I am getting an error when compiling this code. Z is the final count of coins needed to make change with aim being to use minimum number of coins. I defined int Z = 0 near the top. I've tried adding int z again and changing type to f in print statement but no luck.
Here's the error:
error: format specifies type 'int' but the argument has type '<dependent type>' [-Werror,-Wformat]
greedy.c:77:16: error: use of undeclared identifier 'z'
printf("%i\n", z);
Here is my code. I am a beginner so any suggestions or corrections would be welcome.
#include <stdio.h>
#include <cs50.h>
#include <math.h>
int main(void)
{
//prompt user for amount of change owed
float f;
int num; //amount of change
do
{
printf("O hai! How much change is owed?:\n");
f = get_float();
}
while (f < 0); //verify input is positive
num = round(f * 100); //rounds float
//commence making change
do{
int c, e, i, j;
int z = 0; //z = coins
if (num % 25 == 0) // verifies that num is divisible by 25 so only 25c coins necessary
{
z = (num/25) + z; // updates final number of 25c coins
}
else if (num % 25 > 0)
{
i = num / 25;
j = num % 25;
}
else if ((num / 25 < 0) || (num >=10 && num < 25)) //this means that f is less than 25 cents so has to be divided by 10 cent coins
{
num = c;
c = j + c; //add remainder of num to the number to start with
}
if (c % 10 == 0) // c is less than 25c but divisible by 10c pieces
{
z = (c / 10) + z; //d is the final number of 10c coins
}
else if (c /10 < 1) //this means it's less than 10c
{
c = e; // Then c must be less than 10c
}
else if (e % 5 == 0) // divisible by 5c pieces
{
z = (e / 5) + z; // g is the number of 5 cent pieces
}
else if (e % 5 < 0)
{
z = (e / 1) + z; //h is the number of pennies
}
}
while (num > 0); //num is rounded float
printf("%i\n", z);
}
Firstly, I suggest you should format your code properly with indents.
Then, the cause of error is that z is declared inside the block associated to do loop and printf("%i\n", z); is out of its scope.
To get rid of this error, declare z at the place where visible from the printf() call -- for example, just before the do loop.
Note that declaring int Z = 0 won't work because identifiers' names are case-sensitive in C.
Like already said, you are declaring z inside the do-while loop, so it's visible only inside the loop.
You should declare it before the loop starts, so you can use it after the loop ends as well. Like this:
int z = 0; //z = coins
do{
***YOUR CODE***
} while();
Related
I'm trying to code a program that can tell apart real and fake credit card numbers using Luhn's algorithm in C, which is
Multiply every other digit by 2, starting with the number’s
second-to-last digit, and then add those products’ digits together.
Add the sum to the sum of the digits that weren’t multiplied by 2.
If the total’s last digit is 0 (or, put more formally, if the total
modulo 10 is congruent to 0), the number is valid!
Then I coded something like this (I already declared all the functions at the top and included all the necessary libraries)
//Luhn's Algorithm
int luhn(long z)
{
int c;
return c = (sumall(z)-sumodd(z)) * 2 + sumaodd(z);
}
//sum of digits in odd position starting from the end
int sumodd(long x)
{
int a;
while(x)
{
a = a + x % 10;
x /= 100;
}
return a;
}
//sum of all digits
int sumall(long y)
{
int b;
while(y)
{
b = b + y % 10;
y /= 10;
}
return b;
}
But somehow it always gives out the wrong answer even though there's no error or bug detected. I came to notice that it works fine when my variable z stands alone, but when it's used multiple times in the same line of code with different functions, their values get messed up (in function luhn). I'm writing this to ask for any fix I can make to make my code run correctly as I intended.
I'd appreciate any help as I'm very new to this, and I'm not a native English speaker so I may have messed up some technical terms, but I hope you'd be able to understand my concerns.
sumall is wrong.
It should be sumeven from:
Add the sum to the sum of the digits that weren’t multiplied by 2.
Your sumall is summing all digits instead of the non-odd (i.e. even) digits.
You should do the * 2 inside sumodd as it should not be applied to the other [even] sum. And, it should be applied to the individual digits [vs the total sum].
Let's start with a proper definition from https://en.wikipedia.org/wiki/Luhn_algorithm
The check digit is computed as follows:
If the number already contains the check digit, drop that digit to form the "payload." The check digit is most often the last digit.
