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Time complexity of an algorithm that runs 1+2+...+n times;

To start off I found this stackoverflow question that references the time complexity to be O(n^2), but it doesn't answer the question of why O(n^2) is the time complexity but instead asks for an example of such an algorithm. From my understanding an algorithm that runs 1+2+3+...+n times would be
less than O(n^2). For example, take this function
function(n: number) {
let sum = 0;
for(let i = 0; i < n; i++) {
for(let j = 0; j < i+1; j++) {
sum += 1;
}
}
return sum;
}
Here are some input and return values
num
sum
1
1
2
3
3
6
4
10
5
15
6
21
7
28
From this table you can see that this algorithm runs in less than O(n^2) but more than O(n). I also realize than algorithm that runs 1+(1+2)+(1+2+3)+...+(1+2+3+...+n) is true O(n^2) time complexity. For the algorithm stated in the problem, do we just say it runs in O(n^2) because it runs more than O(log n) times?

It's known that 1 + 2 + ... + n has a short form of n * (n + 1) / 2. Even if you didn't know that, you have to consider that, when i gets to n, the inner loop runs at most n times. So you have exactly n times (for outer loop i), each running at most n times (for inner loop j), so the O(n^2) becomes more apparent.
I agree that the complexity would be exactly n^2 if the inner loop also ran from 0 to n, so you have your reasons to think that a loop i from 0 to n and another loop j from 0 to i has to perform better and that's true, but with big Oh notation you're actually measuring the degree of algorithm's complexity, not the exact number of operations.
p.s. O(log n) is usually achieved when you split the main problem into sub-problems.

I think you should interpret the table differently. The O(N^2) complexity says that if you double the input N, the runtime should quadruple (take 4 times as long). In this case, the function(n: number) returns a number mirroring its runtime. I use f(N) as a short for it.
So say N goes from 1 to 2, which means the input has doubled (2/1 = 2). The runtime then has gone from f(1) to f(2), which means it has increased f(2)/f(1) = 3/1 = 3 times. That is not 4 times, but the Big-O complexity measure is asymptotic, dealing with the situation where N approaches infinity. If we test another input doubling from the table, we have f(6)/f(3) = 21/6 = 3.5. It is already closer to 4.
Let us now stray outside the table and try more doublings with bigger N. For example we have f(200)/f(100) = 20100/5050 = 3.980 and f(5000)/f(2500) = 12502500/3126250 = 3.999. The trend is clear. As N approaches infinity, a doubled input tends toward a quadrupled runtime. And that is the hallmark of O(N^2).

Sqrt(n) time complexity

I am new to time complexities and asymptotic notation. I was looking at this video: https://www.youtube.com/watch?v=9TlHvipP5yA to figure out the time complexity of a piece of code shown below
The code concludes that the time complexity for the code below is O(Sqrt(n));
When I supply different n values, I am expecting Sqrt(n) # of outputs but this doesn't verify the O(Sqrt(n)) analysis. Can someone please explain why it is so?
For example if I have n = 10, I am expecting Sqrt(10) outputs which is ~ 3 outputs or 4 if you round up I guess. IS this illogical?
Thanks in advance.
p = 0;
for( int i = 0; p <= n; i++){
p = p + i;
System.out.println(p);
}

Big O is not used to compute the number of instructions you are expected to execute. For a given n, calculating the square root of n will not give you the exact number of times the instruction executes. Big O describes what happens with your function as input size gets very large. Analysis of your function when n is 10 or even 100 does not apply to Big O.
When we say a function's time complexity is O(sqrt(n)), we mean that the function belongs in a class of functions where the time required is proportional to the square root of the value of n, but only for very large values of n.
If you watch the video, the instructor simplifies the k(k+1) / 2 term to k^2 by taking the leading term, because the k term becomes insignificant compared to the k^2 term, when k is very large.

