abstract:
An inspection device capable of sensing an abnormality included in an image with high accuracy is provided. The inspection device includes an electron microscope, an image processing device, and a calculator. The electron microscope has a function of generating a signal corresponding to a surface shape of a sample over a stage. The image processing device has a function of generating a first image corresponding to the signal. The calculator includes a circuit in which a neural network is formed, and has a function of obtaining a second image on the basis of the first image using the neural network. The calculator has a function of obtaining a third image by performing smoothing processing on the first image and a function of obtaining a fourth image by performing smoothing processing on the second image. The calculator has a function of obtaining a fifth image by obtaining a difference between the third image and the fourth image.
Abstract:
An imaging device with low power consumption is provided. The pixel of the imaging device includes first and second photoelectric conversion elements, and first to fifth transistors. A cathode of the first photoelectric conversion element is electrically connected to the first transistor. An anode of a second photoelectric conversion element is electrically connected to the second transistor. Imaging data of a reference frame is obtained using the first photoelectric conversion element, and then imaging data of a difference detection frame is obtained using the second photoelectric conversion element. After the imaging data of the difference detection frame is obtained, a first potential that is a potential of a signal output from the pixel and a second potential that is a reference potential are compared. Whether or not there is a difference between the imaging data of the reference frame and the imaging data of the difference detection frame is determined using the first potential and the second potential.
Abstract:
A display device operating at high speed is provided. The display device includes a pixel provided with a first memory circuit, a second memory circuit, and a display unit, in which the first memory circuit and the second memory circuit are electrically connected to one electrode of the display unit. The operation of the display device includes a first period of writing first image data to the first memory circuit and writing second image data to the second memory circuit, a second period of supplying a first potential to the first memory circuit, a third period of displaying a first image corresponding to the first image data, a fourth period of setting a potential of the one electrode of the display unit to a second potential, a fifth period of supplying the first potential to the second memory circuit, and a sixth period of displaying a second image corresponding to the second image data.
Abstract:
A low-cost semiconductor device is provided. A memory cell including a first transistor, a second transistor, and a capacitor is provided. The second transistor is located above the first transistor and the capacitor. In the capacitor, one of a pair of electrodes, a dielectric layer, and the other of the pair of electrodes are provided in this order. A gate electrode of the first transistor, one of a source electrode and a drain electrode of the second transistor, and the other of the pair of electrodes of the capacitor are the same conductive layer. A gate insulating layer of the first transistor and the dielectric layer of the capacitor are the same insulating layer. A semiconductor layer of the first transistor and the one of the pair of electrodes of the capacitor are provided along a sidewall of an opening portion included in a first interlayer insulating layer. A semiconductor layer of the second transistor is provided along a sidewall of an opening portion included in a second interlayer insulating layer over the first transistor and the capacitor. The first transistor and the second transistors are vertical transistors, and the capacitor is a trench capacitor.
Abstract:
An object is to provide an electronic device capable of recognizing a user's facial feature accurately. A glasses-type electronic device includes a first optical component, a second optical component, a frame, an imaging device, a feature extraction unit, and an emotion estimation unit. The frame is in contact with a side surface of the first optical component and a side surface of the second optical component. The imaging device is in contact with the frame and has a function of detecting part of a user's face. The feature extraction unit has a function of extracting a feature of the user's face from the detected part of the user's face. The emotion estimation unit has a function of estimating information on the user from the extracted feature.
Abstract:
A display device that can display a high-luminance image is provided. The display device includes a display element and a memory circuit which is electrically connected to a first wiring and a second wiring. First, a reference potential is supplied to the first wiring. Next, a first image signal is supplied to the memory circuit through the second wiring. Then, the second image signal is added to the first image signal by supplying the second image signal to the memory circuit through the first wiring. After that, an image obtained by superimposing an image corresponding to the first image signal and an image corresponding to the second image signal on each other is displayed with the display element.
Abstract:
A display device which can display a clear image and can display an image with low power consumption is provided. The display device includes an arithmetic circuit having a function of generating first to third display data, a first display portion, and a second display portion. The arithmetic circuit has a function of detecting a color region and a gray-scale region of the generated first display data and generating the second display data corresponding to an image to be displayed on the first display portion and the third display data corresponding to an image to be displayed on the second display portion, on the basis of the detection results.
Abstract:
An imaging device with low power consumption is provided. The pixel of the imaging device includes first and second photoelectric conversion elements, and first to fifth transistors. A cathode of the first photoelectric conversion element is electrically connected to the first transistor. An anode of a second photoelectric conversion element is electrically connected to the second transistor. Imaging data of a reference frame is obtained using the first photoelectric conversion element, and then imaging data of a difference detection frame is obtained using the second photoelectric conversion element. After the imaging data of the difference detection frame is obtained, a first potential that is a potential of a signal output from the pixel and a second potential that is a reference potential are compared. Whether or not there is a difference between the imaging data of the reference frame and the imaging data of the difference detection frame is determined using the first potential and the second potential.