WO2017134310A1 - Secure channel sounding - Google Patents
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- WO2017134310A1 WO2017134310A1 PCT/EP2017/052564 EP2017052564W WO2017134310A1 WO 2017134310 A1 WO2017134310 A1 WO 2017134310A1 EP 2017052564 W EP2017052564 W EP 2017052564W WO 2017134310 A1 WO2017134310 A1 WO 2017134310A1
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L25/00—Baseband systems
- H04L25/02—Details ; arrangements for supplying electrical power along data transmission lines
- H04L25/0202—Channel estimation
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B1/00—Details of transmission systems, not covered by a single one of groups H04B3/00 - H04B13/00; Details of transmission systems not characterised by the medium used for transmission
- H04B1/69—Spread spectrum techniques
- H04B1/7163—Spread spectrum techniques using impulse radio
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04J—MULTIPLEX COMMUNICATION
- H04J13/00—Code division multiplex systems
- H04J13/0007—Code type
- H04J13/0011—Complementary
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04J—MULTIPLEX COMMUNICATION
- H04J13/00—Code division multiplex systems
- H04J13/0007—Code type
- H04J13/0011—Complementary
- H04J13/0014—Golay
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04J—MULTIPLEX COMMUNICATION
- H04J13/00—Code division multiplex systems
- H04J13/0007—Code type
- H04J13/0022—PN, e.g. Kronecker
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04J—MULTIPLEX COMMUNICATION
- H04J13/00—Code division multiplex systems
- H04J13/0077—Multicode, e.g. multiple codes assigned to one user
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04J—MULTIPLEX COMMUNICATION
- H04J13/00—Code division multiplex systems
- H04J13/10—Code generation
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L25/00—Baseband systems
- H04L25/02—Details ; arrangements for supplying electrical power along data transmission lines
- H04L25/0202—Channel estimation
- H04L25/024—Channel estimation channel estimation algorithms
Definitions
- the present invention relates generally to wireless communication systems, and, in particular, to a wireless communication system adapted securely to perform channel sounding. 2. Description of the Related Art.
- UWB ultra-wideband
- a series of special processing steps are performed by a UWB transmitter to prepare payload data for transmission via a packet-based UWB channel.
- a corresponding series of reversing steps are performed by a UWB receiver to recover the data payload.
- IEEE Standards 802.15.4 (“802.15.4") and 802.15.4a (“802.15.4a”), copies of which are submitted herewith and which are expressly incorporated herein in their entirety by reference.
- these Standards describe required functions of both the transmit and receive portions of the system, but specify implementation details only of the transmit portion of the system, leaving to implementers the choice of how to implement the receive portion.
- the 802.15.4a UWB PHY uses the following frame structure:
- the Sync is periodic, i.e., it repeats the same symbol again and again, so a version which is delayed by just one symbol looks like almost identical to the original with no delay.
- the code which is repeated in the Sync sequence is a so-called Ipatov code.
- Ipatov codes have the useful channel sounding property that they have perfect periodic auto-correlation ("PPAC"), i.e., if one of these codes is transmitted repeatedly back to back, then correlating it with a copy of itself results in a Kronecker delta function (see, https://en.wikipedia.org/wiki/Kronecker_delta).
- the vulnerability identified above can be removed by changing the symbol at every symbol transition during the Sync sequence to one of the very large number of possible Ipatov codes, but this destroys the PPAC nature of these codes because they only have perfect auto -correlation if the same code is sent repeatedly back to back. However, if the code is changed each time a new symbol is sent, then the auto-correlation function has sidelobes which do not cancel out.
- the method comprises a first process and a second process.
- the first process pseudo-randomly generates, as a function of a seed, a first code set of m codes.
- the second process further comprises both transmitter functions and receiver functions.
- the transmitter receives from the first process a transmitter code set comprising the first code set; and then transmits the transmitter code set.
- the receiver first receives from the first process a receiver code set comprising the first code set; and then receives a channel-distorted form of the transmitter code set.
- the receiver then develops a set of m channel correlations by correlating each code of the receiver code set with the corresponding code of the channel- distorted form of the transmitter code set; and, finally, develops a channel estimate by accumulating the set of m channel correlations.
- the first process receives the seed from a seed delivery facility.
