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English Junior High

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[B] The Threat of Tourism As air travel gets cheaper, more and more people are visiting famous sites around the world. Although this increase in tourism brings economic benefits to the areas around these sites, tourists also cause unexpected problems. In particular, some famous works of art are being affected. This is because people's breath increases carbon dioxide and humidity levels. Gradually, these levels damage, old paintings and other works of art. One famous site facing this problem is the Sistine Chapel in the Vatican in Rome. The 500-year-old paintings, especially the famous ceiling by Michelangelo, are so popular that as many as 2,000 people may be viewing them at a time. In 1994, after noticing that the visitors' breath was damaging the paintings, the Vatican purchased an expensive air-conditioning system to protect them. However, the crowds continued to increase, so in 2014, the Vatican decided to limit the number of visitors to about 6 million a year. Another site that faces a similar problem is the Mogao Caves in Dunhuang, China. These caves are full of beautiful Buddhist paintings and sculptures that attract thousands of visitors every year. Many of the artworks are very old and, as with the Sistine Chapel, the carbon dioxide in the breath of visitors is gradually damaging them. Originally, 40 of the 400 caves were open to visitors, but this number was reduced by half in 2014. In addition, the number of visitors allowed into the caves has been greatly reduced. A different solution is being tried in the Ajanta Caves in Maharashtra, India. The caves also have many ancient Buddhist paintings in them, and these too are being damaged. In order to protect the paintings, visitors are quickly rushed through the caves. However, many visitors complained about the short time, saying they could not look at the paintings properly, so the local government built a visitors' center with exact copies of the caves. Visitors are allowed to study these copies for as long as they like. The local government hopes this will provide a good balance between protecting the paintings and giving tourists a good experience. (30) As the number of tourists increases, 1 unexpected economic problems occur among people living around famous sites. 2 the carbon dioxide and humidity in their breath harm the things they go to see. 3 air pollution caused by the carbon dioxide from airplanes increases. 4 people have trouble breathing because of the high levels of humidity. (31) In 1994, the Vatican 1 allowed only 2,000 tourists to look at its paintings by Michelangelo. 2 invited 6 million visitors to see its 500-year-old wall paintings on one day. 3 installed an air-conditioning system in order to make visitors more comfortable. 4 tried to reduce damage to its paintings by buying an air- conditioning system. (32) What is one thing that has been done to protect the Buddhist artworks in Dunhuang? 1 More of the Mogao Caves have been closed to visitors. 2016年度第2回 新試験 2 Visitors are being asked to avoid breathing too close to the paintings. 3 Some of the visitors are being taught new ways to preserve paintings. 4 The number of visitors has been reduced from 400 to 40 a day. (33) Why were some visitors to the Ajanta Caves unhappy? 1 The majority of the paintings have turned out to be copies. 2 There were not as many Buddhist paintings as they had expected to see. 3 They did not have enough time to look at the paintings inside the caves. 4 The long lines at the visitors' center have prevented them from seeing the paintings. 29

