Frequency diversity transponder arrangement.
Abstract
A method of communicating between a transponder and an interrogator. The interrogator (10) transmits a wireless RF interrogation which is received by the transponder (12). The transponder (12) then transmits a wireless RF response. The wireless RF response has a first channel response centered at frequency FDX1=RF+SC , a second channel response centered at frequency FDX2=RF-SC , and a third channel response centered at frequency FDX3=SC . The third channel response is a spurious signal resulting from using a non-linear element (32) as the transponder modulator (32,34). The interrogator (10) receives this wireless RF response. The response is received in the three channels with a first circuit (82) operable to receive said first channel response, a second circuit (86) is operable to receive said second channel response, and a third circuit (86,88) is operable to receive said third channel response. A controller (102) then selects the response from one of said first, second, or third circuits (82,86,88) for demodulating. A demodulator (100) may then demodulate one the selected channel responses. Other arrangements, systems, and methods are disclosed.

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Projected expiry passed 1 July 2014, 12.2 years ago.
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18 claims: 4 independent, 14 dependent
- 1An interrogator/transponder system, said system comprising:a) a transponder operable to receive a wireless RF interrogation;and to transmit a wireless RF response, said response comprising a first channel response centered at frequency FDX1=RF+SC and a second channel response centered at frequency FDX2=RF-SC ;andb) an interrogator, said interrogator having i. a transmit antenna for transmitting said wireless RF interrogation,ii. a receive antenna for receiving said wireless RF response,iii. a first circuit in electrical communication with said receive antenna and operable to receive said first channel response,iv. a second circuit in electrical communication with said receive antenna and operable to receive said second channel response,v. a controller in electrical communication with said first and second circuits and operable to select one of said responses therefrom, andvi. a demodulator for receiving said selected response and for demodulating an uplink message therefrom.
- 8The system of clam 7 wherein said interrogator is further operable to send a half-duplex powering burst followed by a quiet time during which the exciter of the interrogator is no longer active and the interrogator waits for a half-duplex RF response.
- 16An interrogator/transponder system, said system comprising:a) a transponder, said transponder having i. an antenna for receiving a wireless RF interrogation of frequency RF,ii. an antenna resonant circuit for deriving a carrier of frequency RF from the power in said wireless RF interrogation,iii. a divider for deriving a sub-carrier of frequency SC from said carrier of frequency RF,iv. a demodulator for receiving said wireless RF interrogation from said antenna resonant circuit and for providing a demodulated interrogation message at an output,v. a controller for receiving said demodulated RF interrogation message at its input and for generating a response message at its output, said response message being generated at said sub-carrier frequency, SC,vi. a modulator for modulating said response message upon said carrier to form a wireless response, said modulator being a non-linear circuit element such that said modulated response message has a first channel response centered at frequency FDX1=RF+SC , a second channel response centered at frequency FDX2=RF-SC , and a third channel response centered at frequency FDX3=SC ;andb) an interrogator, said interrogator having i. a transmit antenna for transmitting said wireless RF interrogation,ii. a receive antenna for receiving said wireless RF response,iii. an RF oscillator for generating an uplink RF carrier,iv. a modulator which receives said uplink RF carrier and which passes this modulated carrier to said transmit antenna for transmitting said wireless RF interrogation,v. a first transformer having a first and a second winding, said first transformer for receiving said wireless RF response from said receive antenna, said first winding of said first transformer being connected to said receive antenna,vi. a second transformer having a first and a second winding, said second transformer also for receiving said wireless RF response from said receive antenna, said first winding of said first transformer being connected to said receive antenna,vii. a first capacitor in parallel with said second winding of said first transformer, the parallel combination thereof forming a first resonant circuit having a resonant frequency of approximately FDX3=SC whereby said third channel response of frequency FDX3 can be received thereby,viii. a second capacitor in parallel with said second winding of said second transformer, the parallel combination thereof forming a second resonant circuit having a resonant frequency of approximately FDX1=RF+SC whereby said first channel response of frequency FDX1 can be received thereby,ix. a tuning circuit in parallel with said second resonant circuit, said tuning circuit comprising the series combination of a third capacitor and a switch whereby when said switch is closed, the parallel combination of said second winding of said second transformer and said second and third capacitors lowers the frequency of said second resonant circuit to have a resonant frequency of approximately FDX2=RF-SC whereby said second channel response of frequency FDX2 can be received thereby,x. a local oscillator, said local oscillator being enabled to oscillate at frequency RF when the first and second channel responses are to be demodulated and being not enabled when said third channel response is to be demodulated,xi. a mixer for receiving the signals from said first and second resonant circuits, and from said local oscillator, said mixer for shifting the frequency of said signals to a common baseband,xii. a filter for receiving the output of said demodulator and providing a filtered output signal,xiii. a limiter for receiving said filtered output signal and for amplitude limiting said filtered output to form a filtered, limited signal,xiv. a demodulator receiving said filtered, limited signal and demodulating therefrom an uplink message, andxv. a controller operable to provide data to said modulator for modulation a of said uplink RF carrier, said controller further operable to receive said uplink message from said demodulator and to enable the operation of said local oscillator.