- the first process pseudo-randomly generates, as a function of a seed, a first code set of m codes, wherein the first code set is substantially group complementary.
- the first process is iterative, and, in each loop, the first process first develops a set of m metric correlations by auto-correlating each of the m codes comprising the first code set; the process then develops a metric by accumulating at least a selected portion of the m metric correlations, the metric being selected to measure the degree to which the first code set is group complementary; and, finally, if the metric indicates that the first code set is not substantially group complementary, the process selectively modifies the first code set before looping.
- an iterative third process wherein, in each loop, this third process first develops a set of m metric correlations by cross-correlating each of the m codes comprising the first code set with a respective one of the codes comprising the second code set; this process then develops a metric by accumulating at least a selected portion of the m metric correlations, the metric being selected to measure the degree to which the first code set is group complementary; and, finally, if the metric indicates that the first code set is not substantially group complementary, this process selectively modifies the first code set before looping.
- the transmitter in the second process, is adapted to transmit at least one of the transmitted codes followed by a selected period of silence.
- a wireless communication system is configured to perform our method for secure channel sounding.
- the methods of our invention may be embodied in computer readable code on a suitable non-transitory computer readable medium such that when a processor executes the computer readable code, the processor executes the respective method.
- the methods of our invention may be embodied in non-transitory computer readable code on a suitable computer readable medium such that when a processor executes the computer readable code, the processor executes the respective method.
- FIG. 1 illustrates, in block diagram form, one embodiment of a receiver adapted for use in a UWB communication system, the receiver comprising both transmission and reception facilities;
- FIG. 2 illustrates, in block diagram form, one embodiment of a receiver facility adapted to practice our invention
- FIG. 3 illustrates, in wave diagram form, of a selected Golay Complementary Sequence ("GCS");
- Fig. 4 illustrates, in wave diagram form, the auto -correlation of the GCS of Fig.
- Fig. 5 illustrates, in wave diagram form, the auto -correlation of the complement of the GCS of Fig. 3;
- Fig. 6 illustrates, in flow diagram form, our CLASS method of channel sounding;
- FIG. 7 illustrates, in flow diagram form, our LCSSS method of channel sounding
- Fig. 8 illustrates, in wave diagram form, a purely random set of codes correlated with itself, wherein each code comprises 64 symbols;
- Fig. 9 illustrates, in wave diagram form, a purely random set of codes correlated with itself, wherein each code comprises 512 symbols;
- Fig. 10 illustrates, in wave diagram form, one exemplary code-set generated in accordance with our CLASS method correlated with itself, wherein each code comprises 64 symbols;
- Fig. 11 illustrates, in wave diagram form, one exemplary code-set generated in accordance with our LCSSS method correlated with itself, wherein each code comprises 64 symbols;
- Fig. 12 illustrates, in wave diagram form, the sum of auto -correlations of the CLASS code-set used to generate the waveform illustrated in Fig. 10;
- Fig. 13 illustrates, in wave diagram form, the sum of cross-correlations of the LCSSS transmit and receive code-sets used to generate the waveform illustrated in Fig.
- Fig. 14 comprising Fig. 14A, Fig. 14B and Fig. 14C, illustrates, in flow diagram form, our method for selectively generating either the CLASS or LCSSS code-sets;
- Fig. 15 illustrates, in flow diagram form, the general flow of our several methods for channel sounding.
- a GCP comprises a pair of GCSs.
- GCS zero-padded GCS
- Fig. 4 we show the auto-correlation of GCS t
- Fig. 5 we show the autocorrelation of GCSt .
- the side lobes of the auto-correlation of GCS 1 are exactly opposite the side lobes of the auto-correlation of GCS 1 .
- GCP Synchronization GCP Synchronization
- the GCP Sync consists of multiple pairs of GCSs.
- the two GCSs in each GCP do not necessarily have to follow each other directly.
- the receiver adds the correlation of the incoming signal with the code it expects to see at that time into its channel estimate, then the order doesn't matter.
- the particular pairs that are sent may be chosen in a pseudo-random way from a large set of possible codes.
- the methodology employed to develop each GCP Sync code-set must be known to both the transmitter and the receiver. Various known means may be implemented to accomplish this synchronization function in particular instantiations.
