Relationship between A.P & G.P

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The discussion revolves around proving that the Pth, Qth, and Rth terms of an arithmetic sequence (A.P.) are in geometric progression (G.P.). Participants clarify the correct expressions for the terms, emphasizing the relationships between them using the common difference "d." The key step involves equating the differences between the terms and manipulating the equations to eliminate "d" and "a." The conclusion reached is that the common ratio can be expressed as either (q-r)/(p-q) or (p-q)/(q-r), validating the initial claim. The method used to arrive at this conclusion is deemed satisfactory by the participants.
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1. Homework Statement

the Pth, Qth & Rth terms of an arithmetic sequence are in geometric progression. Show that the common ratio is (q-r)/(p-q) or (p-q)/(q-r).

2. Homework Equations
for an A.P, the Nth term=
a (n-1)d
for a G.P, the Nth term= ar^(n-1)

3. The Attempt at a Solution

let the Pth, Qth & Rth term be
p, q & r respectively. Since they are in A.P,
"d"= q-p = r-q
also, since they form a GP,
"r"= (p/q)or(q/p)= (r/q)or(q/r)
don't really know if to make the assumption that for this case, "d"= "r", is pretty safe!
So please what do i do next?
Thanks in anticipation!
 
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Hi Anyiam! :smile:
Anyiam said:
… let the Pth, Qth & Rth term be
p, q & r respectively.

uhh? :confused:

they'll be a + pd etc :wink:
 
Oops! That was some silly mistake on my part! The Pth, Qth & Rth term ought to have been: a plus(p-1)d,
a plus(q-1)d, and
a plus(r-1)d respectively!
pls permit me to use "plus" to indicate addition.
Going by this, the difference between the
Qth & Pth term becomes
d(q-p) and between the
Rth & Qth term also becomes d(r-q), & equating both gives:
d(q-p)= d(r-q).
So what do i do next?
 
Anyiam said:
Going by this, the difference between the
Qth & Pth term becomes
d(q-p) and between the
Rth & Qth term also becomes d(r-q), & equating both gives:
d(q-p)= d(r-q).

what are you doing? :confused:

the question says …
Anyiam said:
the Pth, Qth & Rth terms of an arithmetic sequence are in geometric progression.

ie (a + pd)/(a + qd) = (a + qd)/(a + rd)
 
Ok! You are right! Because the common ratio must be the ratio between any two consecutive terms say the Pth term[a plus pd] & the Qth term[a plus qd]. But how do i proceed from here?
 
Last edited:
Anyiam said:
Ok! You are right! But how do i proceed from here?

carefully, but with confidence!

show us what you get :smile:
 
i think the next thing is to eliminate the "d" & "a".
 
Last edited:
Well, i eventually did it this way:
[Pth term - Qth term] /
[Qth term - Rth term] and i got (p-q)/(q-r).
and taking the inverse will also give (q-r)/(p-q), which is true!
please is this method satisfactory?
 
Last edited:

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