Displacement sensing system
A displacement sensing system including an oscillator circuit having a characteristic frequency which varies as a function of a magnetic field in the vicinity thereof, an element whose position relative to the oscillator circuit is varied by a displacement, the element being operative to vary the magnetic field in the vicinity of the oscillator circuit as a function of the displacement and circuitry for sensing a change of frequency of the oscillator circuit over time (delta f/delta t) and for providing an output indication when the change in frequency of the oscillator circuit over time exceeds a threshold.
The present invention relates to security systems and apparatus generally and more particularly to systems and apparatus for protecting against unauthorized displacement of objects.
BACKGROUND OF THE INVENTIONVarious types of protective apparatus and systems are known in the prior art. The following U.S. Patents are believed to represent the state of the art: U.S. Pat. Nos. 5,986,549; 5,767,672; 5,760,577; 5,731,785; 5,656,998; 5,519,317; 5,264,733; 5,241,297; 5,237,307; 5,191,314; 5,012,206; 4,897,531; 4,857,892; 4,587,486; 4,458,241; 4,391,203; 4,359,717; 4,274,088; 3,973,191; 3,579,222.
SUMMARY OF THE INVENTIONThe present invention seeks to provide improved protective apparatus and systems, particularly suitable for protection of works of art and the like.
There is thus provided in accordance with a preferred embodiment of the present invention a displacement sensing system including an oscillator circuit having a characteristic frequency which varies as a function of a magnetic field in the vicinity thereof, an element whose position relative to the oscillator circuit is varied by a displacement to be sensed, the element being operative to vary the magnetic field in the vicinity of the oscillator circuit as a function of the displacement, and circuitry for sensing a change of frequency of the oscillator circuit over time (Δf/Δt) and for providing an output indication when the change in frequency of the oscillator circuit over time exceeds a threshold.
Further in accordance with a preferred embodiment of the present invention the circuitry for sensing a change of frequency over time provides at least first and second different output indications when the change in frequency of the oscillator circuit over time exceeds respective at least first and second different thresholds.
Further in accordance with a preferred embodiment of the present invention the threshold is variable. Preferably, the threshold varies as a function of a currently perceived threat.
Additionally the currently perceived threat may be determined by a pattern of past outputs of the circuitry for sensing a change of frequency.
Still further in accordance with a preferred embodiment of the present invention the oscillator circuit and the circuitry for sensing a change of frequency are operated in accordance with a duty cycle. Preferably, duty cycle is variable. Additionally or alternatively, the duty cycle is adaptive or the duty cycle may vary as a function of a currently perceived threat.
Additionally in accordance with a preferred embodiment of the present invention the currently perceived threat is determined by a pattern of past outputs of the circuitry for sensing a change of frequency.
Furthermore in accordance with a preferred embodiment of the present invention the threshold varies in accordance with long time scale changes in the characteristic frequency.
Further in accordance with a preferred embodiment of the present invention the threshold includes first and second frequency thresholds, respectively above and below the characteristic frequency and which are normally generally equally separated therefrom in the frequency domain.
Still further in accordance with a preferred embodiment of the present invention the displacement sensing system also includes wireless communication circuitry operative to transmit the output indication to a remote receiving location. Preferably, the wireless communication circuitry is operative to transmit the output indication for at least a predetermined time following sensing of the change in frequency.
Furthermore in accordance with a preferred embodiment of the present invention the displacement sensing system also includes a locator operative for sensing the location of at least one of the oscillator, the element and the circuitry for sensing.
Additionally in accordance with a preferred embodiment of the present invention the element is a magnet Preferably the element is an electromagnet Alternatively the element is a permanent magnet.
Further in accordance with a preferred embodiment of the present invention the circuitry for sensing a change of frequency includes a microprocessor which receives an output of the oscillator circuit as a clock input.
Furthermore in accordance with a preferred embodiment of the present invention the circuitry for sensing a change of frequency is operative to count oscillator pulses over variable time periods which represent variable sensitivity thresholds.
There is thus also provided in accordance with a preferred embodiment of the present invention a displacement sensing system including an oscillator circuit having a characteristic frequency which varies as a function of a magnetic field in the vicinity thereof, an element whose position relative to the oscillator circuit is varied by a displacement to be sensed, the element being operative to vary the magnetic field in the vicinity of the oscillator circuit as a function of the displacement, and circuitry for sensing a time duration over which a change of frequency of at least a given amount takes place and for providing an output indication when the time duration exceeds a threshold.
Further in accordance with a preferred embodiment of the present invention the circuitry for sensing a time duration provides at least first and second different output indications when the time duration exceeds respective at least first and second different thresholds. Preferably, the threshold is variable and varies as a function of a currently perceived threat.
