H04N5/225

Systems and methods of remote video production, and apparatus therefor

A portable remote controlled video production apparatus and method are provided, as is a teleprompter/Interrotron integrated with a camera. A computer is mounted in a rigid cage, the computer having a local portion of remote access remote control software. A camera is fixedly mounted in the cage in communication with the computer; either the camera or the computer have camera control software running thereon. A monitor is fixedly mounted in the cage in front of the camera and parallel to the lens axis; the monitor is in communication with the computer. A beamsplitter is fixedly mounted in the cage in front of the lens reflecting light from the monitor towards a front of the cage. The camera and computer are controllable remotely via a remote portion of the remote access remote control software running on a remote computer communicating with the local portion of the remote access remote control software.

Solid-state illumination system for compact microscopy

Provided is a solid-state illumination system for use in a microscopy system utilizing a light sensor of a mobile phone camera module. The system includes a bright-field illumination source with an array of light-emitting diodes (LEDs). The array of LEDs is configured to produce transmission light within a range of view of the light sensor of the mobile phone camera module. The system also includes a dark-field illumination source including a ring of LEDs. The ring of LEDs is configured to produce light outside of the range of collection of the camera module lens. The system also includes a diffuser configured to diffuse the transmission light and a diffusive black material coupled to the diffuser. The diffusive black material is configured to pass through at least some of the transmission light while blocking reflections of the scattering light.

SENSOR INTERFACE MODULE WITH SCISSOR LIFT FOR PLURALITY OF SENSORS, AND VISUAL INSPECTION MODULE WITH DUAL VIEW PATHS FOR ROBOT

A sensor interface module for an inspection robot includes a scissor lift for varied radial positioning of, and a universal sensor mount for mounting, a selected one of a plurality of different sensors. A visual inspection module for the robot includes an inspection unit for simultaneously visually inspecting a first surface facing a first direction and a spaced, second surface facing an opposing, second direction toward the first surface. The inspection unit includes a first visual sensor and a second visual sensor, each visual sensor facing in a direction different than the first and second directions. A first reflector reflects an image of the first surface to the first visual sensor, and a second reflector reflects an image of the second surface to the second visual sensor. A robot system may include the sensor interface module and the inspection unit.

A SYSTEM FOR PERFORMING AMBIENT LIGHT IMAGE CORRECTION

There is provided a system for performing ambient light image correction. The system comprises a light source, a rolling shutter imaging unit configured to capture a plurality of images of the object at an exposure time shorter than the wave period of the pulsed illumination from the light source, and a control unit configured to generate a first composite image comprising a plurality of bright bands from the plurality of captured images by combining sections from the plurality of captured images which correspond to bright bands, generate a second composite image comprising a plurality of dark bands from the plurality of captured images by combining sections from the plurality of captured images which correspond to dark bands, and generate an ambient light corrected image based on a difference in pixel information between the first composite image and the second composite image.

IMAGE ACQUISITION APPARATUS
20220400191 · 2022-12-15 ·

Provided is an image acquisition apparatus. The image acquisition apparatus includes: a moving member, a lifting member, and an image acquisition member. The moving member can move on a bearing surface; the lifting member is provided on the moving member; the image acquisition member is movably connected to the lifting member; the image acquisition member can move in a first direction parallel to the axis of the lifting member, and/or can move in a second direction vertical to the first direction.

OBJECT RECOGNITION SYSTEM AND METHOD OF SIGNAL PROCESSING PERFORMED BY OBJECT RECOGNITION SYSTEM, AND ELECTRONIC APPARATUS
20220400213 · 2022-12-15 ·

An object recognition system of the disclosure includes: a light source emitting dot light having a predetermined pattern to an object; an event detection sensor receiving the dot light having the predetermined pattern reflected by the object and detecting the fact that a change in luminance of a pixel has exceeded a predetermined threshold as an event; and a signal processor removing information other than event information originated from the dot light emitted from the light source and having the predetermined pattern among event information detected by the event detection sensor.

OMNIDIRECTIONAL GHOST IMAGING METHOD AND SYSTEM BASED ON THE MECHANISM OF BIO-INSPIRED RETINA-LIKE

Disclosed are an omnidirectional ghost imaging method and an omnidirectional ghost imaging system based on the mechanism of bio-inspired retina-like. According to the application, the logarithmic polar mapping characteristic of the bio-inspired retina-like structure is utilized to generate an annular pattern sequence of the bio-inspired retina-like, and the pattern sequence is utilized to modulate a light source. After being reflected by the target around the curved mirror, the light is projected onto the curved mirror and diffusely reflected. According to the reversible characteristics of the optical path, the light after diffuse reflection is reflected to the original light source by the half mirror and half lens, and the reflected light intensity with target information is received by the bucket detector. The reflected light intensity measurement value with target information is correlated with the annular pattern sequence of bio-inspired retina-like used for modulating the light source.

CAMERA MODULE AND ELECTRONIC DEVICE

A camera module includes an imaging lens assembly, an image sensor and an optical plate. The image sensor is disposed on an image surface of the imaging lens assembly. The optical plate is disposed between the imaging lens assembly and the image sensor, and includes a substrate and at least one anti-reflection layer. The substrate has an object-side surface and an image-side surface, the object-side surface faces towards an object side, the image-side surface faces towards an image side, and the object-side surface is parallel with the image-side surface. The at least one anti-reflection layer is disposed on the object-side surface or the image-side surface of the substrate, the anti-reflection layer includes a nanocrystal structure layer and an optical-connecting layer, wherein the nanocrystal structure layer includes a metal oxide crystal, the optical-connecting layer connects the substrate and the nanocrystal structure layer.

SENSOR ACTUATOR AND CAMERA MODULE INCLUDING SAME

A sensor actuator includes an image sensor configured to convert incident light into an electrical signal, and first and second driving parts, configured to move the image sensor in first and second directions, respectively, each of the first and second driving parts includes one or more drivers each includes a wire having a change in length configured to move the image sensor. The one or more drivers in the second driving part is configured to move the image sensor and the first driving part together, and the first and second directions are different from each other.

BAYONET CONNECTING AN OPTICAL SYSTEM WITH A SPLIT LENS TO AN IMAGE CAPTURE DEVICE
20220400196 · 2022-12-15 ·

The present teachings provide an image capture device including an optical system having a bayonet. The bayonet is connected to a body of the image capture device. The bayonet includes a forward surface, a rearward surface opposing the forward surface, and a bayonet axial surface; and. The optical system includes an integrated sensor and lens assembly (ISLA) extending away from the rearward surface of the bayonet; and a lens module extending away from the forward surface of the bayonet and comprising a lens module axial surface, wherein the lens module axial surface contacts the bayonet axial surface so that the lens module is axially aligned with the bayonet.