With the payload, start from the rightmost digit. Moving left, double the value of every second digit (including the rightmost digit).
Sum the digits of the resulting value in each position (using the original value where a digit did not get doubled in the previous step).
The check digit is calculated by 10 − ( s mod 10 )
Note that if we have a credit card of 9x where x is the check digit, then the payload is 9.
The correct [odd] sum for that digit is: 9 * 2 --> 18 --> 1 + 8 --> 9
But, sumodd(9x) * 2 --> 9 * 2 --> 18
Here's what I came up with:
// digsum -- calculate sum of digits
static inline int
digsum(int digcur)
{
int sum = 0;
for (; digcur != 0; digcur /= 10)
sum += digcur % 10;
return sum;
}
// luhn -- luhn's algorithm using digits array
int
luhn(long z)
{
char digits[16] = { 0 };
// get check digit and remove from "payload"
int check_expected = z % 10;
z /= 10;
// split into digits (we use little-endian)
int digcnt = 0;
for (digcnt = 0; z != 0; ++digcnt, z /= 10)
digits[digcnt] = z % 10;
int sum = 0;
for (int digidx = 0; digidx < digcnt; ++digidx) {
int digcur = digits[digidx];
if ((digidx & 1) == 0)
sum += digsum(digcur * 2);
else
sum += digcur;
}
int check_actual = 10 - (sum % 10);
return (check_actual == check_expected);
}
// luhn -- luhn's algorithm using long directly
int
luhn2(long z)
{
// get check digit and remove from "payload"
int check_expected = z % 10;
z /= 10;
int sum = 0;
for (int digidx = 0; z != 0; ++digidx, z /= 10) {
int digcur = z % 10;
if ((digidx & 1) == 0)
sum += digsum(digcur * 2);
else
sum += digcur;
}
int check_actual = 10 - (sum % 10);
return (check_actual == check_expected);
}
You've invoked undefined behavior by not initializing a few local variables in your functions, for instance you can remove your undefined behaviour in sumodd() by initializing a to zero like so:
//sum of digits in odd position starting from the end
int sumodd(long x)
{
int a = 0; //Initialize
while(x)
{
a += x % 10; //You can "a += b" instead of "a = a + b"
x /= 100;
}
return a;
}
It's also important to note that long is only required to be a minimum of 4-bytes wide, so it is not guaranteed to be wide enough to represent a decimal-16-digit-integer. Using long long solves this problem.
Alternatively you may find this problem much easier to solve by treating your credit card number as a char[] instead of an integer type altogether, for instance if we assume a 16-digit credit card number:
int luhn(long long z){
char number[16]; //Convert CC number to array of digits and store them here
for(int c = 0; c < 16; ++c){
number[c] = z % 10; //Last digit is at number[0], first digit is at number[15]
z /= 10;
}
int sum = 0;
for(int c = 0; c < 16; c += 2){
sum += number[c] + number[c + 1] * 2; //Sum the even digits and the doubled odd digits
}
return sum;
}
...and you could skip the long long to char[] translation part altogether if you treat the credit card number as an array of digits in the whole program
This expression:
(sumall(z)-sumodd(z)) * 2 + sumall(z);
Should be:
((sumall(z)-sumodd(z)) * 2 + sumodd(z))%10;
Based on your own definition.
But how about:
(sumall(z) * 2 - sumodd(z))%10
If you're trying to be smart and base off sumall(). You don't need to call anything twice.
Also you don't initialise your local variables. You must assign variables values before using them in C.
Also you don't need the local variable c in the luhn() function. It's harmless but unnecessary.
As others mention in a real-world application we can't recommend enough that such 'codes' are held in a character array. The amount of grief caused by people using integer types to represent digit sequence 'codes' and identifiers is vast. Unless a variable represents a numerical quantity of something, don't represent it as an arithmetic type. More issue has been caused in my career by that error than people trying to use double to represent monetary amounts.
