三道数学题题两道

来源:蜘蛛抓取(WebSpider) 时间:2016-04-04 12:36 标签: 有这样一道数学题
SAT数学题练习两道
下面是两道数学题,都是关于几何方面的,大家可以在备考SAT数学考试的时候对此进行适当的练习。SAT数学题对于中国考生的作用,大部分都是用来熟悉题型和解答方法,而不是作为知识点的积累,所以大家在备考的时候,一定要抓住重点。
  If triangle&above is congruent to triangle&(not shown), which of the following must be the length of one side of triangle&?
  Answer Choices
  (E) It cannot be determined from the information given.
  The correct answer is D
  Explanation
  Triangle&is congruent to triangle&, so the lengths of the three sides of triangle&are the same as the lengths of the three sides of triangle&. Triangle&is a&-&-&triangle with hypotenuse of length&, so the other two sides of triangle&have lengths&and&. Therefore, the lengths of the sides of triangle&must be&,&, and&. Of the choices given, only&is one of these values.
  If two sides of the triangle above have lengths 5and 6, the perimeter of the triangle could be which of the following?
  .&  .&  .&
  Answer Choices
  (A)&only
  (B)&only
  (C)&only
  (D)&and&only
  (E)&,&, and&
  The correct answer is B
  Explanation
  Difficulty: Hard
  In questions of this type, statements&,&, and&should each be considered independently of the others. You must determine which of those statements could be true.
  Statement&cannot be true. The perimeter of the triangle cannot be&, since the sum of the two given sides is&without even considering the third side of the triangle.
  Continuing to work the problem, you see that in&, if the perimeter were&, then the third side of the triangle would be&, or&. A triangle can have side lengths of&,&, and&. So the perimeter of the triangle could be&.
  Finally, consider whether it is possible for the triangle to have a perimeter of&. In this case, the third side of the triangle would be&. The third side of this triangle cannot be&, since the sum of the other two sides is not greater than&. By the Triangle Inequality, the sum of the lengths of any two sides of a triangle must be greater than the length of the third side. So the correct answer is&only.
  以上就是这两道SAT数学题的全部内容,都是选择题型,来自SAT考试官方网站,后面附有详细的答案解析。大家可以在备考SAT数学考试的时候,根据自己的思考过程了解一些SAT数学考试中几何方面的知识。
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一周人气榜123456
热门培训12345678&&两道英文数学题第一题:involving the rolling of a fair die. Assume that the die is rolled 12 times,and the roll is called a success if the result is in
{1,2} What is the probability that there are exactly 4 successes orexactly 4 failures in the 12 rolls? 第二题:involving Tom's class attendance. Assume that he attends randomly with probability 0.55and that each decision is independent of previous attendance, so that theprocess can be viewed as a Bernoulli process.What is the probability that he attends at least 7 of 10 classesgiven that he attends at least 2 but not all 10 classes? 求呐.希望上次那个人再次出现拯救我!
先是第一题~【我不是“上次拯救你的那个人”.】1、大概翻译一下,就是一个均匀的骰子投掷12次,当结果是1或2的时候是成功,反之失败.求确切投到4次成功或确切的4次失败的概率.那么,对单次投掷来讲,成功的概率p=2/6=1/3,失败q=2/3;而4次成功和4次失败没有交集,所以分别求出来概率然后相加就好了4次成功概率=C(4,12)*(1/3)^4*(2/3)^8,C(4,12)是12个里选4个,C(4,12)=(12*11*10*9)/(4*3*2)4此失败概率=C(8,12)*(1/3)^8*(2/3)^4.然后两个加一起~大概是这样的,就是那个n次独立重复试验好像是……不过好久没做过这样的题了~有不对的地方大家尽快帮忙纠正啦……那我先去看看第二题 恩,第二题比刚才那个稍微复杂一点儿,不过方法是一样的.大概是酱紫:2、翻译:Tom小朋友去选课- -#他是随机选择的,选的概率是p=0.55,他做的每个决定都是独立的,和前面没有关系,也就是说是一个伯努利过程.(也就是n次独立重复事件)问:在已知他至少选了10门里的2门但是不选全的情况下,选了至少7门的概率.这是一条件概率的问题.所以应该是:Pr(所求)=Pr(至少选7门|至少2门但是不选全)=Pr(选了7or8or9)/Pr(选了2or3or4or...or9门)这个说实话有点儿麻烦,选几门之间的事件都是独立且不重叠的,所以要加起来.给个公式吧,比如是选7门的概率,就是在10次事件中发生7次Pr(7)=C(7,10)*p^7*(1-p)^3,p=0.55然后加加除除就好了~
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提问者采纳
9、各边点位置都各边四形顶点相交
规律形各边相等三边形各边角边形且宽都每形偶数倍(2倍<img class="word-replace" src="/api/getdecpic?picenc=0ad倍等)其点位置定直线四形顶点相交直线与形边垂直或平行则需要数变数做加减算点位置 10、顶角45°
设三角形ABCAB=ACBDAC高交AC于DCEAB高交AB于E点两腰高BD、CE交于点O根据已知角DOC=角EOB=45°所角EOD=180°-45°=135°于四边形AEODCE垂直ABBD垂直AC所角AEO=角ADO=90°由四边形内角360°所顶角角A=360°-角AEO-角ADO-角EOD=360°-90°-90°-135°=45°
提问者评价
太给力了,你的回答完美地解决了我的问题,非常感谢!
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出门在外也不愁数学题两道&
ら点点滴滴393
(1)x<1(2)原式=(√5+√3)&#178;-(√2)&#178;
=8+2√15-2
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提问者采纳
肯定符合欧棉捎禽  啊·
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其他2条回答
数题线解答:马师两道数题<img class="word-replace" src="/api/getdecpic?picenc=0a007a做第题32做第二题24两道题都做少高兴答您问题题解题:首先做两题同数加起:32+24=5656两题都做同<img class="word-replace" src="/api/getdecpic?picenc=0a=16所道题答案16梦想^_^祝习进步认我答请及点击【采纳满意答】按钮~手机提问者客户端右角评价点【满意】即采纳我前进力~~新问题请要追问形式发送另外发问题并向我求助答题易敬请谅解~~O(∩_∩)O记评采纳互相帮助
32+24=56人56-40=16人
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