Hledání interpolace
Vzhledem k seřazenému poli n rovnoměrně rozložených hodnot arr[] napište funkci pro vyhledání určitého prvku x v poli.
Lineární vyhledávání najde prvek v čase O(n). Přejít vyhledávání trvá O(n) čas a Binární vyhledávání trvá O(log n) čas.
Interpolation Search je oproti tomu vylepšením Binární vyhledávání pro případy, kdy jsou hodnoty v seřazeném poli rovnoměrně rozloženy. Interpolace vytváří nové datové body v rozsahu diskrétní sady známých datových bodů. Binární vyhledávání vždy přejde ke kontrole do prostředního prvku. Na druhou stranu interpolační vyhledávání může jít do různých míst podle hodnoty hledaného klíče. Pokud je například hodnota klíče blíže poslednímu prvku, interpolační vyhledávání pravděpodobně spustí vyhledávání směrem ke koncové straně.
Pro vyhledání pozice se používá následující vzorec.
// Myšlenka vzorce je vrátit vyšší hodnotu pozice
// když je hledaný prvek blíže k arr[hi]. A
// menší hodnota při blíže k arr[lo]arr[] ==> Pole, kde je třeba hledat prvky
x ==> Prvek, který má být prohledán
lo ==> Počáteční index v arr[]
ahoj ==> Koncový index v arr[]
po = +
Existuje mnoho různých interpolačních metod a jedna z nich je známá jako lineární interpolace. Lineární interpolace bere dva datové body, které předpokládáme jako (x1y1) a (x2y2) a vzorec je: v bodě (xy).
Tento algoritmus funguje tak, že hledáme slovo ve slovníku. Interpolační vyhledávací algoritmus zlepšuje binární vyhledávací algoritmus. Vzorec pro nalezení hodnoty je: K = > K je konstanta, která se používá k zúžení vyhledávacího prostoru. V případě binárního vyhledávání je hodnota této konstanty: K=(nízká+vysoká)/2.
Vzorec pro pozici lze odvodit následovně.
Let's assume that the elements of the array are linearly distributed.
General equation of line : y = m*x + c.
y is the value in the array and x is its index.
Now putting value of lohi and x in the equation
arr[hi] = m*hi+c ----(1)
arr[lo] = m*lo+c ----(2)
x = m*pos + c ----(3)
m = (arr[hi] - arr[lo] )/ (hi - lo)
subtracting eqxn (2) from (3)
x - arr[lo] = m * (pos - lo)
lo + (x - arr[lo])/m = pos
pos = lo + (x - arr[lo]) *(hi - lo)/(arr[hi] - arr[lo])Algoritmus
Zbytek interpolačního algoritmu je stejný kromě výše uvedené logiky rozdělení.
- Krok 1: Ve smyčce vypočítejte hodnotu 'pos' pomocí vzorce polohy sondy.
- Krok 2: Pokud se jedná o shodu, vraťte index položky a ukončete.
- Krok 3: Pokud je položka menší než arr[pos], vypočítejte polohu sondy levého dílčího pole. Jinak vypočítejte totéž v pravém dílčím poli.
- Krok 4: Opakujte, dokud není nalezena shoda nebo dokud se dílčí pole nesníží na nulu.
Níže je uvedena implementace algoritmu.
