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PCF5083H/5V2/F3 数据表(PDF) 90 Page - NXP Semiconductors |
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PCF5083H/5V2/F3 数据表(HTML) 90 Page - NXP Semiconductors |
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90 / 136 page ![]() 1996 Oct 29 90 Philips Semiconductors Objective specification GSM signal processing IC PCF5083 9.4 Software applications This section contains examples for several basic GSM channels. For every example the procedures to be executed within the DSP are shown in the form of tables. The first column contains the TDMA frame number fn in which the EXEC_PROC messages should be sent to the DSP. The 2nd column shows the corresponding procedures with all parameters. Parameters in uppercase are constants, lowercase parameters are variables. The 3rd column contains the number words NW to be transmitted to the DSP within frame fn (PACKET message assumed). The columns RX and MX contain the number of I and Q pairs to be sampled in the receive and monitoring timeslots of TDMA frame fn. Column TX contains the number of bits to sent to the GMSK modulator within the transmit timeslot. The tables are based upon the general rule that an EXEC_PROC message for a procedure that starts execution in TDMA frame n has to be sent in TDMA frame N − 1. Unless otherwise noted, the corresponding PROC_RETURN message will be available at the latest at the end of TDMA frame N+1, i.e. if the messages are read by the SC at beginning of every TDMA frame, the PROC_RETURN message will be available in frame N + 2. Start and end of a TDMA frame are defined by the falling edge of the FRAME_INT signal produced by the timer core. 9.4.1 RECEIVING A CCH BLOCK Table 67 shows how to receive a CCH block and to perform monitoring of two neighbouring cells in parallel. It is assumed that the CCH block has to be received in the frames N to N + 3. Note that the TX timeslot is used for monitoring in this example. Table 67 Procedures to be started for receiving a CCH block Note 1. Procedures to be started via EXEC_PROC in TDMA frame FN. fn PROCEDURES(1) NW RX TX MX N − 1 CP_rx_normal_burst (CCH_CMI_BUFF1, tsc, agc_gain1); CP_power_measure (agc_gain2) CP_power_measure (agc_gain3) 15 −−− N CP_rx_normal_burst (CCH_CMI_BUFF2, tsc, agc_gain1); CP_power_measure (agc_gain2) CP_power_measure (agc_gain3) 15 149 80 80 N + 1 CP_rx_normal_burst (CCH_CMI_BUFF3, tsc, agc_gain1); CP_power_measure (agc_gain2) CP_power_measure (agc_gain3) 15 149 80 80 N + 2 CP_rx_normal_burst (CCH_CMI_BUFF4, tsc, agc_gain1); CM_decoder_CCH( ); CP_power_measure (agc_gain2) CP_power_measure (agc_gain3) 18 149 80 80 N+3 −− 149 80 80 |
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