lim(2∧x-1 x∧2sin1 x) ln(1 x)

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lim(2∧x-1 x∧2sin1 x) ln(1 x)
lim 1-cos4x/2sin^2x+xtan^2x x趋近于0 求极限

因为1-cos4x/2sin^2x+xtan^2x=1-(1-2sin^2x)/2sin^2x+sin^2x/cos^2x=2sin^2x/2sin^2x+sin^2x/cos^2x=2/1+1/co

lim x趋近于0 x^2sin(1/x) 等于多少?lim x趋近于0 sin(1/x)又等于多少?

可以这么理1.f(x)=sin(1/x),当x趋向于0时,1/x趋向于无穷大,sin(1/x)就在-1和1之间波动,不存在极限值.2.x^2sin(1/x)的极限之所以存在,是由于指数函数的底数x的极

求极限:lim x→0 ln[1+sin^2(x)]/[e^(x^2)-1]

思路:这是0/0型极限,使用罗必达法则,分式上下求导后再求极值.limln[1+sin^2(x)]/[e^(x^2)-1](x→0)=lim2sinx·cosx/{2xe^(x^2)·[1+sin^2

求 lim(x→∞)[sin(2/x)+cos(1/x)]^x的极限.

lim(x→∞)[sin(2/x)+cos(1/x)]^x的极限.需要详细步骤.lim(x→∞)[sin(2/x)+cos(1/x)]^x=lim(x→∞)[1+(sin(2/x)+cos(1/x)-

求极限:lim(1/sin^2(x)-1/x^2),x->0

通分1/sin^2(x)-1/x^2=(-sin^2(x)+x^2)/sin^2(x)*x^2=(sinx+x)(-sinx+x)/sin^2(x)*x^2=(-sinx+x)/x^3*(sinx+x

lim(x趋向0)ln(1+sin x)/x^2

构造函数g(x)=ln(1+x)g'(x)=1/1+xb=x^2,a=sin^2x用拉格朗日中值定理:ln(1+x^2)-ln(1+sin^2x)=g(b)-g(a)=(b-a)g'(t)其中t介于a

lim sin 2x / sin 5x lim arctan x / x

(1)sin2x5xsin2x2lim-------------------=lim--------------*lim------------*------=2/5x→0sin5xx→0sin5xx

求极限 lim sin(x^2 * sin (1/x))/x x->0

∵sin(1/x)有界函数∴lim(x->0)[xsin(1/x)]=0.(1)∴lim(x->0)[x²sin(1/x)]=0.(2)∵lim(x->0){sin[x²sin(1

求lim [sin(x^2-1)]/(x-1) x趋向于1的极限.

lim(x→1)[sin(x^2-1)]/(x-1)=lim(x→1){[sin(x^2-1)/(x^2-1)]×(x+1)}=lim(x→1)[sin(x^2-1)/(x^2-1)]×lim(x→1

x趋向于无穷时 lim (3x-1)/(x^3 乘以 sin(1/x^2 ))

令t=1\x原式=limt→0(3/t-1)/(1/t*sint^2)=limt→0(3/t-1)/(1/t*t^2)-----这里用到无穷小量有关知识=limt→0(3-t)=3

求极限 1,lim(x→∞)(sinx/x +100) 2,lim(x→∞)xtan1/x 3,lim(x→1)sin^

1,lim(x→∞)(sinx/x+100)=0+100=1002,lim(x→∞)xtan(1/x)=lim(x→∞)tan(1/x)/(1/x)=lim(x→∞)(-1/x^2)sec²

求极限 ((sin(x^3+x^2-x)+sin x) /x x→0 已知lim sinx/x=1

由和差化积公式分子=2sin[(x^3+x^2)/2]cos[(x^3+x^2-2x)/2]x→0,则(x^3+x^2)/2→0,sin则(x^3+x^2)/2和(x^3+x^2)/2是等价无穷小而c

求极限lim(x趋向于0)ln(1+x^2)/sin(1+x^2)

显然在x趋向于0时,分子ln(1+x^2)趋向于ln1=0,而分母sin(1+x^2)趋向于sin1,所以极限lim(x趋向于0)ln(1+x^2)/sin(1+x^2)=0/sin1=0

lim x->0(sqrt(sin(1/x^2)) 求极限

limx->0(sqrt(sin(1/x^2))令1/x^2=t当x趋近0时,t为无穷大,函数极限不存在(如取t=2kπ+π/2时,sint=1t=2kπ时sint=0)所以limx->0(sqrt(

lim(sin(x^2*cos(1/x)))/x怎么做?

题目应该是当x逼近到0得时候,limx^2*cos(1/x)=0lim(sin(x^2*cos(1/x)))/x=lim(x^2*cos(1/x))/x=lim(x*cos(1/x))=0再问:你用罗

求极限ln(1+2x)/sin(1+2x),lim x->0

应该是ln(1+2x)/sin(2x)吧,ln(1+2x)等价于2x,sin(2x)等价于2x,所以极限是1.

lim x→0 (x∧2 cscx sin(1/x)) 求极限

limx→0(x∧2cscxsin(1/x))=limx→0(x^2sin(1/x))/sinx=limx→0(xsin(1/x))(x/sinx)=limx→0(xsin(1/x))limx→0(x

x趋于0时,lim(x^2-sin^2 xcos^2 x)/(x^2sin^2 x)怎么转换成(x^2-(1/4)sin

2sinxcosx=sin2x那么sin^2xcos^2x=sin^22x/4另外sinx等价于x,所以sin^2x等价于x^2,也即x^2sin^2x变成了x^4不知您是否明白,若有不明还可问(⊙o

lim tan x - sin x / x³ lim eˆ2x - 1 / x

原式=lim(x->0)sinx(secx-1)/x^3=lim(x->0)(secx-1)/x^2=lim(x->0)(1-cosx)/x^2cosx=lim(x->0)2sin^2(x/2)/x^

求极限lim(x-->0)x^2 sin(1/x),

没有步骤,结果可直接写0.定理:无穷小与有界函数的乘积是无穷小.希望可以帮到你,如果解决了问题,请点下面的"选为满意回答"按钮,再问:为什么等于零,需要求导吗再答:定理:无穷小与有界函数的乘积是无穷小