f(x)在[a,b]上连续,在(a,b)内可导,且f'(x)《0,F(x)=定积分(a~x)f(t)dt/(x-a),证明F'(x)《0
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f(x)在[a,b]上连续,在(a,b)内可导,且f''(x)《0,F(x)=定积分(a~x)f(t)dt/(x-a),证明F''(x)《0f(x)在[a,b]上连续,在(a,b)内可导,且f''(x)《0
f(x)在[a,b]上连续,在(a,b)内可导,且f'(x)《0,F(x)=定积分(a~x)f(t)dt/(x-a),证明F'(x)《0
f(x)在[a,b]上连续,在(a,b)内可导,且f'(x)《0,F(x)=定积分(a~x)f(t)dt/(x-a),证明F'(x)《0
f(x)在[a,b]上连续,在(a,b)内可导,且f'(x)《0,F(x)=定积分(a~x)f(t)dt/(x-a),证明F'(x)《0
F(x)=∫ [a-->x] f(t)dt/(x-a)
F'(x)=( f(x)(x-a)-∫ [a-->x] f(t)dt )/(x-a)^2
由积分中值定理,存在ξ∈(a,x),使∫ [a-->x] f(t)dt=f(ξ)(x-a)
则F'(x)=( f(x)(x-a)-f(ξ)(x-a) )/(x-a)^2
=(f(x)-f(ξ))/(x-a)
由x在(a,b)内,x>a,由ξ∈(a,x),则ξ
F’(x)={f(x)(x-a)-积分(a到x)f(t)dt}/(x-a)^2={(x-a)f(x)-(x-a)f(c)}/(x-a)^2,其中c介于a和x之间,因此f(x)
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