Understanding time complexity [duplicate]

I have gone through Google and Stack Overflow search, but nowhere I was able to find a clear and straightforward explanation for how to calculate time complexity.
What do I know already?
Say for code as simple as the one below:
char h = 'y'; // This will be executed 1 time
int abc = 0; // This will be executed 1 time
Say for a loop like the one below:
for (int i = 0; i < N; i++) {
Console.Write('Hello, World!!');
}
int i=0; This will be executed only once.
The time is actually calculated to i=0 and not the declaration.
i < N; This will be executed N+1 times
i++ This will be executed N times
So the number of operations required by this loop are {1+(N+1)+N} = 2N+2. (But this still may be wrong, as I am not confident about my understanding.)
OK, so these small basic calculations I think I know, but in most cases I have seen the time complexity as O(N), O(n^2), O(log n), O(n!), and many others.

How to find time complexity of an algorithm
You add up how many machine instructions it will execute as a function of the size of its input, and then simplify the expression to the largest (when N is very large) term and can include any simplifying constant factor.
For example, lets see how we simplify 2N + 2 machine instructions to describe this as just O(N).
Why do we remove the two 2s ?
We are interested in the performance of the algorithm as N becomes large.
Consider the two terms 2N and 2.
What is the relative influence of these two terms as N becomes large? Suppose N is a million.
Then the first term is 2 million and the second term is only 2.
For this reason, we drop all but the largest terms for large N.
So, now we have gone from 2N + 2 to 2N.
Traditionally, we are only interested in performance up to constant factors.
This means that we don't really care if there is some constant multiple of difference in performance when N is large. The unit of 2N is not well-defined in the first place anyway. So we can multiply or divide by a constant factor to get to the simplest expression.
So 2N becomes just N.

This is an excellent article: Time complexity of algorithm
The below answer is copied from above (in case the excellent link goes bust)
The most common metric for calculating time complexity is Big O notation. This removes all constant factors so that the running time can be estimated in relation to N as N approaches infinity. In general you can think of it like this:
statement;
Is constant. The running time of the statement will not change in relation to N.
for ( i = 0; i < N; i++ )
statement;
Is linear. The running time of the loop is directly proportional to N. When N doubles, so does the running time.
for ( i = 0; i < N; i++ ) {
for ( j = 0; j < N; j++ )
statement;
}
Is quadratic. The running time of the two loops is proportional to the square of N. When N doubles, the running time increases by N * N.
while ( low <= high ) {
mid = ( low + high ) / 2;
if ( target < list[mid] )
high = mid - 1;
else if ( target > list[mid] )
low = mid + 1;
else break;
}
Is logarithmic. The running time of the algorithm is proportional to the number of times N can be divided by 2. This is because the algorithm divides the working area in half with each iteration.
void quicksort (int list[], int left, int right)
{
int pivot = partition (list, left, right);
quicksort(list, left, pivot - 1);
quicksort(list, pivot + 1, right);
}
Is N * log (N). The running time consists of N loops (iterative or recursive) that are logarithmic, thus the algorithm is a combination of linear and logarithmic.
In general, doing something with every item in one dimension is linear, doing something with every item in two dimensions is quadratic, and dividing the working area in half is logarithmic. There are other Big O measures such as cubic, exponential, and square root, but they're not nearly as common. Big O notation is described as O ( <type> ) where <type> is the measure. The quicksort algorithm would be described as O (N * log(N )).
Note that none of this has taken into account best, average, and worst case measures. Each would have its own Big O notation. Also note that this is a VERY simplistic explanation. Big O is the most common, but it's also more complex that I've shown. There are also other notations such as big omega, little o, and big theta. You probably won't encounter them outside of an algorithm analysis course. ;)