#include <stdio.h>
//sum of digits in odd position starting from the end
int sumodd(long x)
{
int a=0;
while(x)
{
a = a + x % 10;
x /= 100;
}
return a;
}
//sum of all digits
int sumall(long y)
{
int b=0;
while(y)
{
b = b + y % 10;
y /= 10;
}
return b;
}
//Luhn's Algorithm
int luhn(long z)
{
return (sumall(z)*2-sumodd(z))%10;
}
int check_luhn(long y,int expect){
int result=luhn(y);
if(result==expect){
return 0;
}
return 1;
}
int check_sumodd(long y,int expect){
int result=sumodd(y);
if(result==expect){
return 0;
}
return 1;
}
int check_sumall(long y,int expect){
int result=sumall(y);
if(result==expect){
return 0;
}
return 1;
}
int main(void) {
int errors=0;
errors+=check_sumall(1,1);
errors+=check_sumall(12,3);
errors+=check_sumall(123456789L,45);
errors+=check_sumall(4273391,4+2+7+3+3+9+1);
errors+=check_sumodd(1,1);
errors+=check_sumodd(91,1);
errors+=check_sumodd(791,8);
errors+=check_sumodd(1213191,1+1+1+1);
errors+=check_sumodd(4273391,15);
errors+=check_luhn(1234567890,((9+7+5+3+1)*2+(0+8+6+4+2))%10);
errors+=check_luhn(9264567897,((9+7+5+6+9)*2+(7+8+6+4+2))%10);
if(errors!=0){
printf("*ERRORS*\n");
}else{
printf("Success\n");
}
return 0;
}
I need to write a program that takes 2 digits(X and n) and then prints X with last n digits of X reversed.
For example
Input: 12345 3
Output: 12543
Input: 523 2
Output: 532
I already wrote a control mechanism for checking n is greater or equal than the number of digits of X
For example if inputs are 6343 and 7, program prints that inputs should be changed and takes input again.
My main problem is I couldn't find an algorithm for reversing last n digits. I can reverse any int with this code
int X, r = 0;
printf("Enter a number to reverse\n");
scanf("%d", &n);
while (X != 0)
{
r = r * 10;
r = r + n%10;
X = X/10;
}
printf("Reverse of the number = %d", r);
But I couldn't figure how two reverse just last digits. Can you give me any idea for that?
I couldn't figure how to reverse just last digits
Separate the number using pow(10,n) - see later code.
unsigned reverse_last_digits(unsigned x, unsigned n) {
unsigned pow10 = powu(10, n);
unsigned lower = x%pow10;
unsigned upper = x - lower;
return upper + reverseu(lower, n);
}
Create a loop that extracts the least-significant-digit (%10) and builds up another integer by applying that digit. (y = y*10 + new_digit)
unsigned reverseu(unsigned x, unsigned n) {
unsigned y = 0;
while (n-- > 0) {
y = y*10 + x%10;
x /= 10;
}
return y;
}
For integer type problems, consider integer helper functions and avoid floating point functions like pow() as they may provide only an approximate results. Easy enough to code an integer pow().
unsigned powu(unsigned x, unsigned expo) {
unsigned y = 1;
while (expo > 0) {
if (expo & 1) {
y = x * y;
}
expo >>= 1;
x *= x;
}
return y;
}
Test
int main() {
printf("%u\n", reverse_last_digits(12345, 3));
printf("%u\n", reverse_last_digits(523, 2));
printf("%u\n", reverse_last_digits(42001, 3));
printf("%u\n", reverse_last_digits(1, 2));
}
Output
12543
532
42100
10
Code uses unsigned rather than int to avoid undefined behavior (UB) on int overflow.
It is an easy one.