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Mathematics Senior High

かいてます

m+o) の正規 基本事項 21 7/1 基本 例題 68 正規分布の利用 455 00000 ある高校における男子の身長又が、 平均 170.9cm, 標準偏差 5.4cm の正規 分布に従うものとする。次の問いに答えよ。ただし、小数第2位を四捨五入 して小数第1位まで求めよ。 して 身長175cm以上の生徒は約何%いるか。 ○ (2) 身長の高い方から4%の中に入るのは,約何cm 以上の生徒か CHART & SOLUTION 基本 67 正規分布N(m,2)はZ=X-m で標準化 O Xは正規分布N (170.9, 5.42) に従うから,正規分布表を利用するために標準化する。 (1)P(X≧175)=q のとき, 100%の生徒がいることになる。 (2)まず,P(Z≧u)=0.04 を満たすの値を求める。 YA P(Z≧u) P(Z≧u)>0.5 の場合 u O Z y4 P(Zu) P(Zu) < 0.5 の場合 0 Z 2章 8 NO X-170.9 と YA 5.4 問題文に紛らわされて 0.5p(0.76) 小数第1はダメ。 ■用でき 解答 Xは正規分布 N (170.9, 5.4℃) に従うから, Z=- おくと, Zは標準正規分布 N (0,1) に従う。 (1)P(X=175)=PZ≧ 5.4 =0.5-p(0.76)=0.5-0.2764=0.2236 よって, 約 22.4% いる。 175-170.9 ≒P(Z=0.76) 正規分布表は第2位 まである! (2) P(Zu)=0.04 となるuの値を求めると P(ZZ)-0.5-P(0≤ Z ≤u)=0.5-p(u) 20.04 0.5-0.04=Pzu) 00.76 2 P(Zu) <0.5 の場合 YA p (w) P(ZZ) よって pu)=0.5-0.04=0.46 ゆえに,正規分布表から u≒1.75 よって ない て参 P(Z≧1.75)=0.04 X-170.9 ≧1.75 から X ≧ 180.35 5.4 ても したがって, 約 180.4cm以上である。 PRACTICE 680 正規分布 0 24 2 PUP.. 予想されるか。 さが70cmの製品は不良品とされるときこの1万個の製品の中には何% の不 ある製品1万個の長さは平均69cm, 標準偏差 0.4cmの正規分布に従っている。長 [類 琉球大] W

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Mathematics Senior High

⑵なぜ1になるの?

452 本 例題 65 確率密度関数と確率 (1) 確率変数Xの確率密度関数が右の f(x) で与えられているとき, 次の確 率を求めよ。 (ア) P(0.5X1 (イ) P(-0.5≦x≦0.3) 00000 f(x)=(1+x (05*51) x+1(-1≦x≦0) (2) 確率変数 X のとる値xの範囲が 0≦x≦3 で,その確率密度関数が f(x)=k(4-x)で与えられている。このとき,正の定数kの値を求めよ。 CHART & SOLUTION 確率密度関数と確率 (確率の総和)=1⇔ (全面積)=1 (1) 連続型確率変数Xの確率密度関数f(x) において P(a≤x≤b) p.450 基本事項 =(曲線y=f(x) とx軸, および2直線x=a, x=6で囲まれた部分の面積) (2) 確率変数Xのとる値xの範囲が 0≦x≦3 であるから 解答 P(0≦x≦3)=1 すなわち Sk(4-x)dx=1 (1) (ア) P(0.5≦x≦1)=1/2×0.5×0.5=0.125 (イ) P(-0.5≦x≦0.3) =1-P(-1≦x≦ -0.5) -P(0.3≦x≦1) 1/12/ (ア) 日本 例題 6 確率変数X 関数f(x)が を求めよ。 (1)確率P( L CHART & (1)確率密度関 → 前ページ BI → (1), (2), (3) Sx"dx (1) P(3≦X まず, y=f(x) のグラ フをかく。 ← (全面積)=1 を利用。 注意 確率を表す面積を積 (2)E(X)= =1-10.5・0.5-- -0.7・0.7=1-0.125-0.245=0.63 2 (イ) YA 分で求めることが多いが, 三角形の面積と考えて計 算すると早い。 1 10.5 --- 0.5 1 0.7 (3) V(X)= -1 0 0.5 1 x -1-0.50 0.3 1 x YA Sok 4k (2)条件から k(4-x)dx=1 Sk(4-x)dx= k[4x-x²-15 kであるから 2 Jo k 15 -k=1 2 よって 2 0 34 k=- 15 PRACTICE 65° 確率変数Xのとる値xの範囲が 0≦x≦1 で, その確率密度関数がf(x)=α(3-x) で与えられている。 このとき,正の定数αの値を求めよ。 また, 確率 P(0.3≦x≦0.7) を求めよ。 って 11 PRACTIC ((1) 確率 f(x) で 数αの他 (2) (1)の

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