ECMA 401-2011 Close Capacitive Coupling Communication Physical Layer (CCCC PHY)《紧密电容耦合通信物理层(CCCC PHY)(第1版)》.pdf
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1、 Reference numberECMA-123:2009Ecma International 2009ECMA-401 1stEdition / December 2011 Close Capacitive Coupling Communication Physical Layer (CCCC PHY) COPYRIGHT PROTECTED DOCUMENT Ecma International 2011 Ecma International 2011 iContents Page 1 Scope 1 2 Conformance . 1 3 Normative references 1
2、4 Terms, definitions and acronyms 1 5 Conventions and notations 2 5.1 Representation of numbers 2 5.2 Names . 2 6 General . 2 7 Reference plate-electrode assembly . 4 8 PHY parameters . 5 8.1 Voltage conditions 5 8.2 Bit representation 6 8.2.1 Bit duration 6 8.2.2 Bit encoding . 6 8.3 Transmission .
3、 6 8.4 DC balance of a P-PDU . 6 8.5 Reception of a P-PDU 7 9 P-PDU 7 9.1 Structure . 7 9.2 Space 7 9.3 Level adjust 7 9.4 Pre-amble and Sync 7 9.5 Attribute 8 9.6 TDS number . 8 9.7 Sequence number . 9 9.7.1 Initial and range . 9 9.7.2 Acknowledgement . 9 9.8 Payload . 9 9.9 CRC . 9 9.10 Post-amble
4、 . 9 9.11 Null P-PDU 9 9.12 Data P-PDU . 9 10 PHY Data Unit (P-DU) 9 11 Segmentation and Reassembly . 9 12 TDS 10 13 LBT and synchronisation . 11 13.1 LBT 11 13.2 Synchronisation 11 14 Association procedure 11 15 Communication . 13 15.1 Full duplex communication 13 15.2 Broadcast communication . 15
5、Annex A (normative) Tests 17 A.1 Reference plate-electrode test . 17 ii Ecma International 2011A.2 P-PDU DC balance test 18 A.3 Protocol test .18 A.3.1 Test setup .18 A.3.2 Test scenario 1 .19 A.3.3 Test scenario 2 .19 A.3.4 Test scenario 3 .19 A.3.5 Test scenario 4 .19 A.3.6 Test scenario 5 .20 A.3
6、.7 Test scenario 6 .20 A.3.8 Test scenario 7 .20 A.3.9 Test scenario 8 .20 Ecma International 2011 iiiIntroduction This Standard specifies the PHY protocol and for wireless communication between the Close Capacitive Coupling Communication (CCCC) devices. This Ecma Standard has been adopted by the Ge
7、neral Assembly of December 2011. iv Ecma International 2011“COPYRIGHT NOTICE This document may be copied, published and distributed to others, and certain derivative works of it may be prepared, copied, published, and distributed, in whole or in part, provided that the above copyright notice and thi
8、s Copyright License and Disclaimer are included on all such copies and derivative works. The only derivative works that are permissible under this Copyright License and Disclaimer are: (i) works which incorporate all or portion of this document for the purpose of providing commentary or explanation
9、(such as an annotated version of the document), (ii) works which incorporate all or portion of this document for the purpose of incorporating features that provide accessibility, (iii) translations of this document into languages other than English and into different formats and (iv) works by making
10、 use of this specification in standard conformant products by implementing (e.g. by copy and paste wholly or partly) the functionality therein. However, the content of this document itself may not be modified in any way, including by removing the copyright notice or references to Ecma International,
11、 except as required to translate it into languages other than English or into a different format. The official version of an Ecma International document is the English language version on the Ecma International website. In the event of discrepancies between a translated version and the official vers
12、ion, the official version shall govern. The limited permissions granted above are perpetual and will not be revoked by Ecma International or its successors or assigns. This document and the information contained herein is provided on an “AS IS“ basis and ECMA INTERNATIONAL DISCLAIMS ALL WARRANTIES,
13、EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO ANY WARRANTY THAT THE USE OF THE INFORMATION HEREIN WILL NOT INFRINGE ANY OWNERSHIP RIGHTS OR ANY IMPLIED WARRANTIES OF MERCHANTABILITY OR FITNESS FOR A PARTICULAR PURPOSE.“ Close Capacitive Coupling Communication Physical Layer (CCCC PHY) 1 Scope Thi
14、s Standard specifies the CCCC PHY for Full duplex and Broadcast communication in time slots on frequency division multiplex channels. 2 Conformance Conforming entities implement: both Talker and Listener, listen before talk (LBT) for both Talker and Listener, the capability to execute association on
15、 FDC2 and to communicate on (FDC0 and FDC1), (FDC3 and FDC4), or (FDC0, FDC1, FDC3 and FDC4), the capability for Talkers and Listeners to use any of the 8 TDS on a FDC, both Full duplex and Broadcast communication, and pass the tests in Annex A as specified herein. 3 Normative references The followi
16、ng referenced documents are indispensable for the application of this document. For dated references, only the edition cited applies. For undated references, the latest edition of the referenced document (including any amendments) applies. ISO/IEC 7498-1:1994, Information technology Open Systems Int
17、erconnection Basic Reference Model: The Basic Model ITU-T V.41, Data communication over the telephone network Code-independent error-control system 4 Terms, definitions and acronyms For the purposes of this document, the following terms and definitions apply, in addition to those defined in ISO/IEC
18、7498-1:1994. CRC Cyclic Redundancy Check D Divisor DUT Device Under Test FDC Frequency Division Channel LBT Listen Before Talk Ecma International 2011 1LEN Length Listener entity that does not initiate communication P-DU PHY Data Unit P-PDU PHY PDU PHY Physical layer RFU Reserved for Future Use TDS
19、Time Division Slot Talker entity that initiates communication 5 Conventions and notations 5.1 Representation of numbers The following conventions and notations apply in this document. - A sequence of characters of A, B, C”, D, E or F and decimal digits in parentheses represent numbers in hexadecimal
20、 notation unless followed by a b character see next. - Numbers in binary notation and bit patterns are represented by a sequence of 0 and 1 digits or X characters in parentheses followed by a b character, e.g. (0X11X010)b. Where X indicates that the setting of a bit is not specified, and the leftmos
21、t bit is the most significant bit unless the sequence is a bit pattern. 5.2 Names The names of basic elements, e.g. specific fields, are written with a capital initial letter. 6 General The protocol architecture of CCCC follows ISO/IEC 7498-1 as the basic model. CCCC devices communicate through medi
22、ators, such as conductive and dielectric materials. Plate-electrodes for CCCC device E and F are equivalent to the reference plate-electrode assembly. The plate-electrode A faces to the imaginary point at infinity and the plate-electrode B faces to the mediator. The plate-electrode C faces to the me
23、diator and the plate-electrode D faces to the imaginary point at infinity. See Figure 1. Figure 2 is the equivalent circuit of Figure 1. The voltage of X is the potential of the point at infinity. The voltage of Y is the potential of the point at infinity. It is deemed that the potential of X and Y
24、is identical. Therefore, X and Y is imaginary short. Consequently, device E and F is able to send and receive signal. Regarding the information transfers from CCCC device E to F, the device E changes the voltage between plate-electrode A and B. It changes the electric charge between plate-electrode
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