Additionally in accordance with a preferred embodiment of the present invention the currently perceived threat is determined by a pattern of past outputs of the circuitry for sensing a change of frequency.
Still further in accordance with a preferred embodiment of the present invention the oscillator circuit and the circuitry for sensing a time duration are operated in accordance with a duty cycle. Preferably the duty cycle is variable and adaptive.
Preferably the duty cycle varies as a function of a currently perceived threat.
Still further in accordance with a preferred embodiment of the present invention the currently perceived threat is determined by a pattern of past outputs of the circuitry for sensing a change of frequency. Preferably the given amount remains generally constant notwithstanding long time scale changes in the characteristic frequency.
Additionally in accordance with a preferred embodiment of the present invention the displacement sensing system also includes wireless communication circuitry operative to transmit the output indication to a remote receiving location. Preferably, the wireless communication circuitry is operative to transmit the output indication for at least a predetermined time following sensing of the change in frequency.
Further in accordance with a preferred embodiment of the present invention the displacement sensing system also includes a locator operative for sensing the location of at least one of the oscillator, the element and the circuitry for sensing.
Moreover in accordance with a preferred embodiment of the present invention the element is a magnet the element is an electromagnet. Alternatively the element is a permanent magnet.
Additionally in accordance with a preferred embodiment of the present invention the circuitry for sensing a time duration includes a microprocessor which receives an output of the oscillator circuit as a clock input.
Further in accordance with a preferred embodiment of the present invention the circuitry for sensing a time duration is operative to count oscillator pulses over variable time periods which represent variable sensitivity thresholds. Preferably the circuitry for sensing a time duration includes a microprocessor which provides the output indication.
There is thus further provided in accordance with yet another preferred embodiment of the present invention a displacement sensing system including an oscillator circuit having a characteristic frequency which varies as a function of a magnetic field in the vicinity thereof an element whose position relative to the oscillator circuit is varied by a displacement to be sensed, the element being operative to vary the magnetic field in the vicinity of the oscillator circuit as a function of the displacement, circuitry for sensing a change of frequency of the oscillator circuit over time (Δf/Δt) and for providing an output indication when the change in frequency of the oscillator circuit over time exceeds a frequency threshold, and circuitry for sensing a time duration over which a change of frequency of at least a given amount takes place and for providing an output indication when the time duration exceeds a time threshold.
Further in accordance with a preferred embodiment of the present invention the circuitry for sensing a change of frequency over time provides at least first and second different output indications when the change in frequency of the oscillator circuit over time exceeds respective at least first and second different thresholds.
Still further in accordance with a preferred embodiment of the present invention the frequency threshold is variable. Preferably the frequency threshold varies as a function of a currently perceived threat Additionally the currently perceived threat is determined by a pattern of past outputs of the circuitry for sensing a change of frequency.
Furthermore in accordance with a preferred embodiment of the present invention the frequency threshold varies in accordance with long time scale changes in the characteristic frequency. The frequency threshold includes first and second frequency thresholds, respectively above and below the characteristic frequency and which are normally generally equally separated therefrom in the frequency domain.
Additionally in accordance with a preferred embodiment of the present invention the time threshold is variable. Preferably the time threshold varies as a function of a currently perceived threat and wherein the currently perceived threat is determined by a pattern of past outputs of the circuitry for sensing a change of frequency.
Additionally in accordance with a preferred embodiment of the present invention the oscillator circuit and the circuitry for sensing a time duration are operated in accordance with a duty cycle. Preferably the duty cycle is variable and adaptive.
Additionally in accordance with a preferred embodiment of the present invention the duty cycle varies as a function of a currently perceived threat and wherein the currently perceived threat is determined by a pattern of past outputs of the circuitry for sensing a change of frequency.
Additionally in accordance with a preferred embodiment of the present invention the given amount remains generally constant notwithstanding long time scale changes in the characteristic frequency.
Still further in accordance with a preferred embodiment of the present invention the circuitry for sensing a time duration provides at least first and second different output indications when the time duration exceeds respective at least first and second different thresholds.
Further in accordance with a preferred embodiment of the present invention the displacement sensing system also includes wireless communication circuitry operative to transmit the output indication to a remote receiving location and is operative to transmit the output indication for at least a predetermined time following sensing of the change in frequency.
Additionally in accordance with a preferred embodiment of the present invention the displacement sensing system also includes a locator operative for sensing the location of at least one of the oscillator, the element and the circuitry for sensing.
