kode python

Program python untuk mencetak kuadrat dari n angka menggunakan while loop

304We know, (k + 1)3 = k3 + 3 * k2 + 3 * k + 1 We can write the above identity for k from 1 to n: 23 = 13 + 3 * 12 + 3 * 1 + 1 ........ (1) 33 = 23 + 3 * 22 + 3 * 2 + 1 ........ (2) 43 = 33 + 3 * 32 + 3 * 3 + 1 ........ (3) 53 = 43 + 3 * 42 + 3 * 4 + 1 ........ (4) ... n3 = (n - 1)3 + 3 * (n - 1)2 + 3 * (n - 1) + 1 ........ (n - 1) (n + 1)3 = n3 + 3 * n2 + 3 * n + 1 ........ (n) Putting equation (n - 1) in equation n, (n + 1)3 = (n - 1)3 + 3 * (n - 1)2 + 3 * (n - 1) + 1 + 3 * n2 + 3 * n + 1 = (n - 1)3 + 3 * (n2 + (n - 1)2) + 3 * ( n + (n - 1) ) + 1 + 1 By putting all equation, we get (n + 1)3 = 13 + 3 * Σ k2 + 3 * Σ k + Σ 1 n3 + 3 * n2 + 3 * n + 1 = 1 + 3 * Σ k2 + 3 * (n * (n + 1))/2 + n n3 + 3 * n2 + 3 * n = 3 * Σ k2 + 3 * (n * (n + 1))/2 + n n3 + 3 * n2 + 2 * n - 3 * (n * (n + 1))/2 = 3 * Σ k2 n * (n2 + 3 * n + 2) - 3 * (n * (n + 1))/2 = 3 * Σ k2 n * (n + 1) * (n + 2) - 3 * (n * (n + 1))/2 = 3 * Σ k2 n * (n + 1) * (n + 2 - 3/2) = 3 * Σ k2 n * (n + 1) * (2 * n + 1)/2 = 3 * Σ k2 n * (n + 1) * (2 * n + 1)/6 = Σ k27 We know, (k + 1)3 = k3 + 3 * k2 + 3 * k + 1 We can write the above identity for k from 1 to n: 23 = 13 + 3 * 12 + 3 * 1 + 1 ........ (1) 33 = 23 + 3 * 22 + 3 * 2 + 1 ........ (2) 43 = 33 + 3 * 32 + 3 * 3 + 1 ........ (3) 53 = 43 + 3 * 42 + 3 * 4 + 1 ........ (4) ... n3 = (n - 1)3 + 3 * (n - 1)2 + 3 * (n - 1) + 1 ........ (n - 1) (n + 1)3 = n3 + 3 * n2 + 3 * n + 1 ........ (n) Putting equation (n - 1) in equation n, (n + 1)3 = (n - 1)3 + 3 * (n - 1)2 + 3 * (n - 1) + 1 + 3 * n2 + 3 * n + 1 = (n - 1)3 + 3 * (n2 + (n - 1)2) + 3 * ( n + (n - 1) ) + 1 + 1 By putting all equation, we get (n + 1)3 = 13 + 3 * Σ k2 + 3 * Σ k + Σ 1 n3 + 3 * n2 + 3 * n + 1 = 1 + 3 * Σ k2 + 3 * (n * (n + 1))/2 + n n3 + 3 * n2 + 3 * n = 3 * Σ k2 + 3 * (n * (n + 1))/2 + n n3 + 3 * n2 + 2 * n - 3 * (n * (n + 1))/2 = 3 * Σ k2 n * (n2 + 3 * n + 2) - 3 * (n * (n + 1))/2 = 3 * Σ k2 n * (n + 1) * (n + 2) - 3 * (n * (n + 1))/2 = 3 * Σ k2 n * (n + 1) * (n + 2 - 3/2) = 3 * Σ k2 n * (n + 1) * (2 * n + 1)/2 = 3 * Σ k2 n * (n + 1) * (2 * n + 1)/6 = Σ k28We know, (k + 1)3 = k3 + 3 * k2 + 3 * k + 1 We can write the above identity for k from 1 to n: 23 = 13 + 3 * 12 + 3 * 1 + 1 ........ (1) 33 = 23 + 3 * 22 + 3 * 2 + 1 ........ (2) 43 = 33 + 3 * 32 + 3 * 3 + 1 ........ (3) 53 = 43 + 3 * 42 + 3 * 4 + 1 ........ (4) ... n3 = (n - 1)3 + 3 * (n - 1)2 + 3 * (n - 1) + 1 ........ (n - 1) (n + 1)3 = n3 + 3 * n2 + 3 * n + 1 ........ (n) Putting equation (n - 1) in equation n, (n + 1)3 = (n - 1)3 + 3 * (n - 1)2 + 3 * (n - 1) + 1 + 3 * n2 + 3 * n + 1 = (n - 1)3 + 3 * (n2 + (n - 1)2) + 3 * ( n + (n - 1) ) + 1 + 1 By putting all equation, we get (n + 1)3 = 13 + 3 * Σ k2 + 3 * Σ k + Σ 1 n3 + 3 * n2 + 3 * n + 1 = 1 + 3 * Σ k2 + 3 * (n * (n + 1))/2 + n n3 + 3 * n2 + 3 * n = 3 * Σ k2 + 3 * (n * (n + 1))/2 + n n3 + 3 * n2 + 2 * n - 3 * (n * (n + 1))/2 = 3 * Σ k2 n * (n2 + 3 * n + 2) - 3 * (n * (n + 1))/2 = 3 * Σ k2 n * (n + 1) * (n + 2) - 3 * (n * (n + 1))/2 = 3 * Σ k2 n * (n + 1) * (n + 2 - 3/2) = 3 * Σ k2 n * (n + 1) * (2 * n + 1)/2 = 3 * Σ k2 n * (n + 1) * (2 * n + 1)/6 = Σ k29 300301302303304302________0______6