- 17A method of communicating between a transponder and an interrogator, said method comprising the steps of:a) transmitting by said interrogator a wireless RF interrogation;b) receiving in a transponder a wireless RF interrogation;c) transmitting by said transponder a wireless RF response, said response comprising a first channel response centered at frequency FDX1=RF+SC , a second channel response centered at frequency FDX2=RF-SC , and a third channel response centered at frequency FDX3=SC ;d) receiving by said interrogator said wireless RF response, wherein a first circuit is operable to receive said first channel response, a second circuit is operable to receive said second channel response, and a third circuit is operable to receive said third channel response,e) selecting by a controller the response from one of said first, second, or third circuits, andf) demodulating an uplink message from said selected response by a demodulator.
Independent claims4
27 paragraphs, as filed
Cross-reference to related patents
:
The following coassigned patent applications are hereby incorporated herein by reference: <tables id="tabl0001" num="0001"><table frame="all"><tgroup cols="3" colsep="1" rowsep="0"><colspec colnum="1" colname="col1" colwidth="52.50mm" /><colspec colnum="2" colname="col2" colwidth="52.50mm" /><colspec colnum="3" colname="col3" colwidth="52.50mm" /><thead valign="top"><row><entry namest="col1" nameend="col1" align="center">Pat No./Appl. No.</entry><entry namest="col2" nameend="col2" align="center">Filing Date</entry><entry namest="col3" nameend="col3" align="center">TI Case No.</entry></row></thead><tbody valign="top"><row><entry namest="col1" nameend="col1" align="left">5,053,774</entry><entry namest="col2" nameend="col2" align="right">10/1/91</entry><entry namest="col3" nameend="col3" align="left">TI-12797A</entry></row><row rowsep="1"><entry namest="col1" nameend="col1" align="left">08/065,286</entry><entry namest="col2" nameend="col2" align="right">5/21/93</entry><entry namest="col3" nameend="col3" align="left">TI-16981</entry></row></tbody></tgroup></table></tables>
Field of the Invention
The invention generally relates to the field of Radio Frequency Identification (RFID). More specifically, the invention relates to a method and arrangement for communicating between a transponder and an interrogator, the method and arrangement employing frequency diversity.
Background of the Invention
There is a great need for devices or apparatuses that make it possible to identify or detect regarding their presence at a predetermined location, objects that are provided with such devices or apparatuses in contactless manner and over a certain distance.
It is, for example, desirable to request contactless and over a certain distance, identifications that are uniquely assigned to a object and are stored in the device or apparatus so that, for example, the object may be identified. A determination may also be made whether a particular object exists within a given reading range. An example is also the case in which physical parameters such as the temperature and the pressure are to be interrogated directly at or within the object, without direct access to the object being possible. A device or apparatus of the type desired can, for example, be attached to an animal that can then always be identified at an interrogation point without direct contact. There is also a need for a device, which when carried by a person, permits access checking by which only persons whose responder unit returns certain identification data to the interrogation unit are allowed access to a specific area. A further example of a case in which such a device is needed is the computer controlled industrial production in which, without the intervention of operating personnel, components are taken from a store, transported to a production location and there assembled to give a finished product. In this case a device is required which can be attached to the individual components so that the components can be specifically detected in the spares store and taken therefrom. Yet another example of a case in which such a device is needed is in the field of Automatic Vehicle Identification (AVI) in which a stationary interrogator unit sends inquiries to a vehicle-born transponder for purposes of toll collection, identification, or other purposes.
