#practiceLinkDiv { display: none !important; }Podana matrika pozitivnih celih števil zamenja vsak element v matriki tako, da je razlika med sosednjimi elementi v matriki manjša ali enaka danemu cilju. Minimizirati moramo prilagoditvene stroške, ki so vsota razlik med novimi in starimi vrednostmi. V bistvu moramo minimizirati ?|A[i] - Anovo[i]| kje 0? jaz? n-1 n je velikost A[] in Anovo[] je niz s sosednjo razliko, ki je manjša ali enaka cilju. Predpostavimo, da so vsi elementi matrike manjši od konstante M = 100.
Primeri:
Input: arr = [1 3 0 3] target = 1Recommended Practice Poiščite najmanjšo prilagoditveno ceno niza Poskusite!
Output: Minimum adjustment cost is 3
Explanation: One of the possible solutions
is [2 3 2 3]
Input: arr = [2 3 2 3] target = 1
Output: Minimum adjustment cost is 0
Explanation: All adjacent elements in the input
array are already less than equal to given target
Input: arr = [55 77 52 61 39 6
25 60 49 47] target = 10
Output: Minimum adjustment cost is 75
Explanation: One of the possible solutions is
[55 62 52 49 39 29 30 40 49 47]
Da bi zmanjšali stroške prilagajanja ?|A[i] - Anovo[i]| za vse indekse i v matriki |A[i] - Anovo[i]| mora biti čim bližje ničli. Tudi |A[i] - Anovo[i+1] ]| ? Tarča.
Ta problem je mogoče rešiti z dinamično programiranje .
Naj dp[i][j] določa minimalne prilagoditvene stroške pri spremembi A[i] v j, potem je razmerje DP definirano z -
dp[i][j] = min{dp[i - 1][k]} + |j - A[i]|
for all k's such that |k - j| ? target
Tukaj 0? jaz? n in 0? j? M, kjer je n število elementov v nizu in M = 100. Upoštevati moramo vse k, tako da max(j - cilj 0)? k? min (M j + cilj)
Končno bo minimalni prilagoditveni strošek matrike min{dp[n - 1][j]} za vse 0 ? j? M.
Algoritem:
- Ustvarite 2D matriko z inicializacijami dp[n][M+1], da zabeležite najmanjše prilagoditvene stroške spreminjanja A[i] v j, kjer je n dolžina matrike in M njena največja vrednost.
- Izračunajte najmanjši prilagoditveni strošek spremembe A[0] v j za prvi element matrike dp[0][j] z uporabo formule dp[0][j] = abs (j - A[0]).
- Zamenjajte A[i] z j v preostalih elementih polja dp[i][j] in uporabite formulo dp[i][j] = min(dp[i-1][k] + abs(A[i] - j)), kjer k zavzame vse možne vrednosti med max(j-target0) in min(Mj+target), da dobite minimalne stroške prilagoditve.
- Kot najmanjši strošek prilagoditve navedite najnižjo številko iz zadnje vrstice tabele dp.
