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getting the minimum for arrays and for statments?

I sorta need help getting the minimum I keep getting thirteen can some
one help me out? The issue I believe is I'm not showing the formula for low n line I'm confused I have tried to switch out the values for the array and I can't figure it out just if someone could explain to m please.
#include <iostream>
using namespace std;
int getHighest(int numArray[], int numElements);
int getLowest(int numArray[], int numelements);
int main()
{
int numbers[4] = { 13, 2, 40, 25 };
cout << "The highest number in the array is " << getHighest(numbers, 4) << "." << endl;
cout << "The lowest number in the array is "<< getLowest(numbers,0) << "." << endl;
return 0;
}
int getHighest(int numArray[], int numElements)
{
int high = numArray[0];
for (int sub = 1; sub < numElements; sub += 1)
if (numArray[sub] > high)
high = numArray[sub];
return high;
}
int getLowest(int numArray[], int numElements)
{
int low = numArray[0];
for (int sub = 0; sub >= numElements; sub--)
if (numArray[sub]< low)
low = numArray[sub];
return low;
}

Concerning getLowest():
There is actually no need to iterate backwards. It could be done like in getHighest(). However, say this is a requirement for teaching…
The test array is
int numbers[4] = { 13, 2, 40, 25 };
// indices: 0 1 2 3
// number of elements: 4
A loop to iterate backwards has to start with index numElements - 1 (3 in this case) and to stop at index 0.
for (int sub = numElements - 1; sub >= 0; sub--)
Nevertheless, this will check the last element which is already assigned before the loop. (getHighest() starts the loop with the 2nd element for this reason: for (int sub = 1;…) Thus, this can be corrected to:
for (int sub = numElements - 2; sub >= 0; sub--)

This is the corrected example:
int getLowest(int numArray[], int numElements)
{
int low = numArray[0];
for (int sub = 1; sub < numElements; ++sub)
{
//std::cout<<"checking: "<<numArray[sub]<<"with"<<low<<std::endl;
if (numArray[sub]< low){
low = numArray[sub];
}
}
return low;
}
The complete working example is here
Also note in your given example you have made a mistake at:
cout << "The lowest number in the array is "<< getLowest(numbers,0) << "." << endl;
Instead of passing 0 as the second argument you should pass 4 as i did here.
Another mistake was the initial value of varaible sub in the for loop. You started with sub = 0 instead of sub = numelements - 1.
That is the for loop should have looked like:
//note in the next line we have sub >=1 instead of sub>=0 becuase you have already stored numArray[0] in variable low
for (int sub = numElements -1; sub >=1; --sub)
{
...other code here
}

How to find all possible combinations of adding two variables, each attached to a multiplier, summing up to a given number (cin)?

In my situation, a lorry has a capacity of 30, while a van has a capacity of 10. I need to find the number of vans/lorries needed to transport a given amount of cargo, say 100. I need to find all possible combinations of lorries + vans that will add up to 100.
The basic math calculation would be: (30*lorrycount) + (10*vancount) = n, where n is number of cargo.
Output Example
Cargo to be transported: 100
Number of Lorry: 0 3 2 1
Number of Van: 10 1 4 7
For example, the 2nd combination is 3 lorries, 1 van. Considering that lorries have capacity = 30 and van capacity = 10, (30*3)+(10*1) = 100 = n.
For now, we only have this code, which finds literally all combinations of numbers that add up to given number n, without considering the formula given above.
#include <iostream>
#include <vector>
using namespace std;
void findCombinationsUtil(int arr[], int index,
int num, int reducedNum)
{
int lorry_capacity = 30;
int van_capacity = 10;
// Base condition
if (reducedNum < 0)
return;
// If combination is found, print it
if (reducedNum == 0)
{
for (int i = 0; i < index; i++)
cout << arr[i] << " ";
cout << endl;
return;
}
// Find the previous number stored in arr[]
// It helps in maintaining increasing order
int prev = (index == 0) ? 1 : arr[index - 1];
// note loop starts from previous number
// i.e. at array location index - 1
for (int k = prev; k <= num; k++)
{
// next element of array is k
arr[index] = k;
// call recursively with reduced number
findCombinationsUtil(arr, index + 1, num,
reducedNum - k);
}
}
void findCombinations(int n)
{
// array to store the combinations
// It can contain max n elements
std::vector<int> arr(n); // allocate n elements
//find all combinations
findCombinationsUtil(&*arr.begin(), 0, n, n);
}
int main()
{
int n;
cout << "Enter the amount of cargo you want to transport: ";
cin >> n;
cout << endl;
//const int n = 10;
findCombinations(n);
return 0;
}
Do let me know if you have any solution to this, thank you.