It is advantageous to accomplish these applications and others with the least possible number of transmission errors between the interrogator and the transponder. Error correction codes, checksums with acknowledgements and retransmissions, and data transmission power and frequency tradeoffs are all methods that might be used in prior art systems to lessen the possibility of transmission errors.
Summary of the Invention
The art of RFID systems comprises at least two primary categories of RFID systems. These two categories are full-duplex and half-duplex communication systems. An artisan practicing within either of these categories may employ one or more of a number of different modulation techniques including frequency shift keying (FSK), amplitude shift keying (ASK), phase shift keying (PSK), or one of a number of other modulation techniques known to the artisan. No matter the chosen modulation technique, in many FDX systems the transponder will transmit its response by first denying a sub-carrier (SC) signal from the received exciter signal, then modulating a baseband data signal upon the sub-carrier (SC) and then further modulating this sub-carrier data signal onto a radio frequency (RF) signal, The actual transmitted signal will have frequency components at the RF frequency plus and minus the sub-carrier frequency (RF ± SC). Typically in systems that have this modulation and therefore produce an RF sub-carrier on both sides of the RF carrier signal (RF ± SC), one of the signals must be filtered in the interrogator from the RF response and about half the signal power used in generating the final modulated signal is lost. In any real modulator implementation other spurious frequency components exist. For example, in a single-ended modulator with one diode, a major frequency component also exists at the sub-carrier frequency (SC). Although the above embodiment describes the case in which a transponder modulates data upon a sub-carrier and in turn upon an RF frequency, the situation could be reversed to describe a system in which the interrogator transmits to the transponder in the same way.
This invention is the first to recognize that in the field of RFID systems an artisan may employ the incidental modulation products such as mirror-type sub-carrier signals and spurious harmonic signals to overcome outside signal interference introduced into the primary communication channel. The preferred embodiment of the present invention is advantageous over prior art transponders in that it uses already existing modulation products to gain frequency diversity and improve data link integrity. The advantages of frequency diversity are gained by selecting to demodulate in the receiver the RF response channel having the greatest opportunity for error-free reception and demodulation. Alternatively, all or a number of channels might be demodulated and by using error detection codes the data from the error-free channel transmission could be chosen.
Brief Description of the Drawings
<ul id="ul0001" list-style="none"><li><b>Fig. 1</b> shows a preferred embodiment interrogator/transponder arrangement having an interrogator in proximity to a transponder;</li><li><b>Fig. 2</b> shows a block diagram of a preferred embodiment full duplex transponder;</li><li><b>Fig. 3</b> is a block diagram of a preferred embodiment full duplex interrogator;</li><li><b>Fig. 4</b> is a modulation spectrum of the transponder non-linear modulating element;</li><li><b>Fig. 5</b> is a frequency spectrum of the preselector passbands or filters of the interrogator of a preferred embodiment of the present invention; and</li><li><b>Fig. 6</b> is a timing diagram of a preferred protocol for channel switching for frequency diversity.</li></ul>
Detailed Description of the Preferred Embodiments
Referring now to <b>Fig. 1</b>, the transponder arrangement to be described includes an interrogator <b>10</b> and a transponder <b>12</b>. The interrogator <b>10</b> is typically constructed as a stationary unit that would primarily remain in a fixed position. Alternatively, an operator might hold the interrogator <b>10</b> in his hand. The interrogator <b>10</b> will transmit an RF interrogation signal upon receipt of a user input, or by an automated command such as by computer control. This interrogator <b>10</b> also has the capacity of receiving responsive RF signals from the transponder <b>12</b>, and for detecting information contained in such responsive signals. Accommodation for interrogator <b>10</b> to communicate with a host computer might be accomplished via data bus <b>17</b>, such that the interrogator unit <b>10</b> might receive commands from the host computer or transmit data to and from the host computer.