Taken from here - Introduction to Time Complexity of an Algorithm
1. Introduction
In computer science, the time complexity of an algorithm quantifies the amount of time taken by an algorithm to run as a function of the length of the string representing the input.
2. Big O notation
The time complexity of an algorithm is commonly expressed using big O notation, which excludes coefficients and lower order terms. When expressed this way, the time complexity is said to be described asymptotically, i.e., as the input size goes to infinity.
For example, if the time required by an algorithm on all inputs of size n is at most 5n3 + 3n, the asymptotic time complexity is O(n3). More on that later.
A few more examples:
1 = O(n)
n = O(n2)
log(n) = O(n)
2 n + 1 = O(n)
3. O(1) constant time:
An algorithm is said to run in constant time if it requires the same amount of time regardless of the input size.
Examples:
array: accessing any element
fixed-size stack: push and pop methods
fixed-size queue: enqueue and dequeue methods
4. O(n) linear time
An algorithm is said to run in linear time if its time execution is directly proportional to the input size, i.e. time grows linearly as input size increases.
Consider the following examples. Below I am linearly searching for an element, and this has a time complexity of O(n).
int find = 66;
var numbers = new int[] { 33, 435, 36, 37, 43, 45, 66, 656, 2232 };
for (int i = 0; i < numbers.Length - 1; i++)
{
if(find == numbers[i])
{
return;
}
}
More Examples:
Array: Linear Search, Traversing, Find minimum etc
ArrayList: contains method
Queue: contains method
5. O(log n) logarithmic time:
An algorithm is said to run in logarithmic time if its time execution is proportional to the logarithm of the input size.
Example: Binary Search
Recall the "twenty questions" game - the task is to guess the value of a hidden number in an interval. Each time you make a guess, you are told whether your guess is too high or too low. Twenty questions game implies a strategy that uses your guess number to halve the interval size. This is an example of the general problem-solving method known as binary search.
6. O(n2) quadratic time
An algorithm is said to run in quadratic time if its time execution is proportional to the square of the input size.
Examples:
Bubble Sort
Selection Sort
Insertion Sort
7. Some useful links
Big-O Misconceptions
Determining The Complexity Of Algorithm
Big O Cheat Sheet

Several examples of loop.
O(n) time complexity of a loop is considered as O(n) if the loop variables is incremented / decremented by a constant amount. For example following functions have O(n) time complexity.
// Here c is a positive integer constant
for (int i = 1; i <= n; i += c) {
// some O(1) expressions
}
for (int i = n; i > 0; i -= c) {
// some O(1) expressions
}
O(nc) time complexity of nested loops is equal to the number of times the innermost statement is executed. For example, the following sample loops have O(n2) time complexity
for (int i = 1; i <=n; i += c) {
for (int j = 1; j <=n; j += c) {
// some O(1) expressions
}
}
for (int i = n; i > 0; i += c) {
for (int j = i+1; j <=n; j += c) {
// some O(1) expressions
}
For example, selection sort and insertion sort have O(n2) time complexity.
O(log n) time complexity of a loop is considered as O(log n) if the loop variables is divided / multiplied by a constant amount.
for (int i = 1; i <=n; i *= c) {
// some O(1) expressions
}
for (int i = n; i > 0; i /= c) {
// some O(1) expressions
}
For example, [binary search][3] has _O(log n)_ time complexity.
O(log log n) time complexity of a loop is considered as O(log log n) if the loop variables is reduced / increased exponentially by a constant amount.
// Here c is a constant greater than 1
for (int i = 2; i <=n; i = pow(i, c)) {
// some O(1) expressions
}
//Here fun is sqrt or cuberoot or any other constant root
for (int i = n; i > 0; i = fun(i)) {
// some O(1) expressions
}
One example of time complexity analysis
int fun(int n)
{
for (int i = 1; i <= n; i++)
{
for (int j = 1; j < n; j += i)
{
// Some O(1) task
}
}
}
Analysis:
For i = 1, the inner loop is executed n times.
For i = 2, the inner loop is executed approximately n/2 times.
For i = 3, the inner loop is executed approximately n/3 times.
For i = 4, the inner loop is executed approximately n/4 times.
…………………………………………………….
For i = n, the inner loop is executed approximately n/n times.
So the total time complexity of the above algorithm is (n + n/2 + n/3 + … + n/n), which becomes n * (1/1 + 1/2 + 1/3 + … + 1/n)
The important thing about series (1/1 + 1/2 + 1/3 + … + 1/n) is around to O(log n). So the time complexity of the above code is O(n·log n).
References:
1
2
3