1. let say the number you want to reverse is curr_number;
2. Now, the places you want to reverse is x;
(remember to verify that x must be less than the number of digit of curr_number);
3. now, just take a temp integer and store curr_number / pow(10,x) ('/' = divide and pow(10,x) is 10 to the power x)
4. now, take a second number temp2, which will store curr_number-(temp * pow(10,x) )
5. reverse this temp2 (using your function)
6. now, answer = (temp * pow(10,x) ) + (temp2) //(note temp2 is reversed)
example with steps:
curr_number = 1234567
places you want to reverse is 3
temp = 1234567 / (10^3) i.e (1234567/1000) = 1234 (because it is int type)
temp2 = 1234567 - (1234*10^3) i.e 1234567 - 1234000 = 567
reverse(567) = 765
answer = (1234 * 10^3) + 765 = 1234765
Create two variables
lastn which stores the last n digits (345)
r which stores the reversed last n digits (543)
Subtract lastn from the original number (12345 - 345 = 12000)
Add r to the above number (12000 + 543 = 12543)
int c = 0; // count number of digits
int original = x;
int lastn = 0;
while (x != 0 && c < n) {
r = r * 10;
r = r + x % 10;
lastn += (x % 10) * pow(10, c);
x = x / 10;
c++;
}
printf("reversed: %d\n", original - lastn + r);
In case you don't have problems using char, you can do this
#include <stdio.h>
#include <string.h>
#define SIZE 10
int main() {
char n[SIZE]; // the Number;
int x; // number of last digits of n to reverse
int len; // number of digits of n
scanf("%s%d", n, &x);
len = strlen(n);
for(int i = 0; i < len; i++) {
i < len - x ? printf("%c", n[i]) : printf("%c", n[2*len -1 - i - x]);
}
return 0;
}
If you want you can make the program more readable by splitting the for in two
for(int i = 0; i < len - x; i++) {
printf("%c", n[i]);
}
for(int i = len-1; i >= len - x; i--) {
printf("%c", n[i]);
}
Note: the program won't work if n > x (i.e. if you want to swap more digits than you got)
I have to write a program that will find a square root using the while loop. I was given this new_guess = (old_guess + (n / old_guess)) / 2.0; but I dont fully understand what to do with it, this is what I have:
int main(void)
{
double n, x, new_guess, old_guess, value;
printf("Enter a number:");
scanf("%lf", &n);
x = 1.00000;
while (new_guess >= n) {
new_guess = (old_guess + (n / old_guess)) / 2.0;
printf("%10.5lf\n", fabs(new_guess));
}
return 0;
}
x is the initial guess. Im really lost on how to do it. This is C also. I know its really wrong but I really dont understand how to make it start because when I enter a number it just stop right away.
Your program has undefined behavior because both new_guess and old_guess are uninitialized when you enter the loop.
The condition is also incorrect: you should stop when new_guess == old_guess or after a reasonable maximum number of iterations.
Here is a modified version:
#include <math.h>
#include <stdio.h>
int main(void) {
double n, x;
int i;
printf("Enter numbers:");
while (scanf("%lf", &n) == 1 && n >= 0.0) {
x = 1.0;
/* Using a while loop as per the assignment...
* a for loop would be much less error prone.
*/
i = 0;
while (i < 1024) {
double new_guess = (x + (n / x)) / 2.0;
if (new_guess == x)
break;
x = new_guess;
i++;
}
printf("%g: %.17g, %d iterations, diff=%.17g\n",
n, x, i, sqrt(n) - x);
}
return 0;
}
Given the start value, the number of iterations grows with the size of n, exceeding 500 for very large numbers, but usually less than 10 for small numbers. Note also that this algorithm fails for n = 0.0.
Here is a slightly more elaborate method, using the floating point break up and combine functions double frexp(double value, int *exp); and double ldexp(double x, int exp);. These functions do not perform any calculation but allow for a much better starting point, achieving completion in 4 or 5 iterations for most values:
#include <math.h>
#include <stdio.h>
int main(void) {
double n, x;
int i, exp;
printf("Enter a number:");
while (scanf("%lf", &n) == 1 && n >= 0.0) {
if (n == 0) {
x = 0.0;
i = 0;
} else {
frexp(n, &exp);
x = ldexp(1.0, exp / 2);
for (i = 0; i < 1024; i++) {
double new_guess = (x + (n / x)) / 2.0;
if (new_guess == x)
break;
x = new_guess;
}
}
printf("%g: %.17g, %d iterations, diff=%.17g\n",
n, x, i, sqrt(n) - x);
}
return 0;
}
I'm trying to input two numbers and remove 8s and 9s (not convert them, only remove unneeded numbers) so they can fit in the octal base.
When I run the program and input the numbers, they are almost correctly returned, but they are deducted by a bit.
I still don't know why and how to fix it. It might be something with zeroes, but I don't know.
int octal(int a)
{
int b = 0;
int i = 0;
while(a > 0){
if((a % 10) <= 7){
b= pow(10,i) * (a%10)+b;
i++;
}
a=a/10;
}
return b;
}
int main()
{
int j, o, a, b;
scanf(" %d %d", &j, &o);
a=octal(j);
b=octal(o);
printf("%d\n%d\n",a,b);
return 0;
}
edit: Example
Input: 72349 and 91238
Output: 7233 and 122
Code is encountering a weak double pow() that is returning values near the expected mathematical result. When the result is just under a whole number, the conversion back to int results in fraction truncation - results appear 1 less then expected.
