Patent classifications
G06K19/02
TEXTILE PART PROVIDED WITH AN ELECTRONIC TAG COMPRISING A WIRED ELECTRONIC DEVICE AND METHOD FOR PRODUCING SUCH A PART
The invention relates to a method for making a textile part (A; A1, A2), comprising a step of forming a stitched seam (c1, c2, c3; C). The stitched seam step also aims to secure an electronic tag (1) to the textile part (A; A1, A2). The electronic tag (1) is formed from a strip comprising a wired electronic device comprising a chip (3a) associated with at least one antenna wire (3b), the chip (3a) and the antenna wire (3b) being arranged inside the stitched seam (c1, c2, c3; C). The invention also relates to the textile part provided with the tag.
MULTIPURPOSE CARD AND READING SYSTEM FOR SAID MULTIPURPOSE CARD
A structure of a multipurpose card having a semi-transparent or transparent stone is provided. The stone is a faceted precious stone, such as a diamond. The diamond is illuminated from only one side of the multipurpose card and light is passed through predetermined optical paths. An image of the diamond is acquired from the opposite side of the multipurpose card and compared to predetermined reference images of the diamond, to authenticate the multipurpose card.
GARMENT LIFE CYCLE TRACKING SYSTEM AND METHOD
A garment life cycle tracking system utilizes a Radio Frequency Identification, RFID, device to retrieve life cycle data about the garment. The RFID device may be scanned by an interactive device, such as a mobile phone, and the RFID identifier may be used to retrieve data from a database, such as through a website interface. A mobile phone or other computing device may have an application software that interfaces with the database or website. Life cycle data may include date of manufacture, former locations of purchase, date of purchase, cost of garment, date of return of garment, type of garment and the like. A customer may track a garment after returning a garment to see when and where the garment is subsequently purchased. This system may promote recycling of garments and reduce the environmental impact of garment production.
Integrated circuit, method for manufacturing same, and radio communication device using same
An integrated circuit includes a memory array that stores data, a rectifying circuit that rectifies an alternating current and generates a direct-current voltage, and a logic circuit that reads data stored in a memory. The memory array includes a first semiconductor memory element having a first semiconductor layer. The rectifying circuit includes a second semiconductor rectifying element having a second semiconductor layer. The logic circuit includes a third semiconductor logic element having a third semiconductor layer. The second semiconductor layer is a functional layer exhibiting a rectifying action and the third semiconductor layer is a channel layer of a logic element. All the first, second and third semiconductor layers, the functional layer exhibiting a rectifying action and the channel layer are formed of the same material including at least one selected from an organic semiconductor, a carbon nanotube, graphene, or fullerene.
Integrated circuit, method for manufacturing same, and radio communication device using same
An integrated circuit includes a memory array that stores data, a rectifying circuit that rectifies an alternating current and generates a direct-current voltage, and a logic circuit that reads data stored in a memory. The memory array includes a first semiconductor memory element having a first semiconductor layer. The rectifying circuit includes a second semiconductor rectifying element having a second semiconductor layer. The logic circuit includes a third semiconductor logic element having a third semiconductor layer. The second semiconductor layer is a functional layer exhibiting a rectifying action and the third semiconductor layer is a channel layer of a logic element. All the first, second and third semiconductor layers, the functional layer exhibiting a rectifying action and the channel layer are formed of the same material including at least one selected from an organic semiconductor, a carbon nanotube, graphene, or fullerene.
WRISTBAND CONFIGURATION FOR RECEIVING AN ACCESSORY
A wristband configuration for receiving an accessory is described herein. In some implementations, a wristband includes a first side that includes a printable section of the wristband that includes a print coating. The wristband may include a second side, opposite the first side, that includes. The wristband may include may include a comfort coating, and an adhesive material on an adhesive section of the wristband. The wristband may include a receiving hole pattern that is configured to receive an accessory associated with the wristband and secure the accessory to the wristband when worn by a wearer.
METHODS AND APPARATUS FOR ELECTRONIC VOTING
Aspects of the present disclosure relate to an apparatus comprising: a substrate; communication circuitry deposited on said substrate; and ballot circuitry deposited on said substrate. The ballot circuitry comprises: a plurality of voting circuitry elements, each voting circuitry element being responsive to a voting operation to change a conductive state of that voting circuitry element; and logic circuitry communicatively coupled with each of the plurality of voting circuitry elements and with the communication circuitry. The logic circuitry is configured to: detect the conductive state of each of the plurality of voting circuitry elements; and transmit, via the communication circuitry and based on the conductive state of each of the plurality of voting circuitry elements, a voting result.
Payment card with light-based signature
Systems, methods and apparatus are provided for light-based authentication of a payment card. The payment card may include a randomized mix of materials. The materials may include transparent or translucent materials. A light source may shine light on a surface of the payment card. Light passing through the card may generate a light pattern that is unique to the payment card. The light pattern may be captured and compared to a reference light pattern to authenticate the payment card. In some embodiments, photodetectors may detect light patterns generated through interactions with the card materials.
Encapsulating A Metal Inlay With Thermosetting Resin And Method For Making A Metal Transaction Card
Metal layers (650, 730, 750, 830, 850) of a smartcard (SC, 600, 700, 800) have module openings (614, 712, 714, 812, 814) for receiving a transponder chip module (TCM). Thermosetting resin (TR, 668B, 768A, 768B, 868A, 868B) coats (encapsulates) the bottom surfaces and fills the module openings of the metal layers. A first metal layer (650, 750, 850) may have a slit (S; 620, 720B, 820) which may also be filled by the thermosetting resin. A second metal layer (ML, 730) disposed above the first metal layer (750) may have a slit (S, 720A) which may also be filled by the thermosetting resin. A booster antenna circuit (BAC, 844) may be disposed between the first and second metal layers, with magnetic shielding material (842) disposed between the booster antenna circuit and the second metal layer (730).
RFID-TAGGED FLEXIBLE MATERIAL, RFID-TAGGED ARTICLE, AND METHOD FOR MANUFACTURING RFID-TAGGED FLEXIBLE MATERIAL
For example, provided is an RFID-bearing flexible material, in which an RFID is attached to a flexible material, the RFID includes an antenna portion, and the antenna portion is formed of a conductive linear body containing a carbon nanotube yarn.