Still further in accordance with a preferred embodiment of the present invention the element is a magnet. Alternatively the element may be an electromagnet or a permanent magnet.
Additionally in accordance with a preferred embodiment of the present invention the circuitry for sensing a time duration and the circuitry for sensing a change of frequency includes a microprocessor which receives an output of the oscillator circuit as a clock input.
Further in accordance with a preferred embodiment of the present invention the circuitry for sensing a time duration is operative to count oscillator pulses over variable time periods which represent variable sensitivity thresholds.
There is thus provided in accordance with a further embodiment of the present invention a protected object including an object having associated therewith a displacement sensing system. The displacement sensing unit includes an oscillator circuit having a characteristic frequency which varies as a function of a magnetic field in the vicinity thereof, an element whose position relative to the oscillator circuit is varied by a displacement to be sensed, the element being operative to vary the magnetic field in the vicinity of the oscillator circuit as a function of the displacement and circuitry for sensing a change of frequency of the oscillator circuit over time (Δf/Δt) and for providing an output indication when the change in frequency of the oscillator circuit over time exceeds a threshold, wherein one but not both of the oscillator circuit and the element is fixedly mounted onto the object.
Further in accordance with a preferred embodiment of the present invention the oscillator circuit is fixedly mounted onto the object.
Still further in accordance with a preferred embodiment of the present invention the element is fixedly mounted onto the object.
Additionally in accordance with a preferred embodiment of the present invention the threshold is variable. Preferably the threshold varies as a function of a currently perceived threat.
Moreover in accordance with a preferred embodiment of the present invention the currently perceived threat is determined by a pattern of past outputs of the circuitry for sensing a change of frequency.
Additionally in accordance with a preferred embodiment of the present invention the oscillator circuit and the circuitry for sensing a change of frequency are operated in accordance with a duty cycle. Preferably the duty cycle is variable or adaptive. The duty cycle may also vary as a function of a currently perceived threat.
Furthermore in accordance with a preferred embodiment of the present invention the currently perceived threat is determined by a pattern of past outputs of the circuitry for sensing a change of frequency.
Preferably the threshold varies in accordance with long time scale changes in the characteristic frequency. Additionally the threshold includes first and second frequency thresholds, respectively above and below the characteristic frequency and which are normally generally equally separated therefrom in the frequency domain.
Additionally in accordance with a preferred embodiment of the present invention the circuitry for sensing a change of frequency over time provides at least first and second different output indications when the change in frequency of the oscillator circuit over time exceeds respective at least first and second different thresholds.
Further in accordance with a preferred embodiment of the present invention the protected object also includes wireless communication circuitry operative to transmit the output indication to a remote receiving location.
Additionally in accordance with a preferred embodiment of the present invention the wireless communication circuitry is operative to transmit the output indication for at least a predetermined time following sensing of the change in frequency.
Still further in accordance with a preferred embodiment of the present invention the element is a magnet. The element is an electromagnet or a permanent magnet.
Additionally in accordance with a preferred embodiment of the present invention the circuitry for sensing a change of frequency includes a microprocessor which receives an output of the oscillator circuit as a clock input.
Moreover in accordance with a preferred embodiment of the present invention the circuitry for sensing a change of frequency includes operative to count oscillator pulses over variable time periods which represent variable sensitivity thresholds.
Additionally in accordance with a preferred embodiment of the present invention the circuitry for sensing a change of frequency is a microprocessor which provides the output indication.
There is thus provided in accordance with another preferred embodiment of the present invention a protected object including an object having associated therewith a displacement sensing system. The displacement sensing system includes an oscillator circuit having a characteristic frequency which varies as a function of a magnetic field in the vicinity thereof, an element whose position relative to the oscillator circuit is varied by a displacement to be sensed, the element being operative to vary the magnetic field in the vicinity of the oscillator circuit as a function of the displacement, and circuitry for sensing a time duration over which a change of frequency of at least a given amount takes place and for providing an output indication when the time duration exceeds a threshold, wherein one but not both of the oscillator circuit and the element is fixedly mounted onto the object.
Further in accordance with a preferred embodiment of the present invention the circuitry for sensing a time duration provides at least first and second different output indications when the time duration exceeds respective at least first and second different thresholds.
Still further in accordance with a preferred embodiment of the present invention the oscillator circuit is fixedly mounted onto the object.
Additionally in accordance with a preferred embodiment of the present invention the element is fixedly mounted onto the object.
Moreover in accordance with a preferred embodiment of the present invention the threshold is variable. Preferably the threshold varies as a function of a currently perceived threat and wherein the currently perceived threat is determined by a pattern of past outputs of the circuitry for sensing a change of frequency.