Could use round(pow(10,i)) or better yet, stay with int math as follows.
Other simplifications possible, but minimal code changes to outline OP's issue.
int octal(int a) {
int b = 0;
int i = 0;
int pow10 = 1;
while (a > 0) {
if ((a % 10) <= 7) {
//b = pow(10,i) * (a%10)+b;
b = pow10 * (a % 10) + b;
pow10 *= 10;
i++;
}
a = a / 10;
}
return b;
}
Care for a walk on the recursive side of life?
int octal(int a) {
assert(a >= 0);
while (a >= 8) {
int digit = a%10;
a /= 10;
if (digit < 8) {
return octal(a)*10 + digit;
}
}
return a;
}
I'm doing a homework assignment for my course in C (first programming course).
Part of the assignment is to write code so that a user inputs a number up to 9 digits long, and the program needs to determine whether this number is "increasing"/"truly increasing"/"decreasing"/"truly decreasing"/"increasing and decreasing"/"truly decreasing and truly increasing"/"not decreasing and not increasing". (7 options in total)
Since this is our first assignment we're not allowed to use anything besides what was taught in class:
do-while, for, while loops, else-if, if,
break,continue
scanf, printf ,modulo, and the basic operators
(We can't use any library besides for stdio.h)
That's it. I can't use arrays or getchar or any of that stuff. The only function I can use to receive input from the user is scanf.
So far I've already written the algorithm with a flowchart and everything, but I need to separate the user's input into it's distinct digits.
For example, if the user inputs "1234..." i want to save 1 in a, 2 in b, and so on, and then make comparisons between all the digits to determine for example whether they are all equal (increasing and decreasing) or whether a > b >c ... (decreasing) and so on.
I know how to separate each digit by using the % and / operator, but I can't figure out how to "save" these values in a variable that I can later use for the comparisons.
This is what I have so far:
printf("Enter a positive number : ");
do {
scanf ("%ld", &number);
if (number < 0) {
printf ("invalid input...enter a positive integer: ");
continue;
}
else break;
} while (1);
while (number < 0) {
a = number % 10;
number = number - a;
number = number / 10;
b = a;
}
Why not scan them as characters (string)? Then you can access them via an array offset, by subtracting the offset of 48 from the ASCII character code. You can verify that the character is a digit using isdigit from ctype.h.
EDIT
Because of the incredibly absent-minded limitations that your professor put in place:
#include <stdio.h>
int main()
{
int number;
printf("Enter a positive number: ");
do
{
scanf ("%ld", &number);
if (number < 0)
{
printf ("invalid input...enter a positive integer: ");
continue;
}
else break;
} while (1);
int a = -1;
int b = -1;
int c = -1;
int d = -1;
int e = -1;
int f = -1;
int g = -1;
int h = -1;
int i = -1;
while (number > 0)
{
if (a < 0) a = number % 10;
else if (b < 0) b = number % 10;
else if (c < 0) c = number % 10;
else if (d < 0) d = number % 10;
else if (e < 0) e = number % 10;
else if (f < 0) f = number % 10;
else if (g < 0) g = number % 10;
else if (h < 0) h = number % 10;
else if (i < 0) i = number % 10;
number /= 10;
}
/* Printing for verification. */
printf("%i", a);
printf("%i", b);
printf("%i", c);
printf("%i", d);
printf("%i", e);
printf("%i", f);
printf("%i", g);
printf("%i", h);
printf("%i", i);
return 0;
}
The valid numbers at the end will be positive, so those are the ones you validate to meet your different conditions.
Since you only need to compare consecutive digits, there is an elegant way to do this without arrays:
int decreasing = 2;
int increasing = 2;
while(number > 9)
{
int a = number % 10;
int b = (number / 10) % 10;
if(a == b)
{
decreasing = min(1, decreasing);
increasing = min(1, increasing);
}
else if(a > b)
decreasing = 0;
else if(a < b)
increasing = 0;
number /= 10;
}
Here, we walk through the number (by dividing by 10) until only one digit remains. We store info about the number up to this point in decreasing and increasing - a 2 means truly increasing/decreasing, a 1 means increasing/decreasing, and a 0 means not increasing/decreasing.