<b>Fig. 2</b> shows a block diagram of a preferred embodiment full duplex transponder <b>12</b>. The transponder has a resonant circuit <b>24</b>, which preferably comprises a coil <b>20</b> and a capacitor <b>22</b>. The powering signal or RF interrogation signal is received from the interrogator <b>10</b> on resonant circuit <b>24</b>. A carrier is formed in the resonant circuit <b>24</b>, preferably with a frequency equal to that of the RF interrogation signal. This carrier is then rectified by diode <b>26</b>. A capacitor <b>27</b> is connected across the rectified power signal to the transponder controller <b>30</b>. The resonant circuit <b>24</b> may be further operable to receive data from the interrogator <b>10</b>, although the invention described herein may be used with read-only or read/write systems. Preferably, the transponder controller <b>30</b> will derive a sub-carrier signal, whose frequency is a sub-multiple of the powering signal, by dividing the powering signal. Alternatively, the transponder <b>12</b> might employ a local oscillator (LO) to independently generate a sub-carrier frequency. The sub-carrier frequency may be used to generate a baseband response signal having data transitions with a frequency of the sub-carrier frequency. The baseband response signal is then sent to switch <b>32</b>, which modulates the carrier with the sub-carrier data signal. Switch <b>32</b> is optionally in series with a resistor <b>34</b>. By opening or closing switch <b>32</b>, the powering signal is amplitude modulated, with the percentage of ASK keying (percentage by which the "off" magnitude is reduced from the "on" magnitude) being determined by the value of the resistor <b>34</b>. In other words, if the resistor <b>34</b> has a very small value, the modulation percentage will approach 100%, if the resistor <b>34</b> is very large, the modulation percentage will approach 0%. The nature of the non-linear switching of the carrier is such that two sidebands will be formed at <maths id="math0001" num=""><math display="inline"><mrow><mtext>FDX2=RF-SC</mtext></mrow></math><img file="EP0632288A2_D0001.tif" /></maths> and <maths id="math0002" num=""><math display="inline"><mrow><mtext>FDX1=RF+SC</mtext></mrow></math><img file="EP0632288A2_D0002.tif" /></maths> . A spurious signal will also be transmitted at the baseband or sub-carrier frequency <maths id="math0003" num=""><math display="inline"><mrow><mtext>FDX3=SC</mtext></mrow></math><img file="EP0632288A2_D0003.tif" /></maths> . It will be later explained how the preferred embodiment of the present invention uses these spurious signals advantageously. Although the method of modulating the carrier has been described as ASK, FSK could be used by having two dividers in the transponder <b>12</b> for dividing the powering or RF interrogation signal into two submultiples and allowing one of the submultiples or frequencies to indicate a first data value and another of the submultiples to indicate a second data value. The preferred embodiment of the present invention will apply to either of the above-mentioned modulation methods, or others.
For a read/write system the transponder controller <b>30</b> can store data received in the interrogation message, or initiate one of a number of actions. Particularly, the transponder controller <b>30</b> may stop data received in the interrogation message in a transponder memory <b>31</b>. The controller <b>30</b> can also retrieve data from the memory <b>31</b>. In an AVI system this data may comprise information regarding the current balance of money that is kept on the transponder <b>12</b> so that an interrogator can inquire whether a vehicle carrying a transponder <b>12</b> may be allowed to pass the toll plaza. Upon receipt of the interrogation message, the transponder <b>12</b> can initiate such actions as, for example, a self-test routine or a responsive communication. When initiating a wireless RF response, the transponder controller <b>30</b> generates a response message at its output. The transponder <b>12</b> then uses switch <b>32</b> to modulate this response message upon the carrier. In the preferred embodiment transponder <b>12</b>, this wireless response comprises a first channel response centered at <maths id="math0004" num=""><math display="inline"><mrow><mtext>FDX1=RF+SC</mtext></mrow></math><img file="EP0632288A2_D0004.tif" /></maths> , a second channel response centered at <maths id="math0005" num=""><math display="inline"><mrow><mtext>FDX2=RF-SC</mtext></mrow></math><img file="EP0632288A2_D0005.tif" /></maths> , and a spurious third channel response centered at <maths id="math0006" num=""><math display="inline"><mrow><mtext>FDX3=SC</mtext></mrow></math><img file="EP0632288A2_D0006.tif" /></maths> . The response is preferably by ASK modulation in which the switch <b>32</b> connects a damping element <b>34</b> in parallel with the antenna resonant circuit <b>24</b>.