// C++ program to implement interpolation // search with recursion #include using namespace std ; // If x is present in arr[0..n-1] then returns // index of it else returns -1. int interpolationSearch ( int arr [] int lo int hi int x ) { int pos ; // Since array is sorted an element present // in array must be in range defined by corner if ( lo <= hi && x >= arr [ lo ] && x <= arr [ hi ]) { // Probing the position with keeping // uniform distribution in mind. pos = lo + ((( double )( hi - lo ) / ( arr [ hi ] - arr [ lo ])) * ( x - arr [ lo ])); // Condition of target found if ( arr [ pos ] == x ) return pos ; // If x is larger x is in right sub array if ( arr [ pos ] < x ) return interpolationSearch ( arr pos + 1 hi x ); // If x is smaller x is in left sub array if ( arr [ pos ] > x ) return interpolationSearch ( arr lo pos - 1 x ); } return -1 ; } // Driver Code int main () { // Array of items on which search will // be conducted. int arr [] = { 10 12 13 16 18 19 20 21 22 23 24 33 35 42 47 }; int n = sizeof ( arr ) / sizeof ( arr [ 0 ]); // Element to be searched int x = 18 ; int index = interpolationSearch ( arr 0 n - 1 x ); // If element was found if ( index != -1 ) cout < < 'Element found at index ' < < index ; else cout < < 'Element not found.' ; return 0 ; } // This code is contributed by equbalzeeshan
C // C program to implement interpolation search // with recursion #include // If x is present in arr[0..n-1] then returns // index of it else returns -1. int interpolationSearch ( int arr [] int lo int hi int x ) { int pos ; // Since array is sorted an element present // in array must be in range defined by corner if ( lo <= hi && x >= arr [ lo ] && x <= arr [ hi ]) { // Probing the position with keeping // uniform distribution in mind. pos = lo + ((( double )( hi - lo ) / ( arr [ hi ] - arr [ lo ])) * ( x - arr [ lo ])); // Condition of target found if ( arr [ pos ] == x ) return pos ; // If x is larger x is in right sub array if ( arr [ pos ] < x ) return interpolationSearch ( arr pos + 1 hi x ); // If x is smaller x is in left sub array if ( arr [ pos ] > x ) return interpolationSearch ( arr lo pos - 1 x ); } return -1 ; } // Driver Code int main () { // Array of items on which search will // be conducted. int arr [] = { 10 12 13 16 18 19 20 21 22 23 24 33 35 42 47 }; int n = sizeof ( arr ) / sizeof ( arr [ 0 ]); int x = 18 ; // Element to be searched int index = interpolationSearch ( arr 0 n - 1 x ); // If element was found if ( index != -1 ) printf ( 'Element found at index %d' index ); else printf ( 'Element not found.' ); return 0 ; }
Java // Java program to implement interpolation // search with recursion import java.util.* ; class GFG { // If x is present in arr[0..n-1] then returns // index of it else returns -1. public static int interpolationSearch ( int arr [] int lo int hi int x ) { int pos ; // Since array is sorted an element // present in array must be in range // defined by corner if ( lo <= hi && x >= arr [ lo ] && x <= arr [ hi ] ) { // Probing the position with keeping // uniform distribution in mind. pos = lo + ((( hi - lo ) / ( arr [ hi ] - arr [ lo ] )) * ( x - arr [ lo ] )); // Condition of target found if ( arr [ pos ] == x ) return pos ; // If x is larger x is in right sub array if ( arr [ pos ] < x ) return interpolationSearch ( arr pos + 1 hi x ); // If x is smaller x is in left sub array if ( arr [ pos ] > x ) return interpolationSearch ( arr lo pos - 1 x ); } return - 1 ; } // Driver Code public static void main ( String [] args ) { // Array of items on which search will // be conducted. int arr [] = { 10 12 13 16 18 19 20 21 22 23 24 33 35 42 47 }; int n = arr . length ; // Element to be searched int x = 18 ; int index = interpolationSearch ( arr 0 n - 1 x ); // If element was found if ( index != - 1 ) System . out . println ( 'Element found at index ' + index ); else System . out . println ( 'Element not found.' ); } } // This code is contributed by equbalzeeshan
Python # Python3 program to implement # interpolation search # with recursion # If x is present in arr[0..n-1] then # returns index of it else returns -1. def interpolationSearch ( arr lo hi x ): # Since array is sorted an element present # in array must be in range defined by corner if ( lo <= hi and x >= arr [ lo ] and x <= arr [ hi ]): # Probing the position with keeping # uniform distribution in mind. pos = lo + (( hi - lo ) // ( arr [ hi ] - arr [ lo ]) * ( x - arr [ lo ])) # Condition of target found if arr [ pos ] == x : return pos # If x is larger x is in right subarray if arr [ pos ] < x : return interpolationSearch ( arr pos + 1 hi x ) # If x is smaller x is in left subarray if arr [ pos ] > x : return interpolationSearch ( arr lo pos - 1 x ) return - 1 # Driver code # Array of items in which # search will be conducted arr = [ 10 12 13 16 18 19 20 21 22 23 24 33 35 42 47 ] n = len ( arr ) # Element to be searched x = 18 index = interpolationSearch ( arr 0 n - 1 x ) if index != - 1 : print ( 'Element found at index' index ) else : print ( 'Element not found' ) # This code is contributed by Hardik Jain
