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Xz be cxg t. The ˜2 1 (1 degree of freedom) simulation A random sample of size n= 100 is selected from the standard normal distribution N(0;1) Here is the sample and its histogram 1. ҋ E 蓖 āF @ B e C x g e ɂ 蓖 ЋK ɂ Z B i ʍ ڂ̎B e M e B ɂ Ă Q Ɖ B j 邭 q l Ɛڂ 邱 Ƃ̂ł R X v f W Ă ܂ I { t x z R l. T~ 2 ˘Geom(1=m) be the time to get the remaining chunk The second random variable is geometric by the memoryless property of the geometric distribution Our total time to collect the rst two movies is T~ = T~ 1 T~ 2 so by linearity of expectation and the mean of a geometric random variable, ET~ = ET~ 1 ET~ 2 = m=2 m = 3=2 m (c)(.
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8 p Z b g. 1 Proof Strategy Use the e u du = e u C since e ln b = b, b x dx = (e ln b) x dx = e (ln b) x dx set u = (ln b) x then du = (ln b) dx substitute = e u (du / ln b) = (1 / ln b) e u du solve the integral = (1 / ln b) ( e u C ) = (1 / ln b) e u C 2 (create new constant) substitute back u = (ln b) x,. C x g X ^ b t e L y ł̃X ^ b t R p j I ȂǁA I m Ȑl ނ h B R p j I A L y K A i ҁA ē A t A Ď x ȂǁA Â ŕK v Ƃ 邠 l ނ h ܂ B ܂ A E E ^ c ܂ł̃g ^ T g ܂ B.
F(t)dt and its derivative with respect to x The only way to compute this derivative is via the definition F · (x) = lim h œ 0 F(xh) F(x) h = lim hœ0 ∫xh a f(t)dt ∫ x a f(t)dt h Since the numerator in the fraction is the difference oftwoareas, we can rewrite the limit = lim hœ0 ∫xh x f(t)dt h (1) Recall the theorem we. Txt 13 hdrsgml 13 accession number conformed submission type upload public document count 1 filed as of date 1626 filed for company data company conformed name zebra technologies corp central index key standard industrial classification general industrial machinery & equipment. F B X G C u h A J x Z ^ i Q T r X Ə j B x ̓ e B n ̏ Q ̂ l ɑ ďA J ̋@ g 傷 鎖 Ƃ s Ă ܂ B ӎu Q ̂ ɁA ` X Ɠ Ă Ƃ ̎d ł B ㋞ r f B O4F @ @ @ @ TEL @FAX.
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