Additionally in accordance with a preferred embodiment of the present invention the oscillator circuit and the circuitry for sensing a time duration are operated in accordance with a duty cycle. Preferably the duty cycle is variable or adaptive.
Furthermore in accordance with a preferred embodiment of the present invention the duty cycle varies as a function of a currently perceived threat.
Additionally in accordance with a preferred embodiment of the present invention the currently perceived threat is determined by a pattern of past outputs of the circuitry for sensing a change of frequency.
Further in accordance with a preferred embodiment of the present invention the given amount remains generally constant notwithstanding long time scale changes in the characteristic frequency.
Still further in accordance with a preferred embodiment of the present invention the circuitry for sensing a time duration provides at least first and second different output indications when the time duration exceeds respective at least first and second different thresholds.
Additionally in accordance with a preferred embodiment of the present invention the protected object also includes wireless communication circuitry operative to transmit the output indication to a remote receiving location and is operative to transmit the output indication for at least a predetermined time following sensing of the change in frequency.
Moreover in accordance with a preferred embodiment of the present invention the element is a magnet The element may be an electromagnet or a permanent magnet.
Furthermore in accordance with a preferred embodiment of the present invention the circuitry for sensing a change of frequency includes a microprocessor which receives an output of the oscillator circuit as a clock input.
Further in accordance with a preferred embodiment of the present invention the circuitry for sensing a change of frequency is operative to count oscillator pulses over variable time periods which represent variable sensitivity thresholds.
There is also provided in accordance with yet another preferred embodiment of the present invention a protected object including an object having associated therewith a displacement sensing system. The displacement sensing system includes an oscillator circuit having a characteristic frequency which varies as a function of a magnetic field in the vicinity thereof, an element whose position relative to the oscillator circuit is varied by a displacement to be sensed, the element being operative to vary the magnetic field in the vicinity of the oscillator circuit as a function of the displacement, circuitry for sensing a change of frequency of the oscillator circuit over time (Δf/Δt) and for providing an output indication when the change in frequency of the oscillator circuit over time exceeds a frequency threshold, and circuitry for sensing a time duration over which a change of frequency of at least a given amount takes place and for providing an output indication when the time duration exceeds a time threshold, wherein one but not both of the oscillator circuit and the element is fixedly mounted onto the object.
Further in accordance with a preferred embodiment of the present invention the oscillator circuit is fixedly mounted onto the object.
Still further in accordance with a preferred embodiment of the present invention the element is fixedly mounted onto the object.
Additionally in accordance with a preferred embodiment of the present invention the frequency threshold is variable. Preferably the frequency threshold varies as a function of a currently perceived treat and wherein the currently perceived threat is determined by a pattern of past outputs of the circuitry for sensing a change of frequency.
Further in accordance with a preferred embodiment of the present invention the oscillator circuit and the circuitry for sensing a change of frequency are operated in accordance with a duty cycle.
Still further in accordance with a preferred embodiment of the present invention the duty cycle is variable and adaptive.
Further in accordance with a preferred embodiment of the present invention the duty cycle varies as a function of a currently perceived threat and wherein the currently perceived threat is determined by a pattern of past outputs of the circuitry for sensing a change of frequency.
Moreover in accordance with a preferred embodiment of the present invention the frequency threshold varies in accordance with long time scale changes in the characteristic frequency. Preferably the frequency threshold includes first and second frequency thresholds, respectively above and below the characteristic frequency and which are normally generally equally separated therefrom in the frequency domain.
Further in accordance with a preferred embodiment of the present invention the circuitry for sensing a change of frequency over the provides at least first and second different output indications when the change in frequency of the oscillator circuit over time exceeds respective at least first and second different thresholds.
Still further in accordance with a preferred embodiment of the present invention the time threshold is variable and may vary as a function of a currently perceived threat Preferably the currently perceived threat is determined by a pattern of past outputs of the circuitry for sensing a change of frequency.
Further in accordance with a preferred embodiment of the present invention the oscillator circuit and the circuitry for sensing a time duration are operated in accordance with a duty cycle. The duty cycle is variable and adaptive. The duty cycle may also vary as a function of a currently perceived threat.
Still further in accordance with a preferred embodiment of the present invention the currently perceived threat is determined by a pattern of past outputs of the circuitry for sensing a change of frequency.
Additionally in accordance with a preferred embodiment of the present invention the given amount remains generally constant notwithstanding long time scale changes in the characteristic frequency.
Moreover in accordance with a preferred embodiment of the present invention the circuitry for sensing a time duration provides at least first and second different output indications when the time duration exceeds respective at least first and second different thresholds.