C# // C# program to implement // interpolation search using System ; class GFG { // If x is present in // arr[0..n-1] then // returns index of it // else returns -1. static int interpolationSearch ( int [] arr int lo int hi int x ) { int pos ; // Since array is sorted an element // present in array must be in range // defined by corner if ( lo <= hi && x >= arr [ lo ] && x <= arr [ hi ]) { // Probing the position // with keeping uniform // distribution in mind. pos = lo + ((( hi - lo ) / ( arr [ hi ] - arr [ lo ])) * ( x - arr [ lo ])); // Condition of // target found if ( arr [ pos ] == x ) return pos ; // If x is larger x is in right sub array if ( arr [ pos ] < x ) return interpolationSearch ( arr pos + 1 hi x ); // If x is smaller x is in left sub array if ( arr [ pos ] > x ) return interpolationSearch ( arr lo pos - 1 x ); } return - 1 ; } // Driver Code public static void Main () { // Array of items on which search will // be conducted. int [] arr = new int []{ 10 12 13 16 18 19 20 21 22 23 24 33 35 42 47 }; // Element to be searched int x = 18 ; int n = arr . Length ; int index = interpolationSearch ( arr 0 n - 1 x ); // If element was found if ( index != - 1 ) Console . WriteLine ( 'Element found at index ' + index ); else Console . WriteLine ( 'Element not found.' ); } } // This code is contributed by equbalzeeshan
JavaScript < script > // Javascript program to implement Interpolation Search // If x is present in arr[0..n-1] then returns // index of it else returns -1. function interpolationSearch ( arr lo hi x ){ let pos ; // Since array is sorted an element present // in array must be in range defined by corner if ( lo <= hi && x >= arr [ lo ] && x <= arr [ hi ]) { // Probing the position with keeping // uniform distribution in mind. pos = lo + Math . floor ((( hi - lo ) / ( arr [ hi ] - arr [ lo ])) * ( x - arr [ lo ]));; // Condition of target found if ( arr [ pos ] == x ){ return pos ; } // If x is larger x is in right sub array if ( arr [ pos ] < x ){ return interpolationSearch ( arr pos + 1 hi x ); } // If x is smaller x is in left sub array if ( arr [ pos ] > x ){ return interpolationSearch ( arr lo pos - 1 x ); } } return - 1 ; } // Driver Code let arr = [ 10 12 13 16 18 19 20 21 22 23 24 33 35 42 47 ]; let n = arr . length ; // Element to be searched let x = 18 let index = interpolationSearch ( arr 0 n - 1 x ); // If element was found if ( index != - 1 ){ document . write ( `Element found at index ${ index } ` ) } else { document . write ( 'Element not found' ); } // This code is contributed by _saurabh_jaiswal < /script>
PHP // PHP program to implement $erpolation search // with recursion // If x is present in arr[0..n-1] then returns // index of it else returns -1. function interpolationSearch ( $arr $lo $hi $x ) { // Since array is sorted an element present // in array must be in range defined by corner if ( $lo <= $hi && $x >= $arr [ $lo ] && $x <= $arr [ $hi ]) { // Probing the position with keeping // uniform distribution in mind. $pos = ( int )( $lo + ((( double )( $hi - $lo ) / ( $arr [ $hi ] - $arr [ $lo ])) * ( $x - $arr [ $lo ]))); // Condition of target found if ( $arr [ $pos ] == $x ) return $pos ; // If x is larger x is in right sub array if ( $arr [ $pos ] < $x ) return interpolationSearch ( $arr $pos + 1 $hi $x ); // If x is smaller x is in left sub array if ( $arr [ $pos ] > $x ) return interpolationSearch ( $arr $lo $pos - 1 $x ); } return - 1 ; } // Driver Code // Array of items on which search will // be conducted. $arr = array ( 10 12 13 16 18 19 20 21 22 23 24 33 35 42 47 ); $n = sizeof ( $arr ); $x = 47 ; // Element to be searched $index = interpolationSearch ( $arr 0 $n - 1 $x ); // If element was found if ( $index != - 1 ) echo 'Element found at index ' . $index ; else echo 'Element not found.' ; return 0 ; #This code is contributed by Susobhan Akhuli ?>
Výstup
Element found at index 4
Časová náročnost: O(log 2 (log 2 n)) pro průměrný případ a O(n) pro nejhorší případ
Složitost pomocného prostoru: O(1)
Jiný přístup: -
Toto je iterační přístup pro hledání interpolace.
