3、 解:参见教材P27图2-6 4、解:参见教材P28图2-8 5、解:参见教材P31图2-12 6、解:
7、解:参见教材P41图2-28 (N=2) 8、解:参见教材P50图2-38 9、解:
10、解:
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11、解:
12、解:参见教材P60图2-52(b) 13、解:
基带数据信号序列: 01 已调波相位(0) 相位矢量图(→) 14、解:
3π/4 ↖ 11 π ← 00 π/4 ↗ 10 0 →
01 3π/4 ↖ 17
15、解:参见教材P186图5-14(a) 16、解:参见教材P202图5-26 17、解:参见教材P208图5-35(a) 18、解:参见教材P236图6-14
六、计算题
1、解:① T?1NBd?1?208?10?6 秒 4800 ②R?NBdlog2M
?4800?log24?9600 bit/s 2、解:(S/N)dB?10lg
S?30dB NS?103?1000 NS)N) ?3100?log2(1?1000C?Blog2(1??30898bit/s3、解:①如果符合奈氏第一准则,H(f)应以点(fN ,0.5)呈奇对称滚降,由图示可得:
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fN?2000?4000?2000?3000Hz
2 fs?2fN?2?3000?6000Bd 滚降系数??4000?300010001??
300030003
②传信速率R?fslog2M?6000?log28?18000bit/s ③频带利用率 ??fs6000??1.5Bd/Hz B40004、解: bk?ak?bk?1 , ck?bk?bk?1 ak 1 0 1 1 0 0 0 1 0 1 1 1 0 1 bk O 1 1 0 1 1 1 1 0 0 1 0 1 1 0 ck 1 2 1 1 2 2 2 1 0 1 1 1 2 1 5、解: bk?ak?bk?2 , ck?bk?bk?2
ak 1 0 0 1 1 0 0 1 0 1 0 1 1 0 1 bk 1 1 0 1 0 0 1 0 1 1 1 0 1 1 0 1 1 ck -1 0 0-1 1 0 0 1 0-1 0 1-1 0 1 6、解:
yn?k??N1?cNkxn?k
?k??1?ckxn?k
y?1?c?1x0?c0x?1?c1x?2 y0?c?1x1?c0x0?c1x?1
y1?c?1x2?c0x1?c1x0 19
满足无符号间干扰时,有:
c?1?0.2c0?0.1c1?0 0.4c?1?c0?0.2c1?1
?0.2c?1?0.4c0?c1?0 解方程求得:
c?1?0.20c0?0.85 c1??0.30
7、解:① B?3000?600?2400Hz
?B?2(1??)fN ∴调制速率为
fs?2fN?B2400??1800Bd
11??1?3 ② ??fb14400??6bit/s?Hz B2400log2M
1??③ ???1log2M??(1??)?6?(1?)?8 ∴ 3M?28?256 每路电平数为M12?256?16
128、解:占用的频带宽度为:
B?2fs?f1?f0?2?300?980?1180?800Hz
h?f1?f0fs?980?1180300?0.67
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