Furthermore in accordance with a preferred embodiment of the present invention the element is a magnet. The element may be an electromagnet or a permanent magnet.
Further in accordance with a preferred embodiment of the present invention the circuitry for sensing a change of frequency is a microprocessor which receives an output of the oscillator circuit as a clock input.
Still further in accordance with a preferred embodiment of the present invention the circuitry for sensing a change of frequency is operative to count oscillator pulses over variable time periods which represent variable sensitivity thresholds.
Additionally in accordance with a preferred embodiment of the present invention the circuitry for sensing a change of frequency is a microprocessor which provides the output indication.
Preferably the protected object is an art object The art object may be a painting and wherein one but not both of the oscillator circuit and the element is fixedly mounted onto a frame of the painting.
Further in accordance with a preferred embodiment of the present invention the art object may be a painting and wherein one but not both of the oscillator circuit and the element is fixedly mounted onto a canvas of the painting.
Still further in accordance with a preferred embodiment of the present invention the protected object also includes wireless communication circuitry operative to transmit the output indication to a remote receiving location. Preferably the wireless communication circuitry is operative to transmit the output indication for at least a predetermined time following sensing of the change in frequency.
Further in accordance with a preferred embodiment of the present invention the displacement is a vibrational displacement.
Additionally in accordance with a preferred embodiment of the present invention the oscillator circuit and the element are physically attached to each other. Alternatively the oscillator circuit and the element are not physically attached to each other.
BRIEF DESCRIPTION OF THE DRAWINGSThe present invention will be, understood and appreciated more fully from the following detailed description, taken in conjunction with the drawings in which:
Reference is now made to
A first arrangement of displacement sensing device is indicated at reference numeral 20 and preferably includes an oscillator circuit, indicated generally by reference numeral 22 and having a characteristic frequency which varies as a function of a magnetic field in the vicinity thereof. An element 24, preferably a permanent magnet, is non-fixedly mounted relative to the oscillator circuit 22, typically on a spring 26.
The spring mounting of the element 24 relative to the oscillator circuit 22 is such that the position of the element 24 relative to the oscillator circuit 22 varies by a displacement to be sensed. The change in the relative positions of the element 24 and the oscillator 22 is operative to vary the magnetic field in the vicinity of the oscillator circuit as a function of the displacement Circuitry 28 is also provided for sensing a change of frequency of the oscillator circuit over time (Δf/Δt) and for providing an output indication when the change in frequency of the oscillator circuit over time exceeds a threshold.
In the arrangement illustrated at reference numeral 20, the entire displacement sensing device described hereinabove is mounted onto a picture 30 and the displacement sensing device preferably is operative to provide an output indication of touching, moving, or removal of the picture 30 from wall 12.
A second arrangement of displacement sensing device is indicated at reference numeral 40 and preferably includes an oscillator circuit, indicated generally by reference numeral 42 and having a characteristic frequency which varies as a function of a magnetic field in the vicinity thereof. An element 44, preferably a permanent magnet is non-fixedly mounted relative to the oscillator circuit 42, typically on a spring 46.
The spring mounting of the element 44 relative to the oscillator circuit 42 is such that the position of the element 44 relative to the oscillator circuit 42 varies by a displacement to be sensed. The change in the relative positions of the element 44 and the oscillator 42 is operative to vary the magnetic field in the vicinity of the oscillator circuit as a function of the displacement. Circuitry 48 is also provided for sensing a change of frequency of the oscillator circuit over time (Δf/Δt) and for providing an output indication when the change in frequency of the oscillator circuit over time exceeds a threshold.
In the arrangement illustrated at reference numeral 40, the entire displacement sensing device described hereinabove is mounted onto a wall 12 behind and preferably touching a picture 50. The displacement sensing device preferably is operative to provide an output indication of touching, moving, or removal of the picture 50 from wall 12.
A third arrangement of displacement sensing device is indicated at reference numeral 60 and preferably includes an oscillator circuit, indicated generally by reference numeral 62 and having a characteristic frequency which varies as a function of a magnetic field in the vicinity thereof. The oscillator circuit 62 is preferably mounted onto the back of a picture 63. An element 64, preferably a permanent magnet, is fixedly mounted onto wall 12, in close spatial relationship to the oscillator circuit 62.
The mounting of the element 64 relative to the oscillator circuit 62 is such that the position of the element 64 relative to the oscillator circuit 62 varies by a displacement to be sensed. The change in the relative positions of the element 64 and the oscillator 62 is operative to vary the magnetic field in the vicinity of the oscillator circuit as a function of the displacement Circuitry 68, typically also mounted on the back of picture 63, is provided for sensing a change of frequency of the oscillator circuit over time (Δf/Δt) and for providing an output indication when the change in frequency of the oscillator circuit over time exceeds a threshold.