- this approach substantially guarantees that the autocorrelation sidelobes in our channel estimate have automatically cancelled each other out. Because of this perfect sidelobe cancellation property, the number of symbols and the length of the GCP Sync can be much shorter than if we had used either random codes or Ipatov codes.
- the channel will tend to lengthen the delay spread of each transmitted code. For example, if the code was 1 microsecond long and the channel had a delay spread of 100ns, then the energy arriving at the receiver due to one code would last for 1.1 microseconds. For this reason, a gap, i.e., a period of transmitter silence, selected to be at least equal to the expected delay spread in the channel could be inserted between one or more, and, perhaps all, of the transmitted symbols. In this way, the energy from each code symbol will arrive separately at the receiver. Of course, this will be a noisy estimate due to noise in the channel and quantisation noise in our receiver, but if we repeat this process with many different pairs of codes, we will still tend to develop a good channel estimate.
- BCPs binary complementary sequences
- TCPs would work just as well.
- Multilevel complementary sequences have been found and would also work.
- Complex QAM complementary sequences have also been discovered and any of these could also be used.
- CLASS_1. Generate a base code-set, CTM, of m pseudo-random binary codes each having a predetermined length, n, with exactly one code for each symbol in the transmitted sequence;
- CLASS_4. Determine the sum of the squares, SSSA base , of the SA m ;
- CLASS_5.1.1 Create a trial code-set, CTM, by reversing the sign of bit Cy ;
- the final code-set, CTM comprises the CLASS code-set that the transmitter will transmit to the receiver. Since both our transmitter and our receiver perform exactly the same process, using the same pseudo-random seed, each generates exactly the same final code- set, CTM. Thus, when the receiver correlates the received CLASS sequence with the internally-generated CLASS code-set, the resulting channel estimate exhibits relatively low sidelobe distortion. Indeed, by minimizing SSSA, our method ensures that the power in the sum of the sidelobes of the auto-correlation functions of the generated code-set is low, thereby tending to minimize sidelobe distortion.
- Fig. 1 1 For example, you can see in Fig. 1 1 that the precursor sidelobes to the left have been reduced sufficiently to reveal the true first path, whereas, on the right, you can see that the postcursor sidelobes, which have not been optimised, have not been sufficiently reduced; it would thus be difficult to distinguish a first path that was 30dBs down on the main paths.
- Step 5 If a second pass through the codes is done, i.e., Step 5 is repeated, then we have found that fewer bits need to be examined.
- An advantage of doing this second pass is that the fewer bits that are changed, the less predictable is the whole sequence and hence the sequence is inherently less vulnerable to attack.
- Step 5.1.1 does not need to be repeated in brute force every time.
- the auto-correlation function of each code can be stored and subtracted before adding in the auto -correlation of the changed code.
- the auto-correlation of the changed code can be developed by calculating the effect of reversing just one bit on the auto-correlation rather than recalculating the entire auto -correlation again.
- the SSSA of all the previous codes up to and including this one, could be used instead of the SSSA of all of the codes. This generally results in worse overall performance for the same number of bit reversal operations. However, lost performance can be recovered if more (2 to 4x) bit reversals were used.
- This approach also has some advantages because the auto-correlation accumulator can use fewer bits of precision, and because the algorithm can be executed without initial latency.
- the number of tested bit-inversions can be variable. For example, initial codes could be optimized with fewer test inversions, and only the final few codes could be executed with much higher bit inversion count. This is because intermediate sidelobe metrics generated after several codes is irrelevant. Only the final sidelobe metric, i.e., after all the codes have been processed, determines final performance. The intent here is to save processing power/time while making sure that final metric is as low as possible. It is also possible, for additional security, to leave some of the symbols unchanged at all, and only execute the sidelobe metric minimization algorithm on a subset of symbols. This approach allows some of the symbols to be completely random so that an attacker has no clues that they have been altered.
- Another variant of our method involves not doing any bit-inversions, but instead generating a few candidate pseudo-random codes and selecting the one which best minimizes the sidelobe metric. For example for each required code, 4 code candidates could be generated. Then, 4 candidate auto -correlation functions would be added to the auto -correlation functions of other codes, and the candidate which best complements other codes, would be selected.
