When n = 1, sequence term (call it y) = 7. Each unit increase in n results in an increase of 6 in y, so when n = 5, y = 31. Sequence is therefore 7, 13, 19, 25, 31 etc.
If the first two numbers are 0, 1 or -1 (not both zero) then you get an alternating Fibonacci sequence.
They are a sequence of numbers and each sequence has a term number.
2,1,0 is th sequence of its terms
In order to find the unknown term in a number sequence, you first need to calaculate the advantage of the numbers.
Each term is a square or triangular number. In the context of the sequence of square numbers, the first term is the first square number, the second term is the second square number and so on.
the first 4 terms of the sequence which has the nth term is a sequence of numbers that that goe together eg. 8,12,16,20,24 the nth term would be 4n+4
If the first two numbers are 0, 1 or -1 (not both zero) then you get an alternating Fibonacci sequence.
They are a sequence of numbers and each sequence has a term number.
2,1,0 is th sequence of its terms
In order to find the unknown term in a number sequence, you first need to calaculate the advantage of the numbers.
Each term is a square or triangular number. In the context of the sequence of square numbers, the first term is the first square number, the second term is the second square number and so on.
There are 34 even numbers between 1 and 70. The even numbers in this range start from 2 and go up to 70, forming the sequence 2, 4, 6, ..., 70. This sequence can be calculated using the formula for the nth term of an arithmetic sequence, where the first term is 2, the common difference is 2, and the last term is 70. Since the sequence contains 34 terms, there are 34 even numbers in total.
That depends what the pattern of the sequence is.
Yes, it can.
9, 17, 25, 33, 41
3,6,9,12.....
a + 99d where 'a' is the first term of the sequence and 'd' is the common difference.