m=0 画数(W)兩E Ill x-a Aulim ho enzo ho x-a h xr 一 3m h ho zh xto x gix) 1x/ lim hoxo-h(c) Xtc -a Podcast X- x-c you XCL X-6 x- h (D)若函數 (x)滿足 lim xg(x) -=1, al lim g(x) TFT lim feaths fraz, lim tial fan lim feath) fial, limtial frach zm F hyo Cathi-a - 7X/ R 15 ) : gux? limitel, he lim 1 . (C)若函數 (x)滿足 in in h(x) – h(C) **, ni lim h(x) = h(c) () 17 lim (X-4 to, solim [hox - hcc] - x-c (B)若 L(x) 與 (x)均為實數對應到實數的函數,則ko/(x)=lok(x) G hexy-h(6) lim hex)= (X-() = lim axo =0=7 k(x) ( XC hlu) / (E)若函數 (x)為實係數多項式函數且 lim =5,則函數 (x)的次數必 (x − 3)(x - 2) 超過一次, 3. 下列哪些函數在x=0可以微分? (A)f(x) = px (B)g(x) = xsinx sing lim Ex-o.1]-(1) 1 ©h(x) = xsin DJK(0)T– 0.7 É) 16x) = {2x+1, x20 [x² – 3, x<0 in singan 4.下列關於無窮數列與級數的收斂敘述,請選出正確的選項: (A)* * * 51(an) He tot, al lima, =0 (B) 12. glys-geol xring- o o 1 asino X ( EES n> . 以利别的英文單字。 ... n-00 -00 n=1 n=1 n->00 1-00 7-00 若 lim a = 0,則無窮級數n = 0 (C)若無窮級數, 存在,則im can = 0 (D)設《an》、《bo》為兩個無窮 7.1.-3... 數列,則lim(a + b) = lim an + limb, 恆成立 (E)設〈an + ba〉、an-bo》均為收斂數列,則{an》、《bb》亦均為收 斂數列. neho 8 9 4 3 2 1 1 os, & ant t3 th & Fan I takto 二、填充題:每格5分,共65 分,/hp 1. 計算下列無窮級數的和: n=no 00 neho nal s 1 2 3 7 2" -1 + +...+ +...= 25 125 5" 2 子 Śn 以上 (2) 3 (2n-1)(2n+1) | $ 1 - to , X4 x Xtroy()); 1.9 si zht/ 2. enfr 4 ontrout 4 enp19 4 4-7 yote nchillanti) 6 求下列極限值: any 30th ninti) (2011) 6langany) - (nn) Lanti) = 2n + 3n²th 211721 ..th) = ſnith. nx intl) 1² +2²+...+n² (1) lim 2n²+2n-1 2 horny lim(V2+4 +6+ ... +2n - V1+3+...+(2n+1)) = n- n-00