Abstract:
DISPOSITIF À SOURCE DE LUMIÈRE MULTISPECTRALE. Dispositif à source de lumière multispectrale incluant un substrat, une pluralité de diodes électroluminescentes, un corps de couvercle et un corps de guide de lumière. Les diodes électroluminescentes sont disposées sur le substrat. Une pluralité de lumières à gamme d’ondes avec des longueurs d'onde différentes sont émises par les diodes électroluminescentes. Le corps de couvercle est disposé sur le substrat, et les diodes électroluminescentes sont couvertes par le corps de couvercle. Le corps de guide de lumière est disposé sur le substrat. Le corps de guide de lumière a une sortie de guide de lumière. Le substrat a un premier diamètre, la sortie de guide de lumière a un second diamètre, et le rapport du premier diamètre sur le second diamètre est dans une plage entre 9 et 15, de sorte que les lumières à gamme d’ondes sont déplacées et convergées dans le corps de guide de lumière et émises à travers la sortie de guide de lumière. En conséquence, le produit peut être miniaturisé et l'instrument de détection portable peut être mis en œuvre. Figure pour l’abrégé : Fig. 1
Abstract:
A memory device includes a non-volatile memory chip, a connector and a memory controller. The non-volatile memory chip includes an access partition and a hidden partition. The memory controller is used to set first logical blocks mapping to mapping physical blocks in the access partition. The memory controller is used to maintain a first mapping table recording the first logical blocks and the mapping physical blocks. During backup, the memory controller is used to duplicate data in the mapping physical blocks to the hidden partition according to the first mapping table to form backup physical blocks, and establish a second mapping table setting second logical blocks to map to the backup physical blocks. During recovery, the memory controller is used to map the second logical blocks to the backup physical blocks according to the second mapping table for the host system to recover an environment set at the backup operation.
Abstract:
A data storage system with information security protection includes an SSD and at least one activation device selectively connected to the SSD. The SSD has a device identifier, and includes a data storage unit and a controlling and processing unit. The controlling and processing unit is in information connection with the data storage unit, and is written with at least one set of firmware data that is triggered and activated by an activation key to execute a predetermined task on the data storage unit. The activation device includes a data processing unit which is written with the activation key in advance, and has a pairing mode and an enabling mode. In the pairing mode, the data processing unit accesses and stores the device identifier. In the enabling mode, the data processing unit compares the stored device identifier to output the activation key to the controlling and processing unit.
Abstract:
A multispectral light source device includes a substrate, a plurality of light-emitting diodes, a cover body and a light guide body. The light-emitting diodes are disposed on the substrate. A plurality of waveband lights with different wavelengths are emitted by the light-emitting diodes. The cover body is disposed on the substrate, and the light-emitting diodes are covered by the cover body. The light guide body is disposed on the substrate. The light guide body has a light guide outlet. The substrate has a first diameter, the light guide outlet has a second diameter, and the ratio of the first diameter to the second diameter is in a range between 9 to 15, so that the waveband lights are moved and converged in the light guide body and emitted through the light guide outlet. As a result, the product can be miniaturized, and the handheld detection instrument can be implemented.
Abstract:
A compound electronic device is provided herein, which is connected with a host to transmit data and includes a USB 3.0 male connector, a first electronic unit and a second electronic unit. The USB 3.0 male connector is electrically connected to the host, and includes a first differential signal wiring and a second differential signal wiring. The first electronic unit may transmit or receive the first signal through the first differential signal wiring, and the second electronic unit may transmit or receive the second signal through the second differential signal wiring. When the first signal is communicated between the USB 3.0 male connector and the host, the second signal is communicated between the USB 3.0 male connector and the host at the same time.
Abstract:
An expansion card with homogenized light outputs and light-homogenizing device thereof are disclosed. The expansion card includes a circuit board and a light-homogenizing device. The circuit board includes a light-emitting device disposed on a first side edge. The light-homogenizing device includes a light-guiding body, a light-diffusion element, and a light-turning element. The light-guiding body includes a light-input side and a light-output side opposite to each other, and the light-input side is adjacent to the first side edge. The light-diffusion element is disposed on the light-input side of the light-guiding body and opposite to the light-emitting device. The light-diffusion element and the light-out side are configured to diffuse the light beams entering into the light-guiding body from the light-emitting device and form a light-transmitting path. The light-turning element is disposed in the light-guiding body, located on the light-transmitting path and configured to turn the directions of portion of the light beams.
Abstract:
The present invention discloses a status displaying device and method thereof for a Solid-State Drive (SSD). The status displaying device may include a non-volatile memory, an emitting unit, a firmware, and a first control unit. A first instruction is generated and transmitted by the firmware. The first instruction is received by the first control unit. The first control unit performs a first operation on the non-volatile memory and controls the emitting unit to have a first emitting behavior according to the first instruction.
Abstract:
A machine-implemented file sharing method for a network storage system is provided. The network storage system at least includes a first storage device, a second storage device and a network cloud. The first storage device and second storage device are in communication with the network cloud. The machine-implemented file sharing method includes the following steps. Firstly, a state of a target file of the second storage device to be retrieved by a user of the first storage device is marked as a freeze state. If it is determined the user of the second storage device is to modify the target file, a file access expediting operation on the target file is performed and a file access notice signal is issued to the user of the first storage device to expedite the retrieval of the target file.
Abstract:
A cyclic backup method for a solid-state disk (SSD) device includes writing, by a controller, data into corresponding physical address and reading data from corresponding physical address according to logic address of a first mapping table; receiving, by the controller, a backup signal; writing, by the controller, data into corresponding physical address and reading data from corresponding physical address according to logic address of a second mapping table; reading, by the controller, a first data according to logic address of the first mapping table when the controller cannot read the first data according to logic address of the second mapping table; receiving, by the controller, a recovery signal; and reading, by the controller, data from corresponding physical address according to logic address of the first mapping table.
Abstract:
A storage device is disclosed and includes a control unit and a storage unit. The control unit is electrically connected to a host. The storage unit is connected to the control unit and includes a first namespace and a second namespace, which are set independently of each other. The first namespace is controlled by the control unit and is configured to store data. The second namespace includes a small operating system, which is controlled by the control unit, and configured to execute a booting operation of the host and an operating function on the data in the first namespace.