Java Collection TreeMap Application---to find the number of occurrences of each letter in a string

Source: Internet
Author: User

 Packagecn.itcast.p1.map.test;ImportJava.util.Iterator;ImportJava.util.Map;ImportJava.util.TreeMap; Public classTestMap {/*** Exercise: * "FDGAVCBSACDFS+++AA&&BBB" gets the number of occurrences of each letter in the string.     * Required printing results are: A (2) B (1) ...; * Idea: * The analysis of the results shows that there is a mapping between the letters and the number of times.     And it's a lot of relationships.     * Many require storage, and the containers that can store the mappings have arrays and map collections. * Relationship One way ordinal number?     No! * That's using the Map collection.     Also found to be able to ensure that the uniqueness of the party has a sequence such as a b c ... * so you can use the TreeMap collection. * 1. Because the action is the letter in the string, so the string into a character array * 2. Iterates through the character array, and if the letter does not exist, the value of the key corresponding to the letter is 1 stored in the map * If the letter exists, the value of the key corresponding to the letter of +1 is stored in the map, The same key will be overwritten, * This will record the number of occurrences of each letter in the string * 3. Traverse end Map records the number of occurrences of all letters*/         Public Static voidMain (string[] args) {String str= "Asbbbadccfdssf+df-dfucccier%aa+hfffhdas"; String s=Gettreecount (str);    System.out.println (s); }     Public  Staticstring Gettreecount (String str) {//to turn a string into a character array        Char[] ch =Str.tochararray (); //defines a mapping relationship that TREEMAP uses to store letters and timesMap<character, Integer>map =NewTreemap<character, integer>();  for(inti = 0; i < ch.length; i++) {            if(! (Ch[i] >= ' A ' && ch[i] <= ' z ' | | ch[i] >= ' A ' && ch[i]<= ' z ')){                Continue; }            //use the letters in the character array as keys to check the map tableInteger value =Map.get (Ch[i]); intCount = 1; if(Value! =NULL) {Count= value + 1;            } map.put (Ch[i], count); /*if (value = = null) {Map.put (ch[i], 1);            }else{Map.put (Ch[i], value+1); }*/        }        returnmaptostring (map); }    Private StaticString maptostring (Map<character, integer>map) {StringBuilder SB=NewStringBuilder (); /*iterator<map.entry<character, integer>>it = Map.entryset (). Iterator ();            while (It.hasnext ()) {map.entry<character, integer> mapentry = It.next ();            Character key = Mapentry.getkey ();            Integer value = Mapentry.getvalue ();        Sb.append (key+ "(" +value+ ")"); }*/Iterator<character>it =Map.keyset (). iterator ();  while(It.hasnext ()) {Character key=It.next ();            SYSTEM.OUT.PRINTLN (key); Integer value=Map.get (key); Sb.append (Key+ "(" +value+ ")"); }        returnsb.tostring (); }}

Java Collection TreeMap Application---to find the number of occurrences of each letter in a string

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