坐標平面上,X 坐標與 Y 坐標皆為整數的點稱為「格子點」。設 n 為正整數,已知在第一象限且滿足 
的格子點 (x,y) 的數目為 
。則 
的值為多少?
新ubuntu2404,新尹倉1120
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Ubuntu24.04
每次ubuntu系統出新版本,我的更新都是滯後的。最新的ubuntu2404.iso已經超過6G,估計是因為加入了大量中文字體致使體積大增。我十多年來一直當作系統盤的4個G的U盤再也裝不下了,最終我決定把一個32G的U盤當系統安裝盤。
昨晚研究了multibootUSB好久,最終引導不...
1 天前
1 ?
回覆刪除First, we have to find the relation between an and n.
Second, find the limit.
Result : an = (n+1) ^2
an / n^2 = 1 + 2*n^-1 + n^-2
as n tends to infinity, n^-1 and n^-2 tend to 0.
Thus, the final result should be 1.
Hi 小文,
刪除Regarding the an, it isn't equal to (n+1)^2.
It should be
an = (n+1)(2n+1)/2 - n -(2n+1) = (2n^2 - 3n -1)/2
The final result is equal to 1.
First, an must be positive integer.
刪除by putting n=1,n=2 ,n=3 into an = (n+1)(2n+1)/2 - n -(2n+1) = (2n^2 - 3n -1)/2,
we may get a negative number or fraction.
You are right.
刪除a1=0=1*0
a2=2=2*1
a3=6=3*2
a4=12=4*3
:
So actually, an = n(n-1)
You are right.
刪除a1=0=1*0
a2=2=2*1
a3=6=3*2
a4=12=4*3
:
So actually, an = n(n-1)