缓和曲线采用切线支距法计算坐标的公式为()
A: x=ι-ι4/(40R2I02)+ι9/(3456R4I04)…
B: x=ι-ι5/(40R2I02)+ι9/(3456R4I04)…
C: x=ι-ι3/(40R2I02)+ι9/(3456R4I04)…
D: x=ι-ι2/(40R2I02)+ι9/(3456R4I04)…
A: x=ι-ι4/(40R2I02)+ι9/(3456R4I04)…
B: x=ι-ι5/(40R2I02)+ι9/(3456R4I04)…
C: x=ι-ι3/(40R2I02)+ι9/(3456R4I04)…
D: x=ι-ι2/(40R2I02)+ι9/(3456R4I04)…
举一反三
- 缓和曲线采用切线支距法计算坐标的公式为() A: Ax=ι-ι4/(40R2I02)+ι9/(3456R4I04)… B: Bx=ι-ι5/(40R2I02)+ι9/(3456R4I04)… C: Cx=ι-ι3/(40R2I02)+ι9/(3456R4I04)… D: Dx=ι-ι2/(40R2I02)+ι9/(3456R4I04)…
- 构造下式的推理证明:有理数都是实数,有的有理数是整数,因此有的实数是整数。证明设Q(x):x为有理数;R(x):x为实数;Z(x):x为整数;前提:∀x(Q(x)→R(x)),∃x(Q(x)⋀Z(x));结论:∃x(R(x)⋀Z(x))。(1)∃x(Q(x)⋀Z(x)) P(2)Q(c)⋀Z(c) ES(1)(3)∀x(Q(x)→R(x)) P(4)Q(c)→R(c) US(3)(5)Q(c) T(2)I(6)R(c) T(2)(4)I(7)Z(c) T(2)I(8)R(c)⋀Z(c) T(6)(7)I(9)∃x(R(x)⋀Z(x)) EG(8)以上推理是有效的。 A: 正确 B: 错误
- 4 Complete the words. 25ba s t r a i g h t straight 1 p o i n _ _ _ ____ 2 L - s h a _ _ _ ____ 3 c u r _ _ _ ____ 4 r e c t a n _ _ _ ____ 5 v e r t i _ _ _ ____ 6 c i r c u _ _ _ ____ 7 r o _ _ _ ____ 8 c i r _ _ _ ____ 9 t r i a n _ _ _ ____ 10 h o r i z o n _ _ _ ____ 11 s q u _ _ _ ____ 12 p a r a l _ _ _ ____ 13 d i a m _ _ _ ____ 14 s _ _ _ - s h a p e d ____
- 电路如图所示,当R=4Ω时,I=2A。求当R=9Ω时,I等A.(3.0分)
- 用谓词逻辑推理证明:有理数都是实数,有的有理数是整数,因此有的实数是整数。 证明:设Q(x):x为有理数;R(x):x为实数;Z(x):x为整数; 前提:∀x(Q(x)→R(x)),∃x(Q(x)∧Z(x)); 结论:∃x(R(x)∧Z(x))。 (1)∃x(Q(x)∧Z(x)) P (2)Q(c)∧Z(c) ES(1) (3)∀x(Q(x)→R(x)) P (4)Q(c)→R(c) US(3) (5)Q(c) T(2)I (6)R(c) T(2)(4)I (7)Z(c) T(2)I (8)R(c)∧Z(c) T(6)(7)I (9)∃x(R(x)∧Z(x)) EG(8) 本例中一定要把⑴,⑵写在⑶,⑷的前面,因为存在指定以后一定满足全称指定,否则不一定满足。也就是说同一个体变元存在指定一定要先于全称指定