The invention relates to an object detection system. In particular the invention relates to a photographic object detection system, a method, a position detection apparatus and a transponder, therefore.
A common problem during outdoor activities is that during times when certain activities are performed there is no possibility to instruct a photographer to capture images of the activity. For example during downhill skiing, mountain biking and during similar activities. The problem is even larger if the photographer is unknown to the person that wants images of said activities.
A recurrent problem in photography is that there is no photographer available when one is needed. The usual way to manage this is by acting as the photographer yourself. There are numerous drawbacks with this, for example, you will never be captured on a picture yourself, you will have to interrupt your current activity when a picture is to be taken, the scene you first wanted to capture is no longer available by the time you have your camera ready, and people in the scene will lose their natural look. Thus, the best pictures of you and your friends will only be captured by hiring a photographer. However, hiring a dedicated photographer is very expensive.
A known solution that might be used to solve at least a part of the above stated problem is to utilize image recognition, but for this technique to be successful reference information about the image object is needed. This solution is not viable if the image object is unknown to the photographer.
Another solution known in the art is disclosed in U.S. Pat. No. 7,492,262. This solution involves a camera with a directional antenna system and a corresponding transceiver. The photographic object is equipped with a RFID tag being configured to be activated upon receiving its identity. The camera with the directional antenna system broadcast the identity of the RFID tag searched for with a directed antenna beam, when the RFID tag is subjected to radio waves indicating the ID of the RFID tag, the RFID tag responds to the broadcast and the camera with the directional antenna system takes the bearing of the RFID tag by means of the directional antenna system.
The system of U.S. Pat. No. 7,492,262 also needs ‘a priori’ information about the identity of the RFID tag and does not solve the problem if the photographer and the image object are unknown to each other.
Furthermore, this system cannot precisely determine the distance from the camera to the RFID tag. A coarse estimate of the distance can be obtained by means of measuring path-loss. This solution enables automatic object following. However, this solution is limited in several ways. Firstly, the distance to the RFID tag is not precisely measured with a measurement of path-loss. Secondly, the proposed system allows only visual locating services for one RFID tag at a time. Hence, multiple object following is not possible. Thirdly, the proposed system does not allow precise measurements of the position due to the directional resolution of the directed antenna beam. Last but not least, the narrow antenna beam makes it very hard for the photographer to find the bearing of the RFID tag with the directional antenna system.
Therefore, it exist a need for an improved solution that obviates the above mentioned limitations and drawbacks.
In view of the problems of known photographic detection methods, the present invention aims to provide an improved photographic detection method, and an improved system. As well as an improved transponder and an improved position detection apparatus.
In accordance with an embodiment of the present invention a method for a photographic object detection system is provided, the method comprises providing a position detection apparatus connectable to an image capturing apparatus. The method further comprises providing a transponder having an identity, and determining a position of the transponder relative the position detection apparatus. The method further comprises generating transponder data comprising the identity of the transponder; and generating a signal indicative of the position of the transponder relative an image frame of the image capturing apparatus.
In accordance with an embodiment of the present invention a photographic object detection system is provided, the system comprises a position detection apparatus connectable to an image capturing apparatus, and a transponder having an identity. The position detection apparatus comprises means for determining a position of the transponder relative the position detection apparatus, means for generating transponder data indicative of the identity of the transponder. The position detection apparatus further comprises means for generating a signal indicative of the position of the transponder relative an image frame of the image capturing apparatus.
In accordance with an embodiment of the present invention a position detection apparatus for a photographic object detection system is provided. The position detection apparatus comprises means for connection of the position detection apparatus to a connectable image capturing apparatus, means for determining a position of a transponder relative the position detection apparatus. The position detection apparatus further comprises means for generating transponder data indicative of the identity of the transponder, and means for generating a signal indicative of the position of the transponder relative an image frame of the image capturing apparatus.
In accordance with an embodiment of the present invention a transponder for a photographic object detection system is provided. The transponder comprises a second receiving means, a second transmitting means, and a second processing means. The second processing means comprises an identity of the transponder, means for receiving a pseudo number sequence, means for modulation of the received pseudo number sequence, and means for sending the modulated pseudo number sequence.
An advantage of certain embodiments is that an improved photographic object detection system is provided.
Another advantage of certain embodiments is that multiple transponders can be localized and identified.
Yet another advantage of certain embodiments is that a priori information about the identities of the transponders no longer is necessary.
Embodiments of the invention will now be described, by way of example only, with reference to the accompanying drawings in which:
In the following, different aspects will be described in more detail with reference to certain embodiments and to accompanying drawings. For purpose of explanation and not limitation, specific details are set forth, such as particular scenarios and techniques, in order to provide a thorough understanding of the different embodiments. However, other embodiments that depart from these specific details may also exist.
The basic concept of the invention will now be described with reference made to
In one embodiment the first transponder 103 and the second transponder 103′ are equipped with means for determining the position by means of an external positioning system, such as for example Global Positioning System (GPS). The transponder transmits its position together with an identifier to the position detection apparatus 102. The position detection apparatus then calculates the position of the transponder relative the position detection apparatus.