Time complexity with examples
1 - Basic operations (arithmetic, comparisons, accessing array’s elements, assignment): The running time is always constant O(1)
Example:
read(x) // O(1)
a = 10; // O(1)
a = 1,000,000,000,000,000,000 // O(1)
2 - If then else statement: Only taking the maximum running time from two or more possible statements.
Example:
age = read(x) // (1+1) = 2
if age < 17 then begin // 1
status = "Not allowed!"; // 1
end else begin
status = "Welcome! Please come in"; // 1
visitors = visitors + 1; // 1+1 = 2
end;
So, the complexity of the above pseudo code is T(n) = 2 + 1 + max(1, 1+2) = 6. Thus, its big oh is still constant T(n) = O(1).
3 - Looping (for, while, repeat): Running time for this statement is the number of loops multiplied by the number of operations inside that looping.
Example:
total = 0; // 1
for i = 1 to n do begin // (1+1)*n = 2n
total = total + i; // (1+1)*n = 2n
end;
writeln(total); // 1
So, its complexity is T(n) = 1+4n+1 = 4n + 2. Thus, T(n) = O(n).
4 - Nested loop (looping inside looping): Since there is at least one looping inside the main looping, running time of this statement used O(n^2) or O(n^3).
Example:
for i = 1 to n do begin // (1+1)*n = 2n
for j = 1 to n do begin // (1+1)n*n = 2n^2
x = x + 1; // (1+1)n*n = 2n^2
print(x); // (n*n) = n^2
end;
end;
Common running time
There are some common running times when analyzing an algorithm:
O(1) – Constant time
Constant time means the running time is constant, it’s not affected by the input size.
O(n) – Linear time
When an algorithm accepts n input size, it would perform n operations as well.
O(log n) – Logarithmic time
Algorithm that has running time O(log n) is slight faster than O(n). Commonly, algorithm divides the problem into sub problems with the same size. Example: binary search algorithm, binary conversion algorithm.
O(n log n) – Linearithmic time
This running time is often found in "divide & conquer algorithms" which divide the problem into sub problems recursively and then merge them in n time. Example: Merge Sort algorithm.
O(n2) – Quadratic time
Look Bubble Sort algorithm!
O(n3) – Cubic time
It has the same principle with O(n2).
O(2n) – Exponential time
It is very slow as input get larger, if n = 1,000,000, T(n) would be 21,000,000. Brute Force algorithm has this running time.
O(n!) – Factorial time
The slowest!!! Example: Travelling salesman problem (TSP)
It is taken from this article. It is very well explained and you should give it a read.

When you're analyzing code, you have to analyse it line by line, counting every operation/recognizing time complexity. In the end, you have to sum it to get whole picture.
For example, you can have one simple loop with linear complexity, but later in that same program you can have a triple loop that has cubic complexity, so your program will have cubic complexity. Function order of growth comes into play right here.
Let's look at what are possibilities for time complexity of an algorithm, you can see order of growth I mentioned above:
Constant time has an order of growth 1, for example: a = b + c.
Logarithmic time has an order of growth log N. It usually occurs when you're dividing something in half (binary search, trees, and even loops), or multiplying something in same way.
Linear. The order of growth is N, for example
int p = 0;
for (int i = 1; i < N; i++)
p = p + 2;
Linearithmic. The order of growth is n·log N. It usually occurs in divide-and-conquer algorithms.
Cubic. The order of growth is N3. A classic example is a triple loop where you check all triplets:
int x = 0;
for (int i = 0; i < N; i++)
for (int j = 0; j < N; j++)
for (int k = 0; k < N; k++)
x = x + 2
Exponential. The order of growth is 2N. It usually occurs when you do exhaustive search, for example, check subsets of some set.