- Krok 1: Ve smyčce vypočítejte hodnotu 'pos' pomocí vzorce polohy sondy.
- Krok 2: Pokud se jedná o shodu, vraťte index položky a ukončete.
- Krok 3: Pokud je položka menší než arr[pos], vypočítejte polohu sondy levého dílčího pole. Jinak vypočítejte totéž v pravém dílčím poli.
- Krok 4: Opakujte, dokud není nalezena shoda nebo dokud se dílčí pole nesníží na nulu.
Níže je uvedena implementace algoritmu.
C++ // C++ program to implement interpolation search by using iteration approach #include using namespace std ; int interpolationSearch ( int arr [] int n int x ) { // Find indexes of two corners int low = 0 high = ( n - 1 ); // Since array is sorted an element present // in array must be in range defined by corner while ( low <= high && x >= arr [ low ] && x <= arr [ high ]) { if ( low == high ) { if ( arr [ low ] == x ) return low ; return -1 ; } // Probing the position with keeping // uniform distribution in mind. int pos = low + ((( double )( high - low ) / ( arr [ high ] - arr [ low ])) * ( x - arr [ low ])); // Condition of target found if ( arr [ pos ] == x ) return pos ; // If x is larger x is in upper part if ( arr [ pos ] < x ) low = pos + 1 ; // If x is smaller x is in the lower part else high = pos - 1 ; } return -1 ; } // Main function int main () { // Array of items on whighch search will // be conducted. int arr [] = { 10 12 13 16 18 19 20 21 22 23 24 33 35 42 47 }; int n = sizeof ( arr ) / sizeof ( arr [ 0 ]); int x = 18 ; // Element to be searched int index = interpolationSearch ( arr n x ); // If element was found if ( index != -1 ) cout < < 'Element found at index ' < < index ; else cout < < 'Element not found.' ; return 0 ; } //this code contributed by Ajay Singh
Java // Java program to implement interpolation // search with recursion import java.util.* ; class GFG { // If x is present in arr[0..n-1] then returns // index of it else returns -1. public static int interpolationSearch ( int arr [] int lo int hi int x ) { int pos ; if ( lo <= hi && x >= arr [ lo ] && x <= arr [ hi ] ) { // Probing the position with keeping // uniform distribution in mind. pos = lo + ((( hi - lo ) / ( arr [ hi ] - arr [ lo ] )) * ( x - arr [ lo ] )); // Condition of target found if ( arr [ pos ] == x ) return pos ; // If x is larger x is in right sub array if ( arr [ pos ] < x ) return interpolationSearch ( arr pos + 1 hi x ); // If x is smaller x is in left sub array if ( arr [ pos ] > x ) return interpolationSearch ( arr lo pos - 1 x ); } return - 1 ; } // Driver Code public static void main ( String [] args ) { // Array of items on which search will // be conducted. int arr [] = { 10 12 13 16 18 19 20 21 22 23 24 33 35 42 47 }; int n = arr . length ; // Element to be searched int x = 18 ; int index = interpolationSearch ( arr 0 n - 1 x ); // If element was found if ( index != - 1 ) System . out . println ( 'Element found at index ' + index ); else System . out . println ( 'Element not found.' ); } }
