The present disclosure pertains generally to a system and method for the secure reception of data via multiple transmitters targeting a specific receiver location, and more specifically, delayed and time multiplexed data.
Typical wireless communication systems transmit signals into the air with little control of which receivers detect and collect the transmitted data. Various methods of securing transmission from unwanted detection or interception have been established, including encryption, reducing power levels, frequency spreading, and spatially isolating data transmission that aid in reducing data interception. Specifically, previous attempts at spatial isolation have involved either limiting the field of view with a directional antenna or reducing power. Improving spatial isolation to limit the reception of data to a single location is desirable for improving the security of wireless transmissions.
A secure data transmission system, comprising a time multiplexer for receiving an input data stream and providing a plurality of output data streams, a time delay unit connected to the time multiplexer, a receiver tracker connected to the time delay unit for providing an instantaneous receiver location, and a plurality of transmitters connected to the time delay unit for transmitting the plurality of output data streams to a target receiver. A method for transmitting a data stream, comprising receiving an input data stream, multiplexing the input data steam to generate a plurality of output data streams, receiving at least one instantaneous receiver location, calculating a plurality of transmission ranges for each of the plurality of output data streams, wherein the calculation involves a plurality of transmission locations and an instantaneous receiver location, calculating a plurality of time delays for each of the plurality of output data streams, wherein each of the plurality of time delays comprises, determining each of the plurality of transmission ranges, determining the latency of each of the plurality of transmitters, delaying each of the plurality of output data streams according its calculated time delay, and transmitting each of the plurality of output data streams.
The accompanying drawings, which are incorporated in and form a part of the specification, illustrate example embodiments and, together with the description, serve to explain the principles of the invention. Throughout the several views, like elements are referenced using like references. The elements in the figures are not drawn to scale and some dimensions are exaggerated for clarity. In the drawings:
The disclosed system and method below may be described generally, as well as in terms of specific examples and/or specific embodiments. For instances where references are made to detailed examples and/or embodiments, it should be appreciated that any of the underlying principles described are not to be limited to a single embodiment, but may be expanded for use with any of the other system and methods described herein as will be understood by one of ordinary skill in the art unless otherwise stated specifically.
References in the present disclosure to “one embodiment,” “an embodiment,” or any variation thereof, means that a particular element, feature, structure, or characteristic described in connection with the embodiments is included in at least one embodiment. The appearances of the phrases “in one embodiment,” “in some embodiments,” and “in other embodiments” in various places in the present disclosure are not necessarily all referring to the same embodiment or the same set of embodiments.
As used herein, the terms “comprises,” “comprising,” “includes,” “including,” “has,” “having,” or any variation thereof, are intended to cover a non-exclusive inclusion. For example, a process, method, article, or apparatus that comprises a list of elements is not necessarily limited to only those elements but may include other elements not expressly listed or inherent to such process, method, article, or apparatus. Further, unless expressly stated to the contrary, “or” refers to an inclusive or and not to an exclusive or.
Additionally, use of words such as “the,” “a,” or “an” are employed to describe elements and components of the embodiments herein; this is done merely for grammatical reasons and to conform to idiomatic English. This detailed description should be read to include one or at least one, and the singular also includes the plural unless it is clearly indicated otherwise.
The secure data transmission system 10 may be used in any environment in which targeted data transmission is desired. Such circumstances may include when there is a need for spatial security, where the location of the data recipient is known. Further, the secure data transmission system may be used in combination with other security methods to add additional layers of security. For example, an additional digital key or orthogonal code may be needed to read the transmitted data at the receiver location.
The secure data transmission system 10 may also be used where the reuse of transmission frequencies is desired. Traditionally, data transmission functions by a receiver tuning into a selective channel. The instant disclosure makes possible the reuse of the frequency ranges because a plurality of transitions can be utilized on a single channel. Since, a transmission may only be coherently received in the location in which it is targeted, the same frequency channel can be reused for transmitting a multitude of signals without interference. Reuse of transmission frequencies is desirable for any high traffic communication network where the location of the receiver is known.
As shown in
The receiver tracker 120 may provide an instantaneous location of the plurality of receivers to the time delay unit 130. The receiver tracker 120 may be any device that provides the intended receiver location to the time delay unit 130. In one embodiment, the receiver tracker 120 provides global positioning system (GPS) coordinates to the time delay unit 130. In another embodiment, the receiver tracker 120 provides a plurality of instantaneous receiver locations 134.
As shown in
In one embodiment, the time delay unit 130 further comprises a phase alignment block. The phase alignment block may perform phase shifting to the plurality of output data streams 104. Phase shifting divides the input data stream 105 based on power, instead of a time window, while carrying the data from the original data stream. The phase shifted data streams may be transmitted and aligned for coherency at the discrete location of a receiver, or a plurality of receivers.
Each of the plurality of transmitters 140 may receive the stream time delays 133 and transmit the data to one receiver, or a plurality of receivers. The transmitters 140 are of any type capable of transmitting an output data stream 104 including, but not limited to, any generic or custom modulation and RF frond end combination. In one embodiment, an output data stream 104 comprises the multiplexed input data streams 105, time delay data, and latency data. In another embodiment, an output data stream comprises a phase shifted, multiplexed input data streams 105 and transmission latency data.
In one embodiment, the secure data transmission system 10 comprises at least three transmitters. The use of at least three transmitters enables accurate transmission in a three-dimensional environment. An example position of a three-transmitter system can be seen below in
Time multiplexing, performed by the time multiplexer 100, involves transmitting two or more digital signals over a common channel and shared medium. After time multiplexing occurs, the signals are individually transmitted and reassembled into their original format at the receiver. For example,
The instantaneous receiver location 134 may be any location that is discrete and know. For example, the location may be identified by its GPS coordinates. In one embodiment, the intended receiver may be a tower in a cellular network. In another embodiment, the intended receiver may be a network-connected vehicle. In another embodiment, the plurality of transmitters may target a plurality of receivers at discrete receiver locations. Targeting multiple receivers may be performed by generating multiple time windows so as to align the transmissions at each of the discrete receiver locations.
From the above description of secure data transmission system and method for targeting specific receiver locations, it is manifest that various techniques may be used for implementing the concepts of secure data transmission system 10, secure data transmission method 20, and secure data transmission method involving phase shifting 30 without departing from the scope of the claims. The described embodiments are to be considered in all respects as illustrative and not restrictive. The method/apparatus disclosed herein may be practiced in the absence of any element that is not specifically claimed and/or disclosed herein. It should also be understood that the secure data transmission system 10, secure data transmission method 20, and secure data transmission method involving phase shifting 30 is not limited to the particular embodiments described herein, but is capable of many embodiments without departing from the scope of the claims.
The United States Government has ownership rights in this invention. Licensing inquiries may be directed to Office of Research and Technical Applications, Naval Warfare Information Center, Pacific, Code 72120, San Diego, Calif., 92152; telephone (619) 553-5118; email: niwc_patent.@us.navy.mil, referencing Navy Case 106,108.