在单因素方差分析中,所提出的原假设和备择假设分别是
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未知类型:{'options': ['[tex=20.714x1.286]jwOL1tC40XTPHS00klbtvhSJvbEQvlF9n9MAVRoRSlKZag+0WhAVj+H6xYNA2VEFnAu/IPiuZ33F2GW1pUmUa1YJQlCqh4M3Zba8VMXYqDX+ic3n3rl2lL1U41hCdnBATP34l+FZGPkiXgidvNy2dA==[/tex]', '[tex=20.714x1.286]jwOL1tC40XTPHS00klbtvhSJvbEQvlF9n9MAVRoRSlKZag+0WhAVj+H6xYNA2VEF7N5Ha8xaczqSdPtWH4Z04/Z0faUvJSbiNOFMWvMvyM2WsX0Tv7fQ8FzVE5FBnFRn[/tex]', '[tex=20.714x1.286]jwOL1tC40XTPHS00klbtvhSJvbEQvlF9n9MAVRoRSlKZag+0WhAVj+H6xYNA2VEFYPf0ovo+f4rY5dgNdlt1sgK6KJv89oPqqypC2e7dpAz/m/aDoVUCWFDsbAvnsdX9[/tex]', '[tex=20.0x1.286]jwOL1tC40XTPHS00klbtvhSJvbEQvlF9n9MAVRoRSlKZag+0WhAVj+H6xYNA2VEFdqymU6CNLDAnMB4eniWdJCqs3vwBEUmXCkIBKBp2OSs=[/tex]\xa0不全相等'], 'type': 102}
举一反三
- 【计算题】5 ×8= 6×4= 7×7= 9×5= 2×3= 9 ×2= 8×9= 7×8= 5×5= 4×3= 5+8= 6 ×6= 3×7= 4×8= 9×3= 1 ×2= 9×9= 6×8= 8×0= 4×7=
- set1 = {x for x in range(10)} print(set1) 以上代码的运行结果为? A: {0, 1, 2, 3, 4, 5, 6, 7, 8, 9} B: {0, 1, 2, 3, 4, 5, 6, 7, 8, 9,10} C: {1, 2, 3, 4, 5, 6, 7, 8, 9} D: {1, 2, 3, 4, 5, 6, 7, 8, 9,10}
- 输出九九乘法表。 1 2 3 4 5 6 7 8 9 --------------------------------------------------------------------- 1*1=1 2*1=2 2*2=4 3*1=3 3*2=6 3*3=9 4*1=4 4*2=8 4*3=12 4*4=16 5*1=5 5*2=10 5*3=15 5*4=20 5*5=25 6*1=6 6*2=12 6*3=18 6*4=24 6*5=30 6*6=36 7*1=7 7*2=14 7*3=21 7*4=28 7*5=35 7*6=42 7*7=49 8*1=8 8*2=16 8*3=24 8*4=32 8*5=40 8*6=48 8*7=56 8*8=64 9*1=9 9*2=18 9*3=27 9*4=36 9*5=45 9*6=54 9*7=63 9*8=72 9*9=81
- 说明S盒变换的原理,并计算当输入为110101时的S1盒输出。 [br][/br] n\m 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 S1 0 14 4 13 1 2 15 11 8 3 10 6 12 5 9 0 7 1 0 15 7 4 14 2 13 1 10 6 12 11 9 5 3 8 2 4 1 14 8 13 6 2 11 15 12 9 7 3 10 5 0 3 15 12 8 2 4 9 1 7 5 11 3 14 10 0 6 13
- 下面语句的输出结果是?range(len('HelloWorld')) A: [1, 1, 2, 3, 4, 5, 6, 7, 8, 9, 11] B: 11 C: [0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10] D: [0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11]