信号f()=4[u(t+1)-u(t-3)]的傅立叶变换F(ω)为()
A: 16Sa(2ω)e-jω
B: 16Sa(2ω)
C: 8Sa(2ω)ejω
A: 16Sa(2ω)e-jω
B: 16Sa(2ω)
C: 8Sa(2ω)ejω
举一反三
- 某信号的频谱密度函数为,则f(t)=() A: Sa【2π(t-3)】 B: 2Sa【2π(t-3)】 C: Sa(2πt) D: 2Sa(2πt)
- 【单选题】已知f 1 (t)=tε(t),f 2 (t)=ε(t)-ε(t-2)试求y(t)=f 1 (t)*f 2 (t-1)*δ’(t-2) A. (t-3)u(t-3)-(t-5)u(t-5) B. (t-2)u(t-2)-(t-5)u(t-5) C. (t-3)u(t-3)-(t-4)u(t-4) D. (t-3)u(t-2)-(t-5)u(t-3)
- 频谱函数F(jw)=2/(jw+3)+4/(jw-2)所对应的信号f(t) A: 2(e)-3t次方u(t)-4(e)2t次方u(t) B: 4(e)2t次方u(t)-2(e)-3t次方u(t) C: 2(e)3t次方u(t)-4(e)-2t次方u(t) D: 4(e)-2t次方u(t)-2(e)3t次方u(t)
- 已知F(jω)=δ(ω-ω0),则f(t)为 A: e-jω0t B: ejω0t C: ejω0tu(t) D: e-jω0tu(t)
- 【多选题】若f 1 (t) = ɛ (-t) , f 2 (t) = e t ,则f 1 (t)* f 2 (t) = A. f 1 ꞌ (t)* f 2 (–1) (t) B. f 1 (–1) (t)* f 2 ꞌ (t) C. f 1 (t-3)* f 2 (t+3) D. f 1 (–3) (t)* f 2 ꞌꞌꞌ (t)