- the CLASS sequence can be sent any time after the SFD; it need not be sent only after the DATA.
- codes can be sent in any order once the code-set has been generated. For security reasons, it may be beneficial to send the codes in a different order than the order in which they were generated. So long as both the transmitter and the receiver know the ordering, they will stay in sync.
- Per-group minimization of sidelobes could open up the possibility of an attack based on the attacker predicting certain sequences of bits (especially late bits in the last symbols). This is possible because the attacker knows that the final sidelobe metric (after most symbols have been transmitted) will be very low, and therefore could calculate bit sequences which similarly minimize the sidelobe metric of the previous symbols. Such bit sequences might be similar to the actual transmitted bits. To prevent such possibility, we might add a number of dummy symbols at selected positions within the transmitted code sequence. Such dummy symbols (which could be just random bit sequences) would not have their sidelobe metric minimized, and would be ignored by the genuine receiver. However, they would add overall sidelobes to the set of transmitted symbols.
- the existing pseudo-random code generator could be employed pseudo-randomly to generate a code index comprising a schedule according to which the valid and dummy symbols would be transmitted and received. Since both the transmitter and the receiver would be using identical code generators, then the receiver would know from the common code index which of the received codes it should consider valid, and which ones are dummy and may be ignored.
- the code generator may, from time to time, change both the length and internal sequence of the code indexes; upon receipt, the transmitter and receiver can initiate use of the new code index, either immediately or after some pre-determined delay. It would also be possible for the code generator to develop and schedule multiple code indexes for use with a single code set, thereby adding further pseudo-randomness to the transmitted code sequence.
- LCSSS low cross-correlation sidelobe sum set
- LCSSS_1 Generate a base code-set, CTM, of m pseudo-random binary codes each having a predetermined length, n, with exactly one code for each symbol in the transmitted sequence;
- LCSSS_2. Transmit as the LCSSS the base code-set, CTM; and, finally, in the receiver:
- LCSSS_3. Receive the transmitted code-set, CTM;
- pre-cursors comprise the cross-correlation values that precede the center of the cross-correlation function.
- LCSSS Determine the sum of the squares, SSPSC base , of the SX m ;
- LCSSS_7.1.1 .1 Create a trial code-set, CTM, by reversing the sign of bit Cy ;
- the resulting channel estimate exhibits relatively low sidelobe distortion. Indeed, by minimizing SSPSC, our method ensures that the power in the sum of the pre-cursors of the cross-correlation functions of the generated code-set is low, thereby tending to minimize sidelobe distortion. Using our LCSSS approach, the first path of the channel estimate can be found without the usual sidelobe distortion.
- Step 3.5.1 the resultant set of codes can have sufficiently low auto-correlation sidelobes, i.e., a sufficiently low SSSA. If not all bits are being examined, the bits at the starts and ends of the code have the most impact on the size of the sidelobes. This is because modification of central bits in the code does not affect the entire auto-correlation function, but only the central part of it, whereas the end bits affect the whole auto -correlation function. If a second pass through the codes is done, i.e., Step 5 is repeated, then we have found that fewer bits need to be examined.
- Step 3.5.1.1 does not need to be repeated in brute force every time.
- the auto -correlation function of each code can be stored and subtracted before adding in the auto-correlation of the changed code.
- the auto-correlation of the changed code can be developed by calculating the effect of reversing just one bit on the auto-correlation rather than re-calculating the entire auto-correlation again.
- this particular approach will prove particularly suitable for optimal hardware implementation.
- the SSPSC of all the previous codes up to and including this one, could be used instead of the SSPSC of all of the codes. This generally results in worse overall performance for the same number of bit reversal operations.
- the LCSSS code-set does not need to be sent after the DATA, it can be sent any time after the SFD.
- One theoretically possible attack approach could involve the attacker trying to predict how the receiver would change the transmitted random bits for correlation in its receiver, and then transmitting those predicted bits earlier. Such prediction attempts could be based on the analysis of sidelobes, knowing that the receiver's LCSSS algorithm would try to minimize those. Therefore, to further enhance security, the transmitter could add a number of dummy symbols to the transmission. Such dummy symbols (which could be just random bit sequences) would not be processed by the receiver LCSSS algorithm (which is complementing sidelobes of the valid symbols); instead they would be ignored. However, these dummy symbols would add additional sidelobes to the set of transmitted symbols.