Python # Python equivalent of above C++ code # Python program to implement interpolation search by using iteration approach def interpolationSearch ( arr n x ): # Find indexes of two corners low = 0 high = ( n - 1 ) # Since array is sorted an element present # in array must be in range defined by corner while low <= high and x >= arr [ low ] and x <= arr [ high ]: if low == high : if arr [ low ] == x : return low ; return - 1 ; # Probing the position with keeping # uniform distribution in mind. pos = int ( low + ((( float ( high - low ) / ( arr [ high ] - arr [ low ])) * ( x - arr [ low ])))) # Condition of target found if arr [ pos ] == x : return pos # If x is larger x is in upper part if arr [ pos ] < x : low = pos + 1 ; # If x is smaller x is in lower part else : high = pos - 1 ; return - 1 # Main function if __name__ == '__main__' : # Array of items on whighch search will # be conducted. arr = [ 10 12 13 16 18 19 20 21 22 23 24 33 35 42 47 ] n = len ( arr ) x = 18 # Element to be searched index = interpolationSearch ( arr n x ) # If element was found if index != - 1 : print ( 'Element found at index' index ) else : print ( 'Element not found' )
C# // C# program to implement interpolation search by using // iteration approach using System ; class Program { // Interpolation Search function static int InterpolationSearch ( int [] arr int n int x ) { int low = 0 ; int high = n - 1 ; while ( low <= high && x >= arr [ low ] && x <= arr [ high ]) { if ( low == high ) { if ( arr [ low ] == x ) return low ; return - 1 ; } int pos = low + ( int )((( float )( high - low ) / ( arr [ high ] - arr [ low ])) * ( x - arr [ low ])); if ( arr [ pos ] == x ) return pos ; if ( arr [ pos ] < x ) low = pos + 1 ; else high = pos - 1 ; } return - 1 ; } // Main function static void Main ( string [] args ) { int [] arr = { 10 12 13 16 18 19 20 21 22 23 24 33 35 42 47 }; int n = arr . Length ; int x = 18 ; int index = InterpolationSearch ( arr n x ); if ( index != - 1 ) Console . WriteLine ( 'Element found at index ' + index ); else Console . WriteLine ( 'Element not found' ); } } // This code is contributed by Susobhan Akhuli
JavaScript // JavaScript program to implement interpolation search by using iteration approach function interpolationSearch ( arr n x ) { // Find indexes of two corners let low = 0 ; let high = n - 1 ; // Since array is sorted an element present // in array must be in range defined by corner while ( low <= high && x >= arr [ low ] && x <= arr [ high ]) { if ( low == high ) { if ( arr [ low ] == x ) { return low ; } return - 1 ; } // Probing the position with keeping // uniform distribution in mind. let pos = Math . floor ( low + ((( high - low ) / ( arr [ high ] - arr [ low ])) * ( x - arr [ low ]))); // Condition of target found if ( arr [ pos ] == x ) { return pos ; } // If x is larger x is in upper part if ( arr [ pos ] < x ) { low = pos + 1 ; } // If x is smaller x is in lower part else { high = pos - 1 ; } } return - 1 ; } // Main function let arr = [ 10 12 13 16 18 19 20 21 22 23 24 33 35 42 47 ]; let n = arr . length ; let x = 18 ; // Element to be searched let index = interpolationSearch ( arr n x ); // If element was found if ( index != - 1 ) { console . log ( 'Element found at index' index ); } else { console . log ( 'Element not found' ); }
Výstup
Element found at index 4
Časová náročnost: O(log2(log2 n)) pro průměrný případ a O(n) pro nejhorší případ
Složitost pomocného prostoru: O(1)