307We know, (k + 1)3 = k3 + 3 * k2 + 3 * k + 1 We can write the above identity for k from 1 to n: 23 = 13 + 3 * 12 + 3 * 1 + 1 ........ (1) 33 = 23 + 3 * 22 + 3 * 2 + 1 ........ (2) 43 = 33 + 3 * 32 + 3 * 3 + 1 ........ (3) 53 = 43 + 3 * 42 + 3 * 4 + 1 ........ (4) ... n3 = (n - 1)3 + 3 * (n - 1)2 + 3 * (n - 1) + 1 ........ (n - 1) (n + 1)3 = n3 + 3 * n2 + 3 * n + 1 ........ (n) Putting equation (n - 1) in equation n, (n + 1)3 = (n - 1)3 + 3 * (n - 1)2 + 3 * (n - 1) + 1 + 3 * n2 + 3 * n + 1 = (n - 1)3 + 3 * (n2 + (n - 1)2) + 3 * ( n + (n - 1) ) + 1 + 1 By putting all equation, we get (n + 1)3 = 13 + 3 * Σ k2 + 3 * Σ k + Σ 1 n3 + 3 * n2 + 3 * n + 1 = 1 + 3 * Σ k2 + 3 * (n * (n + 1))/2 + n n3 + 3 * n2 + 3 * n = 3 * Σ k2 + 3 * (n * (n + 1))/2 + n n3 + 3 * n2 + 2 * n - 3 * (n * (n + 1))/2 = 3 * Σ k2 n * (n2 + 3 * n + 2) - 3 * (n * (n + 1))/2 = 3 * Σ k2 n * (n + 1) * (n + 2) - 3 * (n * (n + 1))/2 = 3 * Σ k2 n * (n + 1) * (n + 2 - 3/2) = 3 * Σ k2 n * (n + 1) * (2 * n + 1)/2 = 3 * Σ k2 n * (n + 1) * (2 * n + 1)/6 = Σ k23We know, (k + 1)3 = k3 + 3 * k2 + 3 * k + 1 We can write the above identity for k from 1 to n: 23 = 13 + 3 * 12 + 3 * 1 + 1 ........ (1) 33 = 23 + 3 * 22 + 3 * 2 + 1 ........ (2) 43 = 33 + 3 * 32 + 3 * 3 + 1 ........ (3) 53 = 43 + 3 * 42 + 3 * 4 + 1 ........ (4) ... n3 = (n - 1)3 + 3 * (n - 1)2 + 3 * (n - 1) + 1 ........ (n - 1) (n + 1)3 = n3 + 3 * n2 + 3 * n + 1 ........ (n) Putting equation (n - 1) in equation n, (n + 1)3 = (n - 1)3 + 3 * (n - 1)2 + 3 * (n - 1) + 1 + 3 * n2 + 3 * n + 1 = (n - 1)3 + 3 * (n2 + (n - 1)2) + 3 * ( n + (n - 1) ) + 1 + 1 By putting all equation, we get (n + 1)3 = 13 + 3 * Σ k2 + 3 * Σ k + Σ 1 n3 + 3 * n2 + 3 * n + 1 = 1 + 3 * Σ k2 + 3 * (n * (n + 1))/2 + n n3 + 3 * n2 + 3 * n = 3 * Σ k2 + 3 * (n * (n + 1))/2 + n n3 + 3 * n2 + 2 * n - 3 * (n * (n + 1))/2 = 3 * Σ k2 n * (n2 + 3 * n + 2) - 3 * (n * (n + 1))/2 = 3 * Σ k2 n * (n + 1) * (n + 2) - 3 * (n * (n + 1))/2 = 3 * Σ k2 n * (n + 1) * (n + 2 - 3/2) = 3 * Σ k2 n * (n + 1) * (2 * n + 1)/2 = 3 * Σ k2 n * (n + 1) * (2 * n + 1)/6 = Σ k24 We know, (k + 1)3 = k3 + 3 * k2 + 3 * k + 1 We can write the above identity for k from 1 to n: 23 = 13 + 3 * 12 + 3 * 1 + 1 ........ (1) 33 = 23 + 3 * 22 + 3 * 2 + 1 ........ (2) 43 = 33 + 3 * 32 + 3 * 3 + 1 ........ (3) 53 = 43 + 3 * 42 + 3 * 4 + 1 ........ (4) ... n3 = (n - 1)3 + 3 * (n - 1)2 + 3 * (n - 1) + 1 ........ (n - 1) (n + 1)3 = n3 + 3 * n2 + 3 * n + 1 ........ (n) Putting equation (n - 1) in equation n, (n + 1)3 = (n - 1)3 + 3 * (n - 1)2 + 3 * (n - 1) + 1 + 3 * n2 + 3 * n + 1 = (n - 1)3 + 3 * (n2 + (n - 1)2) + 3 * ( n + (n - 1) ) + 1 + 1 By putting all equation, we get (n + 1)3 = 13 + 3 * Σ k2 + 3 * Σ k + Σ 1 n3 + 3 * n2 + 3 * n + 1 = 1 + 3 * Σ k2 + 3 * (n * (n + 1))/2 + n n3 + 3 * n2 + 3 * n = 3 * Σ k2 + 3 * (n * (n + 1))/2 + n n3 + 3 * n2 + 2 * n - 3 * (n * (n + 1))/2 = 3 * Σ k2 n * (n2 + 3 * n + 2) - 3 * (n * (n + 1))/2 = 3 * Σ k2 n * (n + 1) * (n + 2) - 3 * (n * (n + 1))/2 = 3 * Σ k2 n * (n + 1) * (n + 2 - 3/2) = 3 * Σ k2 n * (n + 1) * (2 * n + 1)/2 = 3 * Σ k2 n * (n + 1) * (2 * n + 1)/6 = Σ k23304 302303 304