<b>Fig. 3</b> is a block diagram of a preferred embodiment full duplex interrogator <b>10</b>. This interrogator <b>10</b> has an interrogator transmit antenna <b>50</b> for transmitting the wireless RF interrogation and an interrogator receive antenna <b>52</b> for receiving the wireless RF response. The interrogator also contains an interrogator RF oscillator <b>54</b> for generating an uplink RF carrier. An interrogator modulator <b>56</b> receives the uplink RF carrier through an interposing switch <b>55</b> and passes this modulated carrier to the interrogator transmit antenna <b>50</b>. The interrogator transmit antenna <b>50</b> then transmits the wireless RF interrogation to the transponder <b>12</b>. A first transformer <b>68</b> having a first winding <b>70</b> and a second winding <b>72</b> receives the wireless RF response from the interrogator receive antenna <b>52</b>. The first winding <b>70</b> of the first transformer <b>68</b> connects to the receive antenna <b>52</b>. A second transformer <b>74</b> has a first winding <b>76</b> and a second winding <b>78</b>. The second transformer <b>74</b> also receives the wireless RF response from the receive antenna <b>52</b>. <b>Fig. 3</b> shows the first winding <b>76</b> of the second transformer <b>74</b> to be connected to the receive antenna <b>52</b> serially through the first winding <b>70</b> of the first transformer <b>68</b>. These transformers <b>68</b>,<b>74</b> could be connected in parallel, or serially in the opposite order depending on design considerations. The first transformer <b>68</b> has a first capacitor <b>79</b> in parallel with its second winding <b>72</b>. The parallel combination of the second winding of the first transformer <b>68</b> and the capacitor <b>80</b> forms a first resonant circuit <b>82</b> having a first resonant frequency. Similarly, the parallel combination of the second winding <b>78</b> of the second transformer <b>74</b> with a second capacitor <b>84</b> forms a second resonant circuit <b>86</b> having a second resonant frequency. The interrogator <b>10</b> still further contains a tuning circuit <b>88</b> that may be switched to be connected in parallel with the second resonant circuit <b>84</b>. Tuning circuit <b>88</b> is preferably a series combination of a switch <b>90</b> and a third capacitor <b>92</b>. The closing of switch <b>90</b> causes formation of a parallel combination of the tuning circuit <b>88</b> with the second resonant circuit <b>86</b>. The resulting connection of the third capacitor <b>92</b> lowers the frequency of the second resonant circuit <b>86</b> to a third resonant frequency. Tuning circuit <b>88</b> might also comprise a resistor or damping element <b>104</b> in parallel to the series combination <b>90</b>,<b>92</b> so that the frequency response of the second resonant circuit <b>86</b> is broadened as well as lowered so that perhaps a half-duplex FSK-modulated signal might be received thereby. The interrogator <b>10</b> still further includes a local oscillator <b>93</b>, preferably selectable to oscillate at a first frequency or at a second frequency. In the embodiment described herein, the first and second frequencies are selected to be 140 and 160 kHz, respectively. For the full-duplex embodiment specified herein, the LO frequency of 140 kHz is used to translate the selected sideband of the RF±SC mirrored channels to a baseband frequency of SC or 20 kHz. To read the spurious SC channel, the LO is disabled so that no frequency translation is effected. The half-duplex reading in this embodiment uses the LO frequency of 160 kHz to shift the response signal to the baseband frequency of SC. Using a LO frequency of 120 kHz would also effect this frequency translation. A mixer <b>94</b> receives signals from the first and second resonant circuits <b>82</b>,<b>86</b> and from the local oscillator <b>92</b>. The mixer <b>94</b> then modulates the signals from the resonant circuits <b>82</b>,<b>86</b> upon the signal from the local oscillator <b>92</b> and passes this modulated output signal to a filter <b>96</b>. A limiter <b>98</b> then receives the output of the filter <b>96</b> and amplitude limits the signal to not exceed a pre-selected threshold. A demodulator <b>100</b> then receives the filtered, limited signal and demodulates therefrom an uplink message. The interrogator controller <b>102</b> is operable to enable transmission of the uplink RF carrier through switch <b>55</b> and to control the interrogator modulator <b>56</b> to modulate the uplink RF carrier. This modulated carrier continues to the interrogator transmit antenna <b>50</b> for transmission of the wireless RF interrogation. Interrogator controller <b>102</b> is further operable to receive the uplink message from the demodulator <b>100</b> and further operable to control the switch <b>90</b> to select the resonant frequency of the second resonant circuit <b>86</b> to be the second or the third resonant frequency. The interrogator controller <b>102</b> also controls the frequency of the local oscillator <b>93</b>. The interrogator controller <b>102</b> may select the appropriate response channel by evaluating which of the RF response channels has the greatest opportunity for error-free reception and demodulation. Alternatively, all or a number of channels might be demodulated. By using error detection codes the controller <b>102</b> could choose the data from the error-free channel transmission.
