EN 61120-3-1993 en Digital Audio Tape Recorder Reel to Reel System Using 6 3 mm Magnetic Tape for Professional Use Part 3 Format B《专业用6 3 mm磁带的数字音频盘式磁带录音系统 第3部分 格式B(IEC 1120-3 1991.pdf
《EN 61120-3-1993 en Digital Audio Tape Recorder Reel to Reel System Using 6 3 mm Magnetic Tape for Professional Use Part 3 Format B《专业用6 3 mm磁带的数字音频盘式磁带录音系统 第3部分 格式B(IEC 1120-3 1991.pdf》由会员分享,可在线阅读,更多相关《EN 61120-3-1993 en Digital Audio Tape Recorder Reel to Reel System Using 6 3 mm Magnetic Tape for Professional Use Part 3 Format B《专业用6 3 mm磁带的数字音频盘式磁带录音系统 第3部分 格式B(IEC 1120-3 1991.pdf(20页珍藏版)》请在麦多课文档分享上搜索。
1、EUROPEAN STANDARD EUROPISCHE NORM NORME EUROPENNE EN 61120-3 October 1993 Dewripti IIS: Audio recording. dit;il recording, iiiagtietic tape, code, format, recording characteristics, recording track English version Digital audio tape recorder reel to reel system, using 6,3 mm magnetic tape, for profe
2、ssional use Part 3: Format B (IEC 1120-3: 1991) Systme denregistrement bande audionumrique, bobine bobine, utilisant une bande magntique de 6,3 mni, usage Partie 3: Format B Digitales lbnbandgert Spuleiisystein mit Magnetband 6,3 mm fiir Studioiendiigei Teil 3: Format B professionnel (IEC 1120-3: 19
3、91) (CE1 1120-3: 1991) This European Standard was approved by CEXELEC on 1003-09-22. CENELEC members are bound to comply with the CENXENELEC Internal Regula%ions which stipulate the conditions for giving this European Standard the status of a national standard withorit any alteration. I the output w
4、aveform is polarity-free. Rules for generating a pair of output waveform cells for each input bit are defined in the following formulation and bit to waveform transitions are defined in rules 1 and 2. * Formulation for bit to waveform modulation. - - _- T = EDGE. (X2.Xl)I + EDGE.(X2.Xl.Tl+X2.X1 .XO.
5、Tl.T2+X1 .X2.X9X4.T2T4.T6) Xi = INPUT BIT DELAYED BY i BIT CLOCKS TI = OUTPUT WAVEFORM CELL DELAYED BY CELL CLOCK EDGE: TIMING VARIABLE, O AT CENTER, 1 AT EDGE OF BIT INTERVAL * Rule 1 (center transitions): A data bit sequence of “01“ always leads to a center transition in the middle of the “1“ bit.
6、 - 3404583 0089715 9T3 Page 5 EN 61120-3 : 1993 Rule 1 in HDM-1 encoding: Center transitions Data bit sequence Transition sequence of HOM-1 cells caused by “O1 “ bit sequence: Resulting HDM-1 cells waveform: Alternate HDM-1 cells waveform: . 3 I :il. . .: I- : . . e. Thus, the presence in the data b
7、it sequence of a bit pattern “01“ always enforces a center transition in the cell sequence. * Rule 2 (edge transitions): Under the three conditions defined and illustrated below and relating to specified bit sequences together with the absence of edge or center transitions in the HDM-1-coded sequenc
8、e - as indicated by the symbol (*) - an edge transition is imposed in the cell sequence. In all other cases, no transition is generated. M 3404583 0089736 83T = Page 6 EN 61120-3 : 1993 Case 1: Data bit sequence cated by (*I: “lO“, no transitions in the cell sequence at the positions indi- Data bit
9、sequence Transition sequence of HDM-1 cells caused by “10“ bit sequence in the absence of transitioais at (*): Resulting HDM-1 cells waveform: Alternate HDM-1 cells waveform: Case 2: Every data sequence indicated by (*): Data bit sequence “1 1 1 “, no transitions Transition sequence of HDM-1 caused
10、by “1 11“ bit sequence in the absence of transitions at (*): Resulting HDM-1 cells waveform: Alternate HDM-1 cells waveform: ,. . * 11 o; . .-, .i . . in the cell sequence at the positions :1 1: 1: . I . Y *Ip I i. I = 3404583 0089717 776 Page 7 EN 61120-3 : 1993 . Case 3: Data sequence “OOOO“, no t
11、ransitions in the cell sequence at the positions indica- ted by (*): . Data bit sequence . Transition sequence of HDM-1 cells caused by “0000“ bit sequence in the absence of transitions at (): Resulting HDM-1 cells waveform: Alternate HDM-1 cells waveform: o: o i o: o: ? ? IE As a consequence of the