Spodaj je izvedba zgornje ideje:
C++// C++ program to find minimum adjustment cost of an array #include
// Java program to find minimum adjustment cost of an array import java.io.*; import java.util.*; class GFG { public static int M = 100; // Function to find minimum adjustment cost of an array static int minAdjustmentCost(int A[] int n int target) { // dp[i][j] stores minimal adjustment cost on changing // A[i] to j int[][] dp = new int[n][M + 1]; // handle first element of array separately for (int j = 0; j <= M; j++) dp[0][j] = Math.abs(j - A[0]); // do for rest elements of the array for (int i = 1; i < n; i++) { // replace A[i] to j and calculate minimal adjustment // cost dp[i][j] for (int j = 0; j <= M; j++) { // initialize minimal adjustment cost to INT_MAX dp[i][j] = Integer.MAX_VALUE; // consider all k such that k >= max(j - target 0) and // k <= min(M j + target) and take minimum int k = Math.max(j-target0); for ( ; k <= Math.min(Mj+target); k++) dp[i][j] = Math.min(dp[i][j] dp[i - 1][k] + Math.abs(A[i] - j)); } } // return minimum value from last row of dp table int res = Integer.MAX_VALUE; for (int j = 0; j <= M; j++) res = Math.min(res dp[n - 1][j]); return res; } // Driver program public static void main (String[] args) { int arr[] = {55 77 52 61 39 6 25 60 49 47}; int n = arr.length; int target = 10; System.out.println('Minimum adjustment cost is ' +minAdjustmentCost(arr n target)); } } // This code is contributed by Pramod Kumar
# Python3 program to find minimum # adjustment cost of an array M = 100 # Function to find minimum # adjustment cost of an array def minAdjustmentCost(A n target): # dp[i][j] stores minimal adjustment # cost on changing A[i] to j dp = [[0 for i in range(M + 1)] for i in range(n)] # handle first element # of array separately for j in range(M + 1): dp[0][j] = abs(j - A[0]) # do for rest elements # of the array for i in range(1 n): # replace A[i] to j and # calculate minimal adjustment # cost dp[i][j] for j in range(M + 1): # initialize minimal adjustment # cost to INT_MAX dp[i][j] = 100000000 # consider all k such that # k >= max(j - target 0) and # k <= min(M j + target) and # take minimum for k in range(max(j - target 0) min(M j + target) + 1): dp[i][j] = min(dp[i][j] dp[i - 1][k] + abs(A[i] - j)) # return minimum value from # last row of dp table res = 10000000 for j in range(M + 1): res = min(res dp[n - 1][j]) return res # Driver Code arr= [55 77 52 61 39 6 25 60 49 47] n = len(arr) target = 10 print('Minimum adjustment cost is' minAdjustmentCost(arr n target) sep = ' ') # This code is contributed # by sahilshelangia
// C# program to find minimum adjustment // cost of an array using System; class GFG { public static int M = 100; // Function to find minimum adjustment // cost of an array static int minAdjustmentCost(int []A int n int target) { // dp[i][j] stores minimal adjustment // cost on changing A[i] to j int[] dp = new int[nM + 1]; // handle first element of array // separately for (int j = 0; j <= M; j++) dp[0j] = Math.Abs(j - A[0]); // do for rest elements of the array for (int i = 1; i < n; i++) { // replace A[i] to j and calculate // minimal adjustment cost dp[i][j] for (int j = 0; j <= M; j++) { // initialize minimal adjustment // cost to INT_MAX dp[ij] = int.MaxValue; // consider all k such that // k >= max(j - target 0) and // k <= min(M j + target) and // take minimum int k = Math.Max(j - target 0); for ( ; k <= Math.Min(M j + target); k++) dp[ij] = Math.Min(dp[ij] dp[i - 1k] + Math.Abs(A[i] - j)); } } // return minimum value from last // row of dp table int res = int.MaxValue; for (int j = 0; j <= M; j++) res = Math.Min(res dp[n - 1j]); return res; } // Driver program public static void Main () { int []arr = {55 77 52 61 39 6 25 60 49 47}; int n = arr.Length; int target = 10; Console.WriteLine('Minimum adjustment' + ' cost is ' + minAdjustmentCost(arr n target)); } } // This code is contributed by Sam007.