While the frequency characteristics of possible RF responses are quite varied depending on the nonlinear device used to modulate the RF response upon the carrier, all real modulators have spurious output signals in addition to the sum and difference signals associated with the ideal modulator. <b>Fig. 4</b> illustrates the frequency spectra for a full-duplex transponder <b>12</b> in which the modulation of the carrier in the transponder <b>12</b> by the switch <b>32</b> provides three output frequencies of interest. These three signal frequencies are centered at FDX1 and FDX2, which are the sum and difference signals respectively, and FDX3 which is a spurious output signal that is located at the sub-carrier (SC) frequency. Many other existing spurious signals are not shown in this figure. Also shown superimposed on the frequency spectra of <b>Fig. 4</b> is a signal frequency that might be received from a half-duplex transponder. <b>Fig. 4</b> is intended solely to show the relative frequency bands and therefore the vertical scale is not representative of any particular magnitude. In order for the interrogator <b>10</b> to work with both half and full-duplex transponders <b>12</b>, it should be designed to receive the diversity signals from the full-duplex transponders and the response signals from the half-duplex transponders. In this figure, the RF carrier is 140 kHz and the sub-carrier is 20 kHz. It follows that FDX3 is centered at 20 kHz, FDX2 is centered at 120 kHz, and FDX1 is centered at 160 kHz. Referring again to Fig. 2, optional circuitry with which the transponder <b>12</b> can make a half-duplex response is shown by the dotted lines. The half-duplex response is preferably an FSK modulated response with a first and second FSK frequencies. First FSK frequency is approximately the resonant frequency of the RF carrier. Second FSK frequency is accomplished by using a switch <b>21</b> to connect a capacitor <b>23</b> in parallel with the transponder resonant circuit <b>24</b>, thus lowering the frequency of the resonant circuit from the first FSK frequency to the second FSK frequency. By selectively opening and closing the switch <b>21</b> data can be modulated upon the carrier with the first FSK frequency representing a first data polarity and the second FSK frequency representing a second data polarity. For operation with half-duplex transponders, the interrogator <b>10</b> will send a half-duplex powering burst followed by a quiet time during which the switch <b>55</b> will disable transmission of power from the exciter or oscillator <b>54</b> to the antenna <b>50</b>. During this time period the interrogator <b>10</b> waits for a half-duplex RF response.
<b>Fig. 5</b> shows the pre-select filter passbands for the interrogator <b>10</b>. <b>Fig. 5</b> is intended solely to show the relative frequency bands and therefore the vertical scale is not representative of any particular magnitude. The "A" passband is received on the first resonant circuit <b>82</b> and has a center frequency of approximately 20 kHz to receive the spurious signal FDX3 from the full-duplex-transponder <b>12</b>. The "B" and "C" passbands are received on the second resonant circuit <b>86</b>. When configured to receive the "C" passband, the second resonant circuit <b>86</b> has a center frequency of approximately 160 kHz to receive the sum component FDX1 of the modulator of the full-duplex transponder <b>12</b>. When configured to receive the "B" passband, the interrogator <b>10</b> still further contains a tuning circuit <b>88</b> that may be switched to be connected in parallel with the second resonant circuit <b>84</b>. The center frequency of the second resonant circuit <b>84</b> is now shifted to approximately 120 kHz and the second resonant circuit <b>84</b> may be damped by a resistor <b>104</b> so the bandwidth of the second resonant circuit <b>84</b> is sufficient to receive either the difference component signal FDX2 from the full-duplex transponder <b>12</b> or in an optional embodiment a response signal HDX from a half-duplex transponder. Of course, separate resonant circuits may be used for the "B" and "C" passbands, as well as for the half-duplex response signal HDX.