12、 rules of HDM-1 encoding, the minimum distance between tran- sitions in a HDM-1 signal is 3 cells. The maximum distance is 9 cells, and two consecutive transition distances cannot be both equal to 9 cells. This makes it possible to use two consecutive run lengths of 9 cells as a synchronization patt
13、ern which violates the rules of HDM-1. 1.2 Signal block structure 1.2.1 The word format A word length of 16 bits and uniform quantization with twos complement and MSB leading shall be used. 1.2.2 The block structure The data on the main tracks are formatted into blocks, each block consisting of 18 w
14、ords of 16 bits. The first word in a block is called the Sync/Control word, and Is described in 1.2.3. The words 2 through 17 in a block are digital audio words and check sums, as described in 1.4.1. The last word in each block is a Cyclic Redundancy Check (CRC) word, as described in 1.4.2. The CRC
15、word serves the purpose of error detection on each track, while the check sums are used for correcting detected errors. Word 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 numbering within block Content SC We Wo We Wo We Wo Qe Qo Pe Po We Wo We Wo We Wo CRC Page 8 EN 61120-3 : 1993 4 bits SYNC = 34045
16、83 00897LB 602 16 bits 28 bits 16 bits CONTROL ADDRESS The addresses of the even and odd words (We and Wo), and even and odd check sums (Qe, Qo, Pe and Po) are detailed in 1.4.1. SC(SYNC, ADR and auxiliary data) and CRC refer to the Sync/Control word and the CRC word. As detailed in 2.1 .1, four blo
17、cks with block addresses O0 through 11 correspond to one sector on the Reference track: f-, f-, one sector PCM words We and Wo are recorded with MSB leading, and the same ordering is also valid for the check sums P and Q. The total signal block structure (included reference signal) and track formatt
18、ing are shown as follows. Channel 2 1 2 1 2 1 2 1 C I I I i S=4xb A b / 1 SYNC ADR XX X QeQo Pepo CRC 8 SYNC ADR XX X QeQo Pepo CRC 7 SYNC1 ABR IXX IX I SYNC1 ADR IXX IX I SYNC I ADR I xx I ox PCM DATA I I I I PCM DATA 3 I I I I I I I I I I I I l I I I I I I 4 Reference track I Sub-track 2 Reference
19、 track: 3404583 0089739 549 Page 9 EN 61120-3 : 1993 Legend: ADR = Block address (BA1/2) E = Emphasis (block address O0 only) Pepo E P-parity X = reserved QeQo E Q-parity . SYNC length P Auxiliary data length 8L Check data length dc Block address length a PCM DATA length dPCM CRC length c Block leng
20、th b Sector length . S = 4 x b The Sync/Control word = 11 =2 L.3 = 192 = 64 = 16 =288 r: 1152 bits bits bits bits bits bits bits bits Bit position 1 through 11 of the SyncControl word carry a synchronization pattern violating the rules of HDM-1. As the data preceding a Sync/Control word may end with
21、 an arbitrary transition distance, the synchronization pattern is defined as follows: “The synchronization pattern is characterized by two consecutive transition distances of 9 cells followed by a transition distance differing from 9 cells“. As illustrated below, the position of block begin is defin
22、ed as being 3 cells before the beginning of a synchronization pattern. Bits 12 through 16, as well as following bits until the next Sync/Control word, are coded in HDM-1. Bits 12 and 13 carry a 2-bit block address which increments by one at each new block. Bits 14 through 16 are reserved for the sto
23、rage of emphasis bits, control informa- tion, other auxiliary information, and time code markers. The value of O0 is specified for bits 14 and 15 until further definition. In blocks with block address O0 on tracks 1 , 2, 3 and 4 at speed I, bit 16 indicates whether pre-emphasis has been used. Thus,
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