Loosely speaking, time complexity is a way of summarising how the number of operations or run-time of an algorithm grows as the input size increases.
Like most things in life, a cocktail party can help us understand.
O(N)
When you arrive at the party, you have to shake everyone's hand (do an operation on every item). As the number of attendees N increases, the time/work it will take you to shake everyone's hand increases as O(N).
Why O(N) and not cN?
There's variation in the amount of time it takes to shake hands with people. You could average this out and capture it in a constant c. But the fundamental operation here --- shaking hands with everyone --- would always be proportional to O(N), no matter what c was. When debating whether we should go to a cocktail party, we're often more interested in the fact that we'll have to meet everyone than in the minute details of what those meetings look like.
O(N^2)
The host of the cocktail party wants you to play a silly game where everyone meets everyone else. Therefore, you must meet N-1 other people and, because the next person has already met you, they must meet N-2 people, and so on. The sum of this series is x^2/2+x/2. As the number of attendees grows, the x^2 term gets big fast, so we just drop everything else.
O(N^3)
You have to meet everyone else and, during each meeting, you must talk about everyone else in the room.
O(1)
The host wants to announce something. They ding a wineglass and speak loudly. Everyone hears them. It turns out it doesn't matter how many attendees there are, this operation always takes the same amount of time.
O(log N)
The host has laid everyone out at the table in alphabetical order. Where is Dan? You reason that he must be somewhere between Adam and Mandy (certainly not between Mandy and Zach!). Given that, is he between George and Mandy? No. He must be between Adam and Fred, and between Cindy and Fred. And so on... we can efficiently locate Dan by looking at half the set and then half of that set. Ultimately, we look at O(log_2 N) individuals.
O(N log N)
You could find where to sit down at the table using the algorithm above. If a large number of people came to the table, one at a time, and all did this, that would take O(N log N) time. This turns out to be how long it takes to sort any collection of items when they must be compared.
Best/Worst Case
You arrive at the party and need to find Inigo - how long will it take? It depends on when you arrive. If everyone is milling around you've hit the worst-case: it will take O(N) time. However, if everyone is sitting down at the table, it will take only O(log N) time. Or maybe you can leverage the host's wineglass-shouting power and it will take only O(1) time.
Assuming the host is unavailable, we can say that the Inigo-finding algorithm has a lower-bound of O(log N) and an upper-bound of O(N), depending on the state of the party when you arrive.
Space & Communication
The same ideas can be applied to understanding how algorithms use space or communication.
Knuth has written a nice paper about the former entitled "The Complexity of Songs".
Theorem 2: There exist arbitrarily long songs of complexity O(1).
PROOF: (due to Casey and the Sunshine Band). Consider the songs Sk defined by (15), but with
V_k = 'That's the way,' U 'I like it, ' U
U = 'uh huh,' 'uh huh'
for all k.

For the mathematically-minded people: The master theorem is another useful thing to know when studying complexity.

O(n) is big O notation used for writing time complexity of an algorithm. When you add up the number of executions in an algorithm, you'll get an expression in result like 2N+2. In this expression, N is the dominating term (the term having largest effect on expression if its value increases or decreases). Now O(N) is the time complexity while N is dominating term.
Example
For i = 1 to n;
j = 0;
while(j <= n);
j = j + 1;
Here the total number of executions for the inner loop are n+1 and the total number of executions for the outer loop are n(n+1)/2, so the total number of executions for the whole algorithm are n + 1 + n(n+1/2) = (n2 + 3n)/2.
Here n^2 is the dominating term so the time complexity for this algorithm is O(n2).