- One advantage of the LCSSS process over the CLASS process is that the transmitted sequence is completely random with no modifications. Like the CLASS sequence, the LCSSS sequence has very low precursor sidelobes and so gives an almost distortion free first path estimate; but the CLASS sequence has the disadvantage that some or all of the transmitted codes have been modified from their original random states to make codes with low auto-correlation sidelobe sums. An attacker might be able to exploit this property of the modified code-set to guess some of the bits, and thus successfully pretend he is nearer than he actually is by transmitting these guessed bits so that they arrive earlier than the real bits.
- bit-inversion is one technique that may be effectively employed for seeking better code sequences.
- this technique will be numerically inefficient if it requires recalculation of all auto -correlations for every candidate bit- inversion.
- groupSize 64 ; % split preamble into N groups, each 64-symbols
- TXC txCodes (m, : ) ;
- RXC rxCodes (m, : ) ;
- Method 1 A purely random set of codes, each comprising 64 symbols, correlated with itself, as shown in Fig. 8;
- Method 3 A CLASS set of code, each comprising 64 symbols, correlated with itself, as shown in Fig. 10;
- Method 4 An LCSSS set of random codes, each comprising 64 symbols, correlated with itself, as shown in Fig. 1 1.
- both the CLASS channel estimate (Method 4) and the LCSSS channel estimate (Method 4) are much better than the purely random channel estimates (Methods 1 and 2) despite being 8 times shorter.
- Fig. 12 we have shown the sum of auto-correlation functions of the exemplary CLASS sequence; and, in Fig. 13, we have shown the sum of the cross- correlations of the LCSSS transmit and receive sets.
- these waveforms demonstrate that both our CLASS and LCSSS methods effectively cancel the sidelobes resulting from insertion of the random codes. Further, when compared to, say, the 512 codes of Method 2, both of our new methods reduce both power consumption and airtime.
- a fourth embodiment we perform channel estimation using a single flow that selectively generates either CLASS and LCSSS. As in our CLASS and LCSSS approaches, we append the selected result to the end of the standard 802.15.4a frame. In accordance with this embodiment, we develop a selected one of the CLASS or the LCSSS by performing the following steps (see, Fig. 14): in both transmitter and receiver:
- LCSSS l Generate a base codeset, C z of 'z' pseudo-random binary codes each having a predetermined length, n, with exactly one code for each symbol in the transmitted sequence; let the j ' th bit of the z ' th code of C z be denoted Cj z ;
- precursors comprise the first n-1 values of the auto/cross-correlation function.
- LCASS_5.1.1 Create a trial code-set, C m , by reversing the sign of bit y of px .
- LCASS_5.1.2 Determine a SSSA trial of £TM and LCASS 5.1.3. If SSSA trial is smaller than SSSA base , then replace the base code-set C m , with the trial code-set C m ; update SSSA base ;
- the total number of transmitted codes will be (m+d), where 'd' are a predetermined number of additional codes, ignored by the receiver; create a vector specifying order of (m+d) codes transmission, T m+d , where T m+d may be either consecutive order 1 , 2, (m+d) or random permutation of the integers from 1 to (m+d);
- LCSSS 7. (optional) Generate a set of additional codes, D d , of 'd' pseudo-random binary codes, each having a predetermined length, n, with exactly one code for each symbol in the transmitted sequence;
- LCSSS_8 (optional) Using additional code-sets, D d , form an updated base code-set C m+d comprising 'm' previously generated codes and the 'd' new random codes;
- LCSSS_9. Transmit the base code-set, C m+d in specific order using T m+d as indexes to select the code transmission order;
- LCSSS_1 1.1.1. Create a trial code-set, CX m , by reversing the sign of bit y of CX* m ;
- LCSSS_1 1.1.3. If SSSX tria i is smaller than SSSX base , then replace the base code-set CX m with the trial code-set CX m ; and replace SSSX base with SSSX tria i ,
- LCSSS_12. Receive an estimate of the transmitted code-set, C m+d ; knowing transmission code order T m+d , identify which code is currently going to be received. If it's going to be one of the valid m codes, then program the receiver correlator with appropriate CX m code, otherwise ignore one of the d random codes belonging to the D d code-set; and
- LCSSS_13 Develop a channel estimate by correlating the code-set CX m with C m .