30_4

304307 We know, (k + 1)3 = k3 + 3 * k2 + 3 * k + 1 We can write the above identity for k from 1 to n: 23 = 13 + 3 * 12 + 3 * 1 + 1 ........ (1) 33 = 23 + 3 * 22 + 3 * 2 + 1 ........ (2) 43 = 33 + 3 * 32 + 3 * 3 + 1 ........ (3) 53 = 43 + 3 * 42 + 3 * 4 + 1 ........ (4) ... n3 = (n - 1)3 + 3 * (n - 1)2 + 3 * (n - 1) + 1 ........ (n - 1) (n + 1)3 = n3 + 3 * n2 + 3 * n + 1 ........ (n) Putting equation (n - 1) in equation n, (n + 1)3 = (n - 1)3 + 3 * (n - 1)2 + 3 * (n - 1) + 1 + 3 * n2 + 3 * n + 1 = (n - 1)3 + 3 * (n2 + (n - 1)2) + 3 * ( n + (n - 1) ) + 1 + 1 By putting all equation, we get (n + 1)3 = 13 + 3 * Σ k2 + 3 * Σ k + Σ 1 n3 + 3 * n2 + 3 * n + 1 = 1 + 3 * Σ k2 + 3 * (n * (n + 1))/2 + n n3 + 3 * n2 + 3 * n = 3 * Σ k2 + 3 * (n * (n + 1))/2 + n n3 + 3 * n2 + 2 * n - 3 * (n * (n + 1))/2 = 3 * Σ k2 n * (n2 + 3 * n + 2) - 3 * (n * (n + 1))/2 = 3 * Σ k2 n * (n + 1) * (n + 2) - 3 * (n * (n + 1))/2 = 3 * Σ k2 n * (n + 1) * (n + 2 - 3/2) = 3 * Σ k2 n * (n + 1) * (2 * n + 1)/2 = 3 * Σ k2 n * (n + 1) * (2 * n + 1)/6 = Σ k23

 

30_9

________42______0We know, (k + 1)3 = k3 + 3 * k2 + 3 * k + 1 We can write the above identity for k from 1 to n: 23 = 13 + 3 * 12 + 3 * 1 + 1 ........ (1) 33 = 23 + 3 * 22 + 3 * 2 + 1 ........ (2) 43 = 33 + 3 * 32 + 3 * 3 + 1 ........ (3) 53 = 43 + 3 * 42 + 3 * 4 + 1 ........ (4) ... n3 = (n - 1)3 + 3 * (n - 1)2 + 3 * (n - 1) + 1 ........ (n - 1) (n + 1)3 = n3 + 3 * n2 + 3 * n + 1 ........ (n) Putting equation (n - 1) in equation n, (n + 1)3 = (n - 1)3 + 3 * (n - 1)2 + 3 * (n - 1) + 1 + 3 * n2 + 3 * n + 1 = (n - 1)3 + 3 * (n2 + (n - 1)2) + 3 * ( n + (n - 1) ) + 1 + 1 By putting all equation, we get (n + 1)3 = 13 + 3 * Σ k2 + 3 * Σ k + Σ 1 n3 + 3 * n2 + 3 * n + 1 = 1 + 3 * Σ k2 + 3 * (n * (n + 1))/2 + n n3 + 3 * n2 + 3 * n = 3 * Σ k2 + 3 * (n * (n + 1))/2 + n n3 + 3 * n2 + 2 * n - 3 * (n * (n + 1))/2 = 3 * Σ k2 n * (n2 + 3 * n + 2) - 3 * (n * (n + 1))/2 = 3 * Σ k2 n * (n + 1) * (n + 2) - 3 * (n * (n + 1))/2 = 3 * Σ k2 n * (n + 1) * (n + 2 - 3/2) = 3 * Σ k2 n * (n + 1) * (2 * n + 1)/2 = 3 * Σ k2 n * (n + 1) * (2 * n + 1)/6 = Σ k24 # Python3 Program to2

# Python3 Program to3# Python3 Program to4

 

# Python3 Program to5

Keluaran

30

Metode 2. O(1)

Bukti.

We know, (k + 1)3 = k3 + 3 * k2 + 3 * k + 1 We can write the above identity for k from 1 to n: 23 = 13 + 3 * 12 + 3 * 1 + 1 ........ (1) 33 = 23 + 3 * 22 + 3 * 2 + 1 ........ (2) 43 = 33 + 3 * 32 + 3 * 3 + 1 ........ (3) 53 = 43 + 3 * 42 + 3 * 4 + 1 ........ (4) ... n3 = (n - 1)3 + 3 * (n - 1)2 + 3 * (n - 1) + 1 ........ (n - 1) (n + 1)3 = n3 + 3 * n2 + 3 * n + 1 ........ (n) Putting equation (n - 1) in equation n, (n + 1)3 = (n - 1)3 + 3 * (n - 1)2 + 3 * (n - 1) + 1 + 3 * n2 + 3 * n + 1 = (n - 1)3 + 3 * (n2 + (n - 1)2) + 3 * ( n + (n - 1) ) + 1 + 1 By putting all equation, we get (n + 1)3 = 13 + 3 * Σ k2 + 3 * Σ k + Σ 1 n3 + 3 * n2 + 3 * n + 1 = 1 + 3 * Σ k2 + 3 * (n * (n + 1))/2 + n n3 + 3 * n2 + 3 * n = 3 * Σ k2 + 3 * (n * (n + 1))/2 + n n3 + 3 * n2 + 2 * n - 3 * (n * (n + 1))/2 = 3 * Σ k2 n * (n2 + 3 * n + 2) - 3 * (n * (n + 1))/2 = 3 * Σ k2 n * (n + 1) * (n + 2) - 3 * (n * (n + 1))/2 = 3 * Σ k2 n * (n + 1) * (n + 2 - 3/2) = 3 * Σ k2 n * (n + 1) * (2 * n + 1)/2 = 3 * Σ k2 n * (n + 1) * (2 * n + 1)/6 = Σ k2_