Other answers concentrate on the big-O-notation and practical examples. I want to answer the question by emphasizing the theoretical view. The explanation below is necessarily lacking in details; an excellent source to learn computational complexity theory is Introduction to the Theory of Computation by Michael Sipser.
Turing Machines
The most widespread model to investigate any question about computation is a Turing machine. A Turing machine has a one dimensional tape consisting of symbols which is used as a memory device. It has a tapehead which is used to write and read from the tape. It has a transition table determining the machine's behaviour, which is a fixed hardware component that is decided when the machine is created. A Turing machine works at discrete time steps doing the following:
It reads the symbol under the tapehead.
Depending on the symbol and its internal state, which can only take finitely many values, it reads three values s, σ, and X from its transition table, where s is an internal state, σ is a symbol, and X is either Right or Left.
It changes its internal state to s.
It changes the symbol it has read to σ.
It moves the tapehead one step according to the direction in X.
Turing machines are powerful models of computation. They can do everything that your digital computer can do. They were introduced before the advent of digital modern computers by the father of theoretical computer science and mathematician: Alan Turing.
Time Complexity
It is hard to define the time complexity of a single problem like "Does white have a winning strategy in chess?" because there is a machine which runs for a single step giving the correct answer: Either the machine which says directly 'No' or directly 'Yes'. To make it work we instead define the time complexity of a family of problems L each of which has a size, usually the length of the problem description. Then we take a Turing machine M which correctly solves every problem in that family. When M is given a problem of this family of size n, it solves it in finitely many steps. Let us call f(n) the longest possible time it takes M to solve problems of size n. Then we say that the time complexity of L is O(f(n)), which means that there is a Turing machine which will solve an instance of it of size n in at most C.f(n) time where C is a constant independent of n.
Isn't it dependent on the machines? Can digital computers do it faster?
Yes! Some problems can be solved faster by other models of computation, for example two tape Turing machines solve some problems faster than those with a single tape. This is why theoreticians prefer to use robust complexity classes such as NL, P, NP, PSPACE, EXPTIME, etc. For example, P is the class of decision problems whose time complexity is O(p(n)) where p is a polynomial. The class P do not change even if you add ten thousand tapes to your Turing machine, or use other types of theoretical models such as random access machines.
A Difference in Theory and Practice
It is usually assumed that the time complexity of integer addition is O(1). This assumption makes sense in practice because computers use a fixed number of bits to store numbers for many applications. There is no reason to assume such a thing in theory, so time complexity of addition is O(k) where k is the number of bits needed to express the integer.
Finding The Time Complexity of a Class of Problems
The straightforward way to show the time complexity of a problem is O(f(n)) is to construct a Turing machine which solves it in O(f(n)) time. Creating Turing machines for complex problems is not trivial; one needs some familiarity with them. A transition table for a Turing machine is rarely given, and it is described in high level. It becomes easier to see how long it will take a machine to halt as one gets themselves familiar with them.
Showing that a problem is not O(f(n)) time complexity is another story... Even though there are some results like the time hierarchy theorem, there are many open problems here. For example whether problems in NP are in P, i.e. solvable in polynomial time, is one of the seven millennium prize problems in mathematics, whose solver will be awarded 1 million dollars.

Determining Big O Notation

I need help understanding/doing Big O Notation. I understand the purpose of it, I just don't know how to "determine the complexity given a piece of code".
Determine the Big O notation for each of the following
a.
n=6;
cout<<n<<endl;
b.
n=16;
for (i=0; i<n; i++)
cout<<i<<endl;
c.
i=6;
n=23;
while (i<n) {
cout<<i-6<<endl;
i++;
}
d.
int a[ ] = {1, 3, 5, 7, 9, 11, 13, 15, 17, 19};
n=10;
for (i=0; i<n; i++)
a[i]=a[i]*2;
for (i=9; i>=0; i--)
cout<<a[i]<<endl;
e.
sum=0;
n=6;
k=pow(2,n);
for (i=0;i<k;i++)
sum=sum+k;

Big O indicates the order of the complexity of your algorithm.
Basic things :
This complexity is measured regarding to the entry size
You choose a unit operation (usually affectation or comparison)
You count how much time this operation is called
A constant term or constant factor is usually ignored when using complexity so if the number of operation is 3*n^3 + 12 it's simplified to n^3 also marked O(n^3)
a.) Will just run once, no loop, complexity is trivial here O(1)
b.) Call n times in the loop: O(n)
c.) Here we choose to analyze n (because it's usually the incrementing variable in an algorithm). The number of calls is n - 6 so this is O(n).
d.) Let's suppose here that 10 (n) is the size of your array and nine (i) this size minus one. For each value to n, we have to go from 0 to n then n-1 to 0. n * (n-1) operations, technically: O(n * 2) which some people approximate as O(n). Both are called Linear Time, what is different is the slope of the line which BigO doesn't care about.
e.) The loop goes from 0 to the pow(2, n), which is 1 to 2^n, summarized as O(2^n)

Assuming you don't count the cout as part of your Big-O measurement.
a)
O(1) you can perform the integer assignment in constant time.
b)
O(n) because it takes n operations for the loop.
c)
O(n - c) = O(n) constants disappear in Big-O.
d.1)
O(2*n) = O(n) two linear time algorithms end up being linear time.
d.2)
If n grows with pow(2, n) = 2^n, then the number of operations are O(2^n); however if n is constant it would grow with O(k), where k = 2^6 = 64, which would be linear.

