Abstract:
Computationally implemented methods and systems that are designed for receiving a request for transporting one or more end users; identifying one or more transportation vehicle units for transporting the one or more end users to one or more destination locations based, at least in part, on determining whether the one or more transportation vehicle units have one or more delivery package obligations; and transmitting one or more directives that direct the one or more transportation vehicle units to rendezvous with the one or more end users in order to transport the one or more end users to the one or more destination locations. In addition to the foregoing, other aspects are described in the claims, drawings, and text.
Abstract:
A computationally implemented system and method that is designed to, but is not limited to: electronically receiving one or more at least partially mobile operating system operated intermediate electronic communication device relayed transmissions from one or more at least partially mobile operating system operated intermediate electronic communication devices activated from standby mode to be one or more communication network relays for use by one or more origination electronic communication devices to communicate at least in part with one or more destination electronic communication devices. In addition to the foregoing, other method aspects are described in the claims, drawings, and text forming a part of the present disclosure.
Abstract:
Computationally implemented methods and systems that are designed for receiving a request for transporting one or more end users towards a destination location; presenting at least one or more portions of a travel plan for facilitating the one or more end users to travel to the destination location from a starting location, the travel plan identifying at least two route legs including at least one transport route leg that calls for at least one transportation vehicle unit to transport the one or more end users over the transport route leg; and transmitting a request for one or more transportation vehicle units to rendezvous with the one or more end users at a rendezvous location in order to transport the one or more end users over the at least one transport leg. In addition to the foregoing, other aspects are described in the claims, drawings, and text.
Abstract:
According to various embodiments, a mobile device continuously and/or automatically scans a user environment for tags containing non-human-readable data. The mobile device may continuously and/or automatically scan the environment for tags without being specifically directed at a particular tag. The mobile device may be adapted to scan for audio tags, radio frequency tags, and/or image tags. The mobile device may be configured to scan for and identify tags within the user environment that satisfy a user preference. The mobile device may perform an action in response to identifying a tag that satisfies a user preference. The mobile device may be configured to scan for a wide variety of tags, including tags in the form of quick response codes, steganographic content, audio watermarks, audio outside of a human audible range, radio frequency identification tags, long wavelength identification tags, near field communication tags, and/or a Memory Spot device.
Abstract:
Disclosed herein are example embodiments for base station control for an unoccupied flying vehicle (UFV). For certain example embodiments, at least one machine, such as a base station, may: (i) obtain at least one indicator of at least one flight attribute corresponding to a first UFV; or (ii) transmit to a second UFV at least one indicator of at least one flight attribute corresponding to a first UFV. However, claimed subject matter is not limited to any particular described embodiments, implementations, examples, or so forth.
Abstract:
Disclosed herein are example embodiments for base station multi-vehicle coordination. For certain example embodiments, at least one machine, such as a base station, may: (i) effectuate one or more communications with at least a first UFV and a second UFV; or (ii) transmit to a first UFV at least one command based at least partially on one or more communications with at least a first UFV and a second UFV. However, claimed subject matter is not limited to any particular described embodiments, implementations, examples, or so forth.
Abstract:
Computationally implemented methods and systems that are designed for receiving a request for transporting one or more end users towards a destination location; presenting at least one or more portions of a travel plan for facilitating the one or more end users to travel to the destination location from a starting location, the travel plan identifying at least two route legs including at least one transport route leg that calls for at least one transportation vehicle unit to transport the one or more end users over the transport route leg; and transmitting a request for one or more transportation vehicle units to rendezvous with the one or more end users at a rendezvous location in order to transport the one or more end users over the at least one transport leg. In addition to the foregoing, other aspects are described in the claims, drawings, and text.
Abstract:
Computationally implemented methods and systems include obtaining visual data of an actual view of a scene from a real environment, determining whether activity-inferring data that infers at least initial occurrence of one or more user activities associated with the scene from the real environment have at least been acquired, and presenting, in response at least in part to determining that the activity-inferring data have at least been acquired, an augmented view of the scene from the real environment, the augmented view including one or more augmentations that have been included into the augmented view based, at least in part, on the activity-inferring data. In addition to the foregoing, other aspects are described in the claims, drawings, and text.
Abstract:
Systems, methods, computer-readable storage mediums including computer-readable instructions and/or circuitry for control of transmission to a target device with communicating with one or more sensors in an ad-hoc sensor network may implement operations including, but not limited to: receiving one or more wireless signals associated with a sensing capability status of at least one sensor; wirelessly transmitting one or more sensor operation activation signals to one or more sensors according to the sensing capability status of the at least one sensor; and at least one of powering one or more sensing operations of the at least one sensor and charging one or more power storage devices of the at least one sensor via the one or more sensor operation activation signals.
Abstract:
The present disclosure provides systems and methods for storing, reading, and writing data using particle-based acoustic wave driven shift registers. The shift registers may physically shift particles along rows and/or columns of wells through the interactions of two parallel surfaces. A transducer may generate an acoustic wave to displace one or more of the two parallel surfaces. The particles may be transferred to and/or otherwise constrained by a buffer surface during at least a portion of the acoustic wave, such that the particles may be shifted during one or more cycles of the acoustic wave. In various embodiments, the amplitude of the acoustic wave may correspond to the spacing distance between each of the wells. The wells may be physical and/or potential wells.