CEA-516-1988 Joint EIA CVCC Recommended Practice for Teletext North American Basic Teletext Specification (NABTS)《联合EIA cvcc的图文电视推荐作法:北美基本大利规格(NABTS)》.pdf
《CEA-516-1988 Joint EIA CVCC Recommended Practice for Teletext North American Basic Teletext Specification (NABTS)《联合EIA cvcc的图文电视推荐作法:北美基本大利规格(NABTS)》.pdf》由会员分享,可在线阅读,更多相关《CEA-516-1988 Joint EIA CVCC Recommended Practice for Teletext North American Basic Teletext Specification (NABTS)《联合EIA cvcc的图文电视推荐作法:北美基本大利规格(NABTS)》.pdf(90页珍藏版)》请在麦多课文档分享上搜索。
1、 CEA Standard Joint EIA/CVCC Recommended Practice for Teletext: North American Basic Teletext Specification (NABTS) CEA-516 S-2013 May 1988 NOTICE Consumer Electronics Association (CEA) Standards, Bulletins and other technical publications are designed to serve the public interest through eliminatin
2、g misunderstandings between manufacturers and purchasers, facilitating interchangeability and improvement of products, and assisting the purchaser in selecting and obtaining with minimum delay the proper product for his particular need. Existence of such Standards, Bulletins and other technical publ
3、ications shall not in any respect preclude any member or nonmember of CEA from manufacturing or selling products not conforming to such Standards, Bulletins or other technical publications, nor shall the existence of such Standards, Bulletins and other technical publications preclude their voluntary
4、 use by those other than CEA members, whether the standard is to be used either domestically or internationally. Standards, Bulletins and other technical publications are adopted by CEA in accordance with the American National Standards Institute (ANSI) patent policy. By such action, CEA does not as
5、sume any liability to any patent owner, nor does it assume any obligation whatever to parties adopting the Standard, Bulletin or other technical publication. This document does not purport to address all safety problems associated with its use or all applicable regulatory requirements. It is the res
6、ponsibility of the user of this document to establish appropriate safety and health practices and to determine the applicability of regulatory limitations before its use. This document is copyrighted by the Consumer Electronics Association (CEA) and may not be reproduced, in whole or part, without w
7、ritten permission. Federal copyright law prohibits unauthorized reproduction of this document by any means. Organizations may obtain permission to reproduce a limited number of copies by entering into a license agreement. Requests to reproduce text, data, charts, figures or other material should be
8、made to CEA. (Formulated under the cognizance of the CEA R4.3 Television Data Systems Subcommittee.) Published by CONSUMER ELECTRONICS ASSOCIATION 2013 Technology the Packet Prefix, the Data Block and the optional Suffix. The structure of the Data Packet is illustrated in Figure 6. 3.2 PACKET PREFIX
9、 3.2.1 Structure of the Packet Prefix The Packet Prefix shall immediately follow the Synchronization Sequence specified in 2.2. The Packet Pref1x consists of five bytes in the following order: Pl,P2,P3,CI,PS where Pl,P2,P3 = Packet Address bytes CI = Continuity Index Byte PS = Packet Structure Byte
10、3.2.2 Coding of the Packet Prefix Bytes All the bytes of the Packet Prefix are Hamming encoded. In these bytes, bits 7, 5, 3 and 1 provide protection for the informat1on bits 8, 6, 4. and 2, and also maintain odd parity over the Hamming byte. The Hamming encoding and decoding for each byte are shown
11、 in Figure 7. This method of data protection allows the correction of all single-bit errors, and the detection of all two-bit errors in each byte. 3.2.3 Packet Address (P) The first three bytes of the Packet Prefix, PI, P2 and P3, define the Packet Address, P, with PI being the most significant byte
12、. Each byte contains four information bits, which define a hexadecimal digit (0 through F) .There are 4096 possible Packet Addresses. The Packet Address is identical to the Data Channel number. These Packet Addresses may be used by more than one service and are not sufficient as a means of identifyi
13、ng teletext data, see 4.2.2. 3.2.4 Continuity Index (CI) The Continuity Index is the fourth Hamming-encoded byte of the Packet Prefix. The value or number of the continuity Index sequences from 0 to 15. It increments by one each time a Data Packet is transmitted within a given Data channel unless th
14、e Data Packet is a Synchronizing Packet as def1ned in 3.2.5. If the Data Packet is a synchronizing Packet, then the Continuity Index may not be related to the continuity Index of the preceding Data Packet in the Data Channel. Page 6 CEA 516 The Continuity Index is used to detect the loss of a Data P
15、acket in a Data Group due to transmission or other errors. 3.2.5 Packet Structure Byte (PS The Packet Structure Byte is the fifth and last byte of the Packet Prefix. This byte specifies the type of Data Packet, whether the Data Packet is full, and the length of the Suffix. Bit b2 specifies the type
16、of Data Packet. Specifically, b2=1 indicates that the packet is a Synchronizing Packet, which starts a Data Group, see 4.1; and b2=O indicates that e packet is a Standard Packet, which is part of a Data Group. Bit b4 specifies whether the Data Packet is full. Specifically, b4=O indicates that the Da
17、ta Packet is full of useful data, and b4=1 indicates that the Data Packet is not completely full of useful data. The last Data Packet in a Data Group is not necessarily indicated by b4 = 1. Bits b6 and b8 specify the length of the suffix, which is described in 3.4. 3.3 DATA BLOCK The Data Block cons
18、ists of the group of bytes that follow the Packet Prefix and precede the Suffix, if any. The Data Block may be full or not full of useful data in accordance with bit b4 of the Packet Structure Byte specified in 3.2.5. The length of the Data Block depends on the length of the Suffix, and can have val
19、ues of zero, 26, 27 or 28 bytes. All bytes within Data Blocks belonging to Data Group Type zero, see 4.2.2, shall be transmitted with odd parity. Some bytes are Hamming-encoded, as described in 3.2.2, and the Hamming code was chosen to provide odd parity. The other bytes shall be transmitted with th
20、e most significant bit, b8, in each byte used for odd parity. 3.4 SUFFIX The Suffix consists of one or more bytes, which may be used by the receiver to either detect or detect and correct transmission errors in the Data Block. The Suffix, if present, shall be placed at the end of the Data Packet fol
21、lowing the Data Block. Even if the Data Block is not full of useful information, the Suffix, if present, shall be positioned at the end of the Data Packet as shown in Figure 6. The length of the Suffix is indicated by bits b8 and b6 of the Packet Structure Byte (see 3.2.5). Note that the maximum len
22、gth of the Data Block is reduced by the number of Suffix bytes. The error-protection schemes specified by bits b8 and b6 of PS shall be: CEA 516 Page 7 b8 b6 length format 0 0 0 no Suffix 0 1 1 byte longitudinal parity- check byte 1 0 2 byte last byte shall be longitudinal parity check , second to l
23、ast byte is subject to further study. An error- protection byte based on a hamming code is under consideration.* 1 1 28 bytes reserved for future standardization. The longitudinal parity-check byte represents the parity of the Data Block plus Suffix, and it shall be odd. This means that the result o
24、f combining all bytes in the Data Block and Suffix, using EXCLUSIVE OR operat1ons, shall be a byte consisting of all ones. The longitudinal parity-check byte and the individual byte-parity bits together form a product code that allows correction of all single-bit errors and detection of all two-bit
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