- a fifth embodiment we perform channel estimation using a parallel flow comprising a code generation process and a channel sounding process.
- code generation process we selectively instantiate an identical pattern generation facility in both the transmitter and receiver.
- Each of these facilities is selectively adapted to receive a seed; and to generate, as a function of the seed, a base codeset, C z , of z pseudo-random codes, each of length n bits, wherein C Comprises the j ' th bit of the zth code of C z .
- a mechanism is provided to coordinate the transmitter and the receiver so that an identical seed is provided to the respective code generation facility, thus assuring that the identical sequence of codes is generated in both the transmitter and the receiver.
- the transmitter may be adapted to develop the seed and thereafter to transmit that seed to the receiver using a conventional packet transaction.
- a central control facility (not shown) may be adapted to transfer the seed to both the transmitter and the receiver using know transfer mechanisms.
- both transmitter and receiver selectively provide the seed to the respective code generation facility, each seed having the same selected value, and receive from the code generation facility the generated base codeset, C z ; for each of the C lz in the received base codeset C z , calculate a respective autocorrelation function, A, of length 2n-l , wherein X(C Z , C z ) comprises the set of cross-correlation functions, and Xj(C lz , C lz comprises the j ' th value of the zth code of4(C z ); from the set C z of z codes, select a subset E m of m codes, and calculate a function, SX(E m , E m ), each element of which comprises the sums of the corresponding values of a selected set of precursors in the set of cross- correlation functions as determined in accordance with a function:
- SSSXtriai ' an d receive an estimate of the transmitted code-set, C m ; develop a channel estimate by correlating the code-set CX m with C m .
- a sixth embodiment we again perform channel estimation using a parallel flow comprising a code generation process and a channel sounding process.
- this embodiment we provide a code generation process substantially the same as in our fifth embodiment.
- both transmitter and receiver selectively provide the seed to the respective code generation facility, each seed having the same selected value, and receive from the code generation facility the generated base codeset, C z ; for each of the C lz in the received base codeset C z , calculate a respective autocorrelation function, A, of length 2n-l , wherein A(C Z ) comprises the set of auto -correlation functions, and Ai(C lz ) comprises the j ' th value of the zth code of A(C Z ); from the set C z of z codes, select a subset E m of m codes, and calculate a function, SA(E m ), each element of which comprises the sums of the corresponding values of a selected set of precursors in the set of autocorrelation functions as determined in accordance with a function:
- each of our channel sounding embodiments provides a generic code generation process substantially the same as in our fifth embodiment, above, and a specific channel sounding process.
- both the transmitter and the receiver selectively provide the seed to the respective code generation facility, each seed having the same selected value, and receive from the code generation facility respective transmitter and receiver copies of the generated base codeset.
- pseudo-random code generation facility Although there are a number of known, prior art pseudo-random code generation facilities available, we prefer to use one of the cryptographically secure pseudo-random generator facilities described in, e.g., the Federal Information Processing Standard Publication FIPS Pub 186-4, or the National Institute of Standards and Technology Special Publication NIST SP 800-90A Rev. 1. As illustrated in Fig. 15, the pseudo -random code generation process can be implemented as identical instances in both the transmitter and the receiver; or, alternatively, as a single shared instance accessible by both the transmitter and the receiver.
- the transmitter is adapted to transmit the transmitter codeset received from the code generation facility.
- the transmitter is optionally adapted selectively to modify the transmitter codeset before transmission.
- the receiver is adapted selectively to modify the receiver codeset received from the code generation facility. Then, the respective receiver receives a channel-distorted form of the transmitter codeset, which, for convenience, we shall hereinafter refer to as an "estimate". Finally, the receiver develops a channel estimate by correlating the received estimate with the receiver-modified base codeset. In those embodiments in which the transmitter transmits a transmitter-modified base codeset, the receiver develops the channel estimate by correlating the received estimate of the transmitter-modified base codeset with the receiver-modified base codeset.
