摘要:
The present invention relates to a novel microorganism and a method for producing fructooligosaccharides and neofructooligosaccharides. More particularly, the present invention relates to Penicillium citrinum KCTC 10225BP of soil origin which produces fructosyl transferase and hydrolyzes sucrose into fructooligosaccharides of the following formula I: in which n is integer of 1 to 5, G represents glucose and F represents fructose, and neofructooligosaccharides of the following formula II: in which n is integer of 1 to 5, G and F are defined as above, at the same time using the fructosyl transferase, and to a method for producing simultaneously fructooligosaccharides and neofructooligosaccharides using said microorganism.
摘要:
The present invention relates to a novel microorganism and a method for producing fructooligosaccharides and neofructooligosaccharides. More particularly, the present invention relates to Penicillium citrinum KCTC 10225BP of soil origin which produces fructosyl transferase and hydrolyzes sucrose into fructooligosaccharides of the following formula I: in which n is integer of 1 to 5, G represents glucose and F represents fructose, and neofructooligosaccharides of the following formula II: in which n is integer of 1 to 5, G and F are defined as above, at the same time using the fructosyl transferase, and to a method for producing simultaneously fructooligosaccharides and neofructooligosaccharides using said microorganism.
摘要:
One method includes receiving inputs from one or more input devices, and determining a user interest in use of the interface device based on the inputs. In response to the user interest, changing a state of the first interface device from a deactivated state in which the first interface device is concealed behind a surface to an activated state in which the first interface device emits light through the surface.
摘要:
Embodiments of the present invention disclose a method and system for enabling instant handwriting input on a mobile computing device. According to one embodiment, while the mobile device is in an inactive state and identity-protected, an activation event associated with a writing tool operated by a user is detected. In response to the activation event, the mobile computing device is switched from the inactive state to a low power state in which the mobile computing device is configured to accept and store handwritten input while remaining identity-protected.
摘要:
Embodiments of the present invention disclose a system and method for providing pen-based content transfer between mobile computing devices. According to one embodiment, a first mobile computing device and second mobile computing device are configured to host electronic content. A pen device is operated by a user for selecting preferred electronic content from the electronic content hosted on the first computing device. Furthermore, the pen device is configured to store transfer information for facilitating transmission of the preferred electronic content from the first mobile computing device to the electronic content of the second mobile computing device based on action from the user.
摘要:
A handheld device having a display and a front-facing sensor and a back-facing sensor is able to render 3D content in a realistic and spatially correct manner using position-dependent rendering and view-dependent rendering. In one scenario, the 3D content is only computer-generated content and the display on the device is a typical, non-transparent (opaque) display. The position-dependent rendering is performed using either the back-facing sensor or a front-facing sensor having a wide-angle lens. In another scenario, the 3D content is composed of computer-generated 3D content and images of physical objects and the display is either a transparent or semi-transparent display where physical objects behind the device show through the display. In this case, position-dependent rendering is performed using a back-facing sensor that is actuated (capable of physical panning and tilting) or is wide-angle, thereby enabling virtual panning.
摘要:
The present invention relates to a transformant for inhibiting glycerol production through deletion of glycerol producing genes of Saccharomyces cerevisiae modified so as to use glycerol as a fermentation source, or enhancing bioethanol production through overexpression of TATA-binding proteins, SPT3 and SPT15, and a method for producing ethanol by using the transformant.
摘要:
Example embodiments disclosed herein relate to determining a motion based on projected image information. Image information is projected onto an external surface from a device. Sensor information about the external surface and/or projection is received. Motion of the device is determined based on the sensor information.
摘要:
Embodiments of the present invention disclose a system and method for editing electronic content using a handheld device. According to one example embodiment, the system includes a mobile computing device hosting electronic content, and a handheld imaging device. The handheld imaging device is configured to communicate with the mobile computing device and includes an optical sensor for capturing image data associated with an object or area. Still further, the handheld imaging device is configured to transmit and designate a location for insertion of said image data into the electronic content hosted on the mobile device.
摘要:
Linear and rotational speeds of a mobile device are calculated using distance estimates between imaging sensors in the device and objects or scenes in front of the sensors. The distance estimates are used to modify optical flow vectors from the sensors. Shifting and rotational speeds of the mobile device may then be calculated using the modified optical flow vector values. For example, given a configuration where the first imaging sensor and the second imaging sensor face opposite directions on a single axis, a shifting speed is calculated in the following way: multiplying a first optical flow vector and a first distance estimate, thereby deriving a first modified optical flow vector value; multiplying a second optical flow vector and a second distance estimate, thereby deriving a second modified optical flow vector value; the second modified optical flow vector value may then be subtracted from the first modified optical flow vector value, resulting in a measurement of the shifting speed.