Self-calibrating magnetic field monitor
A self-calibrating magnetic field monitor is disclosed. In one embodiment, a magnetic field sensor repeatedly generates an electronic signal related to the magnetic field. In addition, a calibration module generates a relative baseline signal based on an average value of the electronic signals for a given time period. A comparator compares the electronic signal with the relative baseline signal and generating an output signal if a difference in the comparing is greater than or equal to a threshold.
1. A method for monitoring an area of interest with a plurality of magnetic field sensors, said method comprising:
providing a first magnetic field sensor on a first side of an area to be monitored;
providing a second magnetic field sensor on a second side of the area to be monitored, a location of the first magnetic field sensor and the second magnetic field sensor resulting in an overlapping area to be monitored;
receiving a first magnetic field strength signal intermittently from the first magnetic field sensor at a magnetic field monitor;
receiving a second magnetic field strength signal intermittently for the second magnetic field sensor at said magnetic field monitor;
comparing, at said magnetic field monitor, said first magnetic field strength and said second magnetic field strength for a given time period;
determining, at said magnetic field monitor, whether a change in either of said first or said second magnetic field strength is correlated with a change in the other of said first or said second magnetic field strength, wherein a correlated change would signify an event occurring in an overlapping area;
providing no output signal if it is determined that the event was not occurring in said overlapping area; and
generating an output signal from the magnetic field monitor if the change in the magnetic field strength in the overlapping area is greater than or equal to a pre-defined threshold.
2. The method of claim 1 , further comprising:
providing an imaging device to capture imagery of the overlapping area; and
initiating the imaging device to capture imagery when the output signal is generated.
3. The method of claim 1 , further comprising:
utilizing an internal power source to power the magnetic field monitor.
4. The method of claim 1 , further comprising:
utilizing an external power source to power the magnetic field monitor.
5. A magnetic field corridor monitor comprising:
a first magnetic field sensor on a first side of a corridor to be monitored;
a second magnetic field sensor on a second side of the corridor to be monitored; and
a magnetic field monitor to
receive a first and a second magnetic field strength signal for the corridor from the first magnetic field sensor and the second magnetic field sensor respectively,
compare said first magnetic field strength and said second magnetic field strength for a given time period;
determine whether a change in either of said first or said second magnetic field strength is correlated with a change in the other of said first or said second magnetic field strength, wherein a correlated change would signify an event occurred in the corridor;
provide no output signal if it is determined that the event had not occurred in said corridor; and
provide an output signal when the change in the magnetic field strength in the corridor is greater than or equal to a pre-defined threshold.
6. The magnetic field corridor monitor of claim 5 , further comprising:
an imaging device to capture imagery of the corridor wherein the imaging device is activated when the output signal is generated.
7. The magnetic field corridor monitor of claim 5 , further comprising:
an internal power source to power the magnetic field monitor.