In the arrangement illustrated at reference numeral 60, the displacement sensing device described hereinabove is bifurcated, with the oscillating circuit 62 mounted onto picture 63 and the element 64 being mounted onto wall 12. As in the embodiments described hereinabove, the displacement sensing device preferably is operative to provide an output indication of touching, moving, or removal of the picture 63 from wall 12.
A fourth arrangement of displacement sensing device is indicated at reference numeral 80 and preferably includes an oscillator circuit, indicated generally by reference numeral 82 and having a characteristic frequency which varies as a function of a magnetic field in the vicinity thereof. The oscillator circuit 82 is preferably mounted onto wall 12, typically in a recess 83. An element 84, preferably a permanent magnet, is fixedly mounted onto the back of a picture 85, in close spatial relationship to the oscillator circuit 82.
The mounting of the element 84 relative to the oscillator circuit 82 is such that the position of the element 84 relative to the oscillator circuit 82 varies by a displacement to be sensed. The change in the relative positions of the element 84 and the oscillator 82 is operative to vary the magnetic field in the vicinity of the oscillator circuit as a function of the displacement Circuitry 88, typically mounted in recess 83, is provided for sensing a change of frequency of the oscillator circuit over time (Δf/Δt) and for providing an output indication when the change in frequency of the oscillator circuit over time exceeds a threshold.
In the arrangement illustrated at reference numeral 80, the displacement sensing device described hereinabove is bifurcated, with the oscillating circuit 82 mounted onto wall 12 and the element 84 being mounted onto picture 85. As in the embodiments described hereinabove, the displacement sensing device preferably is operative to provide an output indication of touching, moving, or removal of the picture 85 from wall 12.
Reference is now made to
In this embodiment of the invention, preferably when at least a part of the displacement sensing device is mounted on picture 90, such as in the arrangements indicated by reference numerals 20, 60 and 80, a transmitter 92 fixed to the picture 90, preferably associated with the displacement sensing device, provides a wireless output indication, typically via multiple receivers 94 distributed throughout the gallery, to a control unit 96. Preferably, control unit 96 includes a display 98 which shows the path and current position of a picture in respect of which tracking functionality has been initiated.
The tracking functionality itself may be entirely conventional, such as described in U.S. Pat. No. 5,731,785, the disclosure of which is hereby incorporated by reference.
Reference is now made to
As seen in
A permanent magnet 112 is preferably mounted onto a spring 114, which in turn is mounted onto the outside of housing 100.
Reference is now made to
Circuitry 158 includes a RC combination 160, including a capacitor 162 and a resistor 164, which defines a time base ΔT. Circuitry 158 also includes a microprocessor 166, incorporating a counter 168, which receives the time base ΔT from RC combination 160 and receives at clock inputs thereof, oscillator outputs from oscillating circuit 150. Counter 168 counts pulses in the oscillator output Microprocessor 166 preferably outputs to a conventional RF transmitter 170.
A magnet 172, such as the magnets described hereinabove which are displaceable relative to coils for varying the magnetic field in the vicinity thereof, is located in the vicinity of coil 152, such that displacement thereof causes a change in the frequency of the oscillator 150 output to microprocessor 166. In response to such changes, the microprocessor 166 may provide an alarm output indication via RF transmitter 170.
Turning to
Circuitry 188 includes a timer 190 and a counter 192, which are coupled to a microprocessor 196, which receives at clock inputs thereof, oscillator outputs from oscillating circuit 180. Counter 192 counts pulses in the oscillator output Microprocessor 196 preferably outputs to a conventional RF transmitter 198.
A magnet 200, such as the magnets described hereinabove which are displaceable relative to coils for varying the magnetic field in the vicinity thereof, is located in the vicinity of coil 182, such that displacement thereof causes a change in the frequency of the oscillator outputs to microprocessor 196. In response to such changes, the microprocessor 196 may provide an alarm output indication via RF transmitter 198.
It is appreciated that various additional functionalities of microprocessors 166 and 196 may be provided. Some of these functionalities are described in Israel Patent Application 134,026 filed Jan. 13, 2000, entitled “Circuitry for Signal Measurement”, the disclosure of which is hereby incorporated by reference.