Now, with reference made to
In another embodiment is the position detection apparatus integrated in the housing of the camera 101 and connected to either, the standardized bus, or directly to the microprocessor of the camera.
A coordinate system 201 is introduced in
This coordinate system is further elucidated in
Furthermore, the above outlined method can further be elucidated with reference made to
Hence, from the above description in connection with the flowchart in
As a solution to this problem associated with external positioning systems another embodiment of a photographic object detection system and a method are disclosed below.
In
The position detection apparatus 102 comprises a first processing means 502, which in one embodiment may be a field programmable gate array (FPGA) or a microcontroller. The position detection apparatus 102 further comprises a first transmitting means 503, which in one embodiment may comprise a transmitting antenna 505 connected to the first processing means 502 via a power amplifier (PA) 504. The position detection apparatus 102 further comprises a first receiving means 506, which in one embodiment may comprise a receiving antenna 507 connected to the first processing means 502 via a low noise amplifier (LNA) 508.
The first processing means 502 further comprises a pseudo number (PN) generator 103 provided to generate a PN sequence of a predetermined length. This pseudo number generator may in one embodiment generate a pseudo random binary sequence (PRBS) but other sequences may be generated in other embodiments, such as Gold code for example. The generated PN sequence is relayed from the first processing means 502 to the PA 504 of the first transmitting means 503, and to a detection means 511 via a delay means 512.
Furthermore, to the right in
The second processing means 519 comprises a delay circuit 521 with the input thereof connected to the output of the LNA2516, the delayed output from the delay circuit 521 is connected to the PA2518. The amount of delay is controlled by means of a control circuit (CC) 100.
The operation of the embodiment of a system according to
In order to describe the modulation of the PN-sequence reference is now made to
In one embodiment is the frequency of the sequence clock 706 selected such that a full PN-sequence of for example 32767 bits is transferred during a half clock period of the sequence clock 706.
The data signal from the control circuit 520 is a bit stream that in one embodiment has a frequency of half the clock frequency of the sequence clock 706. Both the bit stream frequency and the frequency of the sequence clock 706 is a multiple of the clock frequency of the second processing means 519.
By introducing the delay values of the variable delay circuit 702 to the stream of PN-sequences the bit stream from the control circuit 520 can be transferred by means of the PN-sequences. Each bit from the bit stream may in one embodiment be transferred by means of two PN-sequences by means of a differential modulation.
Now with reference made to
Thus, by means of the above disclosed method a precise measurement of a distance between an antenna of the position detection apparatus and an antenna of the transponder can be obtained.
By providing the first receiving means 506 with at least three receiving antennas corresponding distances to the transponder are easily obtained, and from these distances a position of the transponder can be calculated using simple geometrical calculations.
An embodiment of a position detection apparatus 102 having a first receiving means with three receiving antennas 801, 802, and 803 is illustrated in
By calculating, for each of the at least three receiving antennas 801, 802, and 803, a distance using said flight time, and by using these distances in a geometrical formula the position of the transponder is easily calculated with a good accuracy.
In the following two exemplary scenarios of the system will be disclosed.
In
In the figure a photographer is present carrying an image capturing apparatus 101, such as for example a digital camera or a video apparatus, with a position detection apparatus 102 connected thereto. When the photographer aims his image capturing apparatus 101 in the direction of the downhill slope, the position detection apparatus 102 will generate a signal indicative of the position of the transponders relative an image frame of the image capturing apparatus. This signal may for example be a visual signal in the viewfinder of the image capturing apparatus 101, but it can also be an audible signal that provides an audible guidance for directing the image capturing apparatus 101. When the photographer activates the trigger of the image capturing apparatus 101 an image tag comprising transponder data for at least one transponder within the image frame is generated and stored together with the image data. This image tag may in one embodiment be stored in a computer readable memory, such as for example a SD-card etc. in either the position detection apparatus 102 or the image capturing apparatus 101. The image tag is stored in such a way that the associated image easily can be retrieved.
At a later time illustrated in
In one embodiment the user computer 905 is a mobile device, such as a smartphone.
The message sent from the remote server 904 to the user may in one embodiment be a SMS message or a notification by means of a social media.
If several users are associated with the image tag each user is notified about the image.
In one embodiment, the first receiving means 506 and the second receiving means 5013 comprises broadband antennas.
In one embodiment is the broadband antenna a Vivaldi antenna.
In yet another preferred embodiment the first processing means 502 is a field programmable gate array (FPGA).
In yet another embodiment, the first processing means 502 and the second processing means 519 comprises analogue to digital converters.
In yet another embodiment is the system configured for impulse radio.
In yet another embodiment is the transponder integrated in a mobile device such as a mobile phone.
In the above disclosed embodiments is a baseband modulated solution disclosed but for the person skilled in the art it is a small effort to introduce mixers and oscillators etc. to provide a solution operable at a desired frequency.
Number | Date | Country | Kind |
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1450392-4 | Apr 2014 | SE | national |
Filing Document | Filing Date | Country | Kind |
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PCT/SE2015/050395 | 3/31/2015 | WO | 00 |