<b>Fig. 6</b> is a timing diagram showing a representative algorithm that an interrogator might use to communicate with full-duplex and half-duplex transponders. Time period "A" which lasts from t₀ to t₁ allows for the reception of the spurious signal FDX3 on the first resonant circuit <b>82</b> using passband "A." During this time period switch <b>55</b> is closed to allow the interrogator to continue excitation of the full-duplex transponder <b>12</b>, and switch <b>90</b> may be open or closed as any signals from passbands "B" or "C" will be filtered out. Also during time period "A" the LO <b>93</b> is disabled by the interrogator controller <b>102</b> to allow the spurious signal centered at SC to pass through to be demodulated. During time period "B" which lasts from t₁ to t₂, switch <b>55</b> remains closed so that the interrogator <b>10</b> continues to excite the transponder <b>12</b>. Switch <b>90</b> is closed so the interrogator <b>10</b> may receive the signals from passband "B." Further, During time period "C" which lasts from t₂ to t₃, switch <b>55</b> remains closed so that the interrogator <b>10</b> continues to excite the transponder <b>12</b>. Switch <b>90</b> is opened so the interrogator <b>10</b> may receive the signals from passband "C." As in time period "C," during time period "B," the LO <b>93</b> oscillates at 140 kHz so that the received signal can be frequency shifted to the SC frequency. During time period "D" which lasts from t₃ to t₄, switch <b>55</b> is now opened so that the interrogator <b>10</b> no longer transmits an interrogation signal During time period "D," the LO <b>93</b> will oscillate at 160 kHz, this time so the received HDX signal can be frequency shifted to the sub-carrier (SC) frequency. Interrogator <b>10</b> may now receive a half-duplex response from half-duplex transponders <b>12</b>. This cycle may be repeated numerous times with or without intermediate steps between the cycles. <b>Fig. 6</b> is intended to show the relative frequency bands and therefore the vertical scale is not representative of any particular magnitude. Since the transponder <b>12</b> transmits its signal over three different frequency bands FDX1, FDX2, and FDX3, the interrogator <b>10</b> can analyze the signal received on each of these bands during time periods "A," "B," and "C," respectively. One way in which the interrogator <b>10</b> can determine which of the received signals is valid would be to use a simple error detection code such as parity or checksum codes. One or all of the received signals might indicate by its parity or checksum an error-free transmission. The interrogator <b>10</b> can simply choose whichever received signal indicates an error-free transmission. Other methods of selecting the proper received signal may be selected by the artisan, yet fall within the scope of the claims of this invention. Although the timing has been described with respect to a system having three full-duplex response channels and a single half-duplex response channels, many other embodiments are possible. Such embodiments would include systems having more or fewer full-duplex response channels and systems having no half-duplex response channels. Still other embodiments would include systems having more than one half-duplex response channel.
The sole table, below, provides an overview of the embodiments and the drawings: <tables id="tabl0002" num="0002"><img file="EP0632288A2_D0007.tif" /></tables><tables id="tabl0003" num="0003"><img file="EP0632288A2_D0008.tif" /></tables><tables id="tabl0004" num="0004"><img file="EP0632288A2_D0009.tif" /></tables><tables id="tabl0005" num="0005"><img file="EP0632288A2_D0010.tif" /></tables>
A few preferred embodiments have been described in detail hereinabove. It is to be understood that the scope of the invention also comprehends embodiments different from those described, yet within the scope of the claims.
For example, "microcomputer" is used in some contexts to mean that microcomputer requires a memory and "microprocessor" does not. The usage herein is that these terms can also be synonymous and refer to equivalent things. The phrase "processing circuitry" or "control circuitry" comprehends ASICs (application specific integrated circuits), PAL (programmable array logic), PLAs (programmable logic arrays), decoders, memories, non-software based processors, or other circuitry, or digital computers including microprocessors and microcomputers of any architecture, or combinations thereof. Memory devices include SRAM (static random access memory), DRAM (dynamic random access memory), pseudo-static RAM, latches, EEPROM (electrically-erasable programmable read-only memory), EPROM (erasable programmable read-only memory), registers, or any other memory device known in the art. Words of inclusion are to be interpreted as nonexhaustive in considering the scope of the invention.