python3




# Python3 Program to

# find sum of square

# of first n natural

# numbers

 

# Return the sum of

300

30_1

302 303

304307 # find sum of square7303 # find sum of square7304 302# of first n natural2# numbers1 # of first n natural5# of first n natural2303 301# of first n natural5 303 # Python3 Program to0304 302# of first n natural2# numbers1 3017

Bagaimana Anda mencetak angka kuadrat dengan python while loop?

Anda juga dapat menemukan kuadrat dari bilangan tertentu menggunakan operator eksponen di python . Itu diwakili oleh "**". Saat menerapkan metode ini, operator eksponen mengembalikan pangkat eksponensial yang menghasilkan kuadrat dari angka tersebut.

Bagaimana Anda mencetak n angka dalam python untuk loop?

Program Python untuk mencetak angka dari 1 sampai N menggunakan for loop .
Ambil input dari pengguna dengan menggunakan fungsi python input()
Ulangi untuk loop dengan nomor input pengguna
Kenaikan untuk nilai iterasi loop sebesar 1, serta nilai iterasi cetak

Bagaimana Anda mencetak angka dalam loop sementara dengan python?

Python - While Loop .
Contoh. while loop. bilangan =0 sedangkan bilangan < 5. bilangan = bilangan + 1 print('bil = ', bilangan)
Contoh. Indentasi Tidak Valid. bilangan =0 sedangkan bilangan < 5. bilangan = bilangan + 1 print('bil = ', bilangan)
Contoh. Melanggar while loop. .
Contoh. Lanjutkan dalam while loop. .
Contoh. while loop dengan blok else. .
Contoh. while loop

Pos Terkait

Perubahan versi cpanel php tidak berfungsi
Mongodb berbeda mengembalikan semua bidang
Apa tipe data dalam python dengan contoh?
Bagaimana saya bisa melihat semua css?
Bagaimana menemukan kata-kata dalam string python
Cara menggunakan browser support html5
Cara menggunakan python dynamic arguments function
Cara menggunakan CONCANTONATE pada Python
Cara menggunakan shell web interaktif php
Python membuat kamus dalam lingkaran

Toplist

#1
Top 7 unterschied griechischer joghurt und joghurt griechischer art 2022
#2
Top 9 ibc container 600 liter gebraucht 2022
#3
Top 7 excel hintergrundfarbe auslesen ohne vba 2022
#4
Top 6 dji mavic air 2 wann welcher filter 2022
#5
Top 7 rosen schwarze flecken am stiel 2022
#6
Top 8 wann wird es wieder später dunkel 2022 2022
#7
Top 6 em nome do pai em nome do filho 2022
#8
Top 8 zdf neben der spur -- erlöse mich 2022
#9
Top 8 como melhorar dor no calcanhar 2022

Postingan terbaru

LIHAT SEMUA

Kiat Bagus Yang Cara Belajar Apa Q&A Location What kode Q&a Teknologi Jelaskan Sebutkan Kesehatan dan kecantikan Bagaimana Toplist Berapa Contoh Apa yang When Wo php disebut Berikut ini Fungsi python Facebook Apa arti Arti kata Eth Harus Tips Why Was Review Makanan lezat Mengapa topten Technologie Kryto Beda Tentang Anak Dimaksud Who How to Belajar dengan baik Permainan Jawa Timur mysql Jawa Barat