At each step, a is the ones digit and b is the tens. Then, we change increasing and decreasing based on a comparison between a and b.
At the end, it should be easy to turn the values of increasing and decreasing into the final answer you want.
Note: The function min returns the smaller of its 2 arguments. You should be able to write your own, or replace those lines with if statements or conditionals.
It's stupid to ask you to do loops without arrays --- but that's your teacher's fault, not yours.
That being said, I would do something like this:
char c;
while (1) {
scanf("%c", &c);
if (c == '\n') /* encountered newline (end of input) */
break;
if (c < '0' || c > '9')
break; /* do something to handle bad characters? */
c -= '0';
/*
* At this point you've got 0 <= c < 9. This is
* where you do your homework :)
*/
}
The trick here is that when you type numbers into a program, you send the buffer all at once, not one character at a time. That means the first scanf will block until the entire string (i.e. "123823" or whatever) arrives all at once, along with the newline character ( '\n' ). Then this loop parses that string at its leisure.
Edit For testing the increasing/decreasing-ness of the digits, you may think you need to store the entire string, but that's not true. Just define some additional variables to remember the important information, such as:
int largest_digit_ive_seen, smallest_digit_ive_seen, strict_increasing_thus_far;
etc. etc.
Let us suppose you have this number 23654
23654 % 10000 = 2 and 3654
3654 % 1000 = 3 and 654
654 % 100 = 6 and 54
54 % 10 = 5 and 4
4
This way you can get all the digits. Of course, you have to know if the number is greater than 10000, 1000, 100 or 10, in order to know the first divisor.
Play with sizeof to get the size of the integer, in order to avoid a huge if...else statement
EDIT:
Let us see
if (number>0) {
// Well, whe have the first and only digit
} else if (number>10) {
int first_digit = number/10;
int second_digit = number % 10;
} else if (number>100) {
int first_digit = number/100;
int second_digit = (number % 100)/10;
int third_digit = (number % 100) % 10;
} ...
and so on, I suppose
// u_i is the user input, My homework asked me to extract a long long, however, this should also be effective for a long.
int digits = 0;
long long d_base = 1;
int d_arr[20];
while (u_i / d_base > 0)
{
d_arr[digits] = (u_i - u_i / (d_base * 10) * (d_base * 10)) / d_base;
u_i -= d_arr[digits] * d_base;
d_base *= 10;
digits++;
}
EDIT: the extracted individual digit now lives in the int array d_arr. I'm not good at C, so I think the array declaration can be optimized.
Here's a working example in plain C :
#include <stdio.h>
unsigned long alePow (unsigned long int x, unsigned long int y);
int main( int argc, const char* argv[] )
{
int enter_num, temp_num, sum = 0;
int divisor, digit, count = 0;
printf("Please enter number\n");
scanf("%d", &enter_num);
temp_num = enter_num;
// Counting the number of digits in the entered integer
while (temp_num != 0)
{
temp_num = temp_num/10;
count++;
}
temp_num = enter_num;
// Extracting the digits
printf("Individual digits in the entered number are ");
do
{
divisor = (int)(alePow(10.0, --count));
digit = temp_num / divisor;
temp_num = temp_num % divisor;
printf(" %d",digit);
sum = sum + digit;
}
while(count != 0);
printf("\nSum of the digits is = %d\n",sum);
return 0;
}
unsigned long alePow(unsigned long int x, unsigned long int y) {
if (x==0) { return 0; }
if (y==0||x==1) { return 1; }
if (y==1) { return x; }
return alePow(x*x, y/2) * ((y%2==0) ? 1 : x);
}
I would suggest loop-unrolling.
int a=-1, b=-1, c=-1, d=-1, e=1, f=-1, g=-1, h=-1, i=-1; // for holding 9 digits
int count = 0; //for number of digits in the given number
if(number>0) {
i=number%10;
number/=10;
count++;
}
if(number>0) {
h=number%10;
number/=10;
count++;
}
if(number>0) {
g=number%10;
number/=10;
count++;
}
....
....
/* All the way down to the storing variable a */
Now, you know the number of digits (variable count) and they are stored in which of the variables. Now you have all digits and you can check their "decreasing", "increasing" etc with lots of if's !
I can't really think of a better soltion given all your conditions.