- A [Ai ::Ai] where the symbol "::" represents the concatenation operation.
- code pulse grid we have found that some code pulse grids are better than others for avoiding pulse collisions between the first path and its echo.
- code pulse grid we mean a template that defines where pulses should be present and where they should be absent.
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Priority Applications (7)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| JP2018541352A JP7209540B2 (en) | 2016-02-04 | 2017-02-06 | Safe channel sounding |
| KR1020187025393A KR102550919B1 (en) | 2016-02-04 | 2017-02-06 | Secure Channel Sounding |
| KR1020237022169A KR20230104998A (en) | 2016-02-04 | 2017-02-06 | Secure channel sounding |
| CN201780009997.9A CN108886380B (en) | 2016-02-04 | 2017-02-06 | Method and system for secure channel estimation |
| CN202110694999.4A CN113347126B (en) | 2016-02-04 | 2017-02-06 | Secure channel estimation method and system |
| EP17703425.3A EP3411957B1 (en) | 2016-02-04 | 2017-02-06 | Secure channel sounding |
| EP20157734.3A EP3683970B1 (en) | 2016-02-04 | 2017-02-06 | Secure channel sounding |
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| Application Number | Priority Date | Filing Date | Title |
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| US201662291407P | 2016-02-04 | 2016-02-04 | |
| US62/291,407 | 2016-02-04 | ||
| US201662291605P | 2016-02-05 | 2016-02-05 | |
| US62/291,605 | 2016-02-05 | ||
| US201662300781P | 2016-02-27 | 2016-02-27 | |
| US62/300,781 | 2016-02-27 | ||
| US201662370440P | 2016-08-03 | 2016-08-03 | |
| US62/370,440 | 2016-08-03 | ||
| US201662375788P | 2016-08-16 | 2016-08-16 | |
| US62/375,788 | 2016-08-16 | ||
| US201662379168P | 2016-08-24 | 2016-08-24 | |
| US62/379,168 | 2016-08-24 |
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| WO2020249644A1 (en) | 2019-06-13 | 2020-12-17 | Decawave Ltd | Secure ultra wide band ranging |
| US11681034B2 (en) | 2017-12-08 | 2023-06-20 | DecaWave, Ltd. | Ranging with simultaneous frames |
| WO2023236805A1 (en) * | 2022-06-10 | 2023-12-14 | 华为技术有限公司 | Information interaction method and related apparatus |
| JP2024001147A (en) * | 2018-03-06 | 2024-01-09 | デカウェーブ リミテッド | Improved ultra-wideband communication system |
| US20250126474A1 (en) * | 2017-09-28 | 2025-04-17 | Apple Inc. | Secure Channel Estimation Architecture |
| US20250168627A1 (en) * | 2020-10-15 | 2025-05-22 | Intel Corporation | Reduction of time-domain correlation for secure sounding signal |
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| JP7366792B2 (en) * | 2020-02-14 | 2023-10-23 | 株式会社東海理化電機製作所 | Communication device, information processing method, and program |
| JP7402709B2 (en) * | 2020-02-14 | 2023-12-21 | 株式会社東海理化電機製作所 | Communication device, information processing method, and program |
| JP7366793B2 (en) * | 2020-02-14 | 2023-10-23 | 株式会社東海理化電機製作所 | Communication device, information processing method, and program |
| JP7748978B2 (en) * | 2021-02-15 | 2025-10-03 | 古野電気株式会社 | Timing detection device and timing detection method |
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Also Published As
| Publication number | Publication date |
|---|---|
| EP3411957B1 (en) | 2023-09-13 |
| CN108886380A (en) | 2018-11-23 |
| KR102550919B1 (en) | 2023-07-05 |
| KR20180111910A (en) | 2018-10-11 |
| JP7209540B2 (en) | 2023-01-20 |
| JP2019509668A (en) | 2019-04-04 |
| EP3683970B1 (en) | 2023-08-23 |
| EP3683970A1 (en) | 2020-07-22 |
| EP3411957A1 (en) | 2018-12-12 |
| CN113347126B (en) | 2024-02-23 |
| CN108886380B (en) | 2021-07-13 |
| CN113347126A (en) | 2021-09-03 |
| KR20230104998A (en) | 2023-07-11 |
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