Precoding-Codebook-Based Secure Uplink in LTE
US-2015049713-A1 · Feb 19, 2015 · US
US9844061B2 · US · B2
| Field | Value |
|---|---|
| Publication number | US-9844061-B2 |
| Application number | US-201514980493-A |
| Country | US |
| Kind code | B2 |
| Filing date | Dec 28, 2015 |
| Priority date | Feb 2, 2012 |
| Publication date | Dec 12, 2017 |
| Grant date | Dec 12, 2017 |
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In a wireless communication system, a secure communication link is provided by selecting a decoy data signal for transmission, generating a precoding matrix from a message to be sent; and multiplying the decoy data signal by the precoding matrix to produce a precoded signal. A clean version of the decoy data may be transmitted to an intended receiver. The receiver can distinguish between the information-bearing precoding and the natural random channel distortions of the transmission medium to decrypt the information, while an eavesdropper would find it difficult to distinguish between the natural channel distortions and information-bearing precoding in the signals it receives.
Opening claim text (preview).
The invention claimed is: 1. A non-transitory computer readable storage medium residing in a transmitter and having computer readable code thereon configured to: select a decoy data signal as a carrier signal; synthesize a precoding matrix comprising data-bearing synthesized multipath distortions; and precode the decoy data signal with the precoding matrix to produce a precoded data signal to be transmitted to an intended receiver. 2. The medium recited in claim 1 , further comprising instructions to communicate an undistorted version of the decoy data signal to the intended receiver. 3. The medium recited in claim 1 , wherein the synthesized multipath distortions are a function of channel measurements made by at least one of the transmitter and the intended receiver. 4. The medium recited in claim 1 , wherein the decoy data signal comprises at least one of a retransmitted signal, a data signal supplied by a third party, a predetermined data sequence that is locally reproduced by the intended receiver, a predetermined data sequence stored in memory at the intended receiver, a known training sequence, and a data sequence generated at the transmitter wherein a clean replica is supplied to the intended receiver via an alternative channel. 5. The medium recited in claim 1 , wherein the precoding matrix is configured to pre-equalize natural distortions in at least one channel between the transmitter and the intended receiver. 6. The medium recited in claim 1 , wherein the decoy data signal comprises an OFDM signal, and the medium further comprises instructions to perform a discrete Fourier transform to generate at least one of the decoy data signal and the precoded data signal. 7. The medium recited in claim 1 , further comprising instructions to multiplex the decoy data signal with the precoded data signal. 8. A non-transitory computer readable storage medium having computer readable code thereon configured to: receive from a multipath channel, a distorted signal comprising a decoy data signal precoded with a precoding matrix comprising synthesized data-bearing multipath distortions; receive a clean decoy data signal; and remove natural multipath distortions and the decoy data signal from the distorted signal for decoding transmitted data from the synthesized data-bearing multipath distortions. 9. The medium recited in claim 8 , wherein the clean decoy data signal comprises at least one of a decoy data signal received from a third-party network, a decoy data signal received from a different channel in a network from which the distorted signal is received, a known training sequence, a locally stored data sequence, and a locally generated data sequence. 10. The medium recited in claim 8 , wherein the precoding matrix is configured to equalize the natural multipath distortions such that the distorted signal comprises the decoy data signal and the synthesized data-bearing multipath distortions. 11. The medium recited in claim 8 , wherein the decoy data signal comprises an OFDM signal, and the medium further comprises instructions to perform a discrete Fourier transform of the distorted signal. 12. A transmitter, comprising: a distortion synthesizer configured to generate a precoding matrix from a data signal to be transmitted to an intended receiver; and a precoder configured to employ the precoding matrix to precode a decoy data signal to produce a precoded signal comprising information-bearing synthesized channel distortions. 13. The transmitter recited in claim 12 , further comprising at least one of a decoy data signal generator configured to produce the decoy data signal, and a receiver configured to receive a third-party transmission to employ as the decoy data signal. 14. The transmitter recited in claim 12 , wherein the distortion synthesizer configures the precoding matrix to pre-equalize natural distortions in at least one channel between the transmitter and the intended receiver. 15. The transmitter recited in claim 12 , further comprising a secondary transmitter configured to transmit a clean version of the decoy data signal to the intended receiver. 16. The transmitter recited in claim 12 , wherein the decoy data signal comprises an OFDM signal, and the precoder comprises a discrete Fourier transform configured to generate at least one of the decoy data signal and the precoded data signal. 17. A receiver, comprising: a receiving system configured to receive from a multipath channel, a distorted signal comprising a decoy data signal precoded with a precoding matrix comprising synthesized data-bearing multipath distortions; the receiving system further configured to receive a clean decoy data signal; and a decoding system configured to remove the decoy data signal and any natural multipath distortions from the distorted signal to decode data from the synthesized data-bearing multipath distortions. 18. The receiver recited in claim 17 , wherein the receiving system is configured for at least one of receiving the clean decoy data signal from a third-party network, receiving the clean decoy data signal from a different channel in a network from which the distorted signal is received, receiving the clean decoy data signal from a locally stored data sequence, and receiving the clean decoy data signal from a locally generated data sequence. 19. The receiver recited in claim 17 , wherein the decoding system comprises an equalizer configured to equalize the natural multipath distortions in the distorted signal. 20. The receiver recited in claim 17 , wherein at least one of the receiving system and the decoding system comprises a discrete Fourier transform. 21. The receiver recited in claim 17 , the decoding system is configured to employ an encryption key based on measurements of at least one channel between the receiver and an intended transmitter for decoding the synthesized data-bearing multipath distortions.
Access security · CPC title
using the level of interference · CPC title
based on channel impulse response [CIR] · CPC title
wherein the sending and receiving network entities apply symmetric encryption, i.e. same key used for encryption and decryption (cryptographic mechanisms or cryptographic arrangements for symmetric key encryption H04L9/06) · CPC title
Selection of precoding matrices or codebooks, e.g. using matrices antenna weighting · CPC title
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