Advertisements
Advertisements
प्रश्न
Find the general term (nth term) and 23rd term of the sequence 3, 1, –1, –3, ........... .
उत्तर
The given sequence is 1, –1, –3, ...........
Now,
1 – 3 = –1 – 1
= –3 – (–1)
= –2
Hence, the given sequence is an A.P. with first term a = 3 and common difference d = –2.
The general term (nth term) of an A.P. is given by
tn = a + (n – 1)d
= 3 + (n – 1)(–2)
= 3 – 2n + 2
= 5 – 2n
Hence, 23rd term = t23
= 5 – 2(23)
= 5 – 46
= –41
APPEARS IN
संबंधित प्रश्न
`1/a, 1/b` and `1/c` are in A.P. Show that : bc, ca and ab are also in A.P.
The 25th term of an A.P. exceeds its 9th term by 16. Find its common difference.
For an A.P., show that (m + n)th term + (m – n)th term = 2 × mthterm
The sum of the 4th and the 8th terms of an A.P. is 24 and the sum of the sixth term and the tenth is 44. Find the first three terms of the A.P.
Is 0 a term of the A.P. 31,28, 25,…? Justify your answer.
Which term of the A.P. 53, 48, 43,… is the first negative term?
The sum of 2nd and 7th terms of an A.P. is 30. If its 15th term is 1 less than twice its 8th term, find the A.P.
If the numbers n – 2, 4n – 1 and 5n + 2 are in A.P., find the value of n.
A man starts repaying a loan as first instalment of Rs 500. If he increases the instalment by Rs 25 every month, what,amount will he pay in the 30th instalment?
Justify whether it is true to say that the following are the nth terms of an A.P. 2n – 3