Reference is now made to
The change in the inductance of the coil causes a corresponding change in the frequency of the oscillating circuit, which is supplied as a clock frequency to the microprocessor. The number of clock pulses in a given time period are counted by the microprocessor. Two different pulse counts N1 and N2 taken at different times over an identical time duration are illustrated graphically in
Such counts over multiple time periods ΔT produce an indication of the frequency variation over time. Decisions as to whether and when an alarm indication is output depend on the nature of the changes in frequency, including inter alia, their time duration. Thresholds for alarm indications may change dynamically depending, inter alia on past history.
Turning to
Referring now additionally to
Reference is now made to
Reference is now made to
Referring now to
It will be appreciated by persons skilled in the art that the present invention is not limited by what has been particularly shown and described hereinabove. Rather the scope of the present invention includes both combinations and subcombinations of the various features described hereinabove as well as variations and modifications which would occur to persons skilled in the art upon reading the specification and which are not in the prior art.
Claims
1-146. (canceled)
147. Security apparatus comprising:
- at least one displacement sensor associated with an object, said at least one displacement sensor sensing a distance of displacement;
- at least one time duration sensor for sensing a duration of time said distance of displacement exceeds at least a first predetermined distance, indicative of a possible security violation; and
- at least one alarm actuator operative to provide a security violation alarm in response to said duration of time exceeding at least a first predetermined duration.
148. Security apparatus according to claim 147 and wherein at least one of said first predetermined distance and said first predetermined duration is variable.
149. Security apparatus according to claim 147 and wherein said at least one alarm actuator is operative to provide at least said first and a second security violation alarm when said distance of displacement exceeds said first predetermined distance and a second predetermined distance for at least said first predetermined duration, said second predetermined distance being different from said first predetermined distance.
150. Security apparatus according to claim 147 and wherein:
- said at least one alarm actuator is also operative to provide at least an additional security violation alarm when said duration of time exceeds a second predetermined duration, said second predetermined duration being different from said first predetermined duration.
151. Security apparatus according to claim 147 and wherein:
- said at least one time duration sensor is also operative to sense an additional duration of time said distance of displacement exceeds a second predetermined distance, said second predetermined distance being different from said first predetermined distance; and
- said at least one alarm actuator is also operative to provide at least an additional security violation alarm when said additional duration of time exceeds a second predetermined duration, said second predetermined duration being different from said first predetermined duration.
152. Security apparatus according to claim 149 and wherein at least one of said first and second predetermined distances and said predetermined duration is variable.
153. Security apparatus according to claim 148 and wherein said first predetermined distance varies as a function of a currently perceived security violation threat.
154. Security apparatus according to claim 153 and wherein said currently perceived security violation threat is determined by a pattern of past distances of displacement sensed by said at least one displacement sensor.
155. Security apparatus according to claim 147 and wherein at least one of said at least one displacement sensor and said at least one duration sensor are operated in accordance with a duty cycle.
156. Security apparatus according to claim 155 and wherein said duty cycle is variable.
157. Security apparatus according to claim 156 and wherein said duty cycle is adaptive.
158. Security apparatus according to claim 156 and wherein said duty cycle varies as a function of a currently perceived security violation threat.
159. Security apparatus according to claim 158 and wherein said currently perceived security violation threat is determined by a pattern of past outputs of said at least one displacement sensor sensing said distance of displacement.
160. Security apparatus according to claim 147 and wherein said first predetermined distance varies in accordance with long time scale changes in said distance of displacement.
161. Security apparatus according to claim 147 and also comprising wireless communication circuitry operative to transmit said security violation alarm to a remote receiving location.
162. Security apparatus according to claim 147 and also comprising a locator operative for sensing the location of at least one of said displacement sensor, said time duration sensor and said alarm actuator.
163. Security apparatus according to claim 147 and wherein at least one of said displacement sensor, said time duration sensor and said alarm actuator are attached to said object.
164. Security apparatus according to claim 147 and wherein said at least one displacement sensor is operative for sensing said distance of displacement by sensing changes in a magnetic field in the vicinity of said displacement sensor.
165. Security apparatus according to claim 164 and wherein said magnetic field is generated by a magnet, which is associated with said displacement sensor.
166. Security apparatus according to claim 165 and wherein said magnet is mounted onto said displacement sensor.
167. Security apparatus according to claim 165 and wherein said magnet is physically separated from said displacement sensor.
168. Security apparatus according to claim 165 and wherein said magnet is mounted onto said object.
169. Security apparatus according to claim 165 and wherein at least one of said displacement sensor, said magnet, said time duration sensor and said alarm actuator is attached to said object.
170. Security apparatus according to claim 164 and wherein said at least one displacement sensor is operative to sense changes in said magnetic field by sensing changes in the frequency of an oscillator for which the oscillating frequency changes in accordance with changes in said magnetic field.