An iterative way of finding all possible combinations
#include <iostream>
#include <vector>
int main()
{
int cw = 100;
int lw = 30, vw = 10;
int maxl = cw/lw; // maximum no. of lorries that can be there
std::vector<std::pair<int,int>> solutions;
// for the inclusive range of 0 to maxl, find the corresponding no. of vans for each variant of no of lorries
for(int l = 0; l<= maxl; ++l){
bool is_integer = (cw - l*lw)%vw == 0; // only if this is true, then there is an integer which satisfies for given l
if(is_integer){
int v = (cw-l*lw)/vw; // no of vans
solutions.push_back(std::make_pair(l,v));
}
}
for( auto& solution : solutions){
std::cout<<solution.first<<" lorries and "<< solution.second<<" vans" <<std::endl;
}
return 0;
}

We will create a recursive function that walks a global capacities array left to right and tries to load cargo into the various vehicle types. We keep track of how much we still have to load and pass that on to any recursive call. If we reach the end of the array, we produce a solution only if the remaining cargo is zero.
std::vector<int> capacities = { 30, 10 };
using Solution = std::vector<int>;
using Solutions = std::vector<Solution>;
void tryLoad(int remaining_cargo, int vehicle_index, Solution so_far, std::back_insert_iterator<Solutions>& solutions) {
if (vehicle_index == capacities.size()) {
if (remaining_cargo == 0) // we have a solution
*solutions++ = so_far;
return;
}
int capacity = capacities[vehicle_index];
for (int vehicles = 0; vehicles <= remaining_cargo / capacity; vehicles++) {
Solution new_solution = so_far;
new_solution.push_back(vehicles);
tryLoad(remaining_cargo - vehicles * capacity, vehicle_index + 1, new_solution, solutions);
}
}
Calling this as follows should produce the desired output in all_solutions:
Solutions all_solutions;
auto inserter = std::back_inserter(all_solutions)
tryLoad(100, 0, Solution{}, inserter);

How would I write an algorithm to find the greatest jump from number to number in a sequence?

If your sequence is 4 2 1, the largest jump is from 4 to 2. If your sequence is 3 10 5 16 8 4 2 1, the largest jump is from 5 to 16.
I've made an algorithm however I'm not completely sure what I have done wrong (whever I haven't made the loop properly, set my variables correctly, or something else). I'm not sure what I need to set my index, BiggestDiff, or CurrentDiff too. I tried using a while loop to compare each number in my vector but I get zero (I'm assuming because I set BiggestDiff to zero)
If anyone can point me in the right direction, show me an example, or something else, that will be greatly appreciated.
Here is my code below
int findBiggestDiff(std::vector<int> sequence)
{
int index = 0;
int BiggestDiff = 0 ;
int CurrentDiff = BiggestDiff;
CurrentDiff = std::abs(sequence[index] - sequence[index + 1]);
while (index < sequence.size())
{
if (CurrentDiff > BiggestDiff)
{
BiggestDiff = CurrentDiff;
}
return index;
}
}

Try this:
{
int indexOfBiggestJump = 0;
int BiggestDiff = 0 ;
int CurrentDiff = BiggestDiff;
for(int i = 0; i < sequence.size() - 1; i++) {
CurrentDiff = std::abs(sequence[i] - sequence[i + 1]);
if (CurrentDiff > BiggestDiff)
{
BiggestDiff = CurrentDiff;
indexOfBiggestJump = i;
}
}
return indexOfBiggestJump;
}
There are several errors in your code.
your return index literally does nothing, only returns index (which will be 0) always.
you are not saving the index of the biggest jump anywhere.
if you are looking positions i and i + 1, you must go until sequence.size() - 1, otherwise you will look out of the bounds of sequence.