<script> // Javascript program to find minimum adjustment cost of an array let M = 100; // Function to find minimum adjustment cost of an array function minAdjustmentCost(A n target) { // dp[i][j] stores minimal adjustment cost on changing // A[i] to j let dp = new Array(n); for (let i = 0; i < n; i++) { dp[i] = new Array(n); for (let j = 0; j <= M; j++) { dp[i][j] = 0; } } // handle first element of array separately for (let j = 0; j <= M; j++) dp[0][j] = Math.abs(j - A[0]); // do for rest elements of the array for (let i = 1; i < n; i++) { // replace A[i] to j and calculate minimal adjustment // cost dp[i][j] for (let j = 0; j <= M; j++) { // initialize minimal adjustment cost to INT_MAX dp[i][j] = Number.MAX_VALUE; // consider all k such that k >= max(j - target 0) and // k <= min(M j + target) and take minimum let k = Math.max(j-target0); for ( ; k <= Math.min(Mj+target); k++) dp[i][j] = Math.min(dp[i][j] dp[i - 1][k] + Math.abs(A[i] - j)); } } // return minimum value from last row of dp table let res = Number.MAX_VALUE; for (let j = 0; j <= M; j++) res = Math.min(res dp[n - 1][j]); return res; } let arr = [55 77 52 61 39 6 25 60 49 47]; let n = arr.length; let target = 10; document.write('Minimum adjustment cost is ' +minAdjustmentCost(arr n target)); // This code is contributed by decode2207. </script>
// PHP program to find minimum // adjustment cost of an array $M = 100; // Function to find minimum // adjustment cost of an array function minAdjustmentCost( $A $n $target) { // dp[i][j] stores minimal // adjustment cost on changing // A[i] to j global $M; $dp = array(array()); // handle first element // of array separately for($j = 0; $j <= $M; $j++) $dp[0][$j] = abs($j - $A[0]); // do for rest // elements of the array for($i = 1; $i < $n; $i++) { // replace A[i] to j and // calculate minimal adjustment // cost dp[i][j] for($j = 0; $j <= $M; $j++) { // initialize minimal adjustment // cost to INT_MAX $dp[$i][$j] = PHP_INT_MAX; // consider all k such that // k >= max(j - target 0) and // k <= min(M j + target) and // take minimum for($k = max($j - $target 0); $k <= min($M $j + $target); $k++) $dp[$i][$j] = min($dp[$i][$j] $dp[$i - 1][$k] + abs($A[$i] - $j)); } } // return minimum value // from last row of dp table $res = PHP_INT_MAX; for($j = 0; $j <= $M; $j++) $res = min($res $dp[$n - 1][$j]); return $res; } // Driver Code $arr = array(55 77 52 61 39 6 25 60 49 47); $n = count($arr); $target = 10; echo 'Minimum adjustment cost is ' minAdjustmentCost($arr $n $target); // This code is contributed by anuj_67. ?> Izhod
Minimum adjustment cost is 75
Časovna zapletenost: O(n*m2)
Pomožni prostor: O(n *m)
Učinkovit pristop: Optimizacija prostora
Pri prejšnjem pristopu trenutna vrednost dp[i][j] je odvisno le od trenutne in prejšnje vrednosti vrstice DP . Za optimizacijo kompleksnosti prostora uporabljamo eno samo 1D polje za shranjevanje izračunov.
Izvedbeni koraki:
- Ustvarite 1D vektor dp velikosti m+1 .
- Nastavite osnovni primer z inicializacijo vrednosti DP .
- Zdaj ponovite podprobleme s pomočjo ugnezdene zanke in pridobite trenutno vrednost iz prejšnjih izračunov.
- Zdaj ustvarite začasni 1d vektor prev_dp uporablja se za shranjevanje trenutnih vrednosti iz prejšnjih izračunov.
- Po vsaki ponovitvi dodelite vrednost prev_dp na dp za nadaljnjo ponovitev.
- Inicializirajte spremenljivko res da shranite končni odgovor in ga posodobite s ponavljanjem skozi Dp.
- Nazadnje se vrnite in natisnite končni odgovor, shranjen v res .