Implementation is contemplated in full-duplex transponder arrangements or half-duplex transponder arrangements. Frequency shift keying (FSK) modulation is envisioned as a possible data modulation scheme, as well as pulse-pause modulation, amplitude shift keying (ASK), quadrature AM (QAM) modulation, quadrature phase shift keying (QPSK), or any other modulation. Different types of multiplexing such as time or frequency modulation might be effected to avoid cross-signal interference. Implementation is contemplated in discrete components or fully integrated circuits in silicon, gallium arsenide, or other electronic materials families, as well as in optical-based or other technology-based forms and embodiments. It should be understood that various embodiments of the invention can employ or be embodied in hardware, software or microcoded firmware.
While this invention has been described with reference to illustrative embodiments, this description is not intended to be construed in a limiting sense. Various modifications and combinations of the illustrative embodiments, as well as other embodiments of the invention, will be apparent to persons skilled in the art upon reference to the description. It is therefore intended that the appended claims encompass any such modifications or embodiments.
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Every citation, both ways
| Document | Relation | Office | Cited during |
|---|---|---|---|
| US7301470B2 | Cited by | United States of America | Applicant |
| USRE47599E | Cited by | United States of America | Applicant |
| EP0301127B1 | Cites | European Patent Office (EPO) | Search report |
| US4725841A | Cites | United States of America | Search report |
| WO8201437A1 | Cites | World Intellectual Property Organization (WIPO) | Search report |
| WO8703698A1 | Cites | World Intellectual Property Organization (WIPO) | Search report |
4 members in 2 offices
Priority claims4
| Document | Office | Kind | Date |
|---|---|---|---|
| 8678693 | United States of America | A | |
| 8678693 | United States of America | A | |
| 86786 | – | – | – |
| US19930086786 | – | – | – |
Members4
| Document | Office | Kind | |
|---|---|---|---|
| US5347280A | United States of America | A | |
| EP0632288A2This record | European Patent Office (EPO) | A2 | |
| EP0632288A3 | European Patent Office (EPO) | A3 | |
| EP0632288B1 | European Patent Office (EPO) | B1 |
29 legal events, as 3 offices reported them to INPADOC
Over the term
Point at a mark for the eventEvents
| Event | Code | Office | |
|---|---|---|---|
| Application deemed withdrawn, or ip right lapsed, due to non-payment of renewal feeWithdrawnR119 | R119 | DE | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Annual fee paid to national office [announced via postgrant information from national office to epo]GrantedPGFP | PGFP | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Gb: european patent ceased through non-payment of renewal feeCeasedGBPC | GBPC | EP | |
| Annual fee paid to national office [announced via postgrant information from national office to epo]GrantedPGFP | PGFP | EP | |
| Nl: lapsed or anulled due to non-payment of the annual feeLapsedNLV4 | NLV4 | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
| Annual fee paid to national office [announced via postgrant information from national office to epo]GrantedPGFP | PGFP | EP | |
| European patent in force as of 2002-01-01IF02 | IF02 | GB | |
| No opposition filedOpposition26N | 26N | EP | |
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| Corresponds to:REF | REF | EP | |
| Designated contracting statesAK | AK | EP | |
| Lapsed in a contracting state [announced via postgrant information from national office to epo]LapsedPG25 | PG25 | EP | |
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Numbers
- Publication
- 0632288
- Publication, DOCDB
- 0632288
- Publication, EPODOC
- EP0632288
- Application
- 94110287
- Application, DOCDB
- 94110287
- Application, EPODOC
- EP19940110287
Titles3
- German
- Antwort-Anordnung mit Frequenz-Verschiedenheit
- English
- Frequency diversity transponder arrangement
- French
- Disposition de transpondeur avec diversité de fréquence
Classification
- CPC, 1
- G01S13/758
- IPC, 1
- G01S13 75
Designated states5
- Contracting states, 5
- Germany
- France
- United Kingdom
- Italy
- Netherlands (Kingdom of the)