You aren't recalculating CurrentDiff at all. Also, your return statement in the in the wrong spot. You can do something like this (not tested)
int findLargest( const std::vector<int> &sequence ) {
if ( sequence.size() < 2 ) return -1; // if there's not at least two elements, there's nothing valid.
int index = 0;
int biggestIndex = -1;
int biggestDiff = -1;
while (index < sequence.size() - 1) // -1 so that the +1 below doesn't go out of range
{
// get the current difference
int currentDiff = std::abs(sequence[index] - sequence[index + 1]);
if (currentDiff > biggestDiff)
{
// update stats
biggestIndex = index;
biggestDiff = currentDiff;
}
++index;
}
return biggestIndex
}
int main() {
//…
int index = findLargest( sequence );
if ( index != -1 ) {
std::cout << "Biggest difference was between " << sequence[index] << " and " << sequence[index+1];
}
}

Finding Mode of Vector of Ints in C++

So I'm trying to make a basic program to learn the basics of C++, I'm generating 100 random numbers from 0 to 100 and storing them in a vector, I am then displaying the sum, mean, median, mode, high and low of the vector. I have everything else done except the mode which is where I get stuck. Here is the code I have so far.
int modeFunction()
{
numMode = 0;
count = 0;
for (int n = 0; n < 100; n++)
{
for (int y = 0; y < 100; y++)
{
if (numVector.at(y) == numVector.at(n))
{
numMode = numVector.at(y);
count++;
}
}
}
return numMode;
}
After that I get stuck because in my mind that should work but it doesn't. It just out puts the last number, usually 100. Any help would be much appreciated.

since all the values are between 0 and 100, you can find the mode efficiently with a histogram:
std::vector<int> histogram(101,0);
for( int i=0; i<100; ++i )
++histogram[ numVector[i] ];
return std::max_element( histogram.begin(), histogram.end() ) - histogram.begin();

Since mode is the number that occurs most frequent you shouldn't change numMode unless the new number's count is greater than numMode's count.
EDIT: To clarify, you need to keep a separate count for the current element and the current number that you think is the mode. Ideally, setting newMode to the first element is a good approach.
In addition, mode isn't necessary unique (i.e. "1 1 2 2"). You may want to keep that in mind if you care about that.
newMode = element[0]
modeCount = # of occurrence of newMode
for ( i-th element from [1 to end] ) {
tmpCount = # of occurrence of element[i]
if tmpCount > modeCount {
newMode = element[i]
modeCount = tmpCount
}
}

bmcnett's approach works great if number of elements are small enough. If you have large number of elements but the all element value are with in a small range using map/hashmap works well. Something like
typedef std::pair<int, int> mode_pair;
struct mode_predicate
{
bool operator()(mode_pair const& lhs, mode_pair const& rhs)
{
return lhs.second < rhs.second;
}
};
int modeFunction()
{
std::map<int, int> mode_map;
for (int n = 0; n < 100; n++)
mode_map[numVector[n]]++;
mode_predicate mp;
return std::max_element(mode_map.begin(), mode_map.end(), mp)->first;
}

Your algorithm is wrong - it outputs the last number in the array because that's all it can ever do. Every time the number at index y matches the number at index n you overwrite the results for the previous n. Since you're using the same loop conditions, y and n are always the same at at least one point in the nested loop for each possible n value - and you'll always end up with numMode being numVector.at(99).
You need to change your algorithm to save the count for each n index along the way (or at least which n index ended up with the greatest count), so that you can know at the end of the n loop which entry occured the most times.

Alternative solutions. Note: untested.
int mode1(const std::vector<int>& values)
{
int old_mode = 0;
int old_count = 0;
for(size_t n=0; n < values.size(); ++n)
{
int mode = values[n];
int count = std::count(values.begin()+n+1, values.end(), mode);
if(count > old_count)
{
old_mode = mode;
old_count = count;
}
}
return old_mode;
}
int mode2(const std::vector<int>& values)
{
return std::max_element(values.begin(), values.end(), [](int value)
{
return std::count(values.begin(), values.end(), value);
});
}

Mode means a number with highest frequency. The logic should be -
//Start of function
int mode = 0, globalCount = 0 ;
// Start of outer for loop
for i = 0 to length - 1
int localCount = 0
// Start of inner for loop
for j = 0 to length - 1
if vec[i] == vec[j]
++localCount
// End of Inner for loop
if ( localCount > globalCount )
globalCount = localCount
mode = vec[i]
// End of outer for loop
if globalCount > 1 // This should be checked whether vec has repetitions at all
return mode
else
return 0
// End of function

int number = array_list[0];
int mode = number;
int count = 1;
int countMode = 1;
for (int i=1; i<size_of_list; i++)
{
if (array_list[i] == number)
{ // count occurrences of the current number
count++;
if (count > countMode)
{
countMode = count; // mode is the biggest ocurrences
mode = number;
}
}
else
{ // now this is a different number
if (count > countMode)
{
countMode = count; // mode is the biggest ocurrences
mode = number;
}
count = 1; // reset count for the new number
number = array_list[i];
}
}

How can we find second maximum from array efficiently?