Izvedba:
#include
import java.util.Arrays; public class MinimumAdjustmentCost { static final int M = 100; // Function to find the minimum adjustment cost of an array static int minAdjustmentCost(int[] A int n int target) { int[] dp = new int[M + 1]; // Initialize the first row with absolute differences for (int j = 0; j <= M; j++) { dp[j] = Math.abs(j - A[0]); } // Iterate over the array elements for (int i = 1; i < n; i++) { int[] prev_dp = Arrays.copyOf(dp dp.length); // Store the previous row's minimum costs // Iterate over the possible values for (int j = 0; j <= M; j++) { dp[j] = Integer.MAX_VALUE; // Initialize the current value with maximum cost // Find the minimum cost by considering the range of previous values for (int k = Math.max(j - target 0); k <= Math.min(M j + target); k++) { dp[j] = Math.min(dp[j] prev_dp[k] + Math.abs(A[i] - j)); } } } int res = Integer.MAX_VALUE; for (int j = 0; j <= M; j++) { res = Math.min(res dp[j]); // Find the minimum cost in the last row } return res; // Return the minimum adjustment cost } public static void main(String[] args) { int[] arr = { 55 77 52 61 39 6 25 60 49 47 }; int n = arr.length; int target = 10; System.out.println('Minimum adjustment cost is ' + minAdjustmentCost(arr n target)); } }
def min_adjustment_cost(A n target): M = 100 dp = [0] * (M + 1) # Initialize the first row of dp with absolute differences for j in range(M + 1): dp[j] = abs(j - A[0]) # Iterate over the array elements for i in range(1 n): prev_dp = dp[:] # Store the previous row's minimum costs for j in range(M + 1): dp[j] = float('inf') # Initialize the current value with maximum cost # Find the minimum cost by considering the range of previous values for k in range(max(j - target 0) min(M j + target) + 1): dp[j] = min(dp[j] prev_dp[k] + abs(A[i] - j)) res = float('inf') for j in range(M + 1): res = min(res dp[j]) # Find the minimum cost in the last row return res if __name__ == '__main__': arr = [55 77 52 61 39 6 25 60 49 47] n = len(arr) target = 10 print('Minimum adjustment cost is' min_adjustment_cost(arr n target))
using System; class Program { const int M = 100; // Function to find minimum adjustment cost of an array static int MinAdjustmentCost(int[] A int n int target) { int[] dp = new int[M + 1]; // Array to store the minimum adjustment costs for each value for (int j = 0; j <= M; j++) { dp[j] = Math.Abs(j - A[0]); // Initialize the first row with the absolute differences } for (int i = 1; i < n; i++) // Iterate over the array elements { int[] prevDp = (int[])dp.Clone(); // Store the previous row's minimum costs for (int j = 0; j <= M; j++) // Iterate over the possible values { dp[j] = int.MaxValue; // Initialize the current value with maximum cost // Find the minimum cost by considering the range of previous values for (int k = Math.Max(j - target 0); k <= Math.Min(M j + target); k++) { dp[j] = Math.Min(dp[j] prevDp[k] + Math.Abs(A[i] - j)); } } } int res = int.MaxValue; for (int j = 0; j <= M; j++) { res = Math.Min(res dp[j]); // Find the minimum cost in the last row } return res; // Return the minimum adjustment cost } static void Main() { int[] arr = { 55 77 52 61 39 6 25 60 49 47 }; int n = arr.Length; int target = 10; Console.WriteLine('Minimum adjustment cost is ' + MinAdjustmentCost(arr n target)); } }
const M = 100; // Function to find minimum adjustment cost of an array function minAdjustmentCost(A n target) { let dp = new Array(M + 1); // Array to store the minimum adjustment costs for each value for (let j = 0; j <= M; j++) dp[j] = Math.abs(j - A[0]); // Initialize the first row with the absolute differences for (let i = 1; i < n; i++) // Iterate over the array elements { let prev_dp = [...dp]; // Store the previous row's minimum costs for (let j = 0; j <= M; j++) // Iterate over the possible values { dp[j] = Number.MAX_VALUE; // Initialize the current value with maximum cost // Find the minimum cost by considering the range of previous values for (let k = Math.max(j - target 0); k <= Math.min(M j + target); k++) dp[j] = Math.min(dp[j] prev_dp[k] + Math.abs(A[i] - j)); } } let res = Number.MAX_VALUE; for (let j = 0; j <= M; j++) res = Math.min(res dp[j]); // Find the minimum cost in the last row return res; // Return the minimum adjustment cost } let arr = [55 77 52 61 39 6 25 60 49 47]; let n = arr.length; let target = 10; console.log('Minimum adjustment cost is ' + minAdjustmentCost(arr n target)); // This code is contributed by Kanchan Agarwal
Izhod
Minimum adjustment cost is 75
Časovna zapletenost: O(n*m2)
Pomožni prostor: O (m)