Question 1:
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写一个函数 把传入的数组倒置 可以用任何编程语言
不能用现有函数,除了coun或者size之类的基本操作
Question 2:
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In database XYZ, there's a table 'run_key' with the following rows:
idbatch last_processed
------------------------------
1 5 999
26 999
3 7 0
4 5 0
5 6 999
6 7 0
7 5 0
8 6 0
97 999
107 0
Write a SQL statement to return the number of rows with last_processed=0 for each batch.
The expected output is:
batchcount
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5 2
6 1
7 3
Question 3:
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In table 'info', there's a column named 'graduation_date' of type date. Some rows have
incorrect graduation_date such as '1907-11-09' and '1908-03-17'; they should be
'2007-11-09' and '2008-03-17'.
Write a SQL statement to update all the rows with graduation_date < '1909-01-01' by
setting graduation_date to '20yy-mm-dd'.
For example, '1907-11-09' updated to '2007-11-09', and '1908-03-17' updated to '2008-03-17'.
Question 4:
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in case you are not familiar with regular expression matching, here's a quick example:
if we have a string "<year>2009</year>" and we want to extract '2009', we can use
/<year>(.*)</year>/.
based on the example, write ONE regular expression that will match "BALTIMORE COUNTY" in
"<p><strong>BALTIMORE COUNTY</strong></p>" AND "NEW YORK"
in "<p><strong>NEW YORK</strong></p>"
Question 5:
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in case you are not familiar with regular expression substitution, here's a quick tutorial:
the syntax of string substitution is:
VARIABLE =~ s/SEARCH_PATTERN/NEW_STRING/
For example,
$a = 'abc,123';
$a =~ s/(w+),(w+)/2,1/; # $a is now '123,abc' because 1='abc' and 2='123'
Here's the question:
write ONE substitution statement(ie. s/SEARCH_PATTERN/NEW_STRING/) so that
"<date>1999-02-25</date>" will be updated to "<date>02-25-1999</date>" AND
"<date>2005-11-03</date>" will be updated to "<date>11-03-2005</date>"
Question 6:
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learn the concept of 'hash table' first. then solve this:
array 1 has some integers (for example: 1, 3, 5, 7) and array 2 has some integers (for example: 8, 5, 6, 1).
write a function to find the integers that exist in both arrays.
Question 7:
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mysql> select * from a;
+--------+
| letter |
+--------+
| x |
| y |
| z |
+--------+
mysql> select * from b;
+--------+
| letter |
+--------+
| a |
| b |
| y |
+--------+
write a query to return letters that exist in both table a and table b;
write a query to return letters that exist in table a but not in table b.
Question 8:
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写一个函数 传入一个数组和N 要求把前N个元素移到最后 需要占用最少内存
比如传入[a b c d e], N=2, 要求返回数组[c d e a b]
答案:(稍后)
answer1:
下面是我用java语言写的一维数组和二维数组的转置程序。
一维数组的转置:
package arraytest;
public class ArrayInversion1 {
public static void main(String[] args) {
int[] a={2,3,4,5};
arrayInversion(a);
for(int i:a){
System.out.println(i);
}
}
//一位数组倒置
public static void arrayInversion(int[] a){
int temp;
for(int i =0;i<=(a.length)/2;i++){
temp = a[i];
a[i]=a[a.length-i-1];
a[a.length-i-1] =temp;
}
}
}
二维数组的转置:
package arraytest;
public class ArrayInversion2 {
public static void main(String[] args) {
//二维数组可以不规则
int a[][]={{1,2,3},{4,5,6},{7,8}};
show(a);
int[][] rea =arrayInversion(a);
show(rea);
}
//倒置方法
public static int[][] arrayInversion(int[][] a){
//创建临时变量count,记录数组中长度最大的数组length
int count =0;
for(int i = 0;i
if(count
count = a[i].length;
}
}
// System.out.println("max"+count);
//创建数组用来装载倒置的数组数据
int rea[][]=new int[count][a.length];
//倒置
for(int i=0 ; i
for(int j=0; j
rea[j][i]=a[i][j];
}
}
return rea;
}
//输出数组
public static void show(int[][] a){
for (int x[]:a){
for(int e:x){
System.out.print(e+" ");
}
System.out.println();
}
System.out.println();
}
}
answer2:
select batch,count(batch) as count from run_key where last_processed=0 group by batch;