Is it possible to find the second maximum number from an array of integers by traversing the array only once?
As an example, I have a array of five integers from which I want to find second maximum number. Here is an attempt I gave in the interview:
#define MIN -1
int main()
{
int max=MIN,second_max=MIN;
int arr[6]={0,1,2,3,4,5};
for(int i=0;i<5;i++){
cout<<"::"<<arr[i];
}
for(int i=0;i<5;i++){
if(arr[i]>max){
second_max=max;
max=arr[i];
}
}
cout<<endl<<"Second Max:"<<second_max;
int i;
cin>>i;
return 0;
}
The interviewer, however, came up with the test case int arr[6]={5,4,3,2,1,0};, which prevents it from going to the if condition the second time.
I said to the interviewer that the only way would be to parse the array two times (two for loops). Does anybody have a better solution?

Your initialization of max and second_max to -1 is flawed. What if the array has values like {-2,-3,-4}?
What you can do instead is to take the first 2 elements of the array (assuming the array has at least 2 elements), compare them, assign the smaller one to second_max and the larger one to max:
if(arr[0] > arr[1]) {
second_max = arr[1];
max = arr[0];
} else {
second_max = arr[0];
max = arr[1];
}
Then start comparing from the 3rd element and update max and/or second_max as needed:
for(int i = 2; i < arr_len; i++){
// use >= n not just > as max and second_max can hav same value. Ex:{1,2,3,3}
if(arr[i] >= max){
second_max=max;
max=arr[i];
}
else if(arr[i] > second_max){
second_max=arr[i];
}
}

The easiest solution would be to use std::nth_element.

You need a second test:
for(int i=0;i<5;i++){
if(arr[i]>max){
second_max=max;
max=arr[i];
}
else if (arr[i] > second_max && arr[i] != max){
second_max = arr[i];
}
}

Your original code is okay, you just have to initialize the max and second_max variables. Use the first two elements in the array.

Here you are:
std::pair<int, int> GetTwoBiggestNumbers(const std::vector<int>& array)
{
std::pair<int, int> biggest;
biggest.first = std::max(array[0], array[1]); // Biggest of the first two.
biggest.second = std::min(array[0], array[1]); // Smallest of the first two.
// Continue with the third.
for(std::vector<int>::const_iterator it = array.begin() + 2;
it != array.end();
++it)
{
if(*it > biggest.first)
{
biggest.second = biggest.first;
biggest.first = *it;
}
else if(*it > biggest.second)
{
biggest.second = *it;
}
}
return biggest;
}

Quickselect is the way to go with this one. Pseudo code is available at that link so I shall just explain the overall algorithm:
QuickSelect for kth largest number:
Select a pivot element
Split array around pivot
If (k < new pivot index)
perform quickselect on left hand sub array
else if (k > new pivot index)
perform quickselect on right hand sub array (make sure to offset k by size of lefthand array + 1)
else
return pivot
This is quite obviously based on the good old quicksort algorithm.
Following this algorithm through, always selecting element zero as the pivot every time:
select 4th largest number:
1) array = {1, 3, 2, 7, 11, 0, -4}
partition with 1 as pivot
{0, -4, _1_, 3, 2, 7, 11}
4 > 2 (new pivot index) so...
2) Select 1st (4 - 3) largest number from right sub array
array = {3, 2, 7, 11}
partition with 3 as pivot
{2, _3_, 7, 11}
1 < 2 (new pivot index) so...
3) select 1st largest number from left sub array
array = {2}
4) Done, 4th largest number is 2
This will leave your array in an undefined order afterwards, it's up to you if that's a problem.