171. Security apparatus comprising:
- at least one displacement sensor associated with an object, said at least one displacement sensor sensing a distance of displacement;
- at least one time duration sensor for sensing a duration of time said distance of displacement exceeds at least a first predetermined distance, indicative of a possible security violation; and
- at least one alarm actuator operative to provide a security violation alarm when said distance of displacement exceeds said first predetermined distance for at least a first predetermined duration and is followed, within a predetermined time window, by another distance of displacement which exceeds at least a second predetermined distance for at least a second predetermined duration.
172. Security apparatus according to claim 171 and wherein said first predetermined distance and said second predetermined distance are equal.
173. Security apparatus according to claim 171 and wherein said first predetermined distance and said second predetermined distance are not equal.
174. Security apparatus according to claim 171 and wherein said first predetermined duration and said second predetermined duration are equal.
175. Security apparatus according to claim 171 and wherein said first predetermined duration and said second predetermined duration are not equal.
176. Security apparatus comprising:
- at least one displacement sensor associated with an object, said at least one displacement sensor sensing a distance of displacement; and
- at least one time duration sensor for sensing a duration of time said distance of displacement exceeds at least a predetermined distance, indicative of a possible security violation, and wherein said sensor provides an output indication.
177. Security apparatus according to claim 176 and wherein said predetermined distance is variable.
178. Security apparatus according to claim 177 and wherein said predetermined distance varies as a function of a currently perceived security violation threat.
179. Security apparatus according to claim 178 and wherein said currently perceived security violation threat is determined by a pattern of past distances of displacement sensed by said at least one displacement sensor.
180. Security apparatus according to claim 176 and wherein at least one of said at least one displacement sensor and said at least one time duration sensor are operated in accordance with a duty cycle.
181. Security apparatus according to claim 180 and wherein said duty cycle is variable.
182. Security apparatus according to claim 181 and wherein said duty cycle is adaptive.
183. Security apparatus according to claim 181 and wherein said duty cycle varies as a function of a currently perceived security violation threat.
184. Security apparatus according to claim 183 and wherein said currently perceived security violation threat is determined by a pattern of past outputs of said at least one displacement sensor sensing said distance of displacement.
185. Security apparatus according to claim 176 and wherein said predetermined distance varies in accordance with long time scale changes in said distance of displacement.
186. Security apparatus according to claim 176 and also comprising a locator operative for sensing the location of at least one of said displacement sensor and said time duration sensor.
187. Security apparatus according to claim 176 and wherein at least one of said displacement sensor and said time duration sensor is attached to said object.
188. Security apparatus according to claim 176 and wherein said at least one displacement sensor is operative for sensing said distance of displacement by sensing changes in a magnetic field in the vicinity of said displacement sensor.
189. Security apparatus according to claim 188 and wherein said magnetic field is generated by a magnet, which is associated with said displacement sensor.
190. Security apparatus according to claim 189 and wherein said magnet is mounted onto said displacement sensor.
191. Security apparatus according to claim 189 and wherein said magnet is physically separated from said displacement sensor.
192. Security apparatus according to claim 189 and wherein said magnet is mounted onto said object.
193. Security apparatus according to claim 189 and wherein at least one of said displacement sensor, said magnet, and said time duration sensor is attached to said object.
194. Security apparatus according to claim 188 and wherein said at least one displacement sensor is operative to sense changes in said magnetic field by sensing changes in the frequency of an oscillator for which the oscillating frequency changes in accordance with changes in said magnetic field.
195. Security apparatus comprising:
- at least one displacement sensor associated with an object, said at least one displacement sensor sensing a distance of displacement;
- at least one time duration sensor for sensing a plurality of time durations during which said distance of displacement exceeds a corresponding plurality of predetermined distances, each of said plurality of predetermined distances being associated with a respective one of a plurality of predetermined durations, indicative of a possible security violation; and
- at least one alarm actuator operative to provide a security violation alarm when at least one of said plurality of time durations exceeds a corresponding one of said plurality of predetermined durations.
196. Security apparatus according to claim 195 and wherein said plurality of predetermined durations are determined as inverse functions to corresponding ones of said plurality of predetermined distances.
197. Security apparatus according to claim 195 and wherein said at least one alarm actuator provides at least said first and a second security violation alarm when said distance of displacement exceeds a first and a second of said plurality of predetermined distances for a first and a second of said respective predetermined duration.
Type: Application
Filed: Jul 27, 2005
Publication Date: Dec 22, 2005
Inventors: Mark Moldavsky (Petach Tikva), Boris Zhevelev (Rishon Lezion)
Application Number: 11/190,628