These examples are fairly simple. First what you have to do is to determine the main (simple) operation in the code and try to express the number of invocations of this operation as a function of input.
To be less abstract:
a.)
This code always runs in a constant time. This time is dependant on the computer, I/O latency, etc. - but it is almost not dependant on the value of n.
b.)
This time a piece of code inside a loop is executed several times. If n is two times bigger, what can you say about the number of iterations?
c.)
Again some code inside a loop. But this time the number of iterations is less than n. But if n is sufficiently big, do you simmilarity to b.)?
d.)
This code is interesting. The operation inside a first loop is more sophisticated, but again it takes more-or-less constant amount of time. So how many times is it executed in relation to n? Once again compare with b.)
The second loop is there only to trick you. For small n it might actually take more time than the first one. However O(n) notation always takes high n values into account.
5.)
The last piece of code is actually pretty simple. The number of simple operations inside a loop is equal to n^2. Add 1 to n and you'll get twice as much operations.

To understand the full mathematical definition I recommend Wikipedia. For simple purposes big-oh is an upper bound to algorithm, given a routine how many times does it iterate before finishing given a length of n. we call this upper bound O(n) or big oh of n.
In code accessing a member of a simple array in c++ is O(1). It is one operation regardless of how large the array is.
A linear iteration through an array in a for loop is O(n)
Nested for loops are O(n^2) or O(n^k) if have more than one nested for loop
Recursion with divide and conquer (heaps, binary trees etc) is O(lg n) or O(n lg n) depending on the operation.

a
n=6;
cout<<n<<endl;
Constant time, O(1). This means as n increases from 1 to infinity, the amount of time needed to execute this statement does not increase. Each time you increment n, the amount of time needed does not increase.
b
n=16;
for (i=0; i<n; i++)
cout<<i<<endl;
Linear Time, O(n). This means that as n increases from 1 to infinity, the amount of time needed to execute this statement increases linearly. Each time you increment n, the amount of additional time needed from the previous remains constant.
c
i=6;
n=23;
while (i<n) {
cout<<i-6<<endl;
i++;
}
Linear Time, O(n), same as example 2 above.
d
int a[ ] = {1, 3, 5, 7, 9, 11, 13, 15, 17, 19};
n=10;
for (i=0; i<n; i++)
a[i]=a[i]*2;
for (i=9; i>=0; i--)
cout<<a[i]<<endl;
Linear time, O(n). As n increases from 1 to infinity, the amount of time needed to execute these statements increase linearly. The linear line is twice as steep as example 3, however Big O Notation does not concern itself with how steep the line is, it's only concerned with how the time requirements grow. The two loops require linearly growing amount of time as n increases.
e
sum=0;
n=6;
k=pow(2,n);
for (i=0;i<k;i++)
sum=sum+k;
Create a graph of how many times sum=sum+k is executed given the value n:
n number_of_times_in_loop
1 2^1 = 2
2 2^2 = 4
3 2^3 = 8
4 2^4 = 16
5 2^5 = 32
6 2^6 = 64
As n goes from 1 to infinity, notice how the number of times we are in the loop exponentially increases. 2->4->8->16->32->64. What would happen if I plugged in n of 150? The number of times we would be in the loop becomes astronomical.
This is Exponential time: O(2^n) (see here) denotes an algorithm whose growth will double with each additional element in the input data set. Plug in a large sized n at your own peril, you will be waiting hours or years for the calculation to complete for a handful of input items.
Why do we care?
As computer scientists, we are interested in properly understanding BigO notation because we want to be able to say things like this with authority and conviction:
"Jim's algorithm for calculating the distance between planets takes exponential time. If we want to do 20 objects it takes too much time, his code is crap because I can make one in linear time."
And better yet, if they don't like what they hear, you can prove it with Math.

Worst Case Time Complexity for an algorithm

What is the Worst Case Time Complexity t(n) :-
I'm reading this book about algorithms and as an example
how to get the T(n) for .... like the selection Sort Algorithm
Like if I'm dealing with the selectionSort(A[0..n-1])
//sorts a given array by selection sort
//input: An array A[0..n - 1] of orderable elements.
//output: Array A[0..n-1] sorted in ascending order
let me write a pseudocode
for i <----0 to n-2 do
min<--i
for j<--i+1 to n-1 do
ifA[j]<A[min] min <--j
swap A[i] and A[min]
--------I will write it in C# too---------------
private int[] a = new int[100];
// number of elements in array
private int x;
// Selection Sort Algorithm
public void sortArray()
{
int i, j;
int min, temp;
for( i = 0; i < x-1; i++ )
{
min = i;
for( j = i+1; j < x; j++ )
{
if( a[j] < a[min] )
{
min = j;
}
}
temp = a[i];
a[i] = a[min];
a[min] = temp;
}
}
==================
Now how to get the t(n) or as its known the worst case time complexity

That would be O(n^2).
The reason is you have a single for loop nested in another for loop. The run time for the inner for loop, O(n), happens for each iteration of the outer for loop, which again is O(n). The reason each of these individually are O(n) is because they take a linear amount of time given the size of the input. The larger the input the longer it takes on a linear scale, n.
To work out the math, which in this case is trivial, just multiple the complexity of the inner loop by the complexity of the outer loop. n * n = n^2. Because remember, for each n in the outer loop, you must again do n for the inner. To clarify: n times for each n.
O(n * n).
O(n^2)

By the way, you shouldn't mix up complexity (denoted by big-O) and the T function. The T function is the number of steps the algorithm has to go through for a given input.
So, the value of T(n) is the actual number of steps, whereas O(something) denotes a complexity. By the conventional abuse of notation, T(n) = O( f(n) ) means that the function T(n) is of at most the same complexity as another function f(n), which will usually be the simplest possible function of its complexity class.
This is useful because it allows us to focus on the big picture: We can now easily compare two algorithms that may have very different-looking T(n) functions by looking at how they perform "in the long run".

#sara jons
The slide set that you've referenced - and the algorithm therein
The complexity is being measured for each primitive/atomic operation in the for loop
for(j=0 ; j<n ; j++)
{
//...
}
The slides rate this loop as 2n+2 for the following reasons:
The initial set of j=0 (+1 op)
The comparison of j < n (n ops)
The increment of j++ (n ops)
The final condition to check if j < n (+1 op)
Secondly, the comparison within the for loop
if(STudID == A[j])
return true;
This is rated as n ops. Thus the result if you add up +1 op, n ops, n ops, +1 op, n ops = 3n+2 complexity. So T(n) = 3n+2
Recognize that T(n) is not the same as O(n).

Another doctoral-comp flashback here.
First, the T function is simply the amount of time (usually in some number of steps, about which more below) an algorithm takes to perform a task. What a "step" is, is somewhat defined by the use; for example, it's conventional to count the number of comparisons in sorting algorithms, but the number of elements searched in search algorithms.
When we talk about the worst-case time of an algorithm, we usually express that with "big-O notation". Thus, for example, you hear that bubble sort takes O(n²) time. When we use big O notation, what we're really saying is that the growth of some function -- in this case T -- is no faster than the growth of some other function times a constant. That is
T(n) = O(n²)
means for any n, no matter how large, there is a constant k for which T(n) ≤ kn². A point of some confustion here is that we're using the "=" sign in an overloaded fashion: it doesn't mean the two are equal in the numerical sense, just that we are saying that T(n) is bounded by kn².
In the example in your extended question, it looks like they're counting the number of comparisons in the for loop and in the test; it would help to be able to see the context and the question they're answering. In any case, though, it shows why we like big-O notation: W(n) here is O(n). (Proof: there exists a constant k, namely 5, for which W(n) ≤ k(3n)+2. It follows by the definition of O(n).)
If you want to learn more about this, consult any good algorithms text, eg, Introduction to Algorithms, by Cormen et al.

write pseudo codes to search, insert and remove student information from the hash table. calculate the best and the worst case time complexities

3n + 2 is the correct answer as far as the loop is concerned. At each step of the loop, 3 atomic operations are done. j++ is actually two operations, not one. and j