Step 1. Decide on first two numbers.
Step 2. Loop through remaining numbers.
Step 3. Maintain latest maximum and second maximum.
Step 4. When updating second maximum, be aware that you are not making maximum and second maximum equal.
Tested for sorted input (ascending and descending), random input, input having duplicates, works fine.
#include <iostream>
#define MAX 50
int GetSecondMaximum(int* data, unsigned int size)
{
int max, secmax;
// Decide on first two numbers
if (data[0] > data[1])
{
max = data[0];
secmax = data[1];
}
else
{
secmax = data[0];
max = data[1];
}
// Loop through remaining numbers
for (unsigned int i = 2; i < size; ++i)
{
if (data[i] > max)
{
secmax = max;
max = data[i];
}
else if (data[i] > secmax && data[i] != max/*removes duplicate problem*/)
secmax = data[i];
}
return secmax;
}
int main()
{
int data[MAX];
// Fill with random integers
for (unsigned int i = 0; i < MAX; ++i)
{
data[i] = rand() % MAX;
std::cout << "[" << data[i] << "] "; // Display input
}
std::cout << std::endl << std::endl;
// Find second maximum
int nSecondMax = GetSecondMaximum(data, MAX);
// Display output
std::cout << "Second Maximum = " << nSecondMax << std::endl;
// Wait for user input
std::cin.get();
return 0;
}

Other way to solve this problem, is to use comparisons among the elements. Like for example,
a[10] = {1,2,3,4,5,6,7,8,9,10}
Compare 1,2 and say max = 2 and second max = 1
Now compare 3 and 4 and compare the greatest of them with max.
if element > max
second max = max
element = max
else if element > second max
second max = element
The advantage with this is, you are eliminating two numbers in just two comparisons.
Let me know, if you have any problem understanding this.

Check this solution.
max1 = a[0];
max2 = a[1];
for (i = 1; i < n; i++)
{
if (max1 < a[i])
{
max2 = max1;
max1 = a[i];
}
if (max2 == max1) max2 = a[i + 1];
if (max2 == a[n])
{
printf("All numbers are the same no second max.\n");
return 0;
}
if (max2 < a[i] && max1 != a[i]) max2 = a[i];
}

Here is something which may work ,
public static int secondLargest(int[] a){
int max=0;
int secondMax=0;
for(int i=0;i<a.length;i++){
if(a[i]<max){
if(a[i]>secondMax){
secondMax=a[i];
}
continue;
}
if(a[i]>max){
secondMax=max;
max=a[i];
}
}
return secondMax;
}

The upper bound should have be n+log2⁡n−2, but it bigger than O(n) in case of random selection algorithm, but in worst case it much smaller. The solution might be
build a tree like to find the MAX element with n - 1 comparisons
max(N)
/ \
max(N/2) max(N/2)
remove the MAX and find the MAX again log2n - 1 comparison
PS. It uses additional memory, but it faster than random selection algorithm in worst case.

Can't we just sort this in decreasing order and take the 2nd element from the sorted array?

How about the following below.
make_heap is O(n) so this is efficient and this is 1-pass
We find the second max by taking advantage that it must be one of the heap children of the parent, which had the maximum.
#include <algorithm>
#include <iostream>
int main()
{
int arr[6]={0,1,2,3,4,5};
std::make_heap(arr, arr+6);
std::cout << "First Max: " << arr[0] << '\n';
std::cout << "Second Max: " << std::max(arr[1], arr[2]) << '\n';
return 0;
}

int max,secondMax;
max=secondMax=array[0];
for(int i=0;i<array.length;i++)
{ if(array[i]>max) { max=array[i]; }
if(array[i]>secondMax && array[i]<max) {
secondMax=array[i]; }
}

#include <iostream>
using namespace std;
int main() {
int max = 0;
int sec_Max = 0;
int array[] = {81,70,6,78,54,77,7,78};
int loopcount = sizeof(array)/sizeof(int);
for(int i = 0 ; i < loopcount ; ++i)
{
if(array[i]>max)
{
sec_Max = max;
max = array[i];
}
if(array[i] > sec_Max && array[i] < max)
{
sec_Max = array[i];
}
}
cout<<"Max:" << max << " Second Max: "<<sec_Max<<endl;
return 0;
}

// Set the first two different numbers as the maximum and second maximum numbers
int max = array[0];
int i = 1;
//n is the amount of numbers
while (array[i] == max && i < n) i++;
int sec_max = array[i];
if( max < sec_max ) {
tmp = sec_max;
sec_max = max;
max = tmp;
}
//find the second maximum number
for( ; i < n; ++i ) {
if( array[i] > max ) {
sec_max = max;
max = array[i];
} else if( array[i] > sec_max && array[i] != max ) {
sec_max = array[i];
}
}
printf("